Document M486j804ovwE074dM8G458YLL
A SOT OP THE HAZARDS ASSOCIATED T7ITH THE SALE Al'TD DISTRIBUTION OF ETHYL GASOLINE
By Robert A./Kehoe, ^M.D* and Graham Edgar^
I Preliminary Discussion 1. The Source of Information
An investigation of the possible hazards arising by reason of the sale and distribution of Ethyl Gasoline is obviously made most readily and adequately through the observation of human beings who have been exposed to the conditions under which the hazards may arise, for a long period of time. The hazards have been maximal, not in the streets, nor in the ordinary filling stations where Ethyl Gasoline has been dispensed, but, rather in certain garages, where me chanics, car fillers, and drivers, taken collectively, have been exposed to all the hazards which have existed. For obvious reasons, the exposure to exhaust gas has been greater in the partially clos&d space of the garages. Likewise the inhalation of vapor of gasoline in the courts of ordinary handling, and after spillage, reaches its maximum in such garages. Of the group of men who have been exposed, the garage mechanics have probably had the best opportunity for receiving injury, inasmuch as their varied work allows of a more frequent and more prolonged
(^Assistant Professor of Physiology, University of Cincinnati, Cincinnati, Ohio, (^Director of Research, Ethyl Gasoline Corporation, Dayton, Ohio.
Note:
The writers beg to express their appreciation of the assistance of numerous individuals in connection with different phases of the investigation. Mr. Lester Saunders, of the University of Cincinnati; assisted with the clinical work. The analytical work was carried out by Mr. Fred Thamann, who was largely responsible for perfecting the method of analysis,*and by Hr. D.M. Philippi. Other members of the staff of the Ethyl Gasoline Corporation assisted the work in many ways. The officials of. the Dayton Power and Light Company did everything in their power to facilitate the investigation.
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exposure to all of the hasards, than that of any other group of "workmen* The
C above facts lead one to the conclusion that a proper investigation of the problem
would be made best by studying a considerable number of mechanics, car fillers, and drivers, in some garage in which a large number of cars, all of which bum Ethyl Gasoline, have been in continual use for a long time*
2. The Type of Information. The information to be sought, in the study of such a group of men,
should be obtained by the determination of all variations from normal health, including those which are specifically due to lead poisoning, or are commonly associated with it, as well as other less definite, recognizable abnormalities, which might be produced by any injurious agent. The importance of the latter resides in the fact that there are few, if any, abnormalities which may be said to be produced by lead poisoning alone> while there are a great number and variety of injuries which may be brought about by general poisons, including lead. Information in the matter should be obtained by careful questioning, of each subject as to the exact nature and period of his exposure to lead in any form, as to any previous or present exposure to other poisons, and as to any previous or present illness or symptom. The subject should be given a very careful ex amination, by methods, which will determine as nearly as possible, the exact , status of his present health. The question of lead absorption should be investigated by the examination of adequate quantities of the excreta.
3* The Interpretation of Information* Since there are always variations from tho normal of perfect health in
any considerable number of men, it is absolutely necessary to collect data from a group of men who have had no opportunity for exposure to the hazards, the effects of which aro being studied. These should be collected in the same manner, and by
#6 0008322
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the same persons who examine the exposed group. Also, since there is no considerQ able body of data concerning the quantity of lead which may be excreted by persons
who have not been exposed to the hazards under study, it is necessary to obtain such data. The same method of analysis must be employed in the study of the ex creta of exposed and unexposad groups, in order to control the variation in the sensitivity of the various methods of lead analysis, and thus Obtain comparable results.
II Methods of Procedure. 1. Subjects for Observation.
The garage of the Dayton Power and Light Company of Dayton, Ohio Was cho sen as the site for observations on exposed men. In this garage Ethyl Gasoline has been used in all the cars and trucks, about 80 in number, since the first distribu tion of Ethyl Gasoline began in April, 1923.. The garage is a well lighted, average well ventilated, concrete garage, the floor of which is cleansed by means of running water, at infrequent intervals. There are five mechanics, two car fillers and a large number of drivers. The drivers do no filling or repair work. The labor turn over, is very slight, indeed, so that practically all the employees have been under exposure during the entire period in which Ethyl Gasoline has been used. Several Of the subjects (nted in data) under study have been exposed to Concentrated Ethyl Flu id, during a portion of the time, by reason of the early method of distribution in r small containers, so that these have had much more exposure to lead than is normal under present conditions of distribution. Ho unusual precautions of any kind are taken against lead absorption. In fact there is no fear in the mind of management or employees, of any danger from this source. Cars are coming and going during the entire day and some at night. All types of repair work except especially difficult items, are performed by the mechanics. All cars are filled with Ethyl Gasoline in side the garage, by means of portable filling tanks and pumps. Spillage of gasoline Kg 000833-a
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bn the floor may "be seen by any casual observer from tine to tine. TThen this occurs the gasoline is wiped up with a cloth by a bare-handed operator, who usually washes neither the cloth nor his hands thereafter.
Control subjects were obtained by going to Coluabus, Ohio, a city in which Ethyl Gasoline had never been distributed at the tine of the investigation, jin atteapt was nade to find a garage siailar to that of the Dayton Ppwer and light Coapany. Since that was found to be iapossible, an arrangement was nade with an employment agency for obtaining white men of all types, just as they appeared at the agency. They were employed by the day and released at night during the period of the observations. -Among these were farmers, common laborers, skilled workmen, sailors, chauffeurs, and clerks. Most of them were in youthful or middle life.
2. Type of Data Obtained. All subjects were questioned carefully as to their occupation over a pe
riod of not less than five years previously, with special reference to exposure to any type of lead. Exposed men were asked as to the details of their daily work during the time of their exposure. Control subjects were asked leading questions as to their having been employed in industries knowi to involve contact with lead, A list of industries known to use lead to a greater or less extent was prepared and used in such questioning.- When the appended data show that a given subject has no history of exposure to iead, it is to be remembered that every effort was made to discover some possible source of lead exposure, in --his case.
A history of previous illnesses was recorded for every subject, in order to note any relationships which might exist between such illness and present health. At the same time careful questions sought out the presence of any present symptoms of illness.
A physical examination was made by an examiner (Dr. Kehoe examined all
K 0008324
I -5-
subjects) who had no knowledge of the contents of the history* In every case an analysis of the urine, the determination of the haemoglobin of the blood, and a microscopic examination of a stained blood smear were made, in order to determine the presence of abnormalities*
Appended hereto are typical histories and reports of examination of one control and one exposed subject, upon the blanks used in the investigation.
Each subject was furnished with a pint size Mason fruit jar, and a gallon size glass bottle such a3 is used for vinegar, molasses, etc. The contain ers were chemically clean and were kept tightly closed. The subject was carefully instructed to put the excreta directly into the container, and under no conditions to use any intermediate container* The specimens -of the exposed men were obtained under the supervision of the foreman. Those at Columbus were obtained in a room rented for the purpose, during the course of two or three eight hour days. The containers were not permitted to leave the room, but they and the subjects were kept under observation during the periods of collection. Close observation an^ rigid discipline were necessary in this group to prevent deception, errors, and practical jokes, which might result in loss or mixture of specimens. One or two incidents occurred which necessitated the omission of the specimen obtained, from examination. (One man was found to be adding water from a bottle which he carried with him.) In the case of each subject a fair siz^d specimen of faeces, and one to three liters of urine ware obtained. Diuretics and cathartics were not used*
The containers, which had been labeled previous to their use, with tho name of the subject, and a number assigned to him by the examiner, were turned over to the analytical laboratory. The subjects were all unknown to the analysts, whose only information consisted of a name and a number on the container.
tfE "0&0892CL,
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III Data. The mass of data obtained in the histories and in the examination of the two groups of men is too unwieldy for full presentation. The tables below indicate the frequency of occurrence of certain variations from the normal in the two groups, from which comparison may be made of the two groups* The analytical findings are tabulated opposite the history of employment and exposure, where their significance may be adjudged to the extent to which that is possible. In Tables II, III, and.IV, the expression"Q,uestionable lead line" is apparently not a happily chosen one* It refers, however, to a bluish color of the gums, adjoining the teeth, which is seen frequently in pyorrhoea^ but which, when there is a history of lead exposure, may sometimes be thought to be significanti It is sometimes, quite difficult to de termine the presenoe or absence of the bluish or black precipitate which is formed in the gum margin when lead or any other metal which gives a black sulphide is be ing secreted. For that reason, the examiner made note of every bluish discolora tion of the gums, even whore he was Certain that it was the result of circulatory abnormalities in the gum margin, and labeled it as questionable, or as simulating to some degree a ."lead line". It is hardly proper to make comparison of the analytical data until it is reduced to some standard. The specimens of faeces and urine are not only dif ferent in volume and weight, but they represent varying periods of time of secre tion. It is not possible to collect specimens without these variations. It has been considered advisable on this account to make calculations of the lead on the basis of unit weights of faeces, and unit volumes of urine. Table V and VI show the results of such calculations for both groups of subjects.
0008327
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C Ho. 14
Name
Employment for past 5 years:
HISTORY Date
May . 8th
Age 22
Dayton Power and Light Co. entire time Filling cars with gas and- oil up to Can., 1925. Rough repair work since,, fender work, steering gear repair. Has torn down motors.
