Document zG7Lbd5wmkB1rEdrOG7V5d3B
REVENTION of dust inhalation by the wear
P ing of cloths, handkerchiefs, and the like over the nose and |mouth was practiced in Agri-
Uses
cola's time. Such devices, crude as they were,
and
Limitations
reduced the discomforts of breathing smoky or dusty air, Although the medieval metallurgists
lacked our chemical and medical names for their
of
RESPIRATORY
respiratory hazards, they understood the physio
logic effects of carbon monoxide, and Agricoia's
remarks about silicosis among the Carpathian miners showed that this disease was well known.
The invention of the diving suit by Siebe early
Protective EQUIPMENT
in the nineteenth century demonstrated that it was perfectly practicable for a man to breathe air blown to him through a hose connected to a
By PHILIP DRINKER
SCHOOL OF PUBLIC HEALTH. HAiVAAD UNTVEESTTT, BOSTON, MASS.
blower some distance away. The modern hose
mask and the simpler air-line respirators remind one of Siebe's original equipment.
It was not until the close of the World War, however, that industry in general began to appreciate the industrial possibili ties of gas masks, dust respirators, and other respiratory protec tive equipment. In 1911 the U. S. Bureau of Mines began issu
must not be too heavy--all of these items being subject to cer tain latitude.
The amount of air breathed and the oxygen consumed by the average healthy 150-lb man is given in Table I.
TABLE 1 AIR BREATHED AND OXYGEN CONSUMED
ing literature on oxygen-breathing apparatus, but it was not until 1919 that the systematic development of modern respira tory protective equipment began.
A respirator is a device for rendering inhaled air respirable. In recent years the word has been applied especially to devices for protection against dust inhalation, but the broader use of the term is preferable. Brown (l)1 has suggested the following classification of respirators:
I Supplied-air respirators
(After Henderson and Haggard)
Oxygen consumption. liters per min
Rest in bed, fasting........... Sitting..................................
Standing.............................. Walking, 2 mph.................
Walking, 4 mph................ Slow run............................. Maximum exertion.......... . .. .
0.240 0.300 0.360 0.650 1.200 2.000 3 to 4
Air breathed. liters per min
6 7 8 14 26
43 65-100
A Self-contained type 1 Oxygen breathing apparatus
B Hose type 1 Hose mask 2 Air-line respirator 3 Abrasive-blasting respirator
II Air-purifying respirators
A Chemical-filter respirator 1 Acid-gas, or type A 2 Organic-vapor, or type B 3 Ammonia, or type C 4 Carbon monoxide, or type D 5 Combinations of 1, 2, 3, and 4
B Mechanical-filter respirator 1 Dust, or type A 2 Fume, or type B 3 Mist, or type C 4 Combinations of 1, 2, and 3
C Chemical- and mechanical-filter respirator 1 All combinations of A and B above (Group II)
OKNBXAL XBQUIXMOtNT*
It was decided in the gas-mask studies carried ouc during the War that 85 liters per minute represented the maximum amount of air likely to pass through a mask at either inspiration or expiration. Of course no one but the exceptional person, such as a long-distance runner, breathes at 85 1pm for more than a few moments, but half that rate, or 42.5 lpm., is not unusual. Since one inspires approximately one-half the time and expires the other half, the actual minute volume breathed should be doubled,2 hence the figure of 85 1pm; and it is this figure which is commonly used in measuring resistance. Measure ment is made with the aid of simple set-up illus trated in Fig. 1 precisely as one measures pressure differences in air duns or in chimneys. The
muscles which raise and lower the chest in res piration are not strong and easily become tired if overworked. Any seri ous impediment to inspi
There are several important considerations applicable to all respiratory protective equipment: First, the device must not offer an annoying resistance either to inspiration or expira tion; secondly, it must afford a definite degree of protection under well-defined conditions; thirdly, it must be reasonably comfortable, it must not interfere unduly with vision, and it
1 Numbers in parentheses refer to similarly numbered items in the bibliography at the end of this paper.
Contributed by the Safety Committee and presented at a session on Occupational Diseases at the Annual Meeting, New York, N. Y., Dec. 2-6, 1935, of The Ameeican Socixtt or Mecilanical Enoineexj.
ration is fatiguing and causes a building up of excessive carbon dioxide
in the blood, a desire to breathe rapidly, and a degree of discomfort which quickly may be come so distressing as to
no. 1 A1UNQE.MENT FOX TESTING
THE XESISTANCE TO AIX FLOW OF
VAXIOUS FOXMS OF XESFIXATOXS
(R -- respirator, M -- water manome ter, F -- flow meter with capacity of
85 liters per minute.)
* Actually the respiratory cycle is usually irregular, but for mask testing it is permissible to consider it symmetrical and to ignore the
pause at full inspiration or expiration.-------------------------------------
171
172
Mechamicai, En'GINTSEHJ
ciise the inexperi perienced airplane pilots use oxygen-breathing equipment v;
enced wearer of a mask co take it off. It is not difficult to train oneself, to breathe
against rather high resistances but this training requires the
ing from a simple arrangement for giving the pilot an occasic breath of oxygen to complete equipment which must be w continually. At sea-level pressures, there is no limit to gas concentration against which an oxygen-breathing eqc ment protects, although it obviously cannot protect the wes against gases, like hydrocyanic acid, which are absori through the skin.
