Document kDagQ9ZEe1OZvEpg8ydYRYgNV
CHU59RC0H0ILC
CABLE ADDRESS "MINSAF" PITTSBURGH
Mine Saf^tyAppHamc.
BRAD D O CK,TH O M AS AN D M EA D E S T R EET S
. July 20, 1959
Dr. Robert A. Kehoe College of Medicine University of Cincinnati Cincinnati, Ohio
Dear Dr. Kehoe:
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I am transmitting to you herewith^a brief report
on preventive measures from the viewpoint of the engineerv for
consideration of members of the American Public Health Associa
tion Committee on Lead Poisoning. You will note that rather
than repeat detailed methods, I have referred to sources of
such information since I do not believe that it is advisable
to burden the present report with a mass of specific data. I
trust that you have all the publications to which reference is
made but if you do not I will be pleased to loan you ny personal
copies.
In addition to the report on preventive measures
I had some of my friends in the automobile industrjr review the
report which the committee made to the American Public Health
Association in 1929 particularly the part on Standards of
Industrial Control. The reason for using the 1929 report rather
than the 1950 report is that the 1950 report does not contain
any information on engineering control. Yiile I do not agree .
with all the opinions expressed in these comments, I believe that
the}*- may be helpful if you desire to revise the standards con
tained in the report of the committee for 1929. Of course my
own brief report which I am enclosing is written in the same form
as the report which was contained in the American Public Health
Association Yearbook for 1950.
.'
' If there is anything further which I can do, do not hesitate to call on me.
The basic Methods and standards for prevention of lead '
ingestion and control were outlined in Part III of the Report of
Committee on Lead Poisoning in 1929. The progress which has been
accomplished in engineering control of lead poisoning since the
date of that report has been principally in application of the sug
gested standards to industries having a lead hazard. In reality,
very little has been done which is genuinely novel. Consequently,
it is not felt advisable, to reiterate in this report methods of
dust control which have been adequately described in other places
but rather to direct the reader to sources of such information.
*
However, the committee desires to call attention to a number of
reports containing detailed information on how inhalation or inges
tion of lead in various industries has been prevented in order to
emphasize the fact that lead poisoning can be controlled by ap
plication of available knowledge ana standards, and also to point
out some of the apparatus and methods which make it possible for
the engineer to secure quantitative information on the amount of
lead in the atmosphere.
The control of lead poisoning by engineering methods has
been reviewed in a recent publication with examples of actual
measures in various industries and occupations adopted to control
lead exposure (1). Another excellent resume of dust control
measures is contained in the national Silicosis Conference Report
on Engineering Control, United States Department of Labor, Division
(1) Load Poisoning in Industry and its Prevention, H e w York State Department of Labor Special Bulletin, Bo. 195 (1938)
of Labor Standards, Bulletin No. 21. Y/hile this report is con
cerned with control of silica dust, raost of the discussion is also
applicable to lead dust. Of course, it would not be pertinent to
control of lead fumes (such as smokes) and vapors of organo-lead
derivatives.
A number of publications are available on design and
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construction of exhaust systems (2) (S) (4) (5).
The effectiveness of control measures in a storage battery
plant is shown in a recent paper by G. A. Coburn (6). He indicates
that over a period of ten years no serious, cases of lead poisoning
have occurred in his plant. A sharp reduction in lead poisoning
in the pottery industry is reported by the Public Health Servicer,
owing to successful application of control measures (7). Y/hile
these reports seem to indicate that lead poisoning can be eliminated
in the same degree that control measures are instituted it must be
remembered that new and difficulty controlled hazards are continuall
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(2) :,Design of Industrial Exhaust Systems for Dust and Hume Removal,1' Lohn L. Alden, The Industrial Press (1959).
(5) Design of Exhaust Hoods. Air Hygiene foundation of America. Preventive Engineering Series Bulletin No. 2, Part 4.
(i) Design of Duct Work for Exhaust Systems, Air Hygiene foundation of America, Preventive Engineering Series, Bulletin No. 2, part 5
(5) Industrial Dust, Philip Drinker and Theodore Hatch, Hedraw Hill (1956).