Period of handling Ethyl fluid: Exposure at intervals for more than year. Period of handling Ethylized Gasoline: Exposure at times for year or more. Period of handling'both:
Hature of exposure: Spilled fluid and gasoline on hands at times (a) Exhaust gas: When testing motors. (b) Gasoline vapor: When testing cars, and checking up on gas. (c) Spillage of Ethyl Fluid: Several times. (d) Spillage of gasoline: Spilled in garage at times.
Previous Illness: Tonsilitis and common colds. Nothing more,
(a) Illness and disease in words of subject:
(b) Symptoms and duration: Common colds of short duration.
(c) Presumable diagnosis:
Symptoms of any type now present.
Eg. Periodic headache: None Susceptibility of colds their dusation: No. . Digestive disturbances: Never
Habits as to sleep: Sleeps very well
Dreaming: Has dreamed, at times for years, with nightmare
Appetite: Good always
Polyuria': No
Nocturia: No
Itching or burning of skin: No
Changes of weight: Has gained since 1923. 6 lbs.
Cramps:
Never
Weakness: No
Nervousness:No
Miscellaneous
KJc 0005328
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Ho.___ 14 Home
pat e May 8th
C General AppearanceHealthy and robustTemperature 98.8
NourishmentWell nourishedPulse 72
Blood pressure
120-70
Eyes - Reaction to Light
Normal
Extrinsic Muscles
O.K.
Vision
Good
Pathological Conditions
None
Accommodation
Normal
Nose - Atnormalities_______ Obstruction on left. Inilamations Acute rhinitis. Common coldi.
Mouth & Throat Irritated and red. ' TeethFairly good
Phorrhoea PresentCaries None Lead-Lino None Tonsils and Pharynx_____ Red especially around pillars.
Ears - AuditionGood
AbnormalitiesNone Ad enopathyNone SkinNormal
Chest (positive findings only)None
Abdomen____________Normal
Pelvis_____________ Normal
Extremities_______Normal _________________________
(Rofloxes
Normal
Central Norvous System (Tremor
Nono_______
(Abnormalities None
Urinalysis - Reaction to M.R._________ Aik, Albumin____________________ Neg. Sugar___ ___________________Neg. Ac et one ____________________Neg.
Blood
Hb. 95 DareSmears Normal
REMARKS:
No suggestion of any lead poisoniflg.
KE 0003319
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No. 23
Name
Employment for past 5 years:
HISTOBY
_Dats May 7th
Age 28
______________ teamster 2 years 1920-22
Truck driver 3 years, 1922-1925
Odd jobs at times, as oarpenterfs helper, digging for plumbing jobs.
No actual plumbing.
Period of handling EthylFluid______________None Period of handling EthylizedGasoline Hone Period of handling both_____________________ None Nature of exposure___________________________ None
(a) Exhaust gas________________________ (b) Gasoline vapor
(c) Spillage of Ethj'l Fluid (d) Spillage of gasoline
Previous illness
Measles as child. Influenza 1922
(a) Illness and disease in words of subject
Pleurisy after "flu11 for about one week. Pains
around heart at times for years. Catarrh since flu.
(b) Symptoms and duration____________________________
________Pains were sharpest in breathing.
(c) Presumable diagnosis Post influenzal pleurisy. Probably adhesions remaining.
Symptoms of any type now present
Eg. Periodic headache No___________________________________ _
Susceptibility of colds their duration Frequent colds \t Digestive disturbances Cramps in stomach several weeks 1923
Habits as to sleep Restless every night for 3-4 years
Dreaming Scary draams 2 X weekly
Appetite Good_____________ _________
Polyuria No
Nocturia At times. Not frequent_________________________ _
Itching or burning of skin None________________________
Changes of weight
Very slight for years
Cramps
In stomach after meals at times
WeaknessTired most of time__________________________
Nervousness At nights so as not to sleep well.
Miscellaneous
tfg
0008930
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Ho. 23
Name
General Appearance Healthy dark eyes and hair
nourishmentMediumPulse
72
Blood Pressure122-70
Date
May 7th
Temperature 97.8
Eyes - Reaction to lightNormalAccommodation normal Extrinsic Muscles~0.K. Vision___________________ Good_________________' Pathological Conditions Hone
,
Hose - Abnormalities Slight obstruction due to deflected septum, . InflamationsHone
Mouth & ThroatMucous membranes pale Teeth Fairly good_______________________________ Phorrhoea Present - slightCaries Hone Lead-line cn incisors Tonsils and Pharynx Red. Buried. Cryptic.;________________
Ears - Audition_____ Good Abnormalities______Hone______________________
Adenopathy Hone
Skin
Scattered acne lesions on back and face*
Chest (positive findings only)
Hone_____________
Abdomen________ Hone______________________________________ Pelvis__________Hone _________________ __________ _
Ext remit ie s____________ O.K.______________________
(Reflexss
Hormal
Central Hervous System (Tremor Hone
(Abnormalities 'None
Urinalysis - Reaction to M.R.______ Aik.______
Albumin_________________ Hog.______
Sugar
Heg.
