Document 93Owjgy7QBgEzBQ4eYjrONee5
United States Patent [19]
Azrak ct al.
i'ii 3,928,278 [45] Dec. 23, 1975
[54] COUPLING AGENTS FOR CHRYSOTILE ASBESTOS AND THERMOPLASTIC POLYMERS
[75] Inventors: Raymond George Azrak, Whitehouse Station; Fred Harpoth Ancker, Warren Township; Michael Dean Bertolucci, Martinsville, all of
NJ.
[73] Assignee: Union Carbide Corporation, New York, N.Y.
[22] Filed:
Nov. 29, 1973
[21] Appl. No.: 420,232
i
[52] U.S. CL. 260/40 R; 117/126 AB; 117/126 AQ; 117/161 L; 260/37 N; 260/37 EP; 260/37 PC; 260/37 R; 260/42.14
[51] Int CL*..................... C03C 25/02; C0SK 3/34 [58] Field of Search..... 260/38, 37 PC, 37 N, 40 R,
260/42.14, 37 R, 37 EP; 117/126 AB, 126 AQ, 161 L
[56] 2,653.886
References Cited UNITED STATES PATENTS 9/1953 Gentle et al..................... 117/161 L
3,003,990 3,039,894 3.519.593
3.519.594
10/1961 Umland et al........................... 260/38 6/1962 Raphael et al................ 117/126 AB 7/1970 Balger..................................26C/42.14
7/1970 Michael*............................ 260/42.47
FOREIGN PATENTS OR APPLICATIONS 1,287,166 8/1972 United Kingdom
Primary Examiner--Donald E. Czaja Assistant Examiner--S. M. Person Attorney, Agent, or Firm--John S. Pisciteilo
[57] ABSTRACT
There is disclosed a novel class of coupling agents for chrysotile asbestos and thermoplastic polymers. The coupling agents comprise certain phenolic materials, and their use as coupling agents in chrysotile asbestosreinforced thermoplastic polymers serves to impart, at relatively low cost, a unique and valuable combination of properties to the said reinforced polymers. Pre ferred coupling agents are illustrated by 2.6-dimethylol-4-alkylphenols and oligomers and polymers thereof.
17 Claims, 1 Drawing Figure
A08343
United States Patent Office
3,224,985
Patented Dec. 21, 19SS
12
While not wishing to be limited to the geographic deposit
3,224,965 WATER AMD WASTE TREATMENT
Robert C. Woolery, Monroe, M.Y., assignor to Union Carbide Corporation, a corporation of Mew Yorlt
at Coalinga, California, the type of asbestos recovered from ore such as found there is preferred in the present invention. This type of asbestos, i.e. having the proper
No Drawing. Filed Sept. 10, 1963, Ser. No. 307,731 5 ties shown in Table I above, is intended wherever the
7 Claims. (Cl. 210--24)
term "Coalinga-type" asbestos is used throughout the dis
closure.
This invention reiatss to a process for removing un
WATER RETENTION
desirable suspended and colloidal solid matter from
liquids, especially from aqueous liquids. More particu 10 The water retention of the chrysotile asbestos is deter
larly, the invention relates to a process for clarifying
mined by taking 20 grams of dry opened chrysotile as
water and removing solids from waste liquids by contact
bestos fiber, slurrying the fiber in 500 ml. of water and
ing such water and waste liquids with opened chrysotile
asbestos. Water that is to be used for human consumption, home
pouring the slurry onto a Buchner funnel provided with a disc of filter paper 6 inches in diameter. The slurry 15 is then filtered through the filter paper while maintain
cooking and the like desirably should be clear for aesthetic
ing a reduced pressure of 27 inches of mercury below the
reasons as well as for health reasons. Colloidal and dis
filter paper until the filtrate flowing from the stem of
persed mineral and organic matter can affect the color,
the Buchner funnel changes from a solid stream to drop-
odor or taste of the water. Water that is to be used for industrial processes should be substantially free of col
wise flow. The wet asbestos filter cake and filter paper 20 are then weighed. The tare weight of dry asbestos and
loidal and suspended mineral and organic matter. Such contaminating materials can form objectionable scale in boilers and process piping as well as undesirably color the water. Waste liquid effluents from municipal sewage treatment plants and industrial processes should desirably contain minimum amounts of suspended and colloidal
dry filter paper is then subtracted therefrom to compute the weight of water retained per 20 grams of asbestos. Distinctive Coalinga-type chrysotile asbestos useful ia the present invention must have a water retention of greater
25 than about 34 grams of water per 20 grams of asbestos or greater than about 1.7 grams of water per gram of asbestos.
