Document jBDg6q5ZYXwgKNXy0JqRpqrYk
FILE NAME Brakes BRK DATE 1977 May
DOC BRK168
DOCUMENT DESCRIPTION Trade Journal Article - The Search for Asbestos Substitutes
THE SEARCH FOR ASBESTOS SUBSTITUTES
BY K. GREEN & M. PTE
The authors of this article are associated with the Fulmer Research Institute Ltd. Ltd. Stoke Poges Slough England and have recently produced a booklet entitled Asbestos Characteristics Applications and
Alternatives which includes an examination of the substitute materials commercially available for the major applications of asbestos and asbestos products The Fulmer Research Institute is a profit
research organization specializing in materials technology]
SUMMARY
This article examines in some depth the materials available as alternatives to asbestos for two of its major applications-
asbestos and friction materials Asbestos is used in a wide range of applications and the most successful approach to
its replacement is to examine each application individually is noted that it is not always possible to replace asbestos on technical grounds and where replacement is possible penalties are frequently involved
INTRODUCTION
Asbestos is a material which makes a great contribution to human safety through a number of its applications but it can also constitute a health hazard to those who are exposed to its fine airborne fibers In several countries around the world great concern at present exists over the use of asbestos products and attempts are underway to minimize the risks of asbestos exposure by examining the safety precautions taken when carrying
out potentially dangerous producing operations with asbestos products machining delagging demolition etc ) and also by exploring the possible use of suitable alternative
materials
A considerable volume of research has been directed in
recent years to finding substitutes for asbestos the major effort being concentrated in areas that use large quantities of the
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asbestos asbestos
1974. properties
asbestos which make it tt
consumption consumption these applications applications
considered consideredconsidered the following following
with
properties
materials
ASBESTOS-CEMENT PRODUCTS
make make
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systems The asbestos
tant. roofing tensile strength
pressure pressure
be used for properties purposes as
such
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Crocidolite
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SEARCH FOR SUBSTITUTES
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corrugated boards may be produced by molding the wet material The main attractions of asbestos products to the end
user are durability resistance to weathering attack and effectiveness The noncombustibility of the products is
nificant but is often of secondary importance
cost
sig-
SUBSTITUTES FOR C PRODUCTS
.
Various currently available materials are used as substitutes
for asbestos cement in many of its diverse applications Cladding panels are frequently manufactured from Reinforced Plastic GRP or various thermoplastics although these materials
do not possess the fire resistance of asbestos cement and their
combustion can lead to the evolution of toxic fumes Metals notably aluminum are also widely used in this application GRP or wound concrete pipes are often suitable for use in corrosive environments and the traditional cast iron sewage pipe performs satisfactorily Most of these materials are more expensive than asbestos products although certain thermoplastics may be competitive in specific applications
In general however none of these materials can be fairly considered to be a universal replacement for asbestos cement and the most promising route to achieve this objective at present is the development of reinforced cement technology Conventional glass fiber which is commonly used in glass inforced plastics cannot be used in conjunction with cement since the severely alkaline conditions produced during the setting of conventional Portland cement degrade the fibers and the resultant composite material rapidly loses its favorable mechanical properties However within the last ten years a highzirconia resistant glass fiber has been developed at the Building Research Establishment Garston England This fiber is marketed by Pilkington Brothers Ltd. of St Helens England
under the name Cem for cement reinforcement purposes
reinforced cement usually contains between % and % of fibers and typically one would expect a material containing % of fibers to have a modulus of rupture similar to that which would be expected from asbestos cement containing 15 of fibers about 35 MN Additionally the reinforced cement is considerably more impact resistant than asbestos
Page 10
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SEARCH FOR SUBSTITUTES
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cement of comparable strength The green boards have wet
strength and can be molded and large bore pressure pipes can be produced The final products perform adequately in pre-
venting fire penetration However several drawbacks exist in the
use of this material
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) The fiber is approximately times as expensive as the asbestos used in cement products and this coupled with the less favorable economics of the production process results in
a price for reinforced cement some % greater than asbestos cement even allowing for the smaller fiber content
2 The drainage characteristics of a cement fiber mix are poor and do not permit the manufacturing process
for asbestos cement to be used in an unmodified form Glass-
reinforced cement is usually made by a process referred to as spray suction In this process a special spray head sprays a mixture of chopped glass fiber bundles a few centimeters long with a fine cement slurry onto a porous bed When spraying is complete a vacuum is applied to the underside of the bed to remove excess water A similar procedure is used to make pipes
the spray head being directed onto the inside of a rotating tubular form with the excess water being similarly removed Conse-
quently the manufacture of reinforced cement is relatively costly and requires a high capital investment
However the manufacturers of reinforced cement are expending considerable effort on attempts to make the material on minimally asbestos cement plants The impetus for this effort was the result of Japanese legislation about two years
ago whereby asbestos was placed in the dangerous chemical
category of materials Consequently severe restrictions apply to any product sold in Japan containing more than % asbestos which includes standard asbestos products It was found
that the standard asbestos cement plant could produce a good quality board from a cement slurry containing both glass and asbestos fibers in suitable proportions so as to keep the
asbestos content below % thus producing reinforced asbestos cement known as GRAC The research effort is presently concentrated on eliminating the asbestos content com-
pletely and this has been achieved by suitable plant modifi-
cations It is likely that this equipment will shortly become available in the United Kingdom eliminating one of the principal drawbacks to the use of reinforced cement