Acetone
Net.
Blood
Hb
80
Smears
Typical above
REMARKS:_____ Blood smears show considerable numbers of polychronatophilic __________ Erythrocytes but no stippling._______________________ ______________ _
00 Go 3,
11 CABLE I SYMPTONS OP ILLNESS PRESENT III EXPOSED AMD BNEXPOSED MM
SYMPTON
Periodic Headache Susceptibility to colds Chronic Constipation Gastric Cramps
Insomnia Disturbing Dreams Poor Appetite Loss of Y/eight
Polyuria
Nocturia
Fatigue Nervous Irritability
Frequency of Occurrence
Exposed
Unexposed
22 subjects 64 subjects
1 18 1 16 Z 10
3 1 11 05 i1 5 01 05 03 04 05
2 11
percentage Occurrence
Exposed
Unexposed
4.5 28 4.5 25 9 15.6 4.5 17.a 0 7.8 4.5 7.8 0 1.6 0 7.8 0 4.7 0 6.2 0 7.8 4.5 1.6
1 This man has had occasional nightmare for years.
2 TUh.is man was a victim of shell-shock in the war. 3 This man has had ''dyspepsia1" for many years
HE 000S93X
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TABLE II HffSICAL VARIATIONS FROM THE NORMAL IN EXPOSED AND UNBXPOSED MEN
ABNORMALITY-
Frequency of Occurrence
Exposed
Unexposed
E2 Subjects 64 subjects
Percentage Occurrence Expo sed Unexposod
Subnormal Temperature Elevated Temperature Subnormal Bl. Pressure Elevatod 31. Pressure Fyorrhooa liveClaris Severe Gingivitis
3 4 6 E 13 6
S9 5
19 IE 47 43
13.6 18 E7
9 60 E7
45.3 7.8
30 18.6 73 67
Albuminuria 1 5
4.5 7.8
Glycosuria
01
Questionable
Lead Lino
3 15
Definite
Lead Lino
09
Polyehrom-
atolphilia
13
0 E9
0 4.5
1*6 23.4
3.2 4.7
Stippling
04
0 6.2
Under subnormal temperature overything undor 98 degrees is noted. Under Elevatod tonperaturo overything abova 98.8. Subnormal blood pressure refers to everything below 115 Systolic. Elevated bl&od pressure refers to everything above 140 Systolic. Under "Questionable load line" is listed every bluish discoloration of the guns which simulates in any way a lead lino. Such discolorations aro common in mouths which show considerable amounts of gum inflamma tion. A definitely recognisable load lino is something about which there is no question. The questionable ones aro noted because of tho aosiro to omit no lesion about which there could be ?.ny question. Polychronatophilia refers to a slight abnormality in the staining of red blood corpuscles, tho significance of which is unknown. Stippling is noted in any case in which a single stippled rod blood corpuscle may bo found in an entire smoar, after staining by a standard, well controlled nothod. In one case four stippled cells could bo found in 100 fields. In no othors was more than one found.
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K 0008937
- 15 -
Treatment of Samples
MEMOS OP AKftgSBS
(1) The samples of urine were -received by tho laboratory in gallon jugs of the
type used for water, fruit juicos, etc* Tho volume was measured and tho
samples made ammoniacal soon after they wore received. The details of an
alytical procedure are given below,
(2) The samples of faeces were received in pint fruit jars. They were trans
ferred to silica dishes and dried on a stoaa plate to ''apparent dryness". Ho
attonpt was made to bring then exactly to constant V7eight.
Urine: Preparation of Solution for Analysis
(3) The annoniacal urino, after standing for at least 12 hours, is filtered on
18 cm. folder filter paper, care being taken that all of the precipitate is
transferred to tho filter. Without being washed, tho filter paper is trans
ferred to a silica or porcolain dish, and after being dried on a steam plate,
is Ignited in an electric muffle furnace at a temperature not exceeding
600 degrees C. 7/hen tho organic natter has been completely destroyed, the
residue is treated as follows: The ash is moistened carefully with distil
led water, and 5 cc of cone. HCl is addod, together with onough water to make tho volume about 25 cc. Tho mixture is digested on a steam plate, and
is filtered into a 400 cc beaker, any residue being washed six tines alter
nately with hot 10$ H01, and hot water. The filtrate in the beaker should
contain all the load. The residue is usually insignificant, and in those
experiments fcavo boon disregarded.
