Document GKjKag7BwmRMnqxVEwqJ68QKx
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INDUSTRIAL HYGIENE SURVEY OF SELECTED PLANT OPERATIONS
Tyler Plant, Pittsburgh-Coming Corporation
Tyler, Texas'
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^7
` May 7, 1969
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by . .`Morton Corn, Ph.D.
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TABLE OF CONTENTS
I. INTRODUCTION
Page
....................................................................................
1
II. SUMMARY AND RECOMMENDATIONS .............................................
3
III. THRESHOLD LIMIT VALUE FOR ASBESTOS ............................................
5
IV. DESCRIPTION OF SAMPLING AND ANALYTICAL METHODS ...
8
V. RESULTS AND DISCUSSION......................................................................... 11
VI. ACKNOWLEDGEMENT.....................................................................
- 21
APPENDICES
APPENDIX A: 1. Letter from W. R. Blair, Regional
Director, U. S. Department of
Labor, Dallas, Texas, to J. E.
, Bierer.
-
2. Letter from B. M. Stout to W. R.
Blair.
3. Letter from . Corn to W* R. Blair
APPENDIX B: Duct Velocity Determinations (Primary
Data and Calculations).
APPENDIX C: Photographs of Selected Plant Oper
ations
I. INTRODUCTION
A survey to determine the adequacy of the existing ventilation
system and associated dust collection equipment to control air
borne dust was performed in the production area of the Pittsburgh-
Coming Tyler, Texas plant on May 7, 1969 by Dr. Morton Corn. Dr.
Corn was accompanied and assisted by Mr. John L. Hyde, of the En
gineering Section, Pittsburgh-Corning Research Center, 800 Presque
Isle Drive, Pittsburgh, Pennsylvania 15239. The survey was per
formed at the request of Mr. Byrl M. Stout, Vice President of Manu
facturing, Pittsburgh-Corning Corporation. The request was made
on April 28, 1969 at the Pittsburgh-Corning Research Center during
a meeting called to discuss the enclosed citation of the Tyler
plant by the Department of Labor (see Appendix A). The survey
was concentrated exclusively on assessment of hygienic risk to
airborne amosite asbestos dust and evaluation of plant facilities
to reduce this risk*
During the period of the survey outdoor weather conditions were
clear, sunny and warm, with temperatures in the 70-80F range.
Humidity was high. (Relative humidity in plant approximately
75%).*
The author is unaware of any special precautions taken to en-^>
sure that the ventilation system was operating in anything but '
the "normal" mode during this survey. Therefore, results of mea
...surements made in this survey must be considered representative -
of conditions in the plant during summer months when doors and
_
windows are open. In general, winter conditions impose more
' *
*
Measured at 11:45 AM in plant.
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2 stringent requirements on plant dust control systems because win dows and doors are closed to preserve heat. There is no benefit -if "dilution ventilation" from outdoor air. With the same facil ities for dust removal by a ventilation system, in-plant dust in air concentrations during winter months will usually exceed those present during summer months.
**
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II. SUMMARY AND RECOMMENDATIONS
. An industrial hygiene and ventilation survey of this plant
performed on May 7# 1969 suggests that asbestos fiber concentra
tions are high in worker breathing zones (Builder and Feeder Op
erators) and at breathing level in certain other plant locations.
There are no hygienic guidelines for concentration of Amosite
fibers in air and the judgment of excessive dustiness in this
plant is referred to guidelines for Chrysotile dust. Utilization
of hygienic guidelines for Chrysotile asbestos concentration in
air for Amosite asbestos fibers in air is an accepted procedure
in the U. S. at this time. The finding of excessive dustiness
at "spot" sampling locations in the plant is consistent with sur
vey measurements which revealed inadequate quantities of air at
local exhaust hoods. Insufficient air at local sites of dust
emission was reflected in low air velocities at hood faces and
low air conveying velocities in branch lines and ducts. The ven
tilation system was estimated for Builder and Feeder areas to move
approximately one sixth of the air required to ventilate these
processes.
In addition to the inadequacies of the ventilation system ars.d
the resultant excessive dustiness# it was found that general house
keeping is poor in the plant. Also# during the entire day of the
survey not one np?.oyee in the production area was observed to -
wear a respirator. .
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In the opinion of the author# this short survey strongly
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suggests that employees at this plant are being exposed# on a
V daily basis, to excessive concentrations of Amosite asbestos dust. It is recommended that efforts be immediately focussed on design of a complete ventilation and dust collection system at this plant. The system is rudimentary in concept and is underdesigned. Efforts to "doctor up" this system would probably lead to a less than satisfactory system and would involve expenditures in time and equipment equivalent to those associated with design of a new system.
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III. THRESHOLD LIMIT VALUE OF ASBESTOS DUST
"The threshold limit values refer to airborne concentrations
of substances and represent conditions under which it is believed
that nearly all workers may be repeatedly exposed# day after day,
without adverse effect. Because of wide variation in individual
susceptibility .exposures of an occasional individual at or even
below the threshold limit may not prevent discomfort, aggravation
of a pre-existing condition, or occupational illness.