incentive of extreme
Hast Mask. In Fig. 3 is shown a hose mask with the wea
hazards or the disci carrying out a cask for which the device is particularly suit,
pline possible in war. Here the air hose must be strong enough co be used as a '
It is not a practical line in emergencies, must be impermeable to oils, gasoline, a
peace-time expedient water, and must not collapse under heavy weight. Air is si
and should not be plied by a hand-operated blower.
necessary. For gas
As in the case of oxygen-breathing apparatus, there is
masks the Bureau of limit to the atmospheres in which hose masks give safe proti
Mines now allows an cion, saving possible harm through skin absorption. T
inspiratory resistance hose must be of sufficient diameter to lec che wearer breathe
case the operator of che pump should have to stop for a she
expiration
interval. It is found that a safe minimum hose diameter
In Vs in. It is impracticable co pump air by hand through lot the lengths of hose and difficult co breathe through more chan 1
ule permits
ft should the air supply be cut off. Therefore, the device
to definitely limited co use in places where the blower can I
placed within 150 ft of the wearer.
to expiration, tests
The Bureau of Mines requires chat the exhalation valve c
being made ac the the face piece shall not have a resistance at 85 1pm of moi
completion of filter- than 1.5 in. Because of the danger of the hand-driven blower
ing*efficiency tests and stopping occasionally, che inspiratory resistance through ci
no. 2 KAU-HOOX OXTGBN-BUATHING
AFPAJLATU9--AJTXOVBD BT THE BUMAU
or MINES (2)
(Courtesy Mine Safety Appliances, Pittsburgh, Pa.)
not simply when the device is new. These resistances should be lowered from time to time as general im
provements in indus
blower, the hose, and face piece should not exceed 2.5 in. It has been found safe for men to enter empty tank car
shallow manholes, and the like with hose masks without blow ers. The wearer then breathes through a gas-proof hose an is safe as long as che inspiratory resistance of che hose is loi and the inlet of che hose remains in dean air. Such aa arrange
trial respirators warrant more severe specifications, for it will rnene does not dispense with the need of a strong hose whici
be found that even 2-in. resistance at 85 1pm is unpleasant for can serve as a life line in the event of some mishap co the weare
long periods.
Oxjgtn-Brtathing Apparatus. After a fire or
explosion such as occurs in mines, rescue work
must be quick, and the rescuers must enter at
mospheres of unknown composition. Often
an added difficulty is dense smoke through
which the visibility is poor. Rarely is there
any chance for the use of hose-type equipment.
In spite of such obstacles there are numerous
records of rescues made by men wearing self-
contained apparatus for which the wearer car
ried his own oxygen supply.
A modern oxygen-breathing ouefit is shown in
Fig. 2. Oxygen is carried in a small steel
bottle which leads through a special reducing
valve to the breathing bag and then to the
face piece. Since an average man engaged in
fairly heavy exercise needs 2 to 3 liters of oxygen
per minute, the exhaled air of the wearer of
oxygen-breathing apparatus must be purified
and re-used. Otherwise the man would be able
to carry only a few minutes' oxygen supply.
The regenerating and purifying device con
sists essentially of a container or cartridge of
a suitable carbon-dioxide absorber such as soda
lime (NatOCaO). The oxygen consumed is
chen made up by the addition of oxygen from
the breathing tank.
no. 3 HOSB-MASX BQUtPMBNT---- imOVIO BT SUMAC OF WIFTSS Q)
At altitudes in excess of about 15,000 ft ex-
(Courtesy Davis Emergency Equipment Company, Inc., New York, N. Y.)
March, 1936
173
of che mask, nor should it dispense with an observer outside the zone of danger.
Air-Ltnt Respirators. The positive-pressure respiracor. Fig. 4, worn in such jobs as paint spraying, is an outgrowth or simpli fication of the hose mask. It is adapted to all work in which there is no severe hazard to che wearer should he remove the device momentarily. That is, it should not be used in danger ous atmospheres to which the hose mask or the oxygen-breath ing apparatus is especially suited. Air-line respirators are much less expensive chan hose masks, che air line may be of small bore compressed-air hose, and no life line is needed. Lf the air supply is cut off, the wearer simply removes his mask and moves out of the polluted air.
In general, air-line respirators can be worn for long periods, as they are light and there is little discomfort to the wearer. As yet there are no specifications for these respirators, but their effectiveness can be judged satisfactorily by requiring the wearer to spray an emulsion of black pigment in water, and after some 15 or 20 minutes' cypical spraying work, comparing his nasal dischirge and sputum with specimens taken before spraying.
Abrasive-Blasting Respirators. One of the severest dust haz ards is abrasive blasting of sandy castings with sand as the abrasive cleaner. Of less danger is blasting with steel shot, but neither process should be permitted unless the blaster wears a respirator of the general type shown in Fig. 5- The device must protect the workman against flying particles and should be supplied with air at sufficient pressure and volume to insure a slight but constant positive pressure at the nose and mouth.
no. 4 Aia-ciKK iKsPiaaroa (Courtesy Willson Products, Inc., Reading, Pa.)
Unfortunately.abra-
sive blasters arc of
ten che least intelli
gent workmen in che
plant. It is not ac all
uncommon to see che
blaster finish a job,
open the doors of the
blasting chamber, cake
off his helmet and
then blow the loose
macerial off the cast
ings, thus making ic
certain that he will
breathe dust he should
avoid and chat his
helmet and his own
head are well bathed
in dust. Obviously,
he will breath this
dusc when he puts on
his helmet again.
Respirators suitable
for chis work can be
made in various forms.