Analysis of Solution
(4) Tho solution from (3) is neutralized by adding 25$ HaGH solution until a
faint turbidity porsists. If to# much sodium hydroxide is added,tho solution
should bo treated with hydrochloric acid again until it is perfectly clear and
sodium hydroxido again added until a faint turbidity appears* Oho solution is diluted
K 0008938
to 300 cc and after cooling, if necessary, is treated with hydrogen sulfied gas for one hour, and allowed to stand over night. The mixture is filtered on a 12.5 cm. Whatman Ho. 40 filter paper, any precipitate being tran?ferred to the paper by means of freshly prepared hydrogen eulfied water acidified with 1 cc. of cone. HC1 per liter.- The'paper and its contents are transferred to the beaker in which the sulfied precipitation was made. The sides of the beaker are washed down with 25 cc of warm (l-l) hydrochloric acid containing 10 drops of cone. HNO^. The mixture is digested with the acid until all sulfides have been dissolved and the paper is thoroughly white. The solution is diluted to 50 cc with hot water, . and is filtered, the residue being washed 15 times with hot water. To the filtrate, which should be about 200 cc add 4 drops of a solution of methyl red, make just alkaline with 25$ NaOH, then just acid with (1:2) hydrochloric acid, and add 1 cc of (1:2) hydrochloric acid in excess. Dilute to 300 cc and after cooling treat with hydrogen sulfied gas for one hour and allow to stand over night. The mixture is filtered on a 12.5 cen. lhatman Ho. 40 filter paper, the precipitate beingtmnsferred to the paper by means of freshly prepared hydrogen sulfied water containing 1 cc of cone. HC1 per liter. The beaker is washed carefully with this wash water and the filter is washed ten times.
The sulfides are dissolved from the paper with 10~20 cc of hot (1:1) nitric acid, the solution being caught in the beaker in whioh the precipitation was made. The paper is washed 15 times with hot water. The sides of the beaker, and the inside and outside of the tube from the hydrogen sulfied generator are washed with hot (is 1) nitric acid. The solution is evaporated to 5 cc diluted to 25 cc with hot wator, and filtered through a 7 cm filter paper into a 150 cc beaker. The beaker is carefully washed with hot wator and the filter paper is washed 15 times with hot water. The filtrate and washings are evaporated to 25 cc.
0008939
-17 -
and neutralized with 25$ NaOH, free from iron and aluminum, a slightly alkaline water solution of phenolphthalain being used as indicator. The solution is made faintly pink with alkali, the color is just discharged with 5$ acetic acid, and 2 cc of 5$ acetic acid is added in excess. The soluticn is brought to boiling and 1 cc of 1$ potassium chromate solution is added,. The mixture is placed on the steam bath for one hour, and is allowed to stand in a warm place over night. The mixture is then brought to boiling, filtered on a 7 cm. ashless filter paper, the beaker being washed carefully with hot water, and the filter paper being washed 15 times with hot water. Any residue is dissolved in 5 to 15 cc of cold (1:2) hydrochloric acid, the paper being washed at once with cold water, the solu tion and washings being caught in the beaker in which the chromate precipitation was made. The sides of the beaker and the stirring rod are washed with cold (1:2) hydrochloric acid. Colorimetric Estimation of Lead (5) A standard solution of lead (1 cc = 0.10 mg. lead) is mads by dissolving0.1560 grams of pure lead chromate in 200 cc of 10$ HC1 and diluting to one liter. This solution may be checked colorimetrically against standard potassium chromate solu tion. A one per cent solution of C.P. s-diphenyl carbazide in glacial acetic acid
/ is used as reagent.
For the analysis an aliquot portion of the solution of lead chromate obtained from (4) is taken, which should contain not more than 0.40 to 0.50 mg. of lead, the best results being obtained with about 0.20 mg.
The sample is diluted to about 100 cc in a Kessler tube, and an equal volume of water put in another Nessler tube. 2 cc of diphenylcarbazide reagent is added to each tube. From the color which develops in the first tube a rough visual estimate is made of the quantity of lead present and an amount of standard lead
0008940
chromate slightly smaller than this is added to the blank tube. The colors of the two solutions are compared, and standard lead chromate is added drop by drop to the standard tube until an exaot match is obtained* Fecos (6) The sample of dried leoes is ashed in a silica dish in an electric muffle at 500C-600C. When the organic matter is apparently destroyed the residue is moistened with water, acidified with HC1, and digested on the steam plate for some. time. Tho mixture is then filtered, the residue washed with hot dilute KG1 and hot water, and -the filter paper and its contents returned to tho silica dish in which the original ashing was done. After being dried on the steam plate the dish and its contents are returned to the furnace and ashed again at 500C-600C. The residue is treated with water and HC1 as before, and after being digested on the steam plate, is filtered, the filtrate being added to the first filtrate. The I'osiduo may contain traces of lead, and may be reashed and brought into solution with HF, and added to the main solution. The lead in the residue is, however, always in our experience a very small fraction of the total lead present, and it seemed justifiable to neglect it in this particular case.
(7) The solution obtained from (6) is diluted and neutralised with 25$ NaOh, ex actly as described in (4) above. The remainder of tho analysis is exactly like that described under (4) and (5), except that the second hydrogen sulfido precipitation is repeated, the third precipitation being made exactly as the second is mado. The precipitation as chromate and the colorimetric estima tion are made just as in (4) and (5). Notes
(a) Peagents and Apparatus Lead free reagents were employed throughout. It is possible to purchase them in the market, but they must be oarefully tested for lead.
K& 00081341
- 19
(b) Pyrex glass beakers, flasks, wash bottles, etc. were employed throughout. Soda glass funnels wore employed. The dishes used for ashing the feces were 400 cc opaque silica; those used for ashing the urines were of opac-ue silica or porce lain,
(c) General The ordinary technique of good analytical work must be observed most scrupu
lously if satisfactory results are to be obtained in analyzing organic material for snail quantities of lead. Precautions as to the cleanness of the labora tory and of the apparatus are essential. In the present case no other work than the analyses 'in question Was carried out in the laboratory employed7for all work but the preparation of the samples. (d) (I) It has apparently been shown that ammonia precipitates practically all of
the lead from urine as lead phosphate, which is carried down with the other alkaline earth phosphates. The procedure is so much more convenient than that involving the evaporation of the urine, that it was employed throughout. If it is in er*ror at all it is in the direction of giving slightly low results. Ref. Dr. L.T. Fairhall, J. Biol. Chem. (60) 485-8 (1924). As little as .05 mg, of lead in 3500 cc of urine can be detected. (o) (4) The exact details of the analysis are those decided upon after a careful study in this laboratory, and after a careful investigation of the litera ture. The essential features (with the exception of the colorimetric method) are those of Dr. L.T. Fairhall (J. Ind. Hyg. (4) 9-20 (1922), but the exact conditions have been modified in several respects which have given more satisfactory results than the original Fairhall method. Numer ous tests of the method have been carried by working with lead free mate rial and material to which known amounts of lead had been added. The fol lowing data aro more or less characteristic:
00089-42
20 -
To test the accuraoy of the method for urine two composite samples on urine were
collected from workers at the laboratory# One of these was divided into six
portions of 1 liter each and varying quantities of lead were added to them by
members of the research staff outside the analytical laboratory. The samples were
then analyzed by the usual procedure. Sample No. 2 was divided into five portions
and was analyzed after the addition of much smaller ampunts of lead. The results
t
follow:
Lead Added
Lead Found
Sample No. 1
1.10 mg.
7.00 7.00 11.00 7.00 11.00
1.13 mg.
7.47 7.00 11.00 6.75 11.00
Sample No. 2
None
None
0.01 0.10 0.10
0.10
0,10
0.08 0.20 0.20
To test the accuracy of the analytical method for feces and the possible influence
of other metals, four samples were prepared as follows: 4 lbs. of baef was obtained
bone and fat separated and the remainder divided into four 4C0 g. portions. All of
these wero ashed in silica dishes with or without the addition of known quantities of lead and other metals, the procedure being that given above for the analysis of
feces. Several filter papers were also added before ashing. The results follow:
Sample
Lead Added
Load Pound
No. 1 No. 2 No. 3 No, 4
None 1 mg. None
1 mg.
.07 mg, 0.73 mg, 0.08 mg 0.73 mg
Samples Nos. 3 and 4 had 1 mg. each of cadmium, bismuth, mercury, oopper, arsenic, antimony, and tin added beforo ignition.
KH 0008943
- 21 -
The actual quantity of material in these samples is mush larger than the samples of feces and required considerably larger amounts of reagents throughout.
As a check on the accuracy of the colorimetric method, samples containing various
quantities of lead chromate wore analyzed by th$ colorinetric procedure.
d Added
Lead Found
.38 .38 ,63 .60 .03 *03 .02 .02 ,95 .93 .02 .02 ,07 ,06 .30 .30 .56 .56
llote the following: All indications are that the experimental method for lead
gives results which are, if anything, slightly too low. Considerable study has
been made of the losses of lead which may occur at differont steps. Thus the
neglect of the insoluble residue may introduco slight losses, which are apt to be
the greater the greater/amount of insoluble residue. Furthermore the study of the
precipitation of lead as chromate under the conditions followed showed that a
slight loss amounting to perhaps a fow hundredths of a milligram of lead is apt to
occur, although the loss is considerably less than that observed when following
the procedure of Fairhall (Loc. Cit.).
