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FILE NAME: Goodyear (GY) DATE: 1963 DOC#: GY090 DOCUMENT DESCRIPTION: National Safety Council Publication - Dust, Fumes, and Mists in Industry DATA SHEET 531 DUSTS, FUMES, AND MISTS IN INDUSTRY Published by National Safety Council 425 North Michigan Avenue, Chicago 60611 Introduction 1. Industrial dusts, mists, and fumes, their hazards and their con trol, are discussed in this data sheet,* The infofmohon end recomeieodