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JobHealth
Gosslink - 230-B-06
Highlights
V lum 2 Number 2
May 1984
Particulate Filtration Theory
This article is the first of a series intended to familiarize the reader with examples of inhalable parti cles and how respiratory filtration
works to remove them from the air. This first part will deal with the typical mechanically-generated dust particles. Subsequent articles will cover fumes and fibrous
particles. Dust particles vary widely in
size. For example, ragweed pollen is about 16 microns in diameter. Cigarette smoke is approximately
.15 microns average size. The rough range of .2 to 15 microns is called inhalable, depending upon the prevailing definitions. It is this range of sizes against which res piratory protection particulate fil ters are expected to perform.
Because of this wide range of sizes, it is only logical that different outside forces will affect the parti
cles to different degrees depend ing upon the size range in which they lie. For example, in a moving airstream there are several factors which affect particle behavior.
These factors are discussed on page 5.
Product Profile
3M 3520 Organic Vapor Monitor
Organic vapor sampling under conditions of high relative humidi ty, el vated temperatures and po tentially high concentrations has pos d a dilemma for the industrial hygienist.
Additionally, problems have arisen when sampling for vapors which have a high vapor pressure, or a low affinity for charcoal.
Under these extreme condi tions, personal sampling pumps and dual section charcoal tubes have traditionally been used be cause th y provide the required sorb nt capacity with back-up capability.
Advances in diffusion sampling JMhnology now allows the indus-
hygienist to conveniently and accurately sample organic vapors under extreme conditions. The 3M
(Continued on page 2)
3H 010441
D.W. GOSSELINK
Organic Vapor Monitor
< *
(Continued from page 1)
brand No. 3520 Organic Vapor Monitor is essentially a single sor bent wafer 3M brand No. 3500 Or ganic Vapor Monitor to which a back-up section and wafer have been added.
The addition of the second char coal wafer provides the No. 3520 monitor with up to four times the sampling capacity of the single sorbent No. 3500 monitor. The fol lowing is a brief discussion on how the No. 3520 monitor works and how it can be used.
M nit rD sign The design of the No. 3520
monitor (Figure 1) is similar to that of the No. 3500 monitor, with the addition of a second sorbent wa fer. Organic vapors pass through the porous windscreen and diffuse through the diffusion chamber to the primary charcoal wafer.
When the primary charcoal wa fer's sampling capability for organ ic vapors is exceeded, the vapors then begin to diffuse through the second diffusion chamber to the secondary charcoal sorbent, where they are collected.
Capacity The sampling capacity of the pri
mary charcoal wafer is defined as the point at which the weight col lection rate is no longer a linear function of sampling time. This is illustrated in Figure 2.
In the No. 3520 monitor, vapors will begin to diffuse to the second ary, or back-up, sorbent when the linear sampling capacity of the pri mary section has been reached. Since the secondary sorbent is fur ther from the windscreen than the primary sorbent, the vapor mole cules have a longer distance to travel to reach the sorbent, and thus the sampling rate is only about 45 percent of that for the pri mary sorbent.
The overall linear sampling ca pacity of the No.`3520 monitor could be up to four times that of the No. 3500 single sorbent moni tor. This increase in capacity is due to th decreased sampling rate of th back-up section, and
the fact that the primary sorbent will continue to sample after its capacity has been reached (see Figure 3).
To further illustrate the in creased capacity, consider that once breakthrough of the front wafer starts, it will take the back up wafer at least twice as long as the front wafer to reach its linear capacity due to the 45 pefcent sampling rate. During that time, the front wafer continues to sample at less than 100 percent efficiency, but the entire monitor is collecting at 100 percent efficiency.
Therefore, the weight collected by the two sorbent wafers within the linear capacity of the No. 3520 monitor could be up to four times the weight collected within the linear capacity of the single wafer
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No. 3500 monitor. Specifically, compounds for which charcoal has a large capacity at the sam pling conditions will be closer to the 3520/3500 weight ratio of four to one, while compounds with a low affinity for charcoal will be closer to a two to one ratio.
