Document k3kx6K8p6aKG9g7w5x3XNdLD
United States Patent no]
Wainer
mi 3,889,039
[45] June 10, 1975
[541 NUCLEATION AND ORIENTATION OF LINEAR POLYMERS
[75] Inventor: Eugene Wainer, Shaker Heights, Ohio
[73] Assignee: Horizons Incorporated, Cleveland, Ohio
[22] Filed:
Apr. 26, 1973
[21] Appl. No.: 354,594
[52] U.S. Cl............ 428/404; 252/62.54; 260/40 R; 260/DIG. 35; 264/108; 428/331; 428/443;
428/446; 428/458; 428/469; 428/900; 428/910
[51] Int. Cl......... B32b 5/16; HOlf 1/11; HOlf 1/30 [581 Field of Search.......... 161/168, 231,402, 411,
161/162, 205, 225, 214, 206; 252/62.54. 252/62.55; 260/40 R, DIG. 35
[56] References Cited UNITED STATES PATENTS
2,400,099 2,999,275 3.024,392 3.051,988 3.070,841 3,359,152 3,515,625 3.673.139
5/1946 9/1961 3/1962 9/1962 1/1963 12/1967 6/1970 6/1972
Brubaker........................... 252/62.54 Blume................................. 252/62.54 Baermann............................. 264/108 Baermann................................ 264/22 Schornstheimer................ 252/62.54 Blume.................................... 161/168 Sedlak................................... 161/160 Hrach................................. 260/40 R
FOREIGN PATENTS OR APPLICATIONS
1,284,531 781,128
1,104,089 1,102,844
12/1968 8/1957 2/1968 2/1968
Germany........................... 252/62.54 United Kingdom............... 252/62.54 United Kingdom United Kingdom
Primary Examiner--George F. Lesmes Assistant Examiner--Ellis P. Robinson Attorney, Agent, or Firm--Lawrence I. Field
[57] ABSTRACT
Additions of small amounts of fine particle size spe cialized monoclinic inorganic crystals to otherwise rel atively pure polyalkylene terephthalate molding com
pounds increases the rate and extent of crystallization and the specific gravity of the polyalkylene terephthal ate molded part. Both low and high molecular weight polyalkylene terephthalates are improved with regard to physical properties and dimensional stability through addition of these small quantities of these spe cialized monoclinic materials. Under controlled condi tions of injection and forming, anisotropic properties may be obtained as a consequence of the effect and extent of the crystallization of the polyalkylene ter ephthalates which has been promoted by these strongly active nucleating agents.
In addition to the improvement of the physical properties of the molded article, the use of these specialized nucleating agents in suitable particle size yields a significant shortening of the retention time of the injection molded material in the mold, this being an item of economic significance.
An important aspect of the invention is the added capability of polyalkylene terephthalate crystal orientation by controlled application of magnetic forces to these nucleated compositions, and particularly (a) when such nucleating agents are ferromagnetic in themselves and (b) whether ferromagnetic or not, the preferred nucleating agents are more forcibly aligned into a desired direction (thus promoting crystallization of the polyalkylene terephthalate also in the desired direction) by the action of magnetic fields of force applied to the composition in the molding cycle in the presence of sweeping agents of fibrous and/or acicular nature taken from the class of non-metallic and/or metallic ferromagnetic materials.
Not only are the specialized monoclinic nucleating agents useful for promoting crystallization of polyalkylene terephthalates when such nucleating agents are useful in small percentage, but in much larger percentages they can be used as mineral fillers to yield high strength, dimensionally stable, clean surface parts obtained with a molding cycle time of short duration.
17 Claims, 9 Drawing Figures
CEL-1338
PATENTED JUNTO 1975
SHEET 1
FIG. I.
3.889.039
FIG. 2.
PATENTED JUNTO 1975
SHEET
OL.
FIG. 4.
3,889,039
PATENTED JUN10 1975
SHEET
0o
3,889,039
FIG. 6.
r-T-_6Q-^--.____________________ --
IN S
50 I- -
I_____ 1
7n
60
FIG. 7.
tl0
50 NS
J
FIG. 8. FIG. 9.
3,889,039
12
NUCLEATION AND ORIENTATION OF LINEAR
force of such strength so that the combination of rea
POLYMERS
gents not only cause the crystal growth of the polymer
BACKGROUND
to take place in a desired direction but at the same time orient the fibrous fillers in an identical direction.
This invention relates to the improvement of syn 5 It is a fifth object of this invention to permit the poly
thetic resins and particularly to the improvement in alkylene terephthalates, and particularly the polyethyl
physical properties of both homopolymers such as ene terephthalates, to be molded, nucleated and ori
polyalkylene (e.g. polyethylene) terephthalates, poly ented in temperature ranges extending from as low as
olefins, polyamides, polymethylmethacrylates, polysul- 100 up to 250 F. (38 to 121 C.) while still retaining
fones, polyvinyl resins such as PVC and polystyrenes 10 the fully obtainable strength of the molded part, irre
and copolymers such as the ABS family of plastic mate spective of molding temperature, through a combina rials of which acrylonitrile-butadiene-styrene is a typi tion of addition of outside orienting forces in the mold
cal member and the thermoplastic elastomers, such as ing cycle with or without subsequent annealing at tem
the styrene-butadiene or styrene-isoprene copolymers, peratures well below the glass transition temperature.
this improvement resulting from the incorporation of a 15 It is a sixth object of this invention to produce contin
specialized class of inorganic crystalline materials as uously extruded sheets, films or foils in any desired ori
nucleating agents, into the polymer and the shaping of entation without the need for monaxial or biaxial
the polymer by extrusion or injection molding or other stretching and still achieve the type of crystal growth
suitable techniques.
and orientation which yields strength in ranges equiva
The properties and molding may be further improved 20 lent to that available from stretching through the me
by the addition of specialized materials which influence dium of a combination of nUcleation, with or without
the crystallization of the polymer in a desired manner. sweeping agents in which such orientation is accom
The use of nucleating agents to modify the crystalline plished by the application of an outside force.
structure of crystallizable polymers is known and is de
It is a seventh object of this invention, in the absence
scribed in U.S. Pat. No. 3,367,926 (Vocks), U.S. Pat. 25 of the nucleating agents described for the polyalkylene
No. 3,585,264 (Thomas) and in British Specifications terephthalate, to orient deliberately added fibrous rein
Nos. 1,104,089 and 1,102,844 (both AKU) and else forcing agents in relatively short length in any desired
where in the published literature. It has been found that direction by use of a combination of the aforemen
the use of such agents is often unsatisfactory, especially tioned "sweeping agents" plus high strength, short fi when they are incorporated in polyalkylene terephthal 30 bers commonly utilized for the reinforcement of engi
ates such as polyethylene terephthalates.
neering plastics. The engineering plastics include the
It has been further found that only when the nucleat polyalkylene terephthalates defined above and at least
ing agent is an inorganic crystalline nucleating agent the following: (1) the ABS family of plastic materials
with specific properties, is the desired improvement in of which acrylonitrile-butadiene-styrene is a typical
sured.
35 member; (2) polyethylenes; (3) polypropylenes; (4)
OBJECTS OF THE INVENTION
polycarbonates; (5) polyamides; (6) thermoplastic elastomers, such as the styrene-butadiene or styrene-
It is a first object of this invention to provide crystal isoprene copolymers; (7) polyvinyl halides; and (8)
line nucleating agents of specialized form and unit di polysulfones. mensions for rapid initiation, catalysis and rapid growth 40 It is an eighth object of this invention to provide
of the crystallization of the polyalkylene terephthalates molds for injection molding procedures which make
taken from the class of polymethylene, polyethylene, possible the application of outside forces in which the
polybutylene and polypropylene polyalkylene tereph body of the mold is made of a non-magnetic metal and
thalates with special attention to*the polyethylene ter space is provided in such molds for the insertion of
ephthalates.
45 magnetic materials to permit the application of mag
It is a second object of the invention to provide, netic forces to the mold and its contents in a predeter
among these nucleating agents, a type of agent which mined and desired direction.
can be oriented in the desired direction by outside
It is a ninth object of this invention to provide devices
forces so that nucleated and catalyzed crystal growth of in followon equipment utilized for the extrusion of film the base polymer can be caused to take place in a con 50 and sheet which position magnetic forces in a desired
trolled direction for ensuring the maximum desired direction in order to achieve orientation of crystalliza
strength. It is a third object of this invention to provide addi
tion in such film not only in the case where nucleating agents are present but also where such nucleating
tional orienting agents which may more properly be agents are absent but magnetizable sweeping agents called "sweeping agents" to the nucleating agents 55 and reinforcement materials are present which materi
which will facilitate the orientation of the nucleating als may be lined up in a desired direction for the
agents and the attendant crystalline growth of the poly achievement of maximum strength.
alkylene terephthalate in a shorter space of time and
It is a further object of this invention to provide con
with more certainty than if dependence is made totally on the effect of these outside forces on the nucleating
60
trollable means for a desired directional reinforcement of thermoplastic materials by application of mangetic
agents themselves.
forces to obtain the best advantage of such directional
It is a fourth object of this invention to use a combi reinforcment, whether such reinforcement is nucleated
nation of the nucleating agents for accelerating the or non-nucleated for crystal growth of the thermoplas
crystal growth of the polyalkylene terephthalates, the 65 tic itself through use of magnetizable fibrous reinforce "sweeping agents," fibrous fillers which are known to ment materials added to the composition.
add to the strength of formed thermoplastics, such fi
Finally, in the case of the polyalkylene terephthal
brous fillers being in chopped form, adding an outside ates, it is an object of this invention to provide these
3,889,039
.^eeialized nucleating agents to the composition in suf quired. As may be seen from the figures substantially
ficiently high concentration so that with or without ap any direction of lines of magnetic lines of force can be
plication of outside forces, they may act as nucleating obtained by suitable positioning of such permanent
mineral fillers to yield high strength and mechanical magnetic inserts. It will be readily apparent that the
properties, ease of molding, superior surface finish in number, strength and arrangement of such inserts may
simplified molds without the need for addition of the be varied according to the magnetic field which is de
fibrous reinforcement materials normally used for sired.
these purposes.
FIG. 5 is a depiction of a magnetized mold defining
These and other objects will become apprent from the cross section of a tubulature such as an automobile
the description which follows taken in conjunction with
the drawings forming a part of this specification, in which:
FIG. 1 is a longitudial view, partly in section, of one
10
tire. It is seen that the lines of force shown in FIG. 5 are at right angles to the direction which the tire moves when in use, this being the desired condition which can
form of apparatus for accomlishing the present inven be utilized for orientation in the manner described in
tion;
15 this invention for obtaining maximum reinforcement in
FIG. 2 is a view similar to FIG. 1 or a modification a manner effectively identical with the direction of re
thereof;
inforcement used for the now well known radial ply
FIGS. 3 and 4 are longitudinal views in section show tire. The numbers used for defining various parts of
ing an alternative means for obtaining desired magnetic FIG. 5 are identical with those used in the previous fig
fields in the apparatus;
20 ures. The embodiment shown in FIG. 5 can be modified
FIG. 5 is a view of an apparatus for forming a tubular by the placement of permanent magnets in the same
product such as an automobile tire; and
manner as in FIGS. 3 and 4.
FIGS. 6, 7, 8 and 9 are schematic views intended to
FIGS. 6, 7, 8 and 9 show a grossly distorted picture
illustrate the orientation of the several contituents in of the structure of the engineering thermoplastic which
the Finished product.
25 contains therein, in various configurations, the nucleat
FIG. 1 is a view similar to the views in U.S. Pat. No. ing agents 60, the oriented polymer crystals 70 grown
2,849,312 issued Aug. 26, 1958. As shown in the Fig in a preferred direction as a result of the orientation of
ure, the apparatus comprises a mold 10 the walls of the nucleating agents, the sweeping agents 80 of non-
which define a hollow cylinder, or any other appropri ate shape. The mold is provided with an inlet nozzle 12
30
metallic material which aid in the orientation of the de sired nucleating agents, the combination of magnetic
and an outlet orifice 13 through which excess mold contents are discharged in the event of overfilling. Means to fill the mold are shown as an extrusion die 14, provided with a screw 15 for forcing a mixture of poly
metallic reinforcing orientation 90, sweeping agents 80, and nucleating agents 60 which make the desired orientation of the nucleating agents and its attendent
mer and selected additives through a port 16 which 35 orientation and growth of the polymer crystal itself a
matches the inlet opening 12 of the mold 10. Means 18 more positive action whether the nucleating agent ex
are provided for bringing the extrusion device into co hibits ferromagnetic properties or not. FIG. 9 not only
operation with the filling opening 12. Mold 10 is made defines a situation where both the nucleating agents
of either non-magnetic material or of an alloy covered and the polymer crystal which grow therefrom can be
with an electrically insulating layer.
40 oriented in a desired direction but also defines the sig
Means for creating a magnetic field of suitable nificant advantage of added reinforcement exclusive of
strength and intensity for the mold and its contents, the orientation of the polymer crystal by virtue of using
such means comprising a source of potential 20 con a combination of magnetic fibers 100 and non
nected to an induction coil 22, disposed about mold 10. magnetic fibers 100' in which such magnetic fibers are The coil 22 is constructed in a manner which permits 45 oriented in the proper direction as a function of the im
the mold to open along a longitudinal axis for rapid re posed magnetic field acting on fibrous magnetic mate
moval of the molded part. This electrical coil contains rials which thus push or sweep the non-ferromagnetic
in each turn an automatic connect-disconnect mecha fibers into a desired oriented position. This combina
nism so the coil may be opened at right angles to the direction of winding on demand, such connect-
50
tion effect takes place whether nucleating agents are present or not, and also takes place whether such nu
disconnect mechanism being readily available as state cleating agents are magnetizable or not.
of the art components, thus permitting easy separation
The magnetic lines of force in FIGS. 6 through 9 are
of the mold from the coil. The magnetic lines of force are shown schematically
as the broken lines 30.
55
applied in the directions indicated in these figures and define how nucleating agents may be oriented in a de
FIG. 2 is a modification of FIG. 1 showing one man sired direction whether such nucleating agents are fer
ner in which these magnetic lines of force may be con romagnetic or not.
trolled. The magnetic fields shown ameliorate stresses
From examination of FIGS. 2, 4 and 5, it is evident
inherent for example, in the region of 40 where the two arms of the T intersect.
60
that the desired changes and directions of these lines of force, the growth of the polymer crystal and the direc
FIGS. 3 and 4 illustrate the placing of permanent tion of alignment of various fiber reinforcing agents can
magnets 50 as inserts at appropriate places in the mold be made to occur in any desired direction through the
wall. The use of the permanent magnets exhibits an ad controlled application of the magnetic field.
vantage over the use of an energized electrical coil in that a non-magnetic metal can be utilized for the mold 65
THE DESCRIPTION OF THE INVENTION
components and no need for an insulating material
Each of the components of the invention will be de
such as a ceramic coating or ceramic body is then re scribed separately.
3,889,039
56
A. NUCLEATING AGENTS AND CRYSTAL GROWTH PROMOTERS FOR POLYALKYLENE
opment of crystallinity in the polymer. As a generalized example and with identical methods of processing, the
TEREPHTHALATES
usual polyethylene terephthalate may show a degree of crystallinity substantially less than 20 percent. Such
5 material exhibits a low tensile strength and an extreme
The crystal structure of a polymer (generally a func elongation. When the crystallinity is increased into the
tion of its chemical makeup) usually defines whether range of 20 to 50 percent, the tensile strength is drasti
the physical properties of the polymer can be enhanced cally increased, the degree of elongation is reduced and
by increasing the amount of crystallinity in such poly the physical properties generally are improved. In addi
mers by mechanical orientation and/or by accelerating 10 tion, the specific gravity of the polyethylene terephthal
the growth of crystals during the processing. Usually ate is generally increased from a range normally of the
the crystalline structure of the material can be defined order of 1.31 to 1.34 into a range of 1.39 to 1.44. When
approximately by measurement of its various cell di an otherwise identical sample of polyethylene tere
mensions, such as the length of the crystal axes and the phthalate, irrespective of the source of the material, ex
angles which certain of these crystal planes defined by 15 hibiting this low specific gravity, low tensile strength
the crystal axes make with each other. Crystalline poly and extreme elongation is processed in exactly the
mers which exhibit at least one axis much longer than same manner except that it contains a small percentage
the other axes of the crystal are most susceptible to the of a suitable nucleating agent, crystallinity is extended
improvement of their physical properties by an orienta into the 30 percent and higher range, the specific grav
tion process. Crystalline polymers falling in this class 20 ity is raised into the 1.39 to 1.45 range, the tensile
are generally triclinic or exhibit a closely associated strength is drastically increased and the elongation is
morphology designated as monoclinic. These systems reduced. Other physical properties, such as flexural
usually exhibit one cell dimension which is grossly dif strength and notch resistance are also improved.
ferent than the other two. In addition, the angles deter
I have found that nucleating agents taken from the
mined by the different lengths of the various crystal 25 monoclinic class of crystals exhibiting a c-axis within 10
axes between each of the planes of the crystal are also percent of the length of the c-axis of the polyalkylene
usually substantially different from each other in the terephthalate, a beta angle within at least 20 percent of
monoclinic-triclinic system.
the beta angle exhibited by the polyalkylene tere
The polyalkylene terephthalates and particularly phthalate, and preferably one of the other axes within
polyethylene terephthalate fall in this category. As will 30 20 percent of the length of either the a or 6-axis invari
be seen from Table 1, the length of the c axis in poly ably act as powerful initiators of crystallization (i.e. nu-
ethylene terephthalate is approximately twice that of cleation) and additionally powerful promoters of ex
the a and b axis, whereas the beta angle in this essen tended crystallization of this class of polymers. This
tially triclinic crystal is larger than either the alpha or equivalence of cell dimension and cell angles appears gamma angles of the crystal. The monoclinic and tri 35 to be a requirement for the material to act as a nuclea-
clinic crystallographic systems are closely related to tor and promoter of crystalline growth in the polyalkyl
each other and are sometimes indistinguishable from ene terephthalate family of plastics and particularly the
each other. The monoclinic system includes all forms degree of concordance in dimension and angle also ap
containing three unequal axes, having one of their axial pears to be necessary as listed previously. As will be de inclinations oblique. Triclinic systems include all forms 40 fined in later portions of this specification, this im
containing three unequal axes in which all intersections provement in crystallinity is exhibited whether or not
are oblique. The vertical axes in both systems is gener the material is mechanically deformed in a specific di
ally designated as the c-axis. In both crystal systems, the rection which is the usual procedure for orientation
angle between the axes a and c is represented by the and improvement of crystallinity normally used in the word beta. In both systems the relative length of the 45 absence of such nucleating agents.
axes a and b may be either the same or different but in
Nucleating agents which meet the morphological and
variably in both systems the length of axis c is greater crystal dimension characteristics provided in the fore
than that of either a or b. While this type of non- going description are listed in Table 1 and all of these
uniform crystalline structure is common to all of the have been found to be effective for nucleation of crys polyalkylene terephthalates taken from the class of 50 tallization and the propagation of crystalline growth.
polymethylene, polyethylene, polypropylene and poly This propagation of crystalline growth takes place
butylene terephthalates, the extension of the c-axis is along the c-axis of the polyalkylene terephthalate.
most pronounced in polyethylene terephthalate. Thus,
Examination of crystals in the preferred particle size
while orientation processes polyethylene terephthalate
are most effective for the member of this class of
55
ranges which differ radically from the aforelisted re quirements do not show any significant effect on either
polymers, similar effects are obtained with all of the initiation of crystallization or propagation of the
other members, but to a lesser degree.
growth of crystallization beyond that which would nor
I have found that certain crystals in the monoclinic mally be obtained through mechanical orientation. In
system showing certain similarities to the dimensions and angles of the polyalkylene terephthalates, and par
60
some class,
cases, these crystals outside of the described actually interfere not only with orientation but
ticularly polyethylene terephthalate, act not only as with the propagation of crystalline growth.
very powerful nucleators of crystalline growth in these
All of the nucleating agents listed in Table 1 occur
polymers under preferred processing conditions, but in naturally or may be made synthetically by either ther
addition to very rapid initiation of crystal growth, they also accelerate equally rapidly the extent of the devel
65
mal or hydrothermal techniques, or thereof, by presently known techniques.