The essential specifi
cation is chat che
wearer receives air
substantially as dean
as that from the com
pressed-air line. Tests demonstrating this FIG. 5 iBJLiSTVB-BLASTINO &SSPULATOK
fact should be made (Courtesy W. W. Sly Manufacturing Com
under practical blast
pany, Geveland, Ohio.)
ing conditions--tests
such as that suggested for air-line respiracors ate quick and
will eliminate many poor abrasive-blasting respiracors, but
final acceptance of a blasting respiraror should rest upon a
practical demonstration in which the air within che device is
sampled and compared with chat horn the air line.
It was suggested by Bloomfield and Grecnburg (4) that air
flows of at least 6 rfm per helmet were required but it is now
recognized generally that less than 6 cfm often suffices. How
ever, inestimacing air flows to be supplied to blasting respirators
ac lease 6 cfm per man should be allowed. No harm results
from using too much air within the helmet while coo little
may result in negarive pressures during inspiration. One can
notice momentary pressure drops by the sensation on che ear
drums, and the wearer should be caught to cum on enough air
so that he can not notice this change even on taking a deep
breath.
Air Purifiers. In most mines and in most dusty plants com
pressed air is available, but is apt to be wet and smell objection
ably of oil. Also it may be unpleasantly cold when expanded
directly into a respirator.
It is not difficult to clean, dry, and warm compressed air so
that it is suitable for breathing. Various expedients can be
adopted, one of which is shown in Fig. 6.
Plants having no compressed air would do well either to in
stall compressors in which the intake air has no contact with oil or else co use a rotary compressor capable of delivering air
at a pressure of 10 to 20 lb per sq in. Obviously, the air sup
plied should be free from harmful dusts. Accidents in which
the intake of oil-lubricated compressors has been contaminated
with che exhaust gas from gasoline-driven motors or in which
some of che lubricating oil has been converted into carbon
174
Mechanical Engineering
monoxide are much more common than is generally supposed.
Chtmkal-Filttt Rtspiiators or Gas Masks. The Bureau of
Mines has detailed specifications for the construction and per
formance of gas masks which protect against any gas or against
any combination of gases. In Fig. 7 is shown a so-called "all-
service mask" which protects against any combination of gases
as well as against smokes and dusts.
In general the most important ingredient in gas-mask can
isters is activated carbon, about 8-14 mesh in size. Carbon of
high adsorptive capacity is now obtainable and is controlled
by exacting specifications. Ic is effective against dilute con
centrations of such organic gases and vapors as gasoline, and
has an appreciable effect against organic acids such as formic
or acetic. Furthermore, a mask approved against mercury
vapor contains charcoal as the essential air purifier.
Of next importance is an alkaline absorbent such as soda
lime, which reacts with acid gases such as carbon dioxide,
sulphur dioxide, and hydrogen sulphide. Ammonia can be
caught by silica gel (6) and by the special reagent, cupramite,
which is activated carbon or pumice impregnated with copper
sulphate (7). Carbon monoxide is not directly absorbed by any
reagent but is converted by a special catalyst, hopcalite (8),
into carbon dioxide and thac in turn is caught in soda lime.
One of the important difficulties in carbon-monoxide adsorption
is dissipation of the heat generated when the carbon monoxide
is oxidized to the dioxide. This heat loss is realized by passing
the oxidized gas through a special radiator on top of the can
ister. In general, gas masks will noc protect against concentrations
exceeding 2 to 3 per cenr of the inspired air and of course they
will not make up for oxygen deficiency. Their life lasts only
as long as the ingredients of the canister retain their required efficiency. Some masks, such as that shown in Fig. 7, are ob no. 7 ALL-SWIVTCS MASK--APPOVBD )!T BUJLHAU OP MINUS (5)
tainable with timing devices which are actuated by the wear
(Courtesy Mine Safety Appliances Company, Pittsburgh, Pa.)
er's respiration and thus show when the canister should be re
newed.
Chtmicai-Cart\tdyi Risptrators. There are many jobs in which
some protection against gases is welcome but the lack of such
protection does not involve a serious risk. In Fig. 8 is shown
a cartridge-type respirator which is used for protection against
low concentrations of such gases as gasoline and sulphur dioxide,
and in certain paint-spray jobs.
Obviously, such a device is cheaper than an air-line respirator
or gas mask and attracts purchasers accordingly. Ic is not a
substitute for either of these devices and should never be used
for protection against severe hazards. In its favor are its extreme
simplicity and the readiness with which expended cartridges can be renewed.
Mtchamcal-Filttr or Dust Rtspirators. These devices are intended
to protect only against particulate matter and are not to be used
against gases. As the result of the formulation by the Bureau
of Mines of an approval schedule (9), dust respirators have been
improved greatly and now are available in efficient forms with
low resistance to breaching, Fig. 9.
Dust respirators, unlike the filters of commercial dusc col
lectors, must be highly efficient at the outset--they cannot rely
upon usage or dusting to plug the pores of the filter substance
and rhuj improve the dust catching. It is not an easy matter to
catch such substances as finely divided lead fume or fine quartz
dust and still have a device through which the untrained wearer
can breathe with reasonable comfort.
In general the filter materials now in use in the approved res pirators are of wool felt or of specially impregnated paper (10)
or various combinations of the two. Air velocities through
no. 6 Aix-PinujiB* (Courtesy E. D. Bullard Co., San Francisco, Calif.)
the fresh filters are about 20 fpm compared to 2 to 6 fpm used in commercial filter cloths for dust collection. It is generally recognized in practical respirator manufacture that thin filter
March, 1936
175
than co supply approved devices which remain in the stock room or are worn only in the presence of superiors.