The actual linear sampling ca pacity of the No. 3520 monitor will be dependent on such factors as relative humidity, temperature, specific contaminant, contaminant concentration, competing interfer ing compounds, changing ambient conditions, etc.
Sample Validity One of the problems in any sam
pling method is knowing when the capacity of the device is reached. An advantage of the dual sorbent
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.
monitor is that as long as the mdary sorbent has not
hed its capacity, the capacity e entire monitor has not been exceeded.
For the No. 3520 monitor, this will be true if the ratio of the weight of vapor on the secondary sorbent (Ws) compared to the weight of vapor on the primary sorbent (Wp) is less than or equal to 0.5. This Is similar to the technique used for dual section charcoal tubes.
P rformanc The performance of the No.
3520 Organic Vapor Monitor has been documented in both labora tory and field studies. Sampling rates for the No. 3500 monitor can be used for the No. 3520 monitor and are listed in the "3M Organic Vapor Monitor Compound Guide."
Overall accuracy of the No. 3520 monitor meets the OSHA accuracy criteria of + 25 percent at the 95 percent confidence level. Technical reports summarizing both laboratory and field data, as
I as the complete sampling and
lysis guides are available from In a future issue of JobHealth Highlights, the effects of humidity and sampling of mixtures will be discussed.
Product Information
3M Brand 3750/3751 Formaldehyde Monitors
Th Occupational Health and Saf ty Products Division of 3M has determined that the 3M brand For maldehyde Monitors 3750/3751 have a shelf life limitation which ul timately may reduce the accuracy of the monitor readings to below the Occupational Safety and Health Administration's (OSHA) ^25 percent accuracy require ment for air sampling devices. The shelf lif limitation was identified by 3M as a result of its continuing
ality assurance research
I'grams. Our records indicate that most of the formaldehyde monitors pre
viously sold have been used during the effective shelf life period and produced valid formal dehyde concentration readings. Nevertheless, 3M is requesting that all unused 3750/3751 moni tors be returned to 3M for credit. OH&SP sales representatives will be contacting customers with fur ther details.
Additionally, 3M is notifying those users of the 3750/3751 monitors who may be affected by this situation either by letter or by direct contact. Thos customers who are not contacted by 3M are not affected.
3
It is important to note that be cause the chemistry of the 3M brand Formaldehyde Monitor is unique to this specific monitor, this situation does not apply to other 3M diffusional monitors. The 3M brand Organic Vapor Monitors 3500/3510/3520, the 3M brand Ethylene Oxide Monitors 3550/3551 and the 3M brand Mercury Vapor Monitors 3600/3600A are AfOTaffect d and all meet the i-25 percent overall accuracy criteria required by OSHA.
3H 010443
I Certification Insights
Gas/Vapor Respirator Prefilter Approvals
A previous issue of JobHealth Highlights discussed the NIOSH test requirements for gas/vapor respirators. In many instances, it is necessary to use some type of par ticulate r moving prefilter with the chemical cartridge because a dual gas/vapor and particulate hazard exists. This can occur in opera tions such as paint spraying or pesticide application. The three basic categories for NIOSH prefil ter approvals are: 1) dust/fume/ mist 2) paint spray and 3) pesticide.
These prefilters, like the gas/ vapor cartridges or respirators with which they are used are ap proved by NIOSH/MSHA according to the requirements set forth in 30 CFR Part 11. The prefilter/gas and vapor respirator assembly is first
tested for its gas and vapor service life according to the requirements referenced in JobHealth Highlights Volume I, Number 2. If the assem bly passes this test, it is then tested for the particulate contami nant of interest: i.e. dust/fume/ mist, paint spray or pesticide.
Dust/Fume/Mist The test protocols used to make
these measurements are detailed in several sections of 30 CFR Part 11. All the dust/fume/mist prefil ters can be tested and approved for use In the same categories as the standard dust/fume/mist res pirators (see JobHealth Highlights Volume I, Number 3).