combinations
3,889,039 7
TABLE 1
8
CRYSTAL DIMENSION CHARACTERISTIC - NUCLEATING AGENTS
FOR INITIATION AND CATALYSIS OF CRYSTALLIZATION OF
POLYALKYLENE TEREPHTHALATES
CELL AXES
BETA - ANGLE
No. NAME
COMPOSITION
ab c
1. Polyethyleneterephthalate
2. Lamite
3. Epidote 4. Piedmontite 5. Phlogopite 6. Fluoro-
phlogopite 7. Annite 8. Ferri-
annite 9. Ftuoro-
annite 10. Fluoro-
ferriannite 11. Clinohumite 12. Clinozoisite 13. Mangano-
Piedmontite
_
Beta - calcium ortho silicate /3 - CajSiO,
Ca3Al1.sFeu,(SiO<)3OH CajAl, 5Fe,ji(Si04)a0H KMgaCAISiiO.oKOH),
KMg3(AISi3O,0)F2 KFe3(AlSi3O10XOH)2
KFe3(FeSi3O,0)(OH)2
KFejfAISijO.olF,
KFe3(FeSi3O10)F2 4 Mg^iO, Mg F2 CajAIXSiO,) OH
CajAl, jMn, 3(Si04 )3OH
4.56
5.48
8.89 8.95 5.3
5.3 5.4 5.4
5.4 5.4 13.68 8.89 8.95
5.94
6.76
5.63 5.70 9.2
9.2 9.4 9.4
9.4 9.4 4.75 5.58 5.70
10.75
9.28
10.19 9.41 10.3
10.14 10.30 10.34
10.21 10.30 10.27 10.14 9.4
118
(alpha =98.5) (gamma = 112.0)
94.6 115.4 115.4 100.2
100.0 100.0
101.0
99.7
100.2 100.8 115.9
115.7
In all cases, the most effective particle size range for " in both the ferrous and ferric condition. Those that
these kinds of crystals is between 0.1 and 3.0 microns. contain iron only in the ferric condition are weakly fer
Known procedures are available for griding these mate romagnetic, whereas those that contain iron in both the
rials into this particle size range with good efficiency. ferrous and ferric condition are more strongly ferro
The amount of nucleating reagent utilized will gener magnetic. For these types of acicular nucleating agents
ally fall into a range of 0.01 percent up to about 5 per 0 which contain both divalent elements, particularly
cent, unless the nucleating agent is used as a reinforc magnesium, and trivalent elements, such as aluminum,
ing mineral filler in which case weight percent addi some or all of the magnesium can be replaced with fer
tions up to 50 percent may be used. It is found that the rous iron in the structure without disturbing the crystal-
finer the particle size range of the nucleating agent, the 35 line morphology and a significant proportion of the tri-
more effective the nucleating agent and the lower the 0 valent element, usually aluminum, can be replaced with
percentages which need to be used. For example, if all of the nucleating agent 0.1 to 0.5 micron size range, an amount of nucleating agent in the range of 0.01 to 0.1
ferric iron, again without disturbing the crystalline morphology. Through such replacements, the ferro magnetic properties of these acicular materials, gener-
percent is sufficient to yield the maximum of crystalli ally along the c-axis, are strongly increased. Again, a
zation available from its presence. If the nucleating ma small but significant portion of the divalent calcium can
terial falls in a particle size range of between 0.5 and be replaced with divalent iron and if the mineral also
1 micron, generally at least 0.5 percent of the nucleat ing agent is required to produce the maximum of crys tallization, whereas if the nucleating material has the majority of its particle sizes in a range of 1 to 3 microns up to 3 percent and in a few cases up to 5 percent of the nucleating agent is required in order to yield the maximum benefit from its presence. As indicated, these
contains the trivalent aluminum ion, a portion of this can also be replaced with the trivalent iron ion again increasing the ferromagnetic properties. A further im provement in ferromagnetic properties, when both di and trivalent ions are present, is the possibility of re placing part of the divalent ion with the cobalt ion, a possibility which has been established mineralogically
ranges indicate the minimum weight percentages re 50 and through the manufacture of synthetic crystals while
quired for adequate nucleation. Much higher percent at the same time replacing part of a trivalent aluminum
ages are required for mineral filling.
with trivalent iron. To some extent, manganese also
In summary, and in order to define the effect of the presence of this relatively small quantity of nucleating
falls in this beneficial category and as a single element it may be included in the nucleating agents as a partial
agent on the crystalline content of the polyalkylene ter- 55 replacement for both di and trivalent ions in the agent,
ephthalates and particularly polyethylene terephthalate thereby incorporating a good measure of ferromagne
which has been produced without any major degree of tism. Of the nucleating agents which are listed in Table
orientation due to mechanical stretching, such non- 1, all of these with the exception of two, namely, item
nucleated polymers will generally exhibit or contain 2 (Lamite) and item 12 (Clinozoisite) exhibit this facil-
less than 10 percent crystalline material and will usu 60 ity for replacement with the ferro-ferric iron for im
ally exhibit a specific gravity in range of 1.30 to 1.34. provement of its ferromagnetism, a property which will
With otherwise identical processing, the addition of the preferred nucleating agents described in Table 1 in the particle sizes and ranges given above as preferred will
be shown in later discussion to be exceptionally impor tant for the purposes of this invention.
increase the crystallinity into the 30 percent range and
higher, and will range of 1.39 to
increase 1.48.
the
specific
gravity
into
a
65
B. POLYMERIC MATERIALS SUITABLE FOR THE PURPOSE OF THIS INVENTION
It is noted that many of the nucleating agents given
For convenience, the raw materials suitable for the
in Table 1 contain iron and some of these contain iron overall purposes of this invention may be divided into
3,889,039
9 10
two classes. The first class is the polyalkylene tereph- poses of this invention, coloring agents, and the like,
thalates available from a variety of sources and in a va are always mixed into the polymer in molten form. The
riety of types to be described hereinafter, and the sec polymer is provided in the form of chips of small diam
ond class is the general group of engineering plastics eter or as powder and mixed with the various agents in
which include but is not necessarily limited to the ABS 5 dicated in previous sentences in dry form and then series of plastics (acrylonitrile-butadiene-styrene), passed into a melting and mixing chamber which con
polyethylene, polypropylene, polycarbonate, polyam sists primarily of a reciprocating screw mechanism
ides, thermoplastic elastomers of which the styrene- which may be single or double. Advantageously, the ex
butadiene copolymers are an example, the polyvinyl truded mixture is chilled quickly after being expelled
chlorides, and the polysulfones.
10 from the body of the chamber, chopped into pellets
The polyalkylene terephthalates are usually made by a condensation reaction between the appropriate gly
which are of the order of V* inch to V4 inch in length and passed back through the molten stage in the single or
col and either terephthalic acid or dimethylterephtha- double reciprocating screw device to ensure perfect
late. The reaction is normally continued until a molecu mixing of all the ingredients. The manner in which this
lar weight in the region of at least 15,000 is reached. 15 material is manipulated in subsequent processing will
Polymerization aids, such as compounds of antimony, depend on the application and shape of the article de
usually the acetate, with or without the addition of sired by the consumer.
compounds of zinc, again usually the acetate, in small
As indicated, in this first mixing step the materials
percentages are generally included, along with agents which are normally added to the plastic material in ac
for preventing degradation of the fully formed polymer 20 cordance with the state of the art techniques for pro
as a consequence of its exposure to high temperatures. tection against thermal and ultraviolet degradation of
These agents are usually materials such as the aryl and the polymer are added in this stage along with the vari
alkyl phosphites, such as triethylphosphite and/or tri- ous other ingredients which might be utilized for nucle-
cresylphosphite. The desired end form is then' pro ation of crystal growth, extension of such crystal duced directly from the reactor to yield sheet, film, foil, 25 growth, and other purposes.
fiber, or pellet material which last form may be used for injection molding purposes. When manufactured di
D. METHOD OF ORIENTATION
rectly into a sheet or fiber, the sheet may be biaxially
Orientation of the crystal structure and of the delib
oriented to improve specific gravity, crystallization and erately added crystal materials to the molded parts is
tensile properties, whereas in the case of the fiber, it 30 accomplished by the controlled application of mag
may be stretched in the direction of extrusion so as to yield the maximum tensile strength along the length of
netic fields during the process of molding. Not only can the nucleating agents of ferromagnetic type described
the fiber as a consequence of crystal orientation. In in Table I be oriented in a desired crystallographic di other cases, the material is extruded without mechani rection by this technique but the polymer crystals cal stretching (this is usually the case for the methylene 35 which are formed and grow as a consequence of the
and butylene varieties) into a film form for use as a presence of such nucleating agents are then automati
packaging material. In all cases, the molecular weights cally oriented in the direction of orientation of the fer
are relatively low, the degree of crystallinity seldom ex romagnetic nucleating agent which has been positioned
ceeds 20 percent and is generally quite substantially in the forming piece in the desired direction by the ap below this figure and the product obtained is transpar 40 plied magnetic field.
ent. A huge amount of scrap material is available either
By artifices involving additions of other crystalline materials, nucleating agents which are not in them
in-plant or in the hands of the consumer and particu selves ferromagnetic may be placed in the desired larly in the form of fiber, whether used for spinning alignment and location by the addition of specially de yarns or for the manufacture of tire cord, and in the 45 signed "magnetic sweeping agents" which thus permits
form of the polyethylene terephthalate film base which the crystalline growth of the polymer in a nucleated
is now commonly used as the standard for photo condition to take place again in the desired direction
graphic film. All of these scrap forms may be recovered and alignment. Finally, by further modification of these
in relatively pure form by removing extraneous materi "sweeping agents" not only can the direction of crystal als, such as the gelatin emulsion and subbing layers 50 growth of linear polymer itself be controlled but also
which appear on photographic film, buttons, zippers, the alignment of fibrous reinforcement materials of ei
and other foreign objects which appear in the scrap ther a non-magnetic or magnetic nature can also be
yarn and woven cloth and the like.
controlled in the desired direction by the application of
In general, the higher the molecular weight and the magnetic fields. higher the specific gravity of the polyethylene tere 55 The nature of the various "sweeping agents" their
phthalate raw material, the greater the tendency to combinations, and of the various types of non-magnetic
crystallize and the easier it is to produce articles of reinforcing agents which may be aligned readily by the
good mechanical properties and particularly high tem application of suitably disposed magnetic fields will be
perature strength.
60
described in later sections of this specification. In this portion, the generalized techniques for applying the de
C. METHOD OF INCORPORATING AND MIXING sired magnetic fields will be described.
INGREDIENTS
In order to accomplish the desired alignment by the
Irrespective of the nature of the polymer or its application of magnetic forces, the throat of the part of
source, mixing of the polymer with the various ingredi ents, such as stabilizers against thermal and untraviolet
65
the mold leading directly from the ejection nozzle which contains the molten material used for injection
degradation, the nucleating agents of Table 1, reinforc molding or other type of forming, such as the manufac
ing agents in fibrous form, sweeping agents for the pur ture of fiber or sheet or when a non-uniform dimen-
3,889,039
11
12
sioi ; piece, such as an injection molded part is being and then leads to the entrance of the injection mold it
mao~ and a non-uniform directional part is being made self. This entrance to the injection mold itself is again
the sites for application of magnetic forces are so de a ring other suitably shaped enclosure, again produced
signed so that the desired magnetic forces can be ap of magnet material which has been magnetized in a di-
plied in the desired amount and direction.