The data on the samples of urine and feces from Dayton and Columbus follow. In the attached blue print those data have been plotted to show the general trend of the results. The interpretation of these data is discussed below. Since the samples of feces could not be regardod as dofinite 24 hour samples it has seomod preferable to plot the lead per 100 grams of dried feces rather than the lead in tho individual samplo. The urine probably represents a more nearly true 24 hour sample but for the sake of uniformity the results have been plotted in milligrams of lead per liter or urine,
0008644
22
s a mp l e s p r o m d a y t o n , o h io ; BATEOU POWER AND LIGHT CO*
Sample 1 Number |
1 A nalysisi
1 Number j Lead
___mga___
A n a ly s is
Number Volumo
in cc.
' .2FECES
URINE
Origin of Sample
3g 6 S,* 'O03 M' 0a1 mo
-p 3 . tt 1a
'^ctdt abO
tabnO -spr-il t-q3 up.
1 2 a.
3 I
4 5 6 7 8
9
10 11
12 mmtm
13
14 I
15 16 '17
85 1^1
86 87 88
127 0.50 1.83
27.4 113 0.14 0.20
700
138 0i30 0.97 128 0.32 1.52
31.1. 123 21.1 114
0.12 .6*17
0.08 0.14
1450 1200
129 0.11 0.99 11.1 115 0.22 0.07 3000
188 0.45 1.49 30,3 234 0.08 0.10 820
130 0.14 3.11
4.5 116 0.12 0^25 470
139 0.33 1.05
31.5 125 0.15 0.12 1270
131 0.65 1.62 40.2 117 0.17 0.14 1200
189 0.27 1.62 16.7 235 0.12 0.05 2450
140 0.42 1.73
25.4 126 0.09 0.06 1500
132 0.32 1.08 29.8 118 0.08 0.05 1500
141 0.27 3.70
7.3 124 Nil ' Nil
750
133 0.30 3.85
7.8 119 0.10 0.07 1400
134 1.91 1.63 117.3 120 0.14 0.05 2900
135 0.29 0.88 33*0 112 0.56 0.40 1350
136 0.51 1.44 35.5 121 0.15 0.11 1350
137 0.65 1;70 38.3 122 0.12 0,08 1530
284 0.73 1.04 69.9 237 0*25 0.11 2220
283 0.25 1.95
12.8 241 0.25 0.12 2100
285 0.46 0.87 52.8 242 0.23 0.11 2100
282 0.27 1.63
15*3 236 0.12 0.04 2920
MB 00D8945
4
SJSJLPHB FRO! COLUMBUS, OHIO
FECES
URIBE
Sample Origin Of Number Sample
Anal ysis Number
lead mgs*
lead mgs. Dry per 100 gas. weight dry feces gms.
Anal lead ysis mgs. Number
lead mgs. per liter
Volume in co.
19
267 0.16
2.26
20 21 ^p
198 0.53 258 0.35
2.22 0.92
22
269 0.27
2.88
23 24 ^pp
275 279
0.37 0.15
1.23 1.25
25
286 0.45
0.93
26 VB1 27 pppp
287 182
0.17 0.35
1.95 6.73
28
265 0,33
1.35
29
185 0,74
3.27
30
281 0,23
1.17
31 266
32 PP^ 193
33 ^^P
280
0.68 0.62 0.05
3.13 0.75 0.43
34
277 0.32
1.05
35 To sanrpl* !
36
191 0.14
0.35
37
181 0.06
1.58
33 39 pppi
278 194
0.38 0.24
2.30 0.39
40
I 268
0.24
1.07
7.1 23.9 38.0
9.4 30.0 12.0 48.5
8.7 5.2 24.5 22.7 19.7 21.7 82.8 11.6 30.5
40.6 3.8
16.5 61.5 22.5
to
fi-- o* __ i
220 0.17 0.09 1820 231 0.24 0.16 1460 227 0.06 0.04 1460 208 0.16 0.10 1640 207 0.10 0.05 ' 2160 214 0.21 0.08 2580 180 0.13 0.22 600 202 0.12 0.08 1520 161 Nil Nil 2000 156 0.02 0.01 2620 155 0.14 0.06 2200 152 0.12 0.07 1760 230 0.16 0.13 1200 229 0.14 0.10 1460 225 0.09 0.05 1940 233 0.07 0.03 2220 239 0.08 0.17 470 232 0.10 0.07 1460 178 0.07 1880 206 0.03 0.02 1760 . 153 0.04 0.02 1830 203 0.15 0.11 1360
HE 0008-946
- 24 SAMPLES PROM C&LUMBUS, Cont*d.
HHi
Sample Origin of Analy
Number Sample
sis
Humber
lead mgs.
FECES Lead mgs'
per 100
S. feces
Dry Analy-j Lead
weight sis
mgs.
gms,
Humber
URINE Lead mgs.
per liter
Volume' in cc.
190 0.30 1.68
276 0.28
1.35
195 0.30
1.42
251 0.30 3.30
184 0.41 1.59
Ho Sample
199 0.18 0.39
263 0.55 1.87
255 0.38 ' 0.88
262 0.37 1.49
270 0.55 1.35
260 0.33 0.73
197 0.42 0.45
254 0.42 1.99
257 0.53 2.69
259 0.31 0.92
264 0.34 1.89
Ho S ample
261 0.21 1.54
290 0.40 1.48
288 0.33 0.72
192 0.20 0.73 256 0.37 2.03
17.9 20.7 21.2
9.1 25.8
46.5 29.4 43.0 24.9 40.6 45.1 92.9 21.1 19.7 33.8 18.0
13.6 27.0 45.9 27,5 18.2
150 Nil Hil
1220
159 0.04 0.02 1830
154 0.05 0.02 2230
170 0.07 0.06 1180
209 0.16 0.10 1520
179 0.17 0.11 1520 238 212 0.20 0.07 2680
205 0.13 0.09 1400
169 0.13 0.09 1460
223 0.20 0,14 1460
228 0.06 0.04 1520
221 0.18 0.12 1520
226 0.13 0.09 1400
222 0.18 0.12 1520
224 0.08 0.05 1520
216 0.18 0.10 1760
219 0.14 0.16
870
215 0.20 0.10 2140
213 0.13 0.06 2200
218 0.18 0.10 1760
217 0,15 0.09 1640
164 0.11 0.06 1750 165 0.04 0.02 1690
0008947
- 25
SAMPLES PROM COLUMBUS, Con'd.
FECES
URINE .
Sample Number
Origin of Sample
Anal ysis Number
N
Load Lead mgs. mgs. per 100 gms,
dry feces
Dry weight gms
Anal ysis Number
Lead mgs.
Lead
mg3 per Hter
Volume in ce
65
253 0.14
0.61
23.0
168 Nil Nil
1640
66
272 Sampl 5 Lost
19.2
211 0,12 0.08 1760
67
289 0.24
0.81
29.6
162 Nil Nil
2160
68
144 0.32
0.90
35.6
163 0.11 0.07 1650
69
252 0.60
0.80
74.7
167 0.05 0.03 1600
70 71 ^pp
187 0.20 273 0.24
2.28 1.97
8.8 12.2
210 0.17 0.10 1640 166 0.11 0.06 1880
72 .
'200 0.60
2.42
24.8
201 0.20 0.08 2530
73
146 0,43
0.42
303.4
175 0,30 0.23 1300
74
145 0.24
0.53
45.4
173 0.15 0.11 1300
75 VP
196 0.23
0.33
70.2
151 0.12 0.09 1300
76
271 0.37
1.91
19.4
158 0,04 0.06
700
77 .
142 0.72
1.44
50.0
160 0,07 0.06 1180
78
186 0.16
1.36
11.8
157 0.15 0.08 1850
79
274 0.11
1.64
6.7 204 0.15 0.09 1760
80 VP
143 0.22
1.20
18.3
172 0,10 0.08 1320
8V
147 0.14
0.50
28.4
177 0.07 0.05 1400 :
V
82
f 183
0.18
2.31
7.8 171 0.05 0.03 1950
83
148 0.50
1.52
32.8
174 0.07 0.10
710 1
84
149 0.54
2.31
176 Nil Nil
1170 !
sactaspmaw
agekS22SEZ2Z
K 0008948
- 26 -
We failed to find lead in analyses of Dayton and Columbus city waters*
.VI CONCLUSIONS A consideration of the data and the calculations, together with the. study of the grouping of symptoms and clinical signs in individual subjects justi fies and compels the following conclusions: 1. Ho individual in the two groups is suffering from lead poisoning. 2. All the individuals in the two groupB have absorbed lead into their bodies from some source. 3. A group of twenty-two workmen who have been exposed to, apparently, the worst hazards associated with the sale, distribution and use of Ethyl .gasoline, fails to show any indication of having been poisoned by lead. A comparison of their ailments of an indefinite type, which might conceivably be due to a greater opportunity for lead absorption, that is, normally, shows they are iu better physical condition and that the occurrence of abnormalities among them is lower than among a controlled group of workmen taken at random through an employment agency at Columbus, Ohio. 4. It is perhaps to be expected that the group of twenty-two workmen regularly employed by the Dayton Power and Light Company should be normally in somewhat better physical condition than such a group as that obtained from the Columbus. employment agency, but in any case, the data gives no indication whatever that the employees of the Dayton Power and Light Company have been in any way'in jured by their contact with tetra ethyl lead. 5. Prom the evidence presented herein it is not possible to stats that these msn so exposed to the hazards which some have claimed exist in oonnec .ion with Ethyl gasoline have received any damage or have absorbed any lead as a result of their exposure to Ethyl gasoline. In fact, it seems quite probable, in view of the evidence, that the lead which they have absorbed has come from other sources,
000 8040