The prefilters, when tested in combination with the chemical cartridges, must meet the same ef ficiency requirements as the par ticulate r spirators. The breathing resistance requirements for the combination prefilter and chemical cartridge are slightly higher (see Table 1).
Th most common dust/fume/ mist prefilters are approved for dusts and mists with an "air con tamination level not less than 0.05 mg/m3," or high efficiency prefil ters approved for contaminants with an "air contamination level less than 0.05 mg/m3." Generally, these prefilters are approved for use with all of the gas and vapor
respirators, i.e. organic vapors, acid gas, organic vapor/acid gas or ammonia/methylamine.
Paint Spray The most widely used prefilter is
for paint spray that is used in com bination with organic vapor car tridges or respirators. This combi nation is approved for the gases, vapors, dusts and mists associated with the spray from paints, lac quers and enamels.
NIOSH certification is obtained by testing the organic vapor car tridge for service life per the stan dard carbon tetrachloride test. Then the prefilter is tested using special enamels and lacquers which are sprayed into a test chamber using a paint spray gun.
Air is drawn through the respira tor in this atmosphere to test the prefilter (see Table II). Because of the severe clogging characteristics of this test, the paint spray prefilter is usually lofty on the outer surface
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to reduce pressure drop with a denser back-up filter for particu late efficiency. This allows the prefiiterto meet both the penetra tion and breathing resistance tests.
Pesticides Prefilters used for pesticide ap
plications also must be used with organic vapor cartridges. Pesticide prefilters must meet the silica dust and a shortened lead fume test for penetration, plus the breathing resistance requirements shown in Table I. This combination is then acceptable for most pesticides, except for fumigants.
Service Life Because of the diverse nature of
the applications for the combina tion of cartridges and prefilters, service lives are highly variabl . If ! a lot of particulate is present, it ^ may be necessary to change prefjjfl ters before the chemical cartridg (Continued on page 8)
Particulate Filtration Theory
(Continued from page 1)
S dim ntation
Larger particles have greater mass, are more affected by gravity and thus fall through the air at a given velocity. In most instances, the turbulence and convection currents in a moving airstream are not enough to support them as they fall. For heavy particles above 3 microns diameter, sedimentation rules their behavior.
b. In rtia
If a moving airstream changes direction and takes a quick bend, particles with enough inertia will cross the stream sideways, sometimes to im pact on the nearest obstacle. How much a particle moves out of its former path in a change of airflow direction is based on its size, shape, density and spe d.
inertia affects particles down to about .5 micron. Below this size, particles no longer have enough inertia to move across the airflow streamlines.
c. Diffusion
Air molecules are constantly moving and randomly colliding due to their kinetic energy. In a random system, however, a good share of these molecules may move in the same general direction at the same time. If a particle is placed in the way of these molecules, they will move that particle a distance out of its previous direction. A measure of this movement is the diffusion coefficient.
Particles with large diffusion co fficients are constantly moving within a moving air
stream: upstream, cross stream and downstream. Al though this phenomenon great ly affects particles below .3 microns, particles up to 1 mi cron can also be affected to a lesser degree.
The power of diffusion on parti cles is shown by the speed by which cigarette smoke can leave its thermal convection currents and fill a room in a matter of minutes.
d. Shape
The shape of a particle can also affect the manner in which it moves in the air. Parti cles which have non-spherical, irregular shapes will settle dif ferently from spheres.
An asbestos fiber that is .3 mi crons in diameter and 3 mi crons long will fall through the air due to its mass the same as a sphere of water that is .8 mi crons in diameter. The as bestos fiber, due to its shape, will have a diffusion coefficient the same as a sphere of water that is .54 microns in diameter.
Particles in the lungs The human body "breathing ap
paratus" is not an efficient filter. A majority of the particles entering the lungs are breathed out again.