5 rection opposite to that utilized for the first magnet so
For fiber and sheet, usually suitably positioned per that the appropriate north-south pole requirements are
manent magnets are sufficient for the application of maintained. Similar principles will apply to the design
such forces, whereas for an injection molded part ei and construction of the mold itself particularly if the
ther suitably positioned permanent magnets or the ap part being made is relatively small. To accommodate
plication of relative powerful electromagnetic fields are 10 these conditions, the non-magnetic portions of the
required.
throat and of the mold are made of non-magnetic met
Dealing with the injection molding processes specifi als, such as those based on aluminum and its alloys,
cally, the molding process involving forming the molten copper and its alloys, zinc and its alloys, and other non
material by ejection from the chamber which contains magnetic alloys. Slots are placed in the mold to accom-
such a molten material through an opening, generally 15 modate preformed permanent magnets in such slots for
designated as the throat of the mold, which may take suitable application of the desired magnetic field. The
many shapes depending on the speed with which it is strength and direction of the desired magnetic field
desired to have the molten material move into the mold may be determined easily by techniques in which
cavity and further the complication required by the dic mock-ups of the mold design are made, generally in a
tates of this specification involving orientation and 20 soft plastic material, places for insertion of various per
alignment of the crystal structure.
manent magnets provided and the direction and
In earlier portions of this description, it was pointed strength of the desired magnetic field then determined
out that incipient crystals may already exist in linear by the patterns made by iron filings placed inside the
polymer compositions even when these linear polymers mold. These simulations are generally sufficient for
are in a fairly molten or liquid state, and such incipient 25 substantially all practical purposes but in addition,
crystals may have lengths in the range of 10 to 150 A. mathematical computation of both the strength and the
When this material is cooled even into the supercooled direction of the magnetic forces which are applied as
liquid state, crystal growth beings and progresses rap a consequence of the known characteristics of either
idly particularly if proper nucleating agents are present. the permanent magnets used or the strength of applied
The speed at which such crystals grow is a combination 30 magnetic fields may be utilized.
of the presence of these crystal promoting agents, such
Permanent magnets which are suitable for the pur
as the nucleating agents described and the temperature poses of this specification are generally those which ex
conditions which permit the crystals to grow more rap hibit a coercive force in oersteds, normally symbolized
idly, and generally the speed of growth bears some rela by the phrase Hc of a value of 1,000 or greater or more
tionship to the glass transition temperature and the 35 generally in which the product of the remanence (gen
time intervals during which the material passes through erally designated by the phrase Br is at least in the
these various states of matter. As explained earlier, range of 1,000,000 or more and preferably at least
providing nucleating forces are present, rapid crystalli 2,000,000. The usual method of designation of this
zation generally takes place at or near the glass transi product is generally in the form (BH)mox or equiva-
tion temperature though in some cases this can be ac lently (Gauss-Oersteds x 10-6). This product is nor
complished at temperatures substantially above this mally designated as the maximum energy product and
level. Each of the various linear polymer compositions as a figure of merit for the determination of the behav
may operate differently in this respect. For polyethyl ior of the permanent magnet. By mutiplying this prod
ene, which has an extremely low glass transition tem uct by the factor of 10-6, manageable numbers are then
perature, it is almost impossible to achieve the amor available which indicate that a number of at least 1 and
phous state in injection molding no matter how rapidly preferably above 2.0 for this maximum energy product
such a material is formed and cooled. Such material defines the preferred series of permanent magnet mate
passes directly from the completely liquid state to an rials.
almost completely crystalline state in extremely short ( Compositions which fall in this category of usable
periods of time without showing any particular evi permanent magnet materials are the "Alnicos" which
dence of the formation of a supercooled condition are usually alloys of aluminum, nickel and cobalt with
where the material exhibits all the characteristics of the minor amounts of other metals such as copper, tita
solid but still shows no evidence of crystallinity.
nium and niobium, the "Vicalloys" which are alloys of
Advantage of this type of situation is taken in the ,;5 cobalt and vanadium; and ceramic magnets designated
throat design. Usually, it is desired to have the crystals by the tradename "Ferroxdur" which are barium fer
aligned in a direction parallel to the movement of the rites. Cobalt rare earth magnets are particularly power
material through the throat for most purposes though ful.
there are rare occasions where directions at right an
A somewhat permanent magnet which does not meet
gles to the direction of movement may be desired. The fiq the restrictions imposed by previous paragraphs, but
imposition of this desired direction may be obtained which requires a frequent polarization in view of its rel
easily by the proper positioning of magnets. In the case atively low remanence is the alloy designated in the
where the desired direction or orientation is parallel to trade as "Silmanol" which is an alloy of aluminum, sil the direction of movement of the fluid out of the ejec ver and manganese. This material is of interest because tion nozzle, the magnets are placed advantageously as g 5 of the extremely high coercive force it exhibits once it
a ring comprising the ejection nozzle itself of the device containing the molten plastic. This ring is then attached to the body of the throat which in itself if non-magnetic
is properly magnetized in the proper direction. For these and any other magnetic materials or mag
netic fields which are described in this portion of the
3,889,039
13 14
specification, the Curie point must be substantially sections to be lined up in a direction parallel to a longi
above the highest temperature to which the magnet is tudinal direction of the fiber. Normally, the fiber is also
subjected. All of the materials which are described in this section are in this category. The Curie point is the
mechanically strained again in a direction parallel to the length of the fiber to further accentuate the growth
temperature at which the material starts to lose its mag- 5 and orientation of the crystal portions of the plastic it netism very rapidly and becomes essentially non self.
magnetic or incapable of accepting a magnetic field.
In the formation of sheet, monaxial or biaxial stretch
When the mold is relatively large or relatively long ing is usually imparted to the sheet in order to develop
distances of applied magnetic force are desired, then a oriented properties in the direction of stretching so as
preferred practice is the use of magnetic circuits in- 10 to improve the mechanical properties of the sheet. By
volving modifications of transformer technology in utilization of suitably imposed magnetic forces in the
which magnetic materials with high magnetic permea presence of the desired nucleating agents, or a combi
bility are utilized to define the fields of force once a proper electrical field is applied to these high magnetic
nation of these nucleating agents and the sweeping agents to be described hereinafter, even in the absence
permeability materials in a proper circuit.
15 of such nucleating agents but in the presence of the
The advantage of the use of transformer circuits in sweeping agents to be described hereinafter, orienta
volving high magnetic permeability materials with ap tion can be accomplished readily by the application of
plicable electrical circuits applied thereto is that not magnetic forces alone. When orientation plus nucle-
only may these circuits be turned on and off at will but ation is utilized, the superior mechanical properties are very high coercive forces (i.e. high magnetic forces due 20 obtained without the need for the very complicated bi
to the exceptionally high saturation flux density which axial stretching techniques normally used on such ma
can be imposed on these materials) are available. Ma terials as polyethylene terephthalate sheet or generally
terials falling in this category are generally alloys of for the polyalkylene terephthalates and in those cases
iron and nickel such as silicon, manganese, chromium, where the crystalline structure of the linear polymer is
copper, vanadium, and/or molybdenum. Purified iron 25 highly anisotropic.
in the form of alpha iron or ferritic iron is especially
An important consequence of the method of mag
useful. All of these materials have Curie points substan netic orientation is the ability to apply the magnetic
tially above the highest temperature to which would be fields in such a manner that the orientation can take
applied to them in the forming of molded process in place in a direction at right angles to the flow of the ma
volving the thermoplastics described in this specifica- 30 terial going into the mold. This provides the possibility
tion. for orientation at right angles to the direction of the
The strength of magnetic fields useful for purposes of flow of materials which is particularly important in
this invention fall generally in the broad range between many devices such as the injection molding of elasto
1 and 10,000 gauss.
mers for the manufacture of tires and other types of
The generalized techniques for control and orienta- 35 tubulatures.
tion of injection molded parts have bbeen defined with some degree of particularity. The methods used for
E. THE FIRST CLASS OF SWEEPING AGENTS
producing oriented fiber and sheet in specific direc
In the section dealing with nucleating agents, it was
tions need to be further defined.
pointed out that the weight percent range in which
In the case of fiber where the desire is to obtain the ^ these nucleating agents were effective was a function of
maximum of mechanical strength properties in a direc the particle size the smaller the particle size, the less
tion parallel to the length of the fiber, the usual process the amount which was needed. A preferred range of
for orientation and accelerated growth of the crystal particle size is in the region of 1 micron or less in which
involves the application of the magnetic field not only the maximum amount of nucleating agent needed to
in the condition where the fiber is still in semi-liquid produce the desired result is of the order of 1 weight
form but also when it is still in the supercooled form be percent. When these nucleating agents are ferromag
fore it has reached the maximum degree of crystallin netic and susceptible to orientation by magnetic fields
ity. Thus, in the case of the formation of polyethylene as described in the previous section, a slight tendency
terephthalate a distance is provided between the outlet ^ will be exhibited for these materials to gather close to
of a spinnerette nozzle and the point at which mechani the source of the magnetic field. This tendency can be
cal elongation techniques are applied with a design sim eliminated or reduced by the speed with which the ma
ilar to that previously described in which the "throat" terial is injected into the mold and through the throat
of the spinnerette nozzle is composed of a permanent leading to the mold. This question of gathering close to
magnet or the high permeability magnetic material with ^ the seat of the magnetic influence versus the degree of
an applied magnetic field due to the presence of an ferromagnetism of the materials being placed in the
electrical force followed by a section of non-magnetic structure becomes increasingly important as the degree
material at the end of which is imposed another mag of ferromagnetism of the materials added is increased.
netic field either through the presence of a permanent
The class of sweeping agents to be described are non-
magnet or a high permeability magnet with associated ^ metallic, high magnetic susceptibility materials in acic-
electrical field of opposite sign so as to permit not only ular form, all of which exhibit amply high Curie points.
the nucleating materials but the crystals themselves as These materials are used to accelerate or force the ori
a consequence of the aligned nucleating materials pres entation of the nucleating agents in the desired direc
ent or other "sweeping agents" as defined in further tion. These are listed in Table 2.
TABLE 2__________________________________________________
CLASS 1 - SWEEPING AGENTS - MAGNETIC SUSCEPTIBILITY AND CRYSTAL STRUCTURE
Susceptibility Crystal
10"^ ergs Morphology
Acicular
Cr203 CrOj
1,960 22,000
Hexagonal Monoclinic
Yes Yes
3,889,039 15
TABLE 2 --Continued
16
CLASS I - SWEEPING AGENTS - MAGNETIC SUSCEPTIBILITY AND CRYSTAL STRUCTURE
Susceptibility Crystal
1CH ergs Morphology
Acicular
CoO CojOj Co30, COj( PO<), Rare Earth Oxides] except La, Y and >
Ce J
Rare Earth Phosphates]
except La, Y, and Ce 1 Fe20, Fe,0,(ac) FePO,, MnO Mn,Oj Mn,0(
18,000 4,900 4,560
7,380 28,110
10,000
to
100,000
25,000 to
150,000
3,586 8,600
11,500 4,580 14,100
12,400
Monoclinic Tetragonal Hexagonal Cubic Monoclinic
Hexagonal
Monoclinic or rhombohedron hexagonal - tetragonal Hexagonal Cubic Rhombohedron Hexagonal Tetragonal Tetragonal
Yes Yes Yes Yes* Yes
Yes
Yes
Yes Yes* Yes Yes Yes Yes
In view of their high degree of ferromagnetism and high relative to the paramagnetism of the material, then magnetic susceptibility, these kinds of sweeping agents 20 the use of alternating fields of magnetism are generally
are much more readily aligned in a magnetic field than preferred by the application of an external source
the relatively weakly ferromagnetic nucleating agents through the medium of a high permeability insert. This
which are defined in Table I. As a consequence of this leads to a significant decrease in the amount of material
speedly alignment, they tend to sweep other solid mate which will tend to gather around the area of highest rials into the same general alignment as they them 25 magnetization. In addition, the speed with which the
selves exhibit as a consequence of the influence of the material flows into the mold also is beneficial in aiding
magnetic field. In order to obtain the maximum effect a sweeping action to take place so as to push these ma
of this kind of sweeping agent I have found that the vol ume of these sweeping agents should be at least twice
terials that tend to congregate around the areas of high est magnetization away from these areas and place
the volume of the nucleating agent. Since the specific 30 ^em jn their proportions in the piece to be prepared.
gravity of these sweeping agents is generally in the This is automatically the case when a continuously
range of equal to and up to twice the specific gravity of moving fiber or shape is being prepared since the speed
the nucleating agent, a general figure for maximum ef of production of these fibers and sheet is so high that
fectiveness is to use approximately four times the the tendency for the magnetic particles to congregate weight of this type of sweeping agent of that of the nu 35 at the areas of greatest magnetization is sharply re
cleating agent normally used.
duced. This becomes a more serious problem when in
Thus, if the nucleating agent having a particle size in jection molded parts are utilized and here a combina
the range of 0.1 to 0.5 microns is utilized in well crys tion of alternating fields and rapid filling of the mold is
tallized condition, a proper amount of nucleating agent in this particle size range would be in the range of 0.01
40
sufficient to eliminate the problem. In summary of this section, the use of these sweeping
to 1 percent, then the amount of acicular high magnetic agents facilitates the alignment of the nucleating agents
susceptibility sweeping agent which is added to acceler which in turn facilitates the alignment of the linear
ate the positioning of these nucleating agents and the crystals available from the crystallizing polymer and
polymeric crystals which grow in the proper direction as a result would be approximately four times the
45
substantial increases in physical properties sired direction are thereby obtained.
in the
de
weight or in the region of at least 0.04 to 4 percent by
weight of the polymer.
F. THE SECOND CLASS OF SWEEPING AGENTS
In examining the materials and properties of the
The second class of sweeping agents to be used as an
sweeping agents listed in Table 2, a distinction can be aid in alignment of both the first class of sweeping made between the ferromagnetic and paramagnetic 50 agents and the nucleating crystals themselves but also
properties of these materials. The ferromagnetic mate eventually for the alignment of non-magnetic reinforc
rials generally exhibit a quite high susceptibility and a ing material are taken from the class of brass plated
significant portion of the magnetic force remains after high permeability ferromagnetic materials in short wire
the magnetic field is removed varying with each mate form. Such wires will have diameters of the order of 10 rial and depending on the relative degree of paramag 55 microns or less and lengths up to 100 to 2,000 microns.
netism versus ferromagnetism. Generally speaking, cer State of the art techniques are available for producing
tain oxides of metals, such as iron, chromiun, manga wire in these diameters. Materials in this class are
nese and cobalt tend to be more ferromagnetic than chosen which have the highest possible permeability
paramagnetic, whereas the phosphates of these ele ments, and the oxides and phosphates of the rare earths
60
with the lowest possible remanence. They are difficult to use with permanent magnets which exhibit very high
then to show a high degree of paramagnetism.
remanence unless the speed of the flow of material is
Materials which exhibit a high degree of paramagne extremely high. If the speed is not extremely high, then
tism, however, even though they may show very high a large tendency exists for these high permeability fer
magnetic susceptibilities and can be aligned readily in romagnetic materials to congregate at the source of a magnetic field, lose practically all of the magnetism 65 highest magnetism and block the flow and the orienta
once the magnetic field is removed. This defines the tion of the desired product. Thus, oscillating or alter
manner in which these sweeping agents may be used in nating electric fields are utilized in which the field
a practical sense. If the degree of ferromagnetism is moves rapidly from the highest intensity to zero inten-
3,889,039
17 18
sity and then back. Good results are obtained when the out as rapidly as possible and, if the throat design is
alternation takes place at no more than 2 to 3 times per proper, this mold filling can be completed in less than
second. With materials exhibiting low remanence these 1 second for specimens which weigh less than about 5
high permeability wires will lose sufficient of their mag or 6 ozs. As a consequence of contact of the molten
netism so that they can be swept out of the area of high 5 material with the good heat conducting metallic sur
est magnetic forces by the speed with which the mate face of the interior portion of the mold a solid skin
rial is being injected or moving in a particular cavity forms almost immediately as a consequence of such
and then reassume their proper alignment once they contact even though such solid skin may still be in the
are inside the cavity without the tendency for collecting supercooled state. Then, immediately the mold is filled
around the areas of highest magnetism. Situations of 10 the external magnetic field is applied which is capable
this type are much easier to control when a continuous of aligning the most strongly magnetic materials pres
form is being prepared such as a fiber or sheet and ent very easily which in turn have their desired action
more difficult to control when a fixed injection molded on the weakly magnetic material as a consequence of
part is being made. Under these conditions, extremely the sweeping action developed thereon and also in turn
high speeds of injection are required.
15 line up the nucleating agents, all accomplished in a very
One method of accomplishing this procedure is to short space of time in view of the presence of this solid
use a throat which is divided into two sections. The first skin while the interior of the part is still semi-liquid.
section is relatively narrow and permanent magnets can Thus, nucleation, orientation and alignment takes
be used in this narrow section because through this nar place in the body of the piece in the desired direction
row section the flow of the material is extremely high. 20 and amount without the danger for aggregation at the
The throat then opens up very substantially, weaker pole pieces which might seriously hinder the proper
magnetic forces of oscillating or alternating nature are flow of materials into the cavity. Relatively cold molds
then applied thereby reducing the tendency toward ag can be used to accomplish the same purpose except
gregation at the points of highest magnetization.
that even shorter times between filling the mold and ap
From the combination of speed of flow, strengths of 25 plication of the magnetic field are required to obtain
magnetic field, and oscillation, a uniform distribution the desired degree of alignment. In this case of films
of magnetic materials can then be accomplished in the and fibers, the magnetic field can be applied after the
molded article.
material has been ejected from the proper forming ori
In proper use of these sweeping agents relative to ori fice and since air gaps exist and the solid skin forms al
entation of crystal growth, it has been found that many 30 most immediately after ejection providing ejection is
thermoplastics, particularly those in the linear homo- into an atmosphere or a fluid which has a temperature
polymer class or in the linear class generally have a ten substantially below the melting point, the desired align
dency to crystallize with extreme rapidity and conse ment can be forced to take place in the presence of
quently nucleation for initiation of the crystallization in even the most strongly ferromagnetic fibrous materials accelerating the growth of such crystallization is not 35 without any possibility of these fibrous materials gath
usually required. It has been further found that the use ering at a particular portion of the piece particularly in
of the sweeping agents for these types of linear homo view of the fact that during forming the fiber or sheet
polymers, and particularly the polyolefins and to a material is moving past the magnetic field at a very
somewhat lesser extent the polyamides, exhibit a sur rapid rate so that the dwell time is extremely short. prising degree of orientation as manifested by improve 40 This sweeping action develops a greater significance
ment in their physical properties in the direction of ori in accordance with the description of the portion of the
entation through the use of either the materials listed invention included in the next section.
in Table 2 or combinations of these materials and the high magnetic permeability with relatively low rema nence characteristics of the metallic wires described in 45
G. FIBROUS REINFORCING AGENTS Through, in many cases, a variety of ground up min
this section. These materials or the combinations de erals can be utilized for reinforcing a thermoplastic, or
scribed apparently exhibit a mechanical sweeping ac for that matter, even a thermosetting material, com
tion which acts on the direction of crystallization of the monly used reinforcing agents are fibrous in nature,
polymer to force the direction of crystallization along comprised of glass, asbestos, wollastonite and/or syn the lines of force as imposed by the magnetic field. 50 thetic ceramic fibers. These synthetic ceramic fibers
It has been pointed out that one of the problems asso are sometimes called glass wool since they are made of
ciated with using highly ferromagnetic materials such compositions which are normally not utilized in the
as iron wires as an aid to the sweeping action is the ten manufacture of ordinary glass. In many cases, they are
dency for these highly ferromagnetic materials to con more refractory variations of high temperature glasses gregate in the area of the source of the magnetic field 55 and the usual technique for their manufacture is to turn
which either may block continued movement of the them into fibrous form by blowing high pressure steam
material to be formed or may yield non-uniform prop or air through the molten stream that is produced while
erties. Under these situations, a somewhat different the materia! is being poured out of the crucible in
method of molding and application of the magnetic field is utilized which eliminates the problem. In injec
60
which the material is initially melted. The advantage of the use of these ceramic fibers for
tion molding, the polyethylene terephthalate material the purposes of this invention is that iron compounds
is injected rapidly into a cavity preferably at or consid can be incorporated in these ceramic fibers to a minor
erably above the glass transition temperature which is extent without experiencing a marked decrease in their
approximately 120 C. (248 F.) and below the fluid melting point of the material which is in the region of
65
tensile strength, the amount of iron compounds being incorporated being sufficient to make them ferromag
250 to 290 C. (480 to 555 F.). No magnetic field is netic so that they themselves can act as sweeping
applied during the filling of the mold which is carried agents.
3,889,039 19
20
The base glasses which may be made by this tech ing this standing period, the fiber bundle breaks down
nique are derived from fundamental formulations such to smaller and smaller fibrils to a point where a fiber
as calcium aluminum silicate, calcium magnesium alu- which was originally tens of microns in diameter is now
minum silicate, aluminum phosphate and the like. As composed of many thousands of fibers which are min-
a consequence of modifying these glasses, magnetic 5 ute fractions of a micron in diameter with the length re
materials of the type given in Table 2 can be incorpo maining the same. The water is removed by successive
rated in these ceramic fibers to yield a degree of ferro washings in alcohol which may or may not be followed,
magnetism and/or paramagnetism so that they can op depending on the types of surface active agents which
erate not only as reinforcing agents but also can be have to be added at a later time, with combinations of
aligned in a desired direction for improvement of physi 10 alcohol and toluene and followed finally by pure tolu
cal properties in such direction by themselves. Thus, ene. Surface active agents are added in the last stages
such magnetically modified synthetically made ceramic which will adsorb on the surface of the asbestos fiber
fibers not only act as sweeping agents in themselves for so as to make these materials compatible with the poly
aid in lining up non-magnetic nucleating agents, but at meric system and promote the adherence of the asbes-
the same time can in themselves act as fibrous rein 15 tos to the polymer components. For example, if the
forcements which are lined up in the proper direction. These kinds of ceramic fibers are particularly useful
polymer contains substantial amounts of hydroxyl end groups, a small percentage of citric acid or other or
since the degree of ferromagnetism and/or paramagne ganic acid is added in the final washing stages to de
tism can be modified to a good extent by the amount velop the bond between the asbestos and the polymer
of high magnetic susceptibility oxides that can be incor 3 itself. If a polymer contains acid end groups such as porated in them and all of the materials listed in Table carboxyls, then a slightly basic material such as an or
2 in oxide and/or phosphate form fall in this category. ganic amine is added for surfacing of the asbestos.
However, a second and much more important effect These surface active agents for promoting adhesion are
is obtained if one is required to use non-magnetic rein generally added in an amount of about 1 percent of the
forcements entirely.