solid matter. It has now been found that aqueous liquids can be
OIL ADSORPTION
purified through removal of substantially all of any sus pended and colloidal material by contacting such liquids
30 A 5 gram sample of dry' opened chrysotile asbestos is placed in a 500 ml. mortar. Di-octyl phthalate (DOP)
with opened chrysotile asbestos. The suspended and col
is added dropwise from a graduated burette to the as
loidal material are, retained by the asbestos and the so-
bestos in the mortar. The resulting mixture is ground
purified aqueous liquid can then be easily separated from
between the mortar and a pestle until sufficient DOP has
the asbestos!' The'term "opened" refers to asbestos that has been at least partially broken up into individual
35
been added to cause formation of a paste that adheres to the pestle. The end point is taken at the time when all
asbestos fibrils or small clusters of fibrils. Such opening
of the asbestos-DOP mixture adheres to the pestle. Dis
can be accomplished by mechanical means, such as a
tinctive Coalinga-type chrysotile asbestos useful in the
hammer mill. It is preferred that the opened asbestos
present invention must have an oil adsorption greater
employed in the present invention be in the short fiber 40 than about 1.4 milliliters DOP per gram of asbestos
form having certain distinctive characteristics. This pre
(greater than 0.7 grams DOP per gram of asbestos).
ferred distinctive chrysotile asbestos, which for purposes of convenience will hereafter be referred to as "Coalinga-
SPECIFIC SURFACE AREA
type" asbestos, has the following properties in the dry
The specific surface area of the dry opened asbestos
form wherein the values are measured on chrysotile as 45 is measured conveniently by the Brunauer-Emmett-Teller bestos that has been opened, for example, by one pass (BET) method, using nitrogen. A sample of convenient
through a laboratory size Mikropulverizer employing a
size, such as 1-5 grams, is heated to about 250 C. under
screen with 0.046-in. slots.
pressure of less than 1 micron mercury for about 16 hours
TABLE t
Prior Art Chrysotile Asbestos
ConllneaType
Asbestos
to drive off adsorbed gases and moisture. The sample 50 in its evacuated condition is then cooled to liquid nitrogen
temperature. A measured amount of nitrogen gas is admitted to the sample chamber and the system allowed to come to equilibrium. The remaining gas is determined
Water Retention (gm. watcr/jm. asbestos)----Oil Adsorption (pm. DOI'/jm. asbestos).........
l. 8--1. 7 0. 4-0. 5 1&-S0
9. J-9. 9
from temperature and pressure measurements. The dif
0.8-0.5 55 ference is the amount of nitrogen adsorbed by the sample.
eo-so This is repeated at several adsorption pressures in order
to obtain an isotherm. The isotherm data are then plotted
The asbestos material preferred in the present inven
and the surface area of the sample calculated by well
tion is obtained from a deposit located near Coalinga,
known techniques. This method is further described in
California. This is a newly found deposit believed to be 60 "Physical Methods and Chemical Analyses," W. G. Berl,
the largest single asbestos deposit in the world. Asbestos
vol. 2. pp. 278, 301 (1951), Academic Press, New York.
mined at this location is short tibered chrysotile asbestos
Distinctive Coalinga-type chrysotile asbestos useful in the
and would be classified between grade 5 and grade 7
present invention must have a specific surface area greater
according to the Canadian Standards Classification.
than about 35 square meters per gram.