The capture of particles entering the lungs is dependent on the par ticle characteristics and the breathing rate and capacity of the lungs.
Above 5 microns the nasal and oral cavities take out particles by impaction and sedimentation with better than 75 percent efficiency. Also, exhalation is always much less efficient in filtering particles than inhalation.
The table below is a representa tion of the available data on the greatest percent capture of parti cles in the lungs for mouth inhala tion breathing.
Not every particle that enters the lungs, as shown in this ex ample, is captured in the lungs. Depending on the particle size, 30 to 75 percent of the particles will be breathed out again.
Respiratory filters The most common particulate
filters are of two types: absolute and non-absolute. Absolute filters contain pores which are smaller than the particles to be removed. Their main mechanism is sere ning of the particles. They are ex pensive, have high flow resis tances and clog rapidly.
The common respiratory filters are non-absolute and contain pore sizes many times greater than the particles to be removed. Such fil ters may be 70 to 99 percent air by
(Continued on page 6)
1 7:1
Particulate Filtration Theory__________________ `
(Continued from page 5)
volume. Their main filtration mech anisms tak into account how par ticles behave in moving airstreams.
By placing many small fibers in the path of moving particles, tar gets are presented into which small particles can blunder and large particl s can Impact. By using smaller and smaller fibers forthesam weight and thickness of filter mat, a large fiber surface area is pr sented for particle cap ture by diffusion and impaction.
Th addition of electrostatic charges to the fibers and particles also greatly enhance particle capture.
Non-absolute fibrous filters are pr sentlyth most economical means for respiratory filtration. Th ycanb designed to achieve particulate r moval efficiencies approaching absolute filters with very low flow resistances. These low flow resistances can be main tained over a wide range of particle loadings.
Filtration capture mechanisms In an absolute liquid filter, as
particle size is reduced, an abrupt change in filtration-efficiency oc curs as the particle diameter reaches the pore size diameter of the filter. This is nottrue for air fil tration even for absolute filters.
In air, combinations of capture mechanisms occur at different flowrates and particle sizes to make the use of speciallydesigned, non-absolute, very low flow resistance filters possible. Each of th se mechanisms and their combinations, which make up th sum total filtration efficiency, are well understood.
The ability of researchers to pre dict the initial filter efficiency with accuracy on laboratory test aero sols is excellent.
To simplify the visualization of th different capture mechanisms, imagine a fiber lying perpendicular
to a moving airstream as in Figures 1 -4. A good analogy is that the airstreams are lanes on a super highway, and an obstacle occupy ing more than one lane has been placed across the path of traffic. Each capture mechanism de scribes the probability with which a certain vehicle will collide with the obstacle.
a. Interception capture
Interception is the only capture mechanism in which particles do not deviate from their origi nal streamline paths as shown in Figure 1. As the streamlines approach a fiber, they split and compress as they go around the fiber and rejoin on the other side.
If a particle moving along these streamlines comes within one particle radius of the surface of the fiber, it is captured. As particle size increases and oc cupies more than one stream line, capture becomes more probable.
In our vehicular analogy, a car with the inability to change lanes (rush hour traffic) would end up becoming part of the obstacle, depending upon its size with respect to the obstacle.
b. Sedimentation capture
Sedimentation affects only large particles (2 microns and above). It is a contributor to capture efficiency only at low flowrates. As shown in Figure 2, the particle is affected by gravity, a force completely ex ternal to the filter fiber, and crosses the streamlines to be captured by the fiber.
One could imagine a car, af fected by a large magnet on
one side of the road, crossing lanes and becoming part of the
obstacle. The main effect of sedimentation is that it deter mines which particles enter
the respirator by the ihhalation airflow deflecting themlnto the filter from their settling paths in the environment.
c. Inertial impaction capture
When a particle with sufficient inertia encounters an abrupt change in streamline direction as shown in Figure 3, it will
cross the streamlines and im pact into the fiber. The inertia of the particle depends on its size, density and speed.