"Threshold limits should be used as guides in the control of
health hazards and should not be regarded as fine lines between
safe and dangerous conditions."*
'
The American Conference of Governmental Industrial Hygienists
had, in 1967, a T.L.V. for asbestos of 5 million particles per
cubic foot, as determined by impinger sampling and counting by
light-field techniques. In a considered revision (1968) , the Con
ference endorsed the retention of this T.L.V. for "most forms of
asbestos". However, for crocidolite, because of the production
of mesotheliomas, it was recommended that workers be equipped with
air-supplied helmets because "no safe limit can be established for
this form of asbestos at this time."
,
The British Occupational Hygiene society recently issued hy
gienic standards for chrysotile asbestos dust.** The standards
are based on thef`objective that the risk of contracting asbestos *
* .
Extracted from the Preface, Threshold Limit Values for 1968.
American Conference of Governmental Industrial Hygienists, 1014
* Broadway, Cincinnati, Ohio 4S202. **
Ann. Occup. Hyg. 11, 47-69 (1968).
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be reduced to 1 per cent of those who have a lifetime's exposure to the dust. By "asbestosis" the committee meant the' earliest demonstrable effects on the lung due to asbestos. These standards are cited here because they are more stringent than the U. S. guideline referred to above. The exposure guidelines are:
TABLE 1
BRITISH HYGIENIC GUIDELINES FOR ASBESTOS DUST
DUST CATEGORY Negligible Low
*
Medium High
CONCENTRATION AVERAGED OVER. 1.MONTHS
Fibers/cm3
MPPCF*
0 - 0.4
0.011
0.5 - 1.9
0.014 - 0.054
2.0 - 10
0.054 - 0.28
Over 10
Over 0.28
The concentrations refer to fibers greater than 5 microns in length
' as determined by the membrane filter method.
The problem faced today with respect to Amosite asbestos is
that there simply is insufficient data for dosage-response pre
diction of exposed populations.** The guidelines for Chrysotile
will undoubtedly continue to be the threshold limit value guide
line for exposure to other forms of asbestos dust for years to
come.
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In a survey of dust concentrations in the Unibestos facility.
Port Allegheny Plant of Pittsburgh-Coming, simultaneous iropinger
*.
Million particles per cubic foot (as fibers).
. **
. Stokinger, H. E."Development of TLV's for Fibrous Materials."
Paper presented at Special Session on Fibers, Annual Meeting
of American Industrial Hygiene Association, Denver, Colorado,
May, 1969.
,
arvi membrane filter sampling was .performed. The conversion of
values obtained by one-method to-those of the-other method was
not possible. At each location, the numbers of the fibers and
particles Varied. The impinger metho'd is based on particles
while the membrane filter method assessed only fibers* For the
purposes of this preliminary survey, either method would yield
date, suggesting that airborne dust concentrations were acceptable
or v 'oceptible. Therefore, the membrane filter technique was
used and the British guideline is applicable (Table X).
.
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IV. DESCRIPTION OF SAMPLING AND ANALYTICAL METHODS A. Assessment of Airborne Dust Samples were obtained at either worker breathing zones as
they performed their routine tasks, or at breathing level to re present "background air". Samples were obtained during a five or ten minute period at a flow rate of 21 1pm by utilizing a vacuum pump in conjunction with a filter holder and sample filter. The system was precalibrated in terms of pump inlet pressure and air flow with all sampling line components, including filter, in place.
A membrane filter (Type HA Millipore) was used to obtain samples for microscopic evaluation of fiber and dust particle concentrations. This paper is composed of pores 0.45 microns in size and has been shown to retain, with 100% efficiency, par ticles down to 0.05 micron diameter.^
The filter was first visually examined to detect any loose dust or uneven dust deposition. In the few cases where the fil ter deposit did not pass this examination, it was necessary to re suspend the collected dust in distilled water and refilter this suspension on VF grade Millipore filter to assure a:i even dust distribution over the entire filter area. A pie shaped segment , of the filter was then placed on a microscope slide and rendered completely transparent with Cargille certified index of refraction liquids. Cargille liquid of index of refraction 1.500 was usual-ly most suitable. The counting of the dust particles and the count ing and sizing of asbestos fibers was performed with the aid of a
^Megaw, W. J, and Wiffen, R. D.: Int. J. Air Water Poll. 1, 501
(1963).
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Zeiss Photomicroscope using Phase Contrast Illumination. The ob
jective lens was a Zeiss Neofluor Ph 63x with a numericalaperture
of 0.90. The eyepiece had a magnification of 20x and contained a
calibrated Porton graticule. The optovar feature of the Zeiss
scope contributed to the total magnification of 2016x. Resolution
was approximately 0.35 microns. Particles and fibers of size 0.30
microns could be detected.