Page 12
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3 Some attack of the glass fiber by the setting cement is necessary to achieve good fiber bonding and this requirement has raised doubts concerning the term durability of glassreinforced cement The product is too new for really term data to be available but manufacturers findings for a seven period indicate that the strength of reinforced cement when wet stored the worst situation drops to half its initial value in approximately two years and then stays constant An additional safety factor of 3 is recommended i.e. the quality control initial strength should be at least six times the design working stress Most existing uses of reinforced cement have been restricted to bearing components eg eg cladding but the more demanding structural applications are gradually being attempted as knowledge of and confidence in the material grows it is likely that the uses for reinforced cement will increase since it allows interesting concepts that are impractical with asbestos cement A good example is the use of continuous glass fiber roving to filament wind large diameter pipes that are much lighter due to the thinner wall required than a steel-
reinforced concrete pressure pipe of comparable strength and
price
FRICTION MATERIALS
Asbestos brake and clutch linings are in widespread use particularly but not exclusively in the automotive field The asbestos performs a complex function in these applications which is not completely understood Chrysotile asbestos is used exclusively and stiffens and strengthens the filled phenolic resin matrix The fibers maintain these properties at the high temperatures generated during for example braking and clutch slipping
The friction and wear characteristics of the asbestos fibers and
their thermal decomposition product forsterite are thought to be responsible for the good braking efficiency and service life
properties of these materials Forsterite is a fibrous silicate and is not thought to constitute a health hazard Investigations have established that the dust produced from the wear of asbestos friction materials does in fact contain only % to % of asbestos fibers Repeated exposure to this dust is a potential hazard for personnel such as garage mechanics While this wear debris is not thought to constitute a significant health hazard for the general public much effort has been concentrated in
searching for substitutes for asbestos in this application
Page 14
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Various substitute materials have been investigated but they
all have drawbacks Sintered metals ceramics and metallized bonded products have been available for many years However
the high thermal conductivity of these materials creates a risk of boiling brake fluid which can cause erratic performance Carbon carbon composite brakes have been used successfully on
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racing cars and aircraft such as the Concorde They perform better than asbestos materials under the high service temperatures in these applications but are so expensive that their use can only be justified in specialized circumstances A considerable volume of work is currently underway on using the existing asbestos manufacturing technology and incorporating either steel or glass fibers into the mix to replace the asbestos
Vehicle trials are underway in the United States with these products and it is estimated that asbestos substitutes are available for about 30 of the friction products market the exception being in the heavier applications such as disc brake pads where high temperature surface conditions are encountered
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Steel fibers were first used in friction materials in Germany prior to and during World II due to difficulties in obtaining
asbestos fiber It was found the brakes worked well with little loss
of efficiency when wet but the wear debris was abrasive and severely damaged the counterface Glass based friction materials also produce a very abrasive wear debris with corresponding damage problems Further at high temperatures the glass can melt This can produce a sudden undesirable loss of friction since the sliding surfaces can be effectively lubricated by the molten glass Both steel and glass based materials tend to be considerably noisier in vehicle braking applications than their asbestos counterparts Both glass and steel fibers can be incorporated into friction materials using standard processing
but steel fibers have been found easier to handle The steel fiber
is usually of the fine steel wool type and is about four times more expensive than the asbestos used in friction materials Conventional glass fiber is approximately half the price of the steel
wool asbestos materials use proportions of liber comparable to the conventional product and are hence more expensive
Thus although asbestos friction materials are technically and economically preferable at present for the majority of applications it seems probable that these may eventually be replaced by the asbestos materials as a result of
concern over the health hazards involved with asbestos
Page 16
ASBESTOS 1977
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CONCLUSIONS
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substitute It is apparent in the two applications which have been con-
sidered that one factor common to both is that
materials will be more expensive than the asbestos product it is
desired to replace The two case histories however highlight
notable discrepancies
1
cement 1 The health hazards involved in the handling of asbestos-
products during machining and demolition operations are greater than those associated with the handling of friction materials where the dangers are confined to manufacture and
the cleaning of brake drums and linings
2 Research has led to the development of
acceptable substitutes for asbestos
technically
inferior products are
products whilst
likely to be accepted as substitutes for
friction materials
The arguments put forward here therefore mitigate against a
total ban upon the use of asbestos products and would
that in some cases it would be preferable to ensure the suggest
tion of adequate
safety
precautions
during
their
observamanufacture
and
maintenance than to accept inferior products In addition the
potential health hazards involved with the use of alternative
fibrous materials including glass should not be overlooked
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COPIES STILL AVAILABLE
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- RECOMMENDED WORK PRACTICES manuals published by the Asbestos Information Association America include Recommended Work Practices for the Fabrication and Use of Asbestos Paper Products Shop and Field Fabrication of Asbestos Sheet Products Molding and Fabrication of
" Asbestos Containing Plastic Products Fabrication and Use of Asbestos
Friction Materials and Use and Handling of Asbestos Textile Products $ 35 each plus postage order from AIA or
through ASBESTOS Magazine
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