In our analogy, a large flat-bed truck loaded with iron pipes
could be moving toward our obstacle at too high a speed.
The driver would find that the force of inertia is a powerful one as the truck becomes part of the obstacle which small
vehicles can easily pass around in their proper lanes.
1 j
d. Diffusion capture
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Smaller particles are constant
ly in motion, due to bombard- f;
ment by air molecules. As
shown in Figure 4, the particles1;
can randomly cross the
streamlines, and their probabil-j
ity of touching the fiber as they .
pass is greatly enhanced as k
their diffusive activity
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' increases.
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This random motion of the ;,;j';; particle is dependent on its ||'
size and the temperature of the) air. Its chances of capture are:!.,
greatly enhanced by al high ^ residence time near a fiber '; (low flow rates) and the availaj bility of fibers in its path.
On the super-highway, a driver!
6 3M 010446 7`! itvf
with an alcohol blood level well above prescribed limits would randomly change lanes while moving in one general direc tion. The chances of being cap tured by interception are increased.
e. Combinations
Vehicle capture in the design of a super-highway is not the goal of designers. To minimize such dangers, the speed, weight and size of vehicles and their control ability are taken into consideration. At high speeds a small, heavy car has the same control problems as a large truck of the same mass. The sum total of possible cap ture mechanisms and their in teractions are more important than the close analysis of each.
For a large heavy particle, the combination of inertial Impac tion and interception is impor tant. For a large, light particle, diffusion and direct intercep tion are important.
For a very small particl diffu sion prevails. If each total capture mechanism iscalculat d to determine its degre of con tribution to capture, then a theoretical sum total filtration efficiency may be found.
In the next issue of JobHealth Highfightswe will discuss the sub jects of filtration efficiency versus particle size and the performance of respirators against mechanically-generated dusts, using silica as an exampl .
Note: These articles are taken from a paper written by Daniel A. Japuntich of the 3M OH&SP Laboratory.
3H 010447 1
New Product Profile
Training Program Acquaints Employees,
Supervisors with Chemical, Physical Hazards
A series of sound/slide and video presentations that inform workers of potential chemical and physical hazards in the workplace are available from 3M's Occupa tional Health and Safety Products
Division (OH&SP). Hazards Awareness Products
educate employees about health
and safety conditions related to chemical agents, hazards control equipment and physical stress. The audio/visual presentations help employers to meet employee training requirements, such as those established by Right-toKnow laws.
Hazards Awareness Products
Gas/Vapor Respirator Prefilters
(Continued from page 4)
is used to capacity. If a high gas or vapor concentration exists, the cartridges may need to be changed first.
Previous articles on particulate filters and gas/vapor service life discussed when to consider re placing such components. As al ways, the major criteria used for servic life determination are de tection of gas/vapor odor or taste, difficult breathing, cartridge damag , or specific limits set by OSHA, the manufacturer or user hav been reached. Of course, the final judge of service life is the re spirator wearer. :
3M offers several prefilter com binations with a maintenance-free
R-JHH-84-2
gas and vapor respirator line. The No. 8732 prefilter has a dust/mist approval for an "air contamination level not less than 0.05 mg/m^. It can be used with the 3M No. 8712 Organic Vapor Respirator, No. 8714 Acid Gas Respirator, No. 8725 Organic Vapor/Acid Gas Respirator and No. 8727 Ammonia/Methyiamine Respirator.
The No. 8741 Paint Spray Res pirator consists of the No. 8742 Paint Spray Prefilter, No. 8744 Prefilter Retainer and No. 8712 Organic Vapor Respirator. The No. 8751 Pesticide Respirator consists of the No. 8752 Pesticide Prefilter, the No. 8744 Prefilter Retainer and the No. 8712 Organic Vapor Respirator.
FROM SCIENCE, SIMPLICITY
are available in complete packages
that include: sound/slide-or 112-
ox 3/4-inch videocassettes; in
structions for use; printed scripts;
test questions and answers to help
ensure program understanding;
and attractive packaging that pro
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identification.