5 total amount of fluffed asbestos.
Fibrous reinforcments which fall in the category of
To serve as an indication of the degree of fluffing
completely non-magnetic materials may be taken from the glass, asbestos, wollastonite, and synthetic ceramic
which takes place one needs only to measure the bulk specific gravity and the relative increase in bulk spe
fibers which do not contain elements or portions of the cific gravity as a consequence of the fluffing action
compounds as listed in Table 2. Of these a particular 3 after the asbestos has been thoroughly dried. For exam
variety of asbestos which may be designated as "fluffed ple, if one starts with 100 cubic centimeters of normally
chrysotile asbestos" is preferred.
chopped chrysotile asbestos, after suitable fluffing and
Amphibole asbestos is somewhat superior to chryso treatment as described in previous paragraphs, the
tile asbestos in its utility but in view of its scarcity and same 100 centimeters will then occupy a volume of the
high cost, it it much less commonly used than chryso 1 order of 1,000 to 3,000 cubic centimeters. An exami
tile. While most varieties of asbestos are available in nation under the microscope, especially at the highest
very long lengths, the most commonly used form for re levels of fluffing indicates that the diameter of the indi
inforcement of plastic systems is chopped asbestos gen vidual fibers are now in the range of either fractions of
erally in lenghts varying from Vsinch up to %inch. In the microns or in diameters which are below the limit of
chopping process the widths of the individual fiber bun resolution of an optical microscope.
dles which are obtained as a result may vary in widths
The reasons for carrying out this fluffing operation is
from as low as 10 microns up to 200 microns or more that a product is obtained which exhibits an exception
in width.
ally low mass relative to its original length which is re
Careful examination of these bundles of chopped fi tained in the fluffing operation and as a consequence
bers has established that each presumably individual of this extremely low mass it is easily moved by the type
fiber or asbestos is actually made up of many thousands or more still smaller diameter fibrils and such examina
of mechanical force which can be imparted to the parti cle through the use of the various sweeping agents
tions have indicated that theoretically, that at least, the which had been moved in the direction of desired align
width of the individual fibril is no more than a few mol- ( ment by magnetic forces. In addition, in view of the ex
ecules.
ceptionally high surface area which has been exhibited
Since the efficiency of reinforcement of a fibrous ma by this fluffed asbetos an exceptional amount of rein
teria) in a plastic matrix is a function of the surface area forcement is achieved with relatively low concentra
of the fibrous material exposed it would be of great ad tions of fiber. Consequently, when fiber in the unfluffed
vantage to have the choppd fibrous asbestos reduced to , condition, as is normally used, normally will require a
its smallest reasonable diameter. This can be accom loading of the order of 20 to 50 percent in order to
plished, in the case of asbestos, by transforming the achieve the maximum of reinforcement which one can
chopped fiber asbestos into a so-called "fluffed" form. expect by the combination of reinforcing fibers and
This involves immersing the fiber in at least 10 and thermoplastic base. Equal or even better results are
preferably 100 times its volume of distilled or deionized g achieved from the fluffed material with weight loadings
water which contains approximately 1 percent of a wet of 10 percent or less.
ting agent such as aerosol OT which is a complex so
Thus, in summary of this section, fibrous reinforce
dium salt of an organic acid. A variety of cationic wet ments of both non-magnetic and magnetic types may
ting agents which contain alkalis as the cation are suit be used to increase the directional properties of the
able for the purpose. The mixture of asbestos, cationic 6 thermoplastic being produced. Not only can those fi
wetting agent and deionized distilled water is stirred thoroughly and then allowed to stand quietly for at lest
bers, synthetically made, which show a combination of ferromagnetism and paramagnetism be aligned in a
24 hours and generally for periods up to 96 hours. Dur- proper direction for a maximum reinforcement but also
3,889,039
21
22
a non-magnetic fiber such as the fluffed asbestos de can be modified broadly by the application of mechani
scribed in this secion can be swept into a proper align cal stress while these materials are in the supercooled
ment by the imposition of magnetic forces on other fi liquid form and appear to be much more susceptible to
brous magnetic materials which are present in the com variations in heat treatment, though a combination of
position.
5 suitable heat treatment and mechanical stress comple
H. THE DEVELOPMENT OF VARIOUS PHYSICAL ment each other.
PROPERTIES OF POLYALKYLENE
Probably the most important parameter defining the
TEREPHTHALATES AS A CONSEQUENCE OF
nature of the physical properties which can be obtained
VARIATION IN MOLDING AND FORMING
is a measure of the degree of crystallinity, which sub-
CONDITIONS
10 ject has been discussed in some detail in prior portions
It can be determined that linear relationships exist of this specification.
between such easily measured parameters as specific
On method for increasing the crystallinity of the
gravity and relative viscosity and the properties which polyalkylene terephthalates and again particularly the
determine the physical characteristics of a molded polyethylene terephthalates is the use of post-
polyethylene terephthalate such as crystallinity and condensation in the solid state which usually involves
molecular weight, there appearing to be a direct rela heat treatment at temperatures of the order of 230 to
tionship also between crystallinity and molecular 25 0 C. in a vacuum of 0.1 to 10 millimeters for periods
weight. In addition, all of the physical properties of the up to 60 hours. Depending on the molecular weight and
various polyalkylene terephthalates and other polymers crystallinity of the original polyethylene terephthalate
can be modified substantially by such devices as the na 20 which is subsequently subjected to post-condensation,
ture of the heat treatment after polymerization, the ef this vacuum treatment can change a substantially
fectiveness of nucleating agents for promotion of crys amorphous non-crystalline material into a much higher
tallization and the increasing of molecular weight, the specific gravity material showing varying degrees of
temperature of molding and similar factors. While the crystallinity.
TABLE 3
PHYSICAL PROPERTIES OF VARIOUS POLYALKYLENE TEREPHTHALATES UNDER VARIOUS CONDITIONS
PBT1 PMT*
PET"
PET
Com. Grade3
PET 6
PET 6
PET PET PET 666
Tensile Strength
Elongation
Flexural Strength Mold Temperature Starting Specific Gravity Time in Mold (Seconds) Crystallinity Percent Finish Specific Gravity
8,000
300 12,000 125F
8,200
250 12,000 100F
1.31 20
<10%
1.30
1.31 20
<10%
1.30
8,500
200 14,500 195F
1.40 20
28% 1.375 *Com Graded'5-"'
10,000
75 16,500 275F
8,000
300 12,500 150F
1.40 20
37%
1.40
1.355 20
15% 1.355
10,500 50
17,500 150F
1.3551 20
37% 1.40
8,500
300
12,000 150F
9,000
750 13,500 200F
10,000
250
16,500 255F
1.40 20
15%
1.35
1.40 20
23% 1.37
1.40 20
34%
1.38
'Polybuiylenc Terephthalate
'Polymethylene Terephthalate
'Polyethylene Terephthalate
`Netherlands Application No. 6.608,999; February 27, 1967
'Netherlands Application No. 6.5)5.106: February 27. 1967
Prepared as described in this specification.
TAnnealcd specimen - see specification.
'Netherlands Application No. 6.617,992, February 27. 1967
All the above contain
tricresyl phosphite for thermal s'abilization in molten state prior to injection.
PET 6
10,500 250
17,000 325F
1.40 20
37% 1.40
degree of variations in comparing the various polyal 50 Examination of the data given in Table 3 exhibits
kylene terephthalates differ in rate and extent, in gen some of the effects of varying kinds of heat treatments
eral the variations that may be anticipated as a conse on the crystallinity and physical properties. In these
quence of applying a particular treatment, specifically cases, not only is the prior heat treatment important
those involving heat treatment, nucleation and pre but also the temperature at which the material is
ferred and controlled orientation proceed in the same 55 molded. Thus, for example, polyethylene terephthalate
general direction and extent with such similarity that which has not been subjected to post-condensation
each member of the group of polyalkylene terephthal treatment is essentially amorphous, will exhibit a spe
ates can be expected to be varied similarly with similar cific gravity of approximately 1.335 and will generally
treatments.
show a crystallinity of less than 5 percent. By utilizing
Probably the most important single parameter with 60 the vacuum treatment heretofore described, both the
regard to the development of desired physical proper specific gravity and the crystallinity can be regularly
ties in this group of materials is the percentage of crys increased as a function of the time of treatment in the
tallinity.
post-condensation step in the solid state under vacuum
1. THE PHYSICAL PROPERTIES OF THE POLYALKYLENE TEREPHTHALATES AS A
FUNCTION OF HEAT TREATMENT
conditions. Through such post-condensation steps crys65 tallinities up to close to 100 percent can be achieved,
providing, however, sufficient stabilizers are present to prevent thermal degradation. By varying the conditions
The physical properties of the polyalkylene tereph of post-condensation, followed by injection molding,
thalates and particularly th polyethylene terephthaltes, percent or greater.
3,889,039
23 24
parts can be made which exhibit a tensile strength of the order of 8,000 lbs. p.s.i. with an accompanying elongation of around 300 percent, this being equivalent to a specific gravity in the range of 1.35 to 1.36 and
obtained by injection molding of materials exhibiting a specific gravity of around 1.36 into a mold that is at 150 F. or cooler. If such materials are then annealed to 150 C. as indicated previously, the specific gravity
a crystallinity in the region of 15 percent and up to a 5 increases, the degree of crystallinity increases, the ten
tensile strength of 10,500 to 11,000 lbs. p.s.i., elonga sile strength increases and the elongation is decreased
tions of 250 percent with crystallinities in the range of somewhat.
34 to 37 percent.
Thus, as defined in this section and to some extent
Starting with the material exhibiting a specific gravity summarized in Table 3, heat treatment of various types in the range of 1.335 (essentially an amorphous non 10 may have a profound effect on the mechanical and
crystalline material) and subjecting this material to a physical properties of a shaped article produced from post-condensation for 30 hours at 230 C. at a vacuum the polyalkylene terephthalates and particularly the of 0.1 millimeters, a specific gravity in the range of 1.40 polyethylene terephthalate.
to 1.42 is achieved and the crystallinity obtained as a
The figure of merit which represents the clearest def-
consequence is claimed to be 28 percent. This material 15 inition of the combined effect of these various heat
was originally polymerized using antimony oxide as the catalyst without any specialized materials added delib
treatments is the degree of crystallinity which in turn appears to be a function not only of specific gravity but
erately to prevent thermal degradation on post also of relative viscosity which again in turn appears to
condensation. Contrarywise, a material containing a be a function of molecular weight. mixture of zinc and antimony compounds as a polymer 20 The description in this section and the data given in ization catalyst and utilizing triaryl phosphites as a sta Table 3 are introduced at this juncture to serve as a
bilizer against thermal degradation was polymerized in basis for establishing the nature of the improvements the normal manner using the same degree of post which are imparted to molded polyethylenecondensation as defined in reference 4 and 5 of Table terephthalate parts as a function of the novel materials 3. Again, using the identical post-condensation cycle, 25 and procedures defined in the present specification.
this type of polyester exhibited a crystallinity of 34 per cent as against the 28 percent shown for the references
EXAMPLES
of record.