DISCUSSION
It can be said of all the mechanical-filter-type or dust respira tors that they are a poor substitute for dust control. Ulti mately it is not an economy to supply workmen with air-line respirators or with dust respirators instead of installing the proper dust-control equipment. Further, the time is not far off when the courts and compensation boards will make short shrift of the employer who lets his men work in dense clouds of dust, regardless of what the dust is.
In general the employer would do well to cry some of the dusty jobs himself, wear the men's respirators, and thus decide whether or not it would be better to install dust control in stead of respirators. However, dust respirators are centuries old; they have a legitimate place in industry, and are an im portant aid in the prevention of dust inhalation, but they are not a substitute for dust prevention and never should be used as such.
This sort of criticism does not apply with the same force to the other types of respirators. Oxygen-breathing apparatus, gas masks, and hose masks are all used in emergencies, usually resulting from accidents. Hose masks may be used routinely, but they are sold in single units while dust respirators are apt to be sold and used by the gross. Also, air-line respirators and abrasive-blasting respirators are often applicable to situations
HO. 8 CHEMICAX-CAJLTKJDGB USFIXATOB
(Courtesy Willson Products, Inc., Reading, Pa.)
subscances plug rapidly. If they are used in respirators, pro vision for frequent changes of filters is necessary. Thiele filters of wool felt; on the other hand, plug slowly but arc too ex
pensive to discard and are cleaned by compressed air or by shaking.
There is every reason to believe that better filtering materials
will be made, and it is important to note that the Bureau of Mines' requirements permit the greatest latitude in the selec tion and manufacture of the filters. It is probable that the
Bureau's resistance requirements, which are now more severe than those for gas masks, will be made still more severe in the future.
Notupproved Dust Rttptrattrs. There are many dusty jobs for which less effective dust respirators are suited. The Bureau's stamp of approval has in the eyes of many an unwarranted legal significance which has yet to be upheld in court. Some firms, driven panicky by the present silicosis-dust racket, have even gone so far as to stock up with "approved" respirators so that they might be able to show they have on hand the best respira tors made in case they find themselves defending a dust-com
pensation lawsuit. There is not the slightest reason to use the best respirators
against dour, cocoa, limestone, cement, and many ocher dusts. It is more to the workman's interest to give him a less elaborate
device which may be less effective but which is also more com fortable, Fig. 10. Indeed, there are jobs with high quartzdust exposure in which it would be much better to provide the men with nonapproved respirators which the men would wear
no. 9
dust bkstulatob fob usb against dead and sir.iCA dust
(8)--APraovBD ar thb bumau or minks (Courtesy Willson Products, Inc., Reading, Pa.)
176 Mechanical Engineerin
in which rhe employer conscientiously his tiken all reasonable precautions to prevent dustiness.
At the present writing there are United States Bureau of Mines' specifications for approval of all of these devices ex cept the air-line and abrasive-blasting respirators. The
.American Standards Association and the Bureau of Mines are now preparing specifications for this complete list. The United States Navy and Army have further specifications for various types of equipment. The purpose of all such specifications-- certainly those of the Bureau of Mines--is to insure a product adequate for the protection needed, without putting undue re straint upon the respirator manufacturer's ingenuicy.
Care of Respirators. Because of chcir special construction and the composition of the chemical ingredients of various of these devices, their deterioration is fairly rapid. Companies like the utilities using them in considerable quantity maintain a regular repair service which sees that all equipment is inspected regularly and all is in first-class condition before being reissued. Generally, the firms which sell respirators furnish reliable direc tions for storing, cleaning, sterilizing, and repairing all equip ment.
In conclusion the author wishes to make clear that equipment of the type described in this paper ages rapidly--today's new models will appear oa tomorrow's museum shelves. The Bu reau of Mines' approval, desirable as it is, does not cell the pur
chaser which is the best equipment but merely insures him th
the approved article is what might be called "first-grade
Testing these devices is a service offered by the Bureau for r!
help of industry and it is to industry's advantage co paeroni
this service.
REFERENCES
1 "Respiratory Protective Devices," by C. E. Brown and W. Yant, Trans. National Safety Council, 1935, p. 135.
2 "Procedure for Establishing a List of Permissible Self-Concainr Oxygen-Breathing Apparatus," U. S. Bureau of Mines, Schedule IV Jan. 21, 1930.
3 "Procedure for Testing Hose Masks for Permissibility," U. ; Bureau of Mines, Schedule of April 28, 1927, and supplement of Augu 20, 1934.
4 "Sand and Metallic Abrasive Blasting as an Industrial Healt Hazard," by J. J. Bloomfield and L. Greenburg, Journal Industrial H pent, vol. 15, 1933, p- 184.
5 "Procedure for Testing Gas Masks for Permissibility," U. S. Bt reau of Mines, Schedule 14D of May 9, 1935.
6 U. S. Patent 1,586,327. 7 U. S. Patent 1,559,980. 3 "The Removal of Carbon Monoxide From Air," by A. B. Lamfc W. C. Bray, and J. C. W. Frazes, Journal, Indsutrial and Engmrrtng dm istrj, vol. 12, 1920, p. 213. See also U. S. Pat. 1,345,323. 9 "Procedure for Testing Filter-Type Dust, Fume, and Mist Respin tors for Permissibility," U. S. Bureau of Mines, Schedule 21 of Augus 20, 1934. 10 U. S. Patents 1,798,164; 1,814,190; 1,818,155.
no. 10 dust issfulatoe to* use against dusts such as zinc oxide, cocoa, tloue, and soda ash (Courtesy Willson Products, Inc., Reading, Pa.)