Information is presented in
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Each Hazards Awareness Prod
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visory council of health and safety
professionals. The council helps
ensure that the information pre
sented is up-to-date and technical
ly correct. The Hazards Awareness
Products represent the compila
tion of information from sources
3M believes to be reliable. How
ever, it is up to individual us rsto
determine the suitability of each
presentation for their specific
application.
Hazards Awareness Products
are available in three subject
areas: chemical hazards; physical
stresses; and hazards control
equipment.
Examples of audio/visual pre
sentations covering chemicals
include:
Chemical handling.
Isocyanates.
i ji
Lead.
Methyl Ethyl Ketone.
Vinyl Chloride.
::
Hazards Awareness products '
covering physical stress include:
Video Display Terminals -
Management.
^1
Video Display Terminals--
Operators.
Hearing Conservation. s
Hazards control equipment pijjqjl
grams include:
V
Fire and Extinguishers. '' fj
Laboratory Hoods.
' il:
Oc upational Health and Saf ty Products Divisi n/3M
220-7W, 3M C nter St. Paul, MN 55144
3M 010448
HAZARDS AWARENESS PRODUCTS
%
3M 010449
Why Hazards i Awareness Products?
Concis , understandable and accurate employee training is an important part of successful safety programs. 3M Hazards Awareness Products (HAP) are sound/slide or video presentations that help train supervisors and workers on a wide variety of chemical and physical hazards and assist you in meeting Right To Know and employee training requirements.
3M Hazards Awareness Products were created to accomplish four goals:
1. Educate employees about health and safety hazards related to contact with chemical agents, physical stresses and about equipment used to control hazards.
2. Provide employees with current, accurate, scientific information in easy-to-understand language.
3. Help employers meet good practice and legal requirements for employee training and education.
4. Promote safe work practices to help reduce workplace incidents.
Created and Reviewed by Professionals
In-house technical staff plus an external advisory council of respected health and safety professionals develop and review 3M Hazards Awareness Products materials. Helps assure up-to-date and accurate information. Programs are revised to meet changed requirements. Information is easy to understand and is neither alarming nor inflammatory.
Complete Packages
3M Hazards Awareness Products include high quality audio visual materials, available as sound/slide or 1/2" or 3/4" video cassettes. Printed scripts and comprehension questions/answers help assure program understanding. All 3M Hazards Awareness Products are attractively packaged for easy storage and identification.
Easy to Use -- Easy to Acquire
Hazards Awareness Products are as easy to use as they are to acquire. Purchases can be made by using order blanks in this and other publications, by calling 3M toll free at 1-800-328-1667 or by contacting your local 3M Occupational Health and Safety Products Division professional. Your name, address, a purchase order and good credit are all we need to ship the programs you want.
Wide Variety of Topics
3M Hazards Awareness Products are available in three subject areas:
Chemical Hazards
Physical Stresses
Equipment
i.
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EWM'Vj
3M 010450
Current Available Titles Include:
A Chemicals
Methyl Ethyl Ketone This program describes MEK and presents flamm ability and explosive properties as well as the possibility of dermatitis from repeated skin exposure. Discusses exposure to high concentrations in the air and potential health effects.
Methyl Ethyl Ketone Catalog it's (Length: 10 minutes)
Sound/Slide -- ME35 1/2" Video -- ME12 3/4" Video -- ME34
Isocyanates -- A video tape that discusses basic isocyanate chemistry. Also covers reactivity, safe handling procedures and health hazards that may be associated with exposure.
Isocyanates Catalog tfs (Length: 14 minutes)
1/2" Video -- IS12 3/4" Video -- IS34
Chemical Handling -- A video tape giving basic instructions in safe handling of chemicals. Control techniques such as exhaust ventilation, confinement, respiratory protection and protective clothing are demonstrated.