In the evaluation
procedure, all particles and fibers in
the Porton field of view were counted and the fibers were grouped
by fiber length into three categories (less than five microns,
five to ten microns, and larger than ten microns). This procedure
was repeated for a number of randomly selected fields on the face
of the filter. Because only a portion of the total filter area
was evaluated by this method, it was necessary to correct the
count by the ratio of the total filter area to the evaluated area.
The resultant particle or fiber number was divided by the volume
of the air sample to obtain dust or fiber concentration expressed
as millions of particles per cubic foot (MPPCF).
.- .
... .
The statistical reliability of the evaluation was expressed
as the standard deviation, calculated as N1f/2 , where N is the
particle or fiber count.
*
The procedure outlined follows, in its essential points, that
recommended by J,,. R. Lynch and H. E. Ayer in their article "Mea
surement of Asbestos Exposure" which appeared in the Journal of --
Occupational Medicine, Volume 10, January, 1968.
xo
B. Measurement of Air Velocities at Hoods
.
A calibrated velometer was used to measure face velocit
ies of hoods and room air velocities.*
. C. Air Velocities in Ventilation Ducts
A standard 1/4" dimeter pitot tube was used in conjunct
ion with a Dwyer 1:10 inclined manometer to determine velocity
pressures in ducts. Ten point traverses were taken in larger
ducts {>6" diameter); centerline readings only were obtained in
smaller ducts. All measurements are considered to be approximate
{estimated reliability + 10%) because of the conditions imposed by
the system. For example, there were few locations where measure
ments could be made 10 diameters from entries or elbows. Also,
the standard pitot tube should not be used in lines smaller them
8" diameter. However, the reliability of measurements achieved
is perfectly adequate for a preliminary survey of the type under
taken here.
Alnor Velometer, Illinois Testing Laboratory, Chicago, Illinois.
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V. RESULTS AND DISCUSSION
A. Airborne Dust Concentrations
Measured concentrations of dust particles and asbestos
fibers are summarized in Table 2. In order to facilitate com
parison with the guidelines from Table 1, the last two columns
(5 and 6) of Table 2 for fiber concentrations have been added
to yield Column 7, which should be compared with Column 3 of
Table 1. On this basis, operators at the feeders are receiving
High exposures. Builder operators are also receiving High expos
ures. Although much dust is present at the cutting operation the
single sample obtained suggests that particles and not fibers are
the major contributors to the dispersion. Table 2 suggests that
outdoor air is Negligible in terms of fiber content, as is the
dust collector effluent. However, the aisle of the warehouse op
posite the. Feeders is High, suggesting the large zone of influence
of the dust sources in the Feeder areas. It cannot be too strongly
stressed that these are "spot" samples and must be viewed as sug
gestive results only. However, they do convey a picture of high
dust exposures in Feeder and Builder areas, as well as in adjacent
r* zones. The author must state, based on previous experience, that
dust concentrations in plant air would almost certainly increase
during winter months.
B. Local Exhaust Hood Face Velocities
There are design guidelines for face velocities of air at"
local exhaust hoods? In general, a face velocity of 100 fpm is
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See Chapter 5, Industrial Ventilation, 10th Ed. American Con
ference of Governmental Industrial Hygienists, 1014 Broadway,
Cincinnati, Ohio.
j
y
BttpSH $ r>> ,'JPAR> 5
TJ /E 2
Jul
ASBESTOS FIBER CONCENTRATIONS AT SELECTED PLANT LOCATIONS
+-h ....
Date and rime of Sample
5/7 2*30 PM2*35 PM
Description of Sampling Site
*
Breathing zone of Feeder Oper
ator, Lines 1 and 2 during
sweeping, feeding. (Note:
,
cooling fan at dust collector
on.)
Dust Particle or Fiber Counts, Expressed as Millions
of Particles -
Per
Cubic
Foot
+
Standard
Dev1 iaTtiootnal
Fibers
(Cols.
Particles
<5 u
5-10 u
>10 u
5 + 6)
12.3+0.6
3.60+0.28 0.64+0.12 0.14+0.04 , O-r&S-
wf ~>zC ., 11
5/7 2*36 PM- Breathing level in Walkway ad 10.5+0.5 2*46 PM jacent to Feeder No. 3.
3.40+0.19 0.34+006 0.14+0.04
0.48
5/7 2 * 50 PM- Effluent from Dust Collector
2.9+0.2
Bags approx. 1" from Bag. Dust
collector for Lines 1 and 2.
0.71+0.09 0.06+0.03 0.02+0.02
0.08
5/7 3*05 PM- Outdoor air sample at breath
1.5+0.2
3*15 PM ing level on loading dock near
Oil House.
0.16+0.04 0.03+0.02 0.05+0.02
0.08
%1
5/7 3*15 PM- Breathing level in aisle, Uni- 35.0+1.7 3*25 PM bestos Warehouse opposite Feeder Lines 1 and 2.
5/7 3 * 30 PM- Breathing zone of Builder 3*40 PM Operator, Line No, 3 (3/4 x 1 Unibestos). Cycle of load ing, building, spraying, etc. Note: Fans on over Lines 2 and 3.
3.2+0.2
1.26+0.12 1.48+0,09
0.18+0.03 0.18+0.03
0.10+0.02 0.10+0.02
0.28 4'
/0
0.28
5/7 3:45 PM- Breathing zone of Builder Op 12.5+0.6 3*56 PM erator, Line No. 3. Cycle of loading, building, spraying, etc.
4.02+0.20 0.20+0.04' 0.21+0.05 *
0.41
(1) .< (2)
(3) (4) (5) (6) (7)
n '12
r it
TABLE 2 (continued)
5/7 4t05 pm- Breathing zone of Operator,
4tl5 pm La'Tge Cutting Saw.
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Ndte: Door adjacent to
cutting operation open to
outdoor air.
37.4+1.8
1.11+0.11 0.07+0.03 0.05+0.024 0.12
(1)
(2) .
(3) (4)
(5) (6) (7)
-?
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///?/;? tfUf'zc.
S^^L<^Ay,^<3
zzCt*/
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recommended for control of fume and vapors, while higher veloci ties are not uncommon for control of materials emitted with g?eat
force. At the Port Allegheny Plant, Mr. John Hyde, of Pittsburgh-
Coming, and the author are designing for 200 fpm face velocity at
hoods which interface with plant air:
designed for 100 fpm.
internal process hoods are >
Table 3 is a summary of measured air velocities at selected
hoods in the Tyler Plant. With the exceptions of the Builder
hoods and the Scrap Grinder hood, face velocities at hoods are
inadequate. Smoke tube tests performed at each hood offered visu
al confirmation of this conclusion based on velocity measurements.
Although the hood on the Intermediate Saw was satisfactory, it
would not be so if two or more saws were used'simultaneously. ,
C. Air Flow Associated with Local Exhaust Hoods and Dust Collectors
Figure 1 is a line diagram of the ventilation ducts in the
Feeder and Builder Areas. The duct locations for Pitot tube tra
verses are denoted by numbers. Table 4 is a summary of volume of
air flowing at these points as determined on the day of this survey
The values listed in Table 4 are probably overestimates because cer '
* -11.r, of the ducts were partially clogged with settled fibers. All
data and calculations for the Table 4 summary are included in Ap
pendix B. Table 4 an<^ *data in Appendix B indicate the following:
*
1. Air is very poorly distributed in the ventilation system. As an example, hoods 2, 3 and 4 for similar operations were allo cated 3, 391 and 202 cfm respectively.
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TABLE 3
UNIBESTOS LINES: SUMMARY OF HOOD AIR VELOCITIES
Location
Line No, 1
40" Fiber Feeder*
'
Site of Measurement* and Average Air Velocity/ fpm**
Left Side
Center Right Side
Top
Middle Bottom Top Bottom Top
Bottom
0 0 0
50 50 0 0
Note: Smoke tube test revealed ooor control.
Line No. 1
30" Fiber Feeder*
Left Side Center Right Side
Top
Bottom Top Bottom Top Bottom
20 20-30 60
60 60 50
Line No. 1 .#
30" Fiber Feeder+
Left Side
Top Middle Bottom
20 0 .0
Center Right Side
Top Middle Bottom Top Middle
20 0-10 0-10 20-30
30
Line No. 1
40" Fiber Feeder
-
Left Side .
Center
Right Side
Top Middle Bottom Top Middle Bottom Top Middle Bottom
0 0 0
10.10-3^ 10-30
0 20 20
Line No. 2 40`Fiber Feeder
(Note: Approx. 75% of hood face blocked by fiber)
Left Side -
Center Right Side
Top Middle Bottom Top Top Bottom
* 50-10C
75-100 75-100*
30-40 30 50
+Room air in vicinity of feeders measured to be 30-40 fpm, South
to North (fans off). Room air in vicinity of feeders measured to be 300 fpm, South to North (fans on).
TABLE 3 (continued)
Line No. 2
30* Fiber Feeder
Stand by (not in use)
Line No. 2
30" Scrap Feeder
Left Side Center Right Side Left Side Center Right Side
Top Middle Bottom Top Middle Bottom Top Middle Bottom Top Bottom Top Middle Bottom Top Bottom
.
,
10-5C 30. 20 20 40 30
0 40 20 75-10 100 100 100 75-10 125 75-10
Line No. 3
20" Scrap Feeder
Left Side Right Side
Top Bottom Top Bottom
0 20-30
0 30-40
Builder Hoods
. Line No. 2 Line No. 3 Line No. 1
125-15 150 Invalid measurements because inst rument could not be properly placed. Smoke tube revealed good control.
Scrap Grijjder Hood
Left Side Center Right Side
Top Middle Bottom Top' Middle Bottom Top Middle Bottom
Saw Area: Intermediate Saw+
*
-
75-10C 100-15' 150 -
75 75-10 100 50-75 50-75 50-75
. 200-30.
+Large Rip Saw Off.
All measurements in vertical plane at hood face, unless othervis<
specified.
**
''
Feet per minute.
.
: Figure 1. ' Schematic of Unibestos Lines Showing Ventilation System and Pitot Traverse Points.
| ; ; , ( Tyler Plant, Pittsburgh-Corning Corporation - -r '
,
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Scale* * 1* 8'-0" '
*---*------
",
:
ISourcet Dwct. Wo. 56-2002-0 f6-12-56).
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TABLE 4
SUMMARY OF VOLUMETRIC AIR FLOWRATES IN DUCTS IN FEEDER AND BUILDER AREAS
Duct Number (Figure 4)
Feeder Area:
1 2 3 4 5 7 *'
Builder Area
8 9
Air Flow, Cubic Feet Per Minute
2,769 63
391 202 1,940 183 877
1,724 810
,4*'
*
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2.* Conveying velocities within ducts are generally very low
for handling asbestos dust. A minimum design velocity of 4000
fpm is being used for the new ventilation system.* Duct 7 (Scrap
Grinder Hood) and the 10" diameter duct into the Block Dust Col
lector were the only ducts with adequate air velocities for con
veying asbestos dust.
3. Total air volume for the Builder and Feeder areas is very
low (2769 + 1724 + 877 cfm). Estimates for Fort Allegheny place
the air requirements for adequate control for three lines at ap
proximately 6.5x times this amount of air.
In summary/ as judged by three different parameters/ i.e.
dust concentrations, face velocities at hoods, and duct air vol
umes , the ventilation system, and hence dust control at this
.
plant, are unsatisfactory.
D. General Housekeeping
In general, housekeeping is judged to be poor at this
plant. Appendix C is a selection of photographs taken during
this survey. Asbestos dust is on all surfaces as well as in the
aix.` It was noted that with the exception of Mr. Hyde and the
author not a single person in the plant wore a respirator. It ^
can only be concluded that Amosite fiber at this plant is not
being handled with the care and respect that any substance with
this toxic potential deserves.
-
The practice of exhausting bag dust collectors to plant air --
would not be permitted in the states of Pennsylvania and Hew
York. Air cannot be recirculated when toxic substances are
Port Allegheny Plant.
20
involved. In the case of nuisance substances/ recirculation is permitted if the recirculated air contains the toxic agent in * concentrations less than 20% of the Threshold Limit Value.
21
C VI. ACKNOWLEDGEMENT
.
The author wishes to express his appreciation to Mr. John L.
Hyde, of Pittsburgh Corning Corporation. Mr. Hyde provided in-
t
valuable assistance with survey measurements.
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*1 Ji *. fc..
APPENDIX A
1. Letter from W.R. Blair/ Regional Director/ U. S. Department
of Labor, Dallas, Texas, to' J. H. Bierer, President, Pitts
burgh-Coming.
2. Letter from B. M. Stout, Vice-President, Pi-tsburgh-Corning .
to W. R. Blair.
,
3. Letters from M. Corn to V. R. Blair. i i
t-
April 8, 1969.
22
U.S. DEPARTMENT CF LfcEOR eussui or uisoa reaaasi -
Office of Occupational Safety Roost 601, 411 N. Akard Street
Dallas, Texas 7S201 .
lev Jencs E. Eicror, President Pittsburg Corning Corporation-
1 Gateway
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Pittsburg, Pennsylvania _
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Seer Sir. Bicrcri
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r~
. A recent survey of your establishment revealed that certain conditions
did not meet the Safety and Health Requirements of the Walsh-Kealey
Public Contracts Act.
,
The Act stipulates that "No part of such contract will be performed nor will any of the materials, supplies, articles or equipment to be manufactured or furnished under said contract, be manufactured or fabricated in any plants, buildings or surroundings or under working conditions which are unsanitary or hazardous or dangerous to the health and safety of the employees engaged in the performance of the contract."
Enclosed is a notice listing those unsatisfactory conditions foisid, and
you should take corrective action immediately. '
'
You are requested to notify n on or before the compliance date on the notice concerning action taken to correct the unsatisfactory conditions.
Enclosure
cc: to. Charles Ten Home, EScs. Kacagar, tUcntown, Terns
1
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FT 6
U.5. DEPARTMENT OF LAE02 .
BUREAU OF LABOR STANDARDS .
*
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SAFETY AMD HEALTH VIOLATIONS
MAMS OF FiRM
,.
Pittsburg Coming Corporation
STREET ADDRESS
Box 3057 - Tyler, Texas
CITY
Oventoun
OFFICIALS CONTACTEO NAME ANO TITUS
Charles 3. Van Horae, Vies. Manager
r. -
CONTRACTOR KUMSSR
COUNTY '
Smith
STATE
Texas
ZIP
75701.
PLANT SURVEY MAOS BITM
[Hr. Van Home
I REPORT FURNISHES TO
'
1 lanes E. Bierer, President
SeOoA.vTtfpf ui*
*
. * May 8,*
1 USOL SAFETY ENCINEER
OATCOF
|M. Padilla, Industrial Hygienist . SURVEY
A SURVEY OF YOUR FACILITIES HAS REVEALED CONDITIONS WHICH DO NOT
COilPLY WITH USOL SAFETY ANO HEALTH REQUIREMENTS UNDER THE PUBLIC LA?
CHECKED.
.'
THE CONDITIONS ARELISTEO BELOW WITH REFERENCE TO COOES ANO STANDARDS
^IirHzmAeVnEtsB. EEN AOOPTEO AS THE DEPARTMEN. T* S SAFETY ANO HEALTH
THESE UNSATISFACTORY CONDITIONS MUST 8E CORRECTED. 'PLEASE ADVISE
RZaiONAL-CiRSCTaR-Vendell~-R. 31air . -- a'n aa-agmatrlfey 8. 1969
AS TO THE CORRECTIVE ACTION TAKEN.
PUBLIC LAW TLUI WALSH-HEALEY
PUBLIC CONTRACTS ACT
UBLFC LAW
'
CNAMARA-O'HARA SERVICE CONTRACTS ACT
PUBLIC LAW '"**-T0*
ARTS ANO HUMANITIES
ACT
'
PUBLIC UWPUI VOCATIONAL REHABILITATION ACT
CORRECTIONS REQUIRED
UNSATISFACTORY CONDITIONS NOTED ON INDOSTRIAL HYGIENE SURVEY 0? 2/lV
Process Area
50-204.264 No certified first aiders.
. `'
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Ex: ' Recommend that several employees he trained so that each shift v
have qualified personnel to take care of emergencies.
/>=' r``
50-204.275, Local exhaust ventilation not according to standards.' *
OS 2
Ind. Vent. Ex: Local exhaust ventilation system, was tested with the following*
ACGIH 5-93 findings* .
" ' . ...
``
.*
f\ a. Grinder hood, 25-50 fpn at face. b. Feeder at material point of entry, 50 fpn..c. Scrap feeder at material point of entry,* 50 fpn.
.
F d. Saving ducts 500 format -face^. *
^* '
Rsconnead. that employer sake a study of present local exhaust vestils
with professional advice, to cone *up to standard. It is believed the
present systea is below the required* capacity.
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T/OSS- \SjlOGSTVS tfyg- KATZ'S*______'-----------*-------.--------
24
PITTSBURGH CORNING CORPORATION
April U, 1969
..i
Mr. Wer.dcll B. 31-ir, Svcs.icr.al Director
U. C. Crpertuest of Leber . . .. .... *
Bureau ci Labor Standards ' v`
Office of Occupational Safety
Sots 621
- ... .' vS- '
411 SSsrtSi 62;ard Street . '
Dalles, Teres 75201 ' '
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Subject: Letter o `4/2/69 to Mr. J. H. Sicrcr, President.
. Pittsburgh Comics Corporation. /
pa: Survey Pleat - Tyler, yeses - 2/13/69 `
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. Tt3 following aeries is being tahea to correct the"ensatisfactory
ccaditicns noted in the report dated. February" 13, 1969.'
,.
_.
Code Standard - Ref.' 50-204.264.:
All supervisory employees vcrc carolled in a first aid course /
Given by the Auoricca Dei Cross vlth the first session given
4-10-69. Tec course is to 'consist of three cessions ced by .
5-26-69 there will be fully qualified personnel oa oil shifts.
2. ` Code Standard - Ref.' 50-204.275. 'V - *!:
-V ' r-
Pittsburgh Coming Corporation uses 'the services of Leo B. Gross,
H.D., Ksdical Director, PPG Industries, end his staff, to conitcr -
its production futilities for ccapliance vith A.C.G.Z.H. threshold
Units for dust ccsscatrsticns. . (See attachnants II and in), -sta "
addition, the Industrial Hygiene foundation coadueto periodic dust
xcasurcmnts to ascertain the dust concentrations present. (Gee
'Ottechsant I). '' .. ..; .
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For K6se areas in thick dust concentrations exceed the threshold^
liaito, it is required, os o condition of caploytsenc, tbht each* *.
cnployco *raor a Dust Foe 655 Eeopirator 6GI-73Q20 approved by tha
: U. S. Bureau of Hines.........................
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2. Coda pr.nr.^nrJ (continued)
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. . In reference to the GBr.taiice. of your report where yen state, .V;^.
"It is believed that the present cystetTis tclcw tha required
- ?* capacity"* the dust 'ccasurcnsnts do cot cupport thie belief* ';; ` :
; l'istetor^hjCcrnlcs Corporation retains the cervices ofi': 1
.
tr. r-erton Core, a` consult ins engineer and authority in the field,*
';.*.. of Industrial hygiene- andeir pollution** Ur.- Com cpprovac 'ell : ; .
ecu installations as.well a cay codifleaticcs of cur
; .-collectins ays c= ....
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IftiSUSTftlAL HYGIENE AIR POLLUTION
26
Morton Corn. ph. d., b. ch. e.