REVENTION of dust inhalation by the wear
P ing of cloths, handkerchiefs, and the like over the nose and [mouth was practiced in Agri
Uses
cola's time. Such devices, crude as they were,
and
Limitations
reduced the discomforts of breathing smoky or dusty air. Although the medieval metallurgists lacked our chemical and medical names for their
of
RESPIRATORY
respiratory hazards, they understood the physio logic effects of carbon monoxide, and Agricola's remarks about silicosis among the Carpathian miners showed that this disease was well known.
The invention of the diving suit by Siebe early in the nineteenth century demonstrated that it was perfectly practicable for a man to breathe air
Protective EQUIPMENT
By PHILIP DRINKER
blown to him through a hose connected to a
SCHOOL OF PUBLIC HEALTH, HARVARD UNIVERSITT, BOSTON, MASS.
blower some distance away. The modem hose
mask and the simpler air-line respirators remind one of Siebe's original equipment.
It was not until the close of the World War, however, that industry in general began to appreciate the industrial possibili ties of gas masks, dust respirators, and other respiratory protec
must not be too heavy--all of these items being subject to cer tain latitude.
The amount of air breathed and che orygen consumed by che average healthy 150-lb man is given in Table 1.
tive equipment. In 1911 the U. S. Bureau of Mines began issu ing literature on oxygen-breathing apparatus, but it was not until 1919 chat the systematic development of modem respira tory protective equipment began.
A respirator is a device for rendering inhaled air respirable. In recent years the word has been applied especially to devices for protection against dust inhalation, but the broader use of the term is preferable. Brown (l)1 has suggested che following classification of respirators:
I Supplied-air respirators
TABLE 1 AIR. BREATHED AND OXYGEN CONSUMED
(After Henderson and Haggard)
Rest in bed, fasting........... Sitting.................................. Standing.............................. Walking, 2 mph................. Walking, 4 mph................. Slow run.............................. Maximum exertion............
Oxygen consumption, liters per min
0.240 0.300 0.360 0.650 1.200 2.000
Air breathed, liters per min
6 7 8 14 26 43 65-100
A Self-contained type 1 Oxygen breathing apparatus
B Hose type 1 Hose mask 2 Air-line respiracor 3 Abrasive-blasting respirator
II Air-purifying respirators
A Chemical-filter respirator 1 Acid-gas, or type A 2 Organic-vapor, or type B 3 Ammonia, or type C 4 Carbon monoxide, or type D 5 Combinations of 1, 2, 3, and 4
B Mechanical-filter respirator 1 Dust, or type A 2 Fume, or type B 3 Mist, or type C 4 Combinations of 1, 2, and 3
C Chemical- and mechanical-filter respirator 1 All combinations of A and B above (Group II)
general requirements
It was decided in the gas-mask studies carried out during the War that 85 liters per minute represented the maximum amount of air likely to pass through a mask at either inspiration or expiration. Of course no one but the exceptional person, such as a long-distance runner, breathes at 85 1pm for more chan a few moments, but half that rate, or 42.5 1pm, is not unusual. Since one inspires approximately one-half the time and expires the other half, the actual minute volume breathed should be doubled,* hence the figure of 85 1pm; and i,t is this figure which is commonly used in measuring resistance. Measure ment is made with the aid of simple set-up illus trated in Fig. 1 precisely as one measures pressure differences in air duns or in chimneys. The muscles which raise and lower the chest in res piration are not strong and easily become tired if overworked. Any seri ous impediment to inspi
There are several important considerations applicable to all respiratory protective equipment: First, the device must not offer an annoying resistance either to inspiration or expira tion; secondly, it must afford a definite degree of protection under well-defined conditions; thirdly, it must be reasonably comfortable, it must not interfere unduly with vision, and it
i Numbers in parentheses refer to similarly numbered items in the bibliography at the end of this paper.
Contributed by the Safety Committee and presented at a session on Occupational Diseases at the Annual Meeting, New York, N. Y., Dec. 2-6, 1935, of The American Socurr of Mechanical Enqinesxi.
ration is fatiguing and causes a building up of excessive carbon dioxide in the blood, a desire to breathe rapidly, and a degree of discomfort which quickly may be come so distressing as to
FIG. 1 ARRANGEMENT FOR TESTING
THE RESISTANCE TO AIR FLOW OF
VARIOUS FORMS OF RESPIRATORS
(R respirator, M -- water manome ter, F -- flow meter with capacity of
85 liters per minute.)
* Actually the respiratory cycle is usually irregular, but for mask testing it is permissible to consider it symmetrical and to ignore the pause at full inspiration or expiration.
171 PLAINTIFF'S EXHIBIT
ASM- 11
172
Mechanical Engineer!
cause che inexperi enced wearer of a mask to take ic off. It is
pcrienced airplane pilots use oxygen-breathing equipment v; ing from a simple arrangement for giving che piloc an occasic breach of oxygen to complete equipment which must be w
not difficult to train oneself, to breathe against rather high resistances but this
continually. Ac sea-level pressures, chere is no limic to gas concentration against which an oxygen-breathing eqc ment protects, although it obviously cannot protect che wes against gases, like hydrocyanic acid, which are absori
training requires the through the skin.
incentive of extreme hazards or the disci pline possible in war.