Chemical Handling Catalog ffs (Length: 18 minutes)
1/2" Video -- CH12 3/4" Video -- CH34
Lead -- This sound/slide show helps meet training requirements of the OSHA standard.
Lead Catalog it's (Length: 13 minutes)
Sound/Slide -- LE35 1/2" Video -- LEI 2 3/4" Video -- LE34
Vinyl Chloride -- Designed for workers who use polyvinyl chloride and may come into contact with very low concentrations of vinyl chloride. Vinyl Chloride's toxic and carcinogenic properties are discussed.
Vinyl Chloride Catalog it's (Length: 9 minutes)
Sound/Slide -- VC35 1/2" Video -- VC12 3/4" Video -- VC34
Equipment
Fire and Extinguishers -- A presentation that first explains the elements of fire and fuels then demonstrates four types of hand held fire extinguishers. Provides good basic training in fire and extinguisher safety.
Fire & Extinguisher Catalog ffs (Length: 14 minutes)
Sound/Slide -- FE35 1/2" Video -- FE12 3/4" Video -- FE34
Laboratory Hoods -- This program was made for scientists and technicians who use laboratory hoods. Actual operation of several types of hoods is demonstrated with smoke. Consequences of improper hood use are demonstrated.
Laboratory Hood Catalog ffs (Length: 18 minutes)
1/2" Video -- LH12 3/4" Video -- LH34
Physical Stresses
Video Display Terminals -- Managers -- A presentation for managers and supervisors that explains why some VDT operators have work related health complaints. The ionizing radiation question is addressed and suggestions for correcting some ergonomic and office environment conditions are made.
Video Display Terminals -- Managers -- Catalog it's
(Length: 11 minutes)
Sound/Slide -- VM35 1/2" Video -- VM12 3/4" Video -- VM34
Video Display Terminals -- Operators -- This show answers operators' questions about ionizing radiation and explains why some operators may experience fatigue. Some practical suggestions are made for overcoming fatigue.
Video Display Terminal Operators Catalog it's
(Length: 10 minutes)
Sound/Slide -- V035 1/2" Video -- V012 3/4" Video -- V034
Hearing Conservation -- A program explains noise exposure and hearing loss, as well as appropriate personal protection and engineering controls. Excellent as an introductory training session or as a supplement to an existing hearing conservation library.
Hearing Conservation Catalog it's (Length: 18 minutes)
1/2" Video -- HC12 3/4" Video -- HC34
3M 010451
HAZARDS 1 AWARENESS PRODUCTS
IMPORTANT NOTICE
The 3M Hazard Awareness Products represent the compilation of information from sources 3M believes to be reliable. However, 3M does not warrant the accuracy or sufficiency of the underlying information or as to whether such information is or is not adequate to insure the safety of persons or property.
WARRANTY: 3M Company will not be liable in either tort or contract for any loss or damage, direct or indirect, consequential or incidental, arising out of the
use of or inability to use this product, except for personal injury,
FOR MORE INFORMATION and assistance on 3M Brand Hazard Awareness Products call OH&SP Technical Service Toll Free, 1-800-328-1300. In Minnesota call (612) 733-6234. In Canada, contact 3M Canada Inc., P.0. Box 5757, Terminal A, London, Ontario, Canada N6A4T1. (519) 451-2500.
R-HAP-B4 (5410) BE
Litito in USA wilh 3M Offset Plates. Film and Proofing Systemjg
Occupational Health & Safety Products Division/3M 3M Center St. Paul, MN 55144
3M
3H 010454
Benefits to You and Your Employees
3M Hazards Awareness Products help you meet OSHA training and state Right-To-Know requirements. You save time and money with these moderately priced programs. Programs contain current, factual information that has been reviewed by health and safety profession als. Each employee receives
the same information and questions/answers are pro vided to help you determine individual comprehension. This helps document train ing. Programs are suited either for small groups or larger audiences, making training easier for trainers or supervisors.
3M 010453
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products HazadsAwiw*
Methyl
Ethyl
Ketone
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3M 010452