Coalinga asbestos, however, has a much more uniform 05 The distinctive Coalinga-type chrysotile asbestos use
distribution of individual fiber lengths and diameters than
ful in the present invention can be obtained in various
do comparable grades of Canadian chrysotile asbestos. In addition, the surface area of Coalinga asbestos is sub
ways. In general, bulk chry sotile asbestos can be broken up mechanically and then separated by well known clas
stantially greater than that of any other type of asbestos.
sification techniques into a fraction having the above
As can be seen from the above table, refined asbestos 70 desired characteristics. Such classification can take place
obtained from the Coalinga deposit has properties which
in dry processing procedures employing gases to aid in
are substantially different from any prior art asbestos.
separation or in wet processing procedures employing
,3 224,963
3
liquids to aid in separation. If desired, asbestos disper
Aminco light scattering photometer. This value corre
sion techniques may also be employed. Such dispersion
sponds to the constant "k" in the equation; ///,,=
techniques are described, for example, in British Patent
where /h--initial light intensity, /slight intensity after
No. 562,161 relating to mechanical wet dispersion and
passing a distance "f" through a liquid. To this tap
U.S. Patent Nos. 1,607,616; 2,626,213; 2,652,325 and 5 water was added 15 ml. of a water dispersion of asbestos
2,661,287 relating to chemical wet dispersion. Chrysolite
containing 0.1 weight percent asbestos (about 0.015 gram)
asbestos obtained from various raw material locations
having the above-described distinctive characteristics.
are useful in the present invention as long as the asbestos
This asbestos dispersion was obtained by agitation of
has the preferred distinctive properties. Typical short-
a water-asbestos mixture containing lxlO"* gram moles
fiber chrysolite asbestos per se does not have the above 10 of FcClj per gram of asbestos, such mixture having a
preferred distinctive properties. Asbestos obtained from
pH of 2.5 to 5. The asbestos dispersion and tap water
deposits located near Coalinga, California is especially
were stirred together for 5 minutes at 25* C. Sodium
useful in the present invention because such deposits con
carbonate was then added in an amount to raise the pH
tain a high proportion of short-fiber.chrysotile asbestos
to a value greater than 7 which caused flocculation of
having the preferred distinctive properties.
13 the asbestos. The tap water was then separated from
This invention can be employed to remove particulate
the asbestos by gravity filtration. The filtrate had a
solids from aqueous solutions as well as remove organics,
turbidity of 15 as measured by the above method. A
oils and non-biologically digestible material. The latter
blank was run on the turbidity before and after filter
contaminant is a special problem for waste treatment.
ing and sodium carbonate addition and no change in
Municipal sewage and waste treatment processes, as well 20. turbidity was noted.
as the natural purifying action of streams and lakes, rely to a great extent on biological degradation of contaminat
Example 2
ing material into non-harmful forms. Certain surface-
Colloidal silica was added to 200 ml. of water until
active materials and other chemicals used for domestic
the turbidity as measured by an Aminco photometer was
and industrial applications are not biologically digestible 23 470. To this mixture was added 0.015 gram of dis
and their presence in waste effluents can seriously harm the
persed asbestos prepared in the manner described in
biological balance of streams and lakes as well as create
Example 1 above. Additional FeClj was added to the
a health hazard. Asbestos has been found useful to re
mixture to form a 0.0005 molar solution. The FeClj
duce the amount of non-biologically digestible material in
tends to increase the electropositive charge on the sur-
aqueous liquids. Asbestos can also neutralize dilute acids 30 face of the asbestos. The resulting mixture was slowly
which may be present.
stirred for five minutes and the pH adjusted between
While not intending to be limited thereby, it is be
7 and 8 by addition of sodium carbonate. The result
lieved that the asbestos purifies the aqueous liquids in the following manner. The electropositive surface charge
ing mixture was allowed to stand for five minutes and then filtered through No. 41 grade filter paper. The
on the asbestos fibrils attracts the generally electronega- 33 filtrate had a turbidity of 10. A blank was run on the
tively charged suspended and colloidal solid matter and
turbidity before and after sodium carbonate addition
thus withdraws such matter from the liquid. The high absorbency aids in removing oils and other organics, in
plus filtration and the turbidity decreased slightly from 470 to 430.
cluding non-biologically digestible material. The nor ,, mally alkaline nature of asbestos aids in neutralizing dilute 40
Example 3
acids. The asbestos fibrils also can have a filtering action on the liquid to further aid in solids removal.
Powdered kaolin clay was added to 200 ml. of water until the turbidity was 1980 as measured by Aminco
The process of the present invention can be carded
photometer. To this suspension was added 0.015 gram
out in various ways. The liquid to be treated can be
of dispersed asbestos prepared in the manner described
passed through a bed of opened asbestos to form a puri 45 in Example 1 above. The resulting mixture was stirred
fied effluent leaving the contaminants behind in the
and the pH adjusted to a value above 7 by the addition
asbestos bed. Alternatively, the liquid to be treated could
of sodium carbonate solution. The resulting mixture
be mixed with opened asbestos and the purified liquid
was then filtered by gravity through No. 41 grade filter
separated from the asbestos by filtration, by settling and
paper. The filtrate had a turbidity of 17. A blank
decantation, or by flotation removal of the asbestos. The 50 was run on the turbidity before and after sodium car
asbestos purification process can be used alone to treat aqueous liquids or it can be used in conjunction with other purification treatments. For example, alum can
bonate addition plus filtration and the turbidity decreased slightly from 1980 to 1870.
The above examples clearly show that opened asbestos,
be used to coagulate suspended matter and then the
and especially dispersed asbestos having distinctive char-
asbestos can be used to remove last traces of suspended 55 acteristics, can remove substantially all suspended and
matter plus organics from the supernatant liquid. The
colloidal particulate matter from cloudy water.
asbestos can also be used in admixture with flocculating
The present invention is also useful for purifying in
agents, such as alum. Asbestos can- also be used either
dustrial wastes, such as aqueous effluent from chemical
as a pretreatment or post-treatment for activated sludge
and food processing plants. It can also be used for
sewage and waste treatment processes. The amount of go clean-up of the "white-water" from paper mills. A dis
asbestos necessary to carry out the present process is not
persion of distinctive asbestos in water having a 2 weigh:
critical. It is preferred that the asbestos be present in
percent asbestos solids content was used to treat in
an amount sufficient to remove substantially all suspended
dustrial wastes. Asbestos in amounts of at least about
and colloidal matter from a given amount of aqueous
30 p.p.m. (parts by weight asbestos per million parts
liquid to be treated. Such amounts of asbestos can 55 by weight waste liquid) substantially reduced the sus
be readily determined by one skilled in the art of water
pended solids content of the waste liquids. When used
clarification and waste treatment.
in combination with other treating materials, such as
The invention is described in more detail with respect
alum, the suspended solids content of waste liquids was
to the following examples.
reduced about 75 percent. 70 The following example describes use of asbestos in
Example I
combination with flocculating agents, such as organic flocculating agents, for the purification of aqueous in
Water clarification was carried out in a 500 ml. glass
dustrial wastes. Flocculating agents useful with asbestos
beaker in which 200 ml. of tap water was ndJed. The
arc well known in the art and arc exemplified by alum,
tap water had a turbidity of 40 as determined by an 73 polyacrylamide and the like.
A0835I
3,224,965
6
3. A process as claimed in claim 1 wherein the floc
One liter of aqueous furnace dust slime from a steel
culating agent is polyacrylamide.
mill containing about 3500 p.p.m. solids (solids parts
4. A process for purifying an aqueous liquid by remov
per million parts of liquid by weight) was placed in a
ing suspended and colloidal matter therefrom which com
one liter cylinder. The aqueous industrial waste was 5 prises contacting an impure aqueous liquid containing
agitated with a plunger. During agitation 2 p.p.m.