Hast Mask. In Fig. 3 is shown a hose mask with che wea carrying out a cask for which the device is particularly suit Here the air hose must be strong enough to be used as a 1
It is not a practical line in emergencies, must be impermeable co oils, gasoline, a peace-time expedient water, and must not collapse under heavy weight. Air is si
and should not be plied by a hand-operated blower.
necessary. For gas
As in the case of oxygen-breathing apparatus, there is
masks the Bureau of limit to che atmospheres in which hose masks give safe pron Mines now allows an cion, saving possible harm through skin absorption. T
inspiratory resistance hose must be of sufficient diameter co let che wearer breache
case che operator of the pump should have to stop for a sho
expiration
interval. It is found chat a safe minimum hose diameter
In dust
Vs in. It is impracticable to pump air by hand through lor
the lengths of hose and difficult to breathe through more than 1;
ule permits
ft should the air supply be cut off. Therefore, the device
inspiration
definitely limited co use in places where the blower can 1 placed within 150 ft of the wearer.
to expiration, tests
The Bureau of Mines requires chat the exhalation valve c
being made
the che face piece shall noc have a resistance at 85 1pm of moi
completion of filter- chan 1.5 in. Because of the danger of the hand-driven blower
ing-efficiency tests and stopping occasionally, che inspiratory resistance through ti
no. 2 halp-souk oxtobn-brsathino
APPARATUS---- APPROVES BT THE BUREAU
OP MINES (2)
(Courtesy Mine Safety Appliances, Pittsburgh, Pa.)
not simply when the device is new. These resistances should be lowered from time to time as general im provements in indus
blower, the hose, and face piece should noc exceed 2.5 in. It has been found safe for men to enter empty tank car
shallow manholes, and the like with hose masks without blow ers. The wearer then breathes through a gas-proof hose art is safe as long as the inspiratory resistance of che hose is loi and the inlet of the hose remains in dean air. Such an arrange
trial, respiracors warrant more severe specifications, for it will ment does not dispense with the need of a strong hose whici
be found that even 2-in. resistance at 85 1pm is unpleasant for can serve as a life line in the event of some mishap to the weare
long periods.
Oxjgtn-Brtathing Apparatus. After a fire or
explosion such as occurs in mines, rescue work
must be quick, and the rescuers must enter at
mospheres of unknown composition. Often
an added difficulty is dense smoke through
which the visibility is poor. Rarely is there
any chance for the use of hose-type equipment.
In spite of such obstacles there are numerous
records of rescues made by men wearing self-
contained apparatus for which che wearer car
ried his own oxygen supply.
A modem oxygen-breathing outfit is shown in
Fig. 2. Oxygen is carried in a small steel
bottle which leads through a special reducing
valve to che breathing bag and then to the
face piece. Since an average man engaged in
fairly heavy exercise needs 2 to 3 liters of oxygen
per minute, the exhaled air of the wearer of
oxygen-breathing apparatus must be purified
and re-used. Otherwise the man would be able
to carry only a few minutes' oxygen supply.
The regenerating and purifying device con
sists essentially of a container or cartridge of
a suitable carbon-dioxide absorber such as soda lime (Na,OCaO). The oxygen consumed is
then made up by the addition of oxygen from
the breathing tank.
no. 3 HOSB-MASX EQUIPMENT---- APPROVED BT BUREAU OP MINES (3)
At altitudes in excess of about 15,000 ft ex-
(Courtesy Davis Emergency Equipment Company, Inc., New York, N. Y.)
March, 1936
173
of che mask, nor should ic dispense with an observer outside the zone of danger.
Air-Line Respirators. The positive-pressure respirator, Fig. 4, worn in such jobs as paint spraying, is an ouegrowth or simpli fication of the hose mask. It is adapted to all work in which there is no severe hazard to the wearer should he remove the device momentarily. That is, ir should not be used in danger ous atmospheres to which the hose mask or the oxygen-breath ing apparatus is especially suited. Air-line respirators arc much less expensive than hose masks, the air line may be of small bore compressed-air hose, and no life line is needed. If the air supply is cut off, the wearer simply removes his mask and moves out of the polluted air.
In general, air-line respirators can be worn for long periods, as they are light and there is little discomfort to the wearer. As yet there are no specifications for these respirators, but their effectiveness can be judged satisfactorily by requiring the wearer to spray an emulsion of black pigment in water, and after some 15 or 20 minutes' typical spraying work, comparing his nasal discharge and sputum with specimens taken before spraying.
Abrasive-Blasting Respirators. One of the severest dust haz ards is abrasive blasting of sandy castings with sand as the abrasive cleaner. Of less danger is blasting with steel shot, but neither process should be permitted unless the blaster wears a respirator of the general type shown in Fig. 5- The device must protect the workman against flying particles and should be supplied with air at sufficient pressure and volume to insure a slight but constant positive pressure at the nose and mouth.
HO. 4 All-LINS SSSPISATO* (Courtesy Willson Products, Inc., Reading, Pa.)
Unfortunately, abra
sive blasters are of
ten the least intelli
gent workmen in the
plant. It is not at all
uncommon to see the
blaster finish a job,
open the doors of the
blasting chamber, take
off his helmet and
then blow the loose
material off the cast
ings, thus making it
certain that he will
breathe dusthe should
avoid and that his
helmet and his own
head are well bathed
in dust. Obviously,
he will breath this
dust when he puts on
his helmet again.
Respirators suitable
for this work can be
made in various forms.