(6) Control of Hygienic Exposures, G. A. Coburn, American Journal of Public Health, 29, 505 (1959).
(7) Silicosis and Lead Poisoning among Pottery ',/orkers, public nealcn Bulletin no* 244.
arising. Tor example the introduction oi` free machining steel al
loys conta-ining .2 percent lead offer a hazard of unknown extent .
especially the possibility of encountering lead fumes in welding and
metal burning operations.
.
Especial interest has been manifest in substitutes for
lead and in use of less soluble lead compounds, for example, intro
duction of fritted glazes containing-lead in the form of lead sili
cate in place of glazes containing more readily soluble lead com
pounds in the pottery industry (7). In the automobile industry the
use of lead-free putty in "putty glazing" and the use of lead free
solder 'or metal finishing have been reported (8). a T though lead
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paints are still widely used in the painting industry there is &
gradual acceptance of titanium dioxide and leaded zinc for general
use and of aluminum ana iron oxide for coating of metal surfaces (9).
To determine the amount of lead in the atmosphere the
engineer needs methods which will secure a representative sample of
air-borne lead .and accurate but rapid methods of chemical analysis.
Recently there have been a number of interesting developments in
equipment for collection of lead samples,'especially a small portable
electrostatic precipitator for lead fumes (10). This has been
particularly important since it has been demonstrated that the impinger
(B) The control of Lead in Duluxing and Metal finishing Operations, Grant L. Bird, Industrial Medicine, 7_, 510-515 (1938).
(9) Decent changes in the Painter's Trade, Bulletin Ho. 7, United States Department of Labor, Division of Labor Standards.
(10) in Blectrostatic Dust Y/eight Sampler, L. C. Barnes and G. 7/. Penney, "ournal of Industrial Hygiene and Toxicology, BO, 059-205 (1938).
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is inefficient for collection of lead furne^ (11). Also the United States Bureau of Hines has announced a
convenient form of inpinger suitable for collection of lead dust, (12) (15) and several investigators have reported improved methods for rapid analysis of lead (14) (15) (16).
Personal respiratory protective devices as a means of controlling lead exposure have made rapid progress in the past few years. -The Bureau of Hines approval schedule for dust fume and mist respirators was promulgated in August, 1954 (17). Since that time
(11) Efficiency of Inpingers for Collecting Lead Dusts and jfuxaes,
Bureau of lines Deport of Investigation 5401.
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(12) Bureau of Hines I.Iidget Inpinger for Dust Sampling, Bureau of
Hines Deport of Investigation 5560.
(15) Dust Sampling with the Bureau of Hines nidget Inpinger, Using
of H e w Hand Operated Pump. Bureau of Hines Deport of Investi
gations 5j o 7 .
(14) A Practical method for the Rapid Determination of Lead 7/hen
Pound in the Atmosphere, G. 0. Harold, S. ?. Ileek, and f. R.
Holden, Journal of Industrial Hygiene and Toxicology 18, 724-732
(15) Dithizone methods for the Determination of Lead, P. n. Clifford
and H. ~. Uickmann, J. assn. Off. Agr. Chen. February 1936.
H P . 13 0 -- 15 6.
(16) Determination of Lead in the mir, Air hygiene foundation of
America, Preventive Engineering Series , Bulletin Ho. 2, Part 6. (17) Procedure for Testing filter Type Dust , fume, and Hist Respira-
tors for Permissibility, United States Bureau of Lines Approval Schedule ITo. 21.
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the requirements of the Bureau of Hines have been adopted by the American Standards association (18). A number of filter type res pirators have been approved by the Bureau of Hines for protection against mechanically generated lead dust and one approval has been issued for a lead fume respirator. By this Bureau of lines approval system a consumer can be assured that respirators he buys will conform to certain minimum requirements that are considered essential for protecting the health of the worker.
(18) American Standard Safety Code for the Protection of Heads, Byes, and Aespiratory Organs, national Bureau of standards Handbook, 11-24.
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