Having described my invention and the platform on
The degree of crystallinity and the nature of the phys which the invention is based, such platform being de
ical properties as a function of heat treatments utilizing 30 tailed in Table 3, following are examples of my method
the type of polyethylene terephthalate which was poly of practice.
merized originally with a combination of zinc and anti mony salts as catalysts in the presence of aryl phosphite
Examples 1 through 10 are summarized in Table 4. In this particular set of examples the polymer of the
stabilizers has been described earlier in this specifica starting specific gravity listed was mixed with the nucle tion. If this material is post-condensed in accordance 35 ating agent and tricresyl phosphite under a nitrogen with the heretofore described conditions for about 5 blanket while the polymer was maintained in the mol hours, a gravity of 1.355 is obtained with a crystallinity ten state. The melting temperature used for this pur of 15 percent as shown in the tables, when the material pose was in a range of 500 to 535 F. (260 to 280 C.) is injection molded into a mold having a temperature and the mixer utilized was a high intensity sigma type of 150 F. When this same material is again injected 40 mixer. A period of 3 to 5 minutes mixing in the molten molded into a mold having a temperature of 150 F. state was sufficient to obtain the desired degree of uni (65 C.) and then annealed at approximately 300 F. formity. The mixer is fitted with a heremetically sealed
(150 C.) for 5 minutes after it has been ejected from top with seals capable of withstanding pressures up to
the mold, the specific gravity is increased from 1.355 1,000 p.s.i. After mixing is completed, the molten mix to 1.40, the tensile strength is increased, and the 45 ture was transferred by ejection and transferred di
degree of crystallinity is increased to 37 percent.
rectly to the barrel of a reciprocating screw injection
If polymerized PET is abruptly cooled after extrusion molding machine.
an amorphous and transparent material is obtained,
The results obtained as a function of various starting
this being the desired requirement for the formation of transparent sheet. Such materials will have tensile
50
conditions such as starting specific gravity and molding temperature are defined in Table 4. Not only is the pro
strengths in the range of 7,000 to 8,000 p.s.i. and gen found action of the nucleating agent established but
erally will exhibit an elongation in the region of 300 also the effect of starting specific gravity and molding
percent. If this material is annealed for a short period temperature on the physical properties of the finished
of time at 150 C., as indicated previously the object becomes opaque, the specific gravity is increased, the
55
products, such variations being in accordance with the effect of similar type variables as defined in Table 3.
crystallinity is increased, and the tensile strength ob
Physical data not defined in Table 4 is of particular
tained will be in the region of 10,000 to 11,000 p.s.i., interest. The physical properties of the injected molded
with an elongation varying between 50 and 300 percent structure are approximately equivalent irrespective of
depending on the temperature at which this material is annealed and also the specific gravity and crystallinity
60
direction indicating that no specific orientation has taken place. The notch resistance of a non-nucleated
which is available in the starting materials. These ef specimen and particularly one which shows a crystallin
fects are much more pronounced with relatively high ity of 30 percent or less is generally in the range of 1.0 gravity starting materials than with low gravity starting to 1.2 foot pounds. However, it is interesting to note materials although the same general trends are exhib 65 that as the crystallinity increases in these non-oriented ited in either case. Thus, transparent, essentially amor specimens the notch resistance rises steadily to a point phous, relatively low tensile strength (about 8,000 where it reaches a figure of approximately 3 foot p.s.i.) and high elongation (about 300 percent) can be pounds and a crystallinity level of about 65
3,889,039 25 26
Most important, however, is the very substantial im Table 3. More important, however, is te pronounced provement exhibited over the prior art. For example, improvement in crystallinity which is exhibited by the
Netherlands Application No. 6,515,106 (reference 5 presence of a properly chosen nucleating agent utiliz from Table 3 of this specification) claims that the crys ing a sutiable thermally stabilized polyalkylene teretallinity of a post-condensed polyethylene terephthal- 5 phthalate. These improved results are particularly no ate under similar post-condensation conditions are table on examination of the crystallinity data reported used in this description was apaproximately 28 percent in Table 4.
TABLE 4
EFFECT OF NUCLEATING AGENT (BETA-CALCIUM-ORTHOSILICATE) ON PHYSICAL PROPERTIES OF POLYALKYLENE
TEREPHTHALATES'-2
EXAMPLE NO.
i 2 345 678
9
10
Type polyalkyleneterephthalate
Molding Temperature Starting Specific Gravity Finish Specific Gravity Starting Crystallinity Finish Crystallinity Tensile Strength
p.S.l.
Elongation (%)
PBT PBT 125F 250F
1.31 1.31 1.34 1.37 <10% <10% 22% . 32% 9.300 10.400
170 80
PMT I00F
1.31 1.34 <10% 20% 9,500 150
PMT 250F
1.31 1.37 <10% 30% 11,000
60
PET
100F
1.355 1.385
15% 30% 10,000 200
PET 150F
1.355 1.395
15% 35% 1 1,000
150
PET 255F
1.355 1.410
15% 43% 12,500 100
PET
100F
1.400 1.420 37% 48% 14,000
150
PET
150F 1.400 1.450 37% 65% 16,000
100
PET 255F
1.400 1.480 37% 84% 19,000
60
Mixed into polymer in molten state under nitrogen before injection molding. Also add 1% tricresylphosphite for stabilization purposes prior to melting. Particle sue of nucleating agent is 0.3 microns; amount of nucleating agent for each example is 0.1% by weight of the polymer.
and after the addition of crystalline accelerating liquids
Examples 11 through 25 are shown in summarized
and nucleating agents, the crystallinity obtained was 34 30 form in Table 5. These materials were mixed in the
percent, indicating that in accordance with the prior art molten state with the nucleating agents defined in
the addition of crystalline promoting liquids and the Table 1 and with the addition of the tricresyl phosphite
nucleating agents described in the prior art had a rela for stabilizing purposes in the manner described for the
tively slight effect on the crystallinity and the physical examples shown in Table 4 and injection molded also
properties of the finished specimens. These references 33 in the manner previously described. In general, the evi
from the prior art, however, do not define the use of a dence indicates that all of the nucleating agents of the
thermal stabilizer in remelting as utilized in these speci generic description given in previous portions of this
fications so that strictly speaking the data are not to specification are effective for purposes of improving
tally comparable. Nevertheless, through the addition of crystallinity and physical properties. However, there is
these stabilizing agents, coupled with a proper choice a trend, not too well defined, which indicates that the
of molding conditions, crystallinities of same order of similarity of the beta angles of the nucleating agent and
magnitude as defined in Netherlands Application No. the beta angle of the base polymer is probably a more
6,515,106 can be obtained without the use of crystal important concomitant variable for improvement of
line promoting liquids or the nucleating agents defined crystallinity and physical properties than the required
in the referred to Netherlands application as shown in 43 similarities between various cell axes.
^BLE 5
EFFECT OF NUCLEATING AGENTS LISTED IN TABLE I ON PHYSICAL PROPERTIES OF PET (SPECIMENS MOLDED AT 325F. AND 20 SECONDS HOLDING TIME)
Example Number
1I 12 13 14 15 16 17 18 19 20 21 22 23 24
25
Nucleating Agent Name Table 1
2 2 2 2 4 4 5 6 7 8 9 10 11 12 13
Particle Size-microns
0.1 0.5 1.0 2.0 1.0 0.5 0.3 0.5 1.5 1.5 0.5 0,3 0.2 0.5
0.5
Percent Agent
0.2 0.5 2.0 3.0 0.5 1.0 1.5 1.0 2.0 3.0 1.0 1.0 3.0 1.0 1.0
Starting Specific Gravity
1.400 1.400 1.400 1.400 1.400 1.400 1.400 1.400 1.400 1.400 1.400 1.400 1.400 1.400 1.400
Finish Specific Gravity
1.445 1.442 1.440
1.433 1.420 1.430 1.440 1.425 1.410 1.405 1.471 1.456 1.416 1.475 1.445
Starting Crys. %
37 37 37 37 37 37 37 37 37 37 37 37 37 37 37
Finish Crys. %
63 59 56 53 48 51 56 50 44 39 77 68 46 54 63
Tensile Strength
p.s.i.
16,000 15,500 15,000 14,500 14,000 14,200 15,000 14,100 12,500 11,000 18,000 16,500 13,600 14,500 15,800
Elongation Percent
no 125 135 140 150 150 100 125 200 250 75 100 160 135 125
I Vacuum treated at 230C.. 10 microns pressure, for 30 hours before admixture in molten state with nucleating agents (polyethylene terephthalate) and 1% tricresyl phosphite as j thermal stabilizing agent. Mixing in molten state carried out for 3 to 5 minutes under a nitrogen blanket.
3,889,039 27 28
Examples 26 through 34 are summarized in Table 6 gation is increased by a factor of 20 to 50 percent, thus and define the effect of a combination of nucleating establishing the strongly directional aspects imposed by agents, plus the non-metallic magnetic sweeping agents the nature of combinations and conditions defined for with and without the presence of the magnetic field. Examples 3 I through 34.
TABLE 6
EFFECT OF NUCLEATING AGENTS PLUS NONMETALLIC SWEEPING AGENTS (TABLE 2) ON PHYSICAL PROPERTIES OF PET (POLYETHYLENETEREPHTHALATE)
Example Number
Nucleating
Agent Name Table 1
26* None 2V 10
28s 10 293 None
301 None
31* 10
32! 10 33= 10 34* 10
Particle Size
Microns
0.3 0.3 None
None
0.3
0.3 0.3 0.3
Percent Agent
_
1.0 1.0 None
None
1.0
1.0 1.0 1.0
Sweeping Agent
None None None Acicular iron oxide Acicular iron oxide Acicular iron oxide Co3(PO<)2
Gd PO,
Particle Size
Microns
_
-- --
1.0
1.0
1.0 0.5 1.0 0.5
Percent Agent
_
-- --
5.0
5.0
5.0 4.0 6.0 4.0
Molding Temp.
Molding Temp.
I5QF.___________________325F.
T.S. p.s.i.
Elong. %
T.S. p.s.i.
Elong. %
8,500 300 10,500 11,500 200 16.500
13,500 180 21,000
7,800
210
9,500
8,900 300 10,900
16,000 170 25,000 17,500 150 27,000 15,500 180 23,000 17,000 150 24,000
250 100 80
180
250
70 60 70 70
'Vacuum treated polyethylencterephihalate for 30 hours at 230 C. at 10 microns. Mixed in molten state with above plus 1% tricresyl phosphite. 'Applied magnetic field; 5,000 gauss, alternated. 'No magnetic field applied.