The essential specifi
cation is that the
wearer receives air
substantially as clean
as that from the com
pressed-air line. Tests
demonstrating this no. 5 A3IAS1VB-BLAS1INO RBSPULiTO*
fact should be made (Courtesy W. W. Sly Manufacturing Com
under practical blast
pany, Cleveland, Ohio.)
ing conditions--tests
such as that suggested for air-line respirators are quick and
will eliminate many poor abrasive-blasting respirators, but
final acceptance of a blasting respirator should rest upon a
practical demonstration in which the air within the device is
sampled and compared with that from the air line.
It was suggested by Bloomfield and Grecnburg (4) that air
flows of at least 6 cfm per helmet were required but it is now
recognized generally that less than 6 cfm often suffices. How
ever, inestimating air flows to be supplied to blasting respirators
at least 6 cfm per man should be allowed. No harm results
from using too much air within the helmet while too little
may result in negative pressures during inspiration. One can
notice momentary pressure drops by the sensation on the ear
drums, and the wearer should be taught to turn on enough air
so that he can not notice this change even on taking a deep
breath.
Air Purifiers. In most mines and in most dusty plants com
pressed air is available, but is apt to be wet and smell objection
ably of oil. Also it may be unpleasantly cold when expanded
directly into a respirator.
It is not difficult to clean, dry, and warm compressed air so
that it is suitable for breathing. Various expedients can be
adopted, one of which is shown in Fig. 6.
Plants having no compressed air would do well either to in
stall compressors in which the intake air has no contact with
oil or else co use a rotary compressor capable of delivering air
at a pressure of 10 to 20 lb per sq in. Obviously, the air sup
plied should be free from harmful dusts. Accidents in which
the intake of oil-lubricated compressors has been contaminated
with the exhaust gas from gasoline-driven moron or in which
some of che lubricating oil has been converted into carbon
9%4 :
ik 174
Mechanical Engineering
monoxide are much more common than is generally supposed.
Chtmical-Ftlttt Rtspttasors or Gas Masks. The Bureau of
Mines has detailed specifications for the construction and per
formance of gas masks which protect against any gas or against
v. any combination of gases. In Fig. 7 is shown a so-called "all
Jr
service mask" which protects against any combination of gases as well as against smokes and dusts.
In general the most important ingredient in gas-mask can
isters is activated carbon, about 8-14 mesh in size. Carbon of
high adsorpeive capacity is now obtainable and is controlled
by exacting specifications. It is effective against dilute con
centrations of such organic gases and vapors as gasoline, and
has an appreciable effect against organic acids such as formic
or acetic. Furthermore, a mask approved against mercury
vapor contains charcoal as the essential air purifier.
Of next importance is an alkaline absorbent such as soda
lime, which reacts with acid gases such as catbon dioxide,
sulphur dioxide, and hydrogen sulphide. Ammonia can be
caught by silica gel (6) and by the special reagent, cupramite,
which is activated carbon or pumice impregnated with copper
sulphate (7). Carbon monoxide is not directly absorbed by any
reagent but is converted by a special catalyst, hopcalite (8),
into carbon dioxide and chat in turn is caught in soda lime.
One of the important difficulties in carbon-monoxide adsorption
is dissipation of the heat generated when the carbon monoxide
is oxidized to the dioxide. This heat loss is realized by passing
the oxidized gas through a special radiator on top of the can
ister.
In general, gas masks will not protect against concentrations
exceeding 2 to 3 per cent of the inspired air and of course they
will not make up for oxygen deficiency. Their life lasts only
as long as the ingredients of the canister retain their required efficiency. Some masks, such as that shown in Fig. 7, are ob no. 7 ALL-SERVICB MAJX--APPROVED ST BUREAU OP MINES (5)
tainable with timing devices which are actuated by the wear
(Courtesy Mine Safety Appliances Company, Pittsburgh, Pa.)
er's respiration and thus show when the canister should be re
newed.
Chtmical-Camtdgt Rtspirarors. There are many jobs in which
some protection against gases is welcome but the lack of such
protection does not involve a serious risk. In Fig. 8 is shown
a cartridge-type respirator which is used for protection against
low concentrations of such gases as gasoline and sulphur dioxide,
and in certain paint-spray jobs.
Obviously, such a device is cheaper titan an air-line respirator
or gas mask and attracts purchasers accordingly. It is not a
substitute for either of these devices and should never be used
for protection against severe hazards. In its favor are its extreme
simplicity and the readiness with which expended cartridges
can be renewed.
Mnhanual-Filstr or Dust Respirators. These devices are intended
to protect only against particulate matter and are not to be used
against gases. As the result of the formulation by the Bureau
of Mines of an approval schedule (9), dust respirators have been
improved greatly and now are available in efficient forms with
low resistance to breathing, Fig. 9.
Dust respirators, unlike the filters of commercial dust col
lectors, must be highly efficient at the outset--they cannoc rely
upon usage or dusting to plug the pores of the filter substance
and thus improve che dust catching. It is not an easy matter to
catch such substances as finely divided lead fume or fine quartz
dust and still have a device through which the untrained wearer
can breathe with reasonable comfort.
In general the filter materials now in use in the approved res
pirators are of wool felt ot of specially impregnated paper (10)
or various combinations of the two. Air velocities through
no. 6 AIR-PLTU7IBX
che fresh filters are about 20 fpm compared to 2 to 6 fpm used in commercial filter cloths for dust collection. It is generally
(Courtesy E. D. Bullard Co., San Francisco, Calif.)
recognized in practical respirator manufacture chat thin filter
March, 1936
175
than to supply approved devices which remain in the stock room or are worn only in the presence of superiors.