suspended and colloidal matter selected from the class
'(parts by weight per million parts by weight of aqueous
consisting of mineral and organic materials with chrysotile
industrial waste) of Separan 2610. a polyacrylamide floc
asbestos characterized by a specific surface area greater
culating agent marketed by The Dow Chemical Co., was
than 60 m.s/gm., a water retention greater than 1.7 grams
added followed by 50 p.p.m. of opened chemically dis 10 of water per gram of asbestos, and an oil adsorption
persed asbestos (parts asbestos per million parts of indus
greater than 0.7 gram of dioctyl phthalate per gram of
trial waste by weight). The asbestos was added in the form of an asbestos-water slurry containing 10 grams of .dry opened distinctive asbestos Fr lirer of slurry. Agita tion was continued for one minute. The treated industrial waste was allowed to stand without agitation for 20 minutes. The supernatant clear liquid was decanted and 'its light transmission properties were measured by well
15
asbestos, whereby the suspended and colloidal matter are retained by said asbestos, and then separating said asbestos and retained matter from the sopurified aqueous liquid.
5. A process for purifying an aqueous liquid by remov ing suspended and colloidal matter therefrom which com prises contacting an impure aqueous liquid containing
-known techniques; Using the light transmission of dis tilled water as a standard of 100 percent, the clear liquid obtained above had a light transmission of 94.5 percent. If untreated furnace dust slime is allowed to settle for 20 minutes, the supernatant liquid has a light transmission of only about 28 percent. This clearly shows the im
20
suspended and colloidal matter selected from the class consisting of mineral and organic materials with opened Coalinga-type chrysotile asbestos characterized by a spe cific surface area greater than 60 m.3/gm., a water reten tion greater than 1.7 grams of water per gram of asbestos, and an oil adsorption greater than 0.7 gram of dioctyi
proved clarification that is obtained by the combination 25 phthalate per gram of asbestos, whereby the suspended
of asbestos and a flocculating agent. Such clarification is
and colloidal matter are retained by said asbestos, and
an improvement over the results obtained by either asbestos or flocculating agent used alone. The asbestos
then separating said asbestos and retained matter from the so-purifled aqueous liquid.
also results in flocculated material which is more stable and more resistant to dispersion by agitation than that
30
6. A process as claimed in claim 4 wherein the impure aqueous liquid has a cloudy appearance.
obtained by prior art flocculating agents without the presence of opened chrysotile asbestos.
7. A process as claimed in claim 5 wherein the impure aqueous liquid has a cloudy appearance.
The above examples all employed opened chrysotile
References Cited by the Examiner
asbestos that has been chemically dispersed in water suspension. It should be understood that other forms of
35
UNITED STATES PATENTS
opened chrysotile asbestos which have not been chem
1,364,337 1/1921 Landreth............................ 210--*2
ically dispersed are also useful in the present invention.
2,158,954 5/1939 Zigerli................................ 210--17
What is claimed is:
2,593,125 4/1952 Eaton et al.__________ 252--315
1. A process for removing suspended and colloidal 40 2,661,237 12/1953 Barbaras 252--313
matter from aqueous liquids which comprises contacting
_OTHER REFERENCES
an impure aqueous liquid with a flocculating agent and
opened Coalinga-type chrysotile asbestos to flocculate
Dow: Separan 2610 in Waste and Sewage Treatment,
and retain the suspended and colloidal matter, wherein
a publication of The Dow Chemical Co., Midland, Mich.,
said asbestos is characterized in the dry form by a specific
October 1956, 16 pp. and 7 additional pp. appendix,
surface area greater than 60 square meters per gram, a 45 pp. 1-5 and 13 particularly relied on.
water retention greater than 1.7 grams of water per gram of asbestos, and an oil adsorption greater than 0.7 gram of dioctyl phtbalate per gram of asbestos, and then sepa
Liu: Asbestos as Filter Aid in Sugar Refining, Ind. and Eng. Chem., vol. 33, May 1946, pp. 521-524.
Pundsack: The Properties of Asbestos, I. Phys. Chem., vol. 59 (1955), pp. S92-S95.
rating the asbestos, flocculating agent and retained matter 50 Rosa to: Asbestos, Its Industrial Applications, 1959,
from the so-purifled aqueous liquid.
Reinhold, New York, pp. 41 and 135 relied on.
2. A process as claimed in claim 1 wherein the floc
culating agent is alum.
MORRIS O. WOLK, Primary Examiner.
A 08352