Again, the starting raw materials were mixed and in
Examples 35 through 44 are given in Table 7 and de
jected in the manner as described for the examples cov fine the effect of various fibrous reinforcing agents
ered by Table 4.
under various conditions, these conditions being the
In examining these data, it should be pointed out that absence of nucleating agents without a magnetic field, in the absence of nucleating agents and non-metallic 35 the presence of nucleating agents in the presence of a magnetic sweeping agents relative to the normal poly magnetic field and in combination with the Table 2 ethylene terephthalate as defined in this specification, class of sweeping agents, the presence of nucleating
that the application of a magnetic field has relatively no agents combined with Table 2 class of sweeping agents,
effect on the physical properties of the finished prod plus brass plated wire in the alpha ferrite condition with
uct. The application of a magnetic field on a nucleating 40 or without the presence of fluffed asbestos.
agent which exhibits magnetic properties and its bene
The data given in these tables indicate that brass
ficial effect is defined by comparison of examples 27 plated iron wire even though present in an amount as
and 28. Example 29 shows that relatively little, if any, improvement in physical properties is shown by the
low as approximately 2 volume percent exhibits distinct reinforcing properties and that asbestos unquestionably
presence of the acicular sweeping agent in the absence 45 does. However, the most important pieces of data in
of a nucleating agent and while some improvement is this table indicates that even though the class of mag
obtained under these conditions as shown in Example 30 on the application of a magnetic field the improve ment is relatively minor, indicating that these acicular
netic sweeping agents given in Table 2 are effective for improving the degree of reinforcement in the presence of nucleating agents, that much stronger sweeping
sweeping agents are reinforcing agents under the best 50 agents such as the alpha iron and more effective in this
of conditions only to a minor extent. However, when regard and notable in their improvement of the
one combines nucleating agents with the non-metallic strength made available by asbestos. Again, as before,
magnetic sweeping agents as shown in Examples 31 the presence of the magnetic field make these physical
through 34, in the presence of a magnetic field, the im properties highly directional. In the absence of the
provements obtained are pronounced.
55 magnetic field the properties are roughly the same in all
In addition to the foregoing, it has been found that directions but at lower levels than those listed in Table
the properties are strongly directional. The properties 7, since these values are the values which are given in
listed in Table 6 are parallel not only to the direction a direction parallel to the direction of extrusion and of application of the magnetic field, but also parallel to parallel to the direction of the application of the mag the direction of molding. The notch resistance under 60 netic field. One of the more important determinations
these conditions is increased when measured at right listed in this table is the effect which the presence of
angles to the direction of the magnetic field in the di the highly magnetic type of sweeping agent has on the
rection of molding over that obtained from a non- physical properties in the specimen with regard to rein
nucleated, non-swept similar raw material such as de forcement outside of that obtained from nucleation in
fined in Example 26. In addition, both tensile strength 65 a specific direction, this being the reinforcement which
at right angles to the direction of molding is reduced most evidently takes place by forcing the asbestos fi
generally by a factor of 10 to 25 percent whereas elon- bers to line up in a particular desired direction.
29
TABLE 7
3,889,039
30
EFFECT OF REINFORCING AGENTS UNDER VARIOUS CONDITIONS
ADDITIVES
(1) + (3)
Iron
Wire
Asbestos121
Molding at
Molding at
Example
Weight
Weight
150 F.
325 F.
Number Base
%
%
T.S.
T.S.
p.s.i. Elong. p.s.i. Elong.
35
Ex. 29
10
36
Ex. 30
10
37
Ex. 31
10
38
Ex. 29
10
39
Ex. 29
10
40
Ex. 30
10
41
Ex. 30
10
42
Ex. 31
10
43
Ex. 31
10
44
Ex. 29
--
_ 8,700 200 10,000 160 -- 9,800 250 12,000 200
--
19,500
160 29,000 70
10 9,600 110 12,000 140
30
15,400
40 26,000 20
10 12,800 140 18,000 80
30
19,800
110 29,000 60
10
24,000
70 36,000 30
30
30.000
50 42,000 15
30
14,200
80 24,000 20
"'Alpha ferrite brass plated iron wire - 3/16" to 'A" length, 10 microns diameter. a>Fluffed asbestos - 1/16" to lA" length. '"When magnetic field is applied, the flux density is 10 gauss.
The effects of magnetically oriented and swept rein the respective plastic indicated in the talbe, the physi
forcement of polymers outside of the field of the poly- cal properties obtained in the absence of a magnetic
alkylene terephthalates are shown in Examples 45 field are only slightly better than that when asbestos
through 65 and summarized in Table 8. The two types alone is used in the absence of the magnetic wire and
of fibrous reinforcements were brass coated ferritic 25 in the absence of the magnetic field.
iron and fluffed asbestos. However, magnetic wires,
Of particular interest are the examples encompassed
stronger than ferritic iron, also brass plated can be used in Nos. 61 through 65. This material is a thermoplastic
in the place of the ferritic iron, if desired. Again, the elastomer and after the various types of reinforcements
significant reinforcement characteristics of the brass are applied, not only are the tensile properties im
plated ferritic iron may be seen from examination in 30 proved, but the materials still exhibit elastomeric prop the table, remembering again that the volume percent erties. In other words, if a stress is applied so as to
is less than 2 percent of the base plastic. Thermally sta change the dimensions of the piece, the piece returns
bilized base plastics were used throughout. The most to its original dimension once the stress is relieved.
notable effect is the combination of the magnetic metal When a very high percentage of the magnetic wire is
wires and fluffed asbestos in a magnetic field in which 35 used in combination with the asbestos with the rela
the combination of the two yields a result superior than tively weak thermoplastic elastomer given in Table 8,
either of the two used alone or better than when the namely, the styrene-butadiene, a very high strength
two are used together in combination in the absence of elastomer is obtained with excellent tensile strength
a magnetic field. Thus, when the mixture of the mag properties and good elongation as defined in the table
netic wire and the asbestos are injection molded with 40 while still retaining elastomeric properties.
TABLE 8
Example Number
45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61
62 63 64 65
EFFECT OF MAGNETIC ORIENTATION REINFORCEMENT OF VARIOUS POLYMERS
Polymer Type
Mixing and
Injection
Mold
Temperature Temperature
Additives by weight
Iron Wire2 Asbestos3
V
Tensile Strength
Elong. %
ABS'
" "
Nylon 6/6
" "
Polycarbonate
"
Polypropylene
" "
Styrenebutadiene4
" "
"
"
450F. "
"
" 560F.
"
"
600F.
" " "
500F.
"
"
"
375F.
''
"
"
250F. "
" "
250F.
"
"
250F.
"
250F.
"
200F.
" "
"
_
10% 10%
--
--
10% 10%
--
--
10% 10%
--
--
10% 10%
--
10% 10% 60%
20%
--
20%
--
20%
--
20%
--
20%
--
20%
--
20%
--
20%
20%
--
20% 20%
p.s.i. 7,000 16,000 8,000 21,000 12,000 24,000 13,000 29,000 9,000 25,000 11,000 33,000 5,000 12,000 6,500 20,000
2,000 7,000 2,800 12,000 36,000
15 4.0 15 10 60 3.0 50 30 120 2.0 80 60 600 80 250 80
1,000 50
800 400
80
`AeryIon it n!e-butadiene-styrene *Same as described in Table 7 (magnetic field, 10 gauss). ^Same as described in Table 7 (magnetic field, 10 gauss). Thermoplastic Elastomer
3,889,039
31 32
polyethylene terephthalate, polypropylene terephthal
EXAMPLE 66
ate, polymethyleneterephthalate and polybutylene terephthalate.
Same as Example 8, except that 20 percent beta cal
4. The article of claim 1 wherein the amount of nu-
cium ortho silicate (Larnite) of 0.5 micron average size 5 cleating agent is between 0.01 percent and about 5 per
was added as a mineral filler. In this case, a tensile strength after molding of 26,000 p.s.i. was achieved
cent by weight of the polymer. 5. The article of claim 1 wherein the particle size of
with an elongation of 30 percent.
the nucleating agent is 0.1 to 0.5 microns.
EXAMPLE 67
6. The article of claim 1 wherein the nucleating agent 10 is an acicular inorganic silicate material capable of
Same as Example 10, except that 20 percent of Lar being aligned by magnetic forces.
nite of 0.5 microns average size was added yielding a
7. The article of claim 1 wherein the nucleating agent
tensile strength of 34,000 p.s.i. and an elongation of 5 is a silicate containing both ferric iron and ferrous iron.
percent.
8. The article of claim 1 wherein the polymer is a
EXAMPLE 68
15 polyethylene terephthalate and the solid inorganic ma terial is beta calcium orthosilicate.
Same as Example 8, except that 35 percent of 0.5 mi cron average size Larnite was added yielding a tensile strength of 34,000 p.s.i. and an elongation of 8 percent.
9. The article of claim 1 additionally containing up to about 20 percent by weight of at least one magnetic non-metallic sweeping agent selected from the group
EXAMPLE 69
20 consisting of oxide and phosphate compounds of Cr, Co, Fe, Mn or rare earth elements other than La, Y and
Same as Example 10, except that 35 percent Larnite Ce.
of average particle size of 0.5 microns was added yield
10. The article of claim 1 which has been subjected
ing a tensile strength of 42,000 p.s.i. and an elongation to a magnetic field of between 1 and 1000 gauss during
of 3 percent.
25 at least a part of the molding of the article.
I claim:
11. The article of claim 1 additionally containing
1. A shaped synthetic polyalkylene terephthalate short pieces of high permeability ferromagnetic metal
polymer article with enhanced physical properties con sisting essentially of the following:
lic materials which act as magnetic sweeping agents during the molding of said article, or as reinforcements
a body of liner polymer consisting of amorphous and 30 for said article.
crystalline segments and up to 50 percent by
12. The article of claim 9 additionally short pieces of
weight of a nucleating agent consisting of particles of a solid inorganic acicular silicate material dis
high permeability ferromagnetic metallic materials which act as magnetic sweeping agents during the
tributed uniformly throughout said body and ori molding of said article, or as reinforcements for said ar-
ented in a preferred direction, said inorganic mate 35 tide.
rial consisting of crystals with A, B, and C-axes, the
13. The article of claim 12 containing brass plated
length of the C-axis of said crystals being within 10 iron or steel wires having diameters less than about 10
percent of the length of the C-axis of the crystalline microns and lengths from about 100-2000 microns said
polymer, and the lengths of either the A or B axis wires being oriented in the same sense as said polymer. of said crystals being within 20 percent of the 40 14. The article of claim 13 additionally containing up
lengths of the A or B-axis of the crystalline poly to 20 percent by weight of a fibrous reinforcing agent
mer, and the angle between the A-axis and the C- selected from the group consisting of glass fibers, as
axis of said inorganic crystalline material being bestos fibers, wollastonite fibers and glass wool fibers.
within 20 percent of the angle between the A-axis
15. The article of claim 14 wherein the reinforcing
and the C-axis of said crystalline polymer.
45 agent is amphibole asbestos.
2. The article of claim 1 wherein the particle size of
16. The article of claim 1 shaped by injection mold
said particles of solid inorganic material is between 0.1 ing.
and 3 microns.
17. The article of claim 1 which has been subjected
3. The article of claim 1 wherein the polyalkylene to a heat treatment after molding.
terephthalate is selected from the group consisting of :rf\
*****
55
60
65