DISCUSSION
It can be said of all the mechanical-filter-type or dust respira tors that they are a poor substitute for dust control. Ulti mately it is not an economy to supply workmen with air-line respirators or with dust respirators instead of installing the proper dust-control equipment. Further, the time is not far off when the courts and compensation boards will make short shrift of the employer who lets his men work in dense clouds of dust, regardless of what the dust is.
In general the employer would do well to try some of the dusty jobs himself, wear the men's respirators, and thus decide whether or not it would be better to install dust control in stead of respirators. However, dust respirators are centuries old; they have a legitimate place in industry, and are an im portant aid in the prevention of dust inhalation, but they are not a substitute for dust prevention and never should be used as such.
This sort of criticism does not apply with the same force to the other types of respirators. Oxygen-breathing apparatus, gas masks, and hose masks are all used in emergencies, usually resulting from accidents. Hose masks may be used routinely, but they are sold in single units while dust respirators are apt to be sold and used by the gross. Also, air-line respirators and abrasive-blasting respirators are often applicable to situations
no. 8 CHEMICAL-CARTRIDGE REAPIRATOR (Courtesy Willson Products, Inc., Reading, Pa.)
substances plug rapidly. If they are used in respirators, pro vision for frequent changes of filters is necessary. Thick filters of wool felt; on the other hand, plug slowly but are too ex pensive to discard and are cleaned by compressed air or by shaking.
There is every reason to believe that better filtering materials
will be made, and it is important to note that the Bureau of Mines' requirements permit the greatest latitude in the selec tion and manufacture of the filters. It is probable that the Bureau's resistance requirements, which are now more severe than those for gas masks, will be made still more severe in the future.
Nmapptwtd Dust Rtspiratars. There are many dusty job* for which less effective dust respirators are suited. The Bureau's stamp of approval has in the eyes of many an unwarranted legal significance which has yet to be upheld in court. Some firms, driven panicky by the present silicosis-dust racket, have even gone so far as to stock up with ``approved" respirators so that they might be able to show they have on hand the best respira tors made in case they find themselves defending a dust-com pensation lawsuit.
There is not the slightest reason to use the best respirators against flour, cocoa, limestone, cement, and many other dusts. It is more to the workman's interest to give him a less elaborate device which may be less effective but which is also more com fortable, Fig. 10. Indeed, there are jobs with high quartzdust exposure in which ic would be much better to provide the
men with nonapproved respirators which the men would wear
no. 9
DUST RESPIRATOR POR USB AGAINST LEAD AND SIUCA DUST (8)--approved ar the bureau op mines
(Courtesy Willson Products, Inc., Reading, Pa.)
176 Mechanical Engineerin
in which the employer conscientiously his uken all reasonable precautions to prevent dustiness.
At the present writing there ire United Stites Burciu of Mines' specifications for approval of all of these devices ex cept the air-line and abrasive-blasting respirators. The
American Standards Association and the Bureau of Mines are now preparing specifications for this complete list. The United States Navy and Army have further specifications for various
types of equipment. The purpose of all such specifications-- certainly those of the Bureau of Mines--is to insure a product adequate for the protection needed, without putting undue re straint upon the respirator manufacturer's ingenuity.
Care of Respirators. Because of their special construction and the composition of the chemical ingredients of various of these devices, their deterioration is fairly rapid. Companies like the utilities using them in considerable quantity maintain a regular repair service which sees that all equipment is inspected regularly and all is in first-class condition before being reissued. Generally, the firms which sell respirators furnish reliable direc tions for storing, cleaning, sterilizing, and repairing all equip
ment. In conclusion the author wishes to make clear that equipment
of the type described in this paper ages rapidly--today's new models will appear on tomorrow's museum shelves. The Bu reau of Mines' approval, desirable as it is, does not tell the pur
chaser which is the best equipment but merely insures him th the approved article is what might be called "firsc-grade Testing these devices is a service offered by the Bureau for ti help of industry and it is to industry's advantage to patroni this service.
REFERENCES
1 "Respiratory Protective Devices," by C. E. Brown and W. ; Yant, Trans. National Safety Council, 1935, p. 135.
2 "Procedure for Establishing a List of Permissible Seif-Containr Oxygen-Breathing Apparatus," U. S. Bureau of Mines, Schedule 13/ Jan. 21, 1930.
3 "Procedure for Testing Hose Masks for Permissibility," U. ; Bureau of Mines, Schedule of April 28, 1927, and supplement of Augtz 20, 1934.
4 "Sand and Metallic Abrasive Blasting as an Industrial Healt Hazard," by J. J. Bloomfield and L. Greenburg, Journal Industrial H yens, vol. 13, 1933, p. 184.
5 "Procedure for Testing Gas Masks for Permissibility," U. S. Bt reau of Mines, Schedule 14D of May 9, 1935.
6 U. S. Patent 1,586,327. 7 U. S. Patent 1,559,980. 8 "The Removal of Carbon Monoxide From Air," by A. B. Lami W. C. Bray, and J. C. W. Frazes, Journal, Industrial and Engineering Chen istry, vol. 12, 1920, p. 213. See also U. S. Pat. 1,345,323. 9 "Procedure for Testing Filter-Type Dust, Fume, and Mist Respin tors for Permissibility," U. S. Bureau of Mines, Schedule 21 of Augus 20, 1934. 10 U. S. Patents 1,798,164; 1,814,190; 1,818,155.
no. 10 oust issputATO* roa use against ousts such as zinc ones, cocoa, room, and soda ash (Courtesy Willson Products, Inc., Reading, Pa.)