CONSULTING ENGINEER
a 10 BOWER HILL ROAO
PITTSBURGH. PENNSYLVANIA 13228
May 1, 1969
TELEPHC
4)3 - at-
to. Wendell R. Blair, Regional Director
U. S. Department of Labor
Bureau of Labor Standards
Office of Occupational Safety
'
Room 601
411 North Akard-Street
Dallas, Texas 75201
.
*>
Subject:
Letter of 4/8/69 to Mr. J. H. Bierer, President, Pittsburgh Corning Corporation. Re: Survey Plant - Tyler, Texas - 2/13/69
Dear to. Blair:
-
I am writing to clarify.the letter from Byrl M. Stout, Vice President of Manufacturing, Pittsburgh Corning Corporation to you dated April 11, 1969.
I have been working with Pittsburgh Corning Central Engineering engineers on dust control in their Port Allegheny, Pennsylvania Works. The manufacturing operation in this plant is similar to that in the Tyler, Texas Plant. We are installin' an entire ventilation system and dust collectors at Port Allegheny.
However, it should be noted that I have never visited or
surveyed the Tyler, Texas Plant of this Corporation. I first
saw the letter from Mr. Stout to you on April 28, 1969. At tha
time, Mr. Stout suggested that I visit the Tyler Plant and I
have scheduled to do so. on May 7, 1969. 'You may rest assured
that all the engineering kkills which have been brought to bSr
on the Port Allegheny Plant dust control system will be focused
on the Tyler Plant.
-
Sincerely yours.
CC: Lee B. Grant, M.D Byrl Stout
Morton Corn, Ph.D.
APPENDIX B
DUCT VELOCITY DETERMINATIONS (Primary Data and Calculations)
27
f
PITOT TUBE TRAVERSE Duct 1 (17" Line)
.
In front of 40* feeder/ Line #1, feeds from Lines 1# 2, 3 before blower.
Point
1 2 3 4 5 6 7 8 9 ao
Position (inches from wall)
1/2. * 1 3/8
2 1/2 3 7/8 5 3/4 11 1/4 13 1/8 14 1/2 15 3/8 16 1/2
Velocity Pressure (VP)(*H20)
0.00 -0.04
0.16 0.32 0.44 0.60 0.58 0.48 0.20 0.08
Vvp
0.000 -0.200
0.400 0.566 0.663 0.774 0.762 0.693 0.447 0.283
Air Velocity (fpm)
0 -801 1602 2267 2655 3100 3052 2775 1790 1133
Totals Averages
Q 2769 cfm
4.388 0.439
17573 1757 '
PITOT TUBE TRAVERSE Duct 2 (5* Line)
VP Centerline 0.02 "^O; V = 566 fpm
Q = 63 cfm
(
28
PITOT TUBE TRAVERSE Duct 3 (6" Line)
Point
1 2 3 4 5 6 7 8 9 10
Position (inches from wall)
1/8 1/2 7/8 1 3/8 2 4 4 5/8 5 1/8 5 1/2 5 7/8
Velocity . Pressure (VP)("H20)
1.20 1.-15 1.10 0.80 0.52 0.00 . 0.02 0.00 0.00 0.00
1.095 1.072 1.049 0.894 0.721 0.000 0.141 0.000
o.'ooo
0.000
Air Velocity (fpm)
4385 4293 4201 3580 2888 0000
565 0000 0000 0000
Totals Averages
4.974 0.497
19913 1991
Point
1 2 3
Q ** 391 cm
PITOT TUBE TRAVERSE
Duct 4 (4" Diam)
Velocity
position
Pressure
Vvp
(inches from wall)
(VP)(nH20)
1/8 1/2 2
0.2 0.2 0.7
0.447 0.447 0.837
Air Velocity (fpm)
1790 - 1790
3352
'
i-----------------
t*'i
Totals
1.731 .
Averages " '* ' 0.577
Q 202 cfm
6932 2311
* '
29
PITOT TUBE TRAVERSE Duct 5 (12" Diam)
12" Duct, Line 1+2 main leading to 17" main
Point
Position {inches from wall)
Velocity Pressure (VP)("H2O)
1 2 3 4 '5 6 7 8 9 10
3/8 1 1 3/4 2 3/4 4 1/8 7 7/8 9 1/4 10 1/4 11 11 5/8
' .
0.28 0.34 0.36 0.36 0.38 0.40 0.42 0.44 0.44 0.40
'
Totals
Averages
VP
0.529 0.583 0.600 0.600 0.616 0.632 0.648 0.663 0.663 0.632
6.168
0.617
Air Velocity (fora)
2119 2335 2403 2403 2467 2531 2595 2655 2655 2531
24695
2470
Q 1940 cm
l
t
30
Point
PITOT TUBE TRAVERSE Duct 6 (6" Diam)
Position (inches from wall)
Velocity Pressure ' (VP)("H20)
>/vp
1
Air Velocity (fpia)
1 1/8 2 ' 1/2
3 7/8
4 1 3/8
52
64
7 4 5/8
8 5 1/8
9 .5 1/2
10 `
5 7/8
0.04 0.06 0.08 0.10 0.10 0.06 0.06 0.04 0.02 0.02
0.200 0.245 0.283 0.316 0.316 0.243 0.245 0.200 0.141 0.141
801 981 1133 1266 1266 981 981 801 565 565
Totals
2.333
9339
Averages
0.233 '
934
0 * 183 cfm
'
'
*re*
31
PITOT TUBE TRAVERSE Duct 7 (6 Diam)
Point
1 2 3 4 5 6 7 8 9 10
Position {inches from wall)
Velocity Pressure (VP)("H20)
1/8 1/2 7/8 1 3/8 2 4 4 5/8 5 1/8 5 1/2 5 7/8
1.12 1.26 1.26 1.28 1.26 1.32 1.34 1.30 1.22 1.08
'
Totals
Averages
-s/vp
Air Velocity (fran)
1.058
1.122
1.122
1.131
1.122
1.149
1.158
1.140 1.105 . __'
1.039
.
4237 4494 4494 . 4530 4494 4602 4638 4566 ' 4426
4161
11.148
44640
1.115
4464
Q * 877 cfm
4 '*
32 1
PITOT TUBE TRAVERSE Duct 8 (11" Diam)
Point
Position (inches from wall)
Velocity Pressure (VP)("H20)
^VP
Air Velocity (fpm)
1 2 3 4 5 6
r7
8 9 10
1/4 7/8 1 5/8 2 1/2 3 3/4 7 1/4 8 1/2 9 3/8 10 1/8 10 3/4
0.24 0.28 0.32 0.*34 0'.38 * 0.42 0.42 0.40 0.86 0.78
0.490 0.529 0.566 0.583 0.616 0.648 0.648 0.632 0.927 0.883
1962 2119 2267 ' 2335 . 2467 2595 2595 2531 3713 3536
Totals Averages
6;523 0.652
26121 2612
Q - 1724 cfm
**'
C *.
33
PITOT TUBE TRAVERSE Duct 9 (II" Diam)
Point
1' 2 3 .4 5
Position ' (inches from wall)
1/4 7/8
\'
1 5/8
2 1/2
* 3 3/4
Velocity Pressure (VP)("H20)
0.36
0.38
0.38
0.38
0.38
Totals Averages
0.600 0.616 0.616 0.616 0.616
Air Velocity (fpm) 2403 2467 2467 2467 2467
3.066 0.613
12271 2454
Assumption: 1/2 duct area is blocked by fiber . *. Q ** 810 cfm
-.
4#
34
PITOT TUBE TRAVERSE 17" Duct in Saw Area: Main Duct into Dust Collector
Point
Position (inches from wall)
Velocity Pres stire (VP)("H20)
o
00
#
o'
1
1/2
0.44
2 1 3/8
0.46
3 2 1/2
0-.68
4
3 7/8 ,
0.74
5 5 3/4
6 ii 1/4
0.82
7 13 1/8
0.70
8 14 1/2
0.66
9 15 5/8
0.72
10 16 1/2 , 0.48
Totals
__________
Averages
Q " 5061 cfm
Vvp
0.663 0.678 0.825 0.860 0.894 0.906 0.837 0.812 0.849 0.693
8.017
0.802
Air Velocity (fpm)
2655 . . 2715
3304 3444 3580 3629 3352 3252 3400 2775
32108
3211
* ;
*4 35
C
PITOT TUBE TRAVERSE 10" Duct into Block Dust Collector
Point
1 2 3 4 5 6 7 8 9 10
Position (inches from wall)
1/4 7/8 1 1/2 2 1/4 3 3/8 6 5/8 7 3/4 8 1/2 9 1/8 9 3/4
Velocity Pressure (VP)("H20)
1.66 1.66 1.50 . 1.40 1.26 0.74 0.70 0.70 0.82 0.84
Totals Averages
Jvf
1.288 1.288 1.225 1.183 1.122 0.860 0.837 0.837 0.906 0.917
Air Velocity (fpm)
5158 5158 4906 4738 4494 3444 3352 3352 3629 3673
10.463 1.046
41904 4190
-
-
Q * 2285 cm
C
c
. appendix c PHOTOGRAPHS OF SELECTED PLANT OPERATIONS.
4*
< rv
ss
Lines 1 and 2 Feeders Showing Method of Emptying Bag
Line 2 Feeders and Bag Collector (Note Cart for Scrap Feed) 4 *'
L
Close up of scrap feed and bag collector (Line 2) note axial fans directed at carts and 'feeder hoods.
Scrap cutter hood and dust collector
BBS
Dust collector for scrap hood and feeders (Line 1-3), showing scrap hood entry closest to blower intal
r
Large cutting saw showing hoods
, Cutting area dust collector ar " two saws with attached hoods.
- ,
i
p*
ft i
I
i I
a
Cutting saw, dust collector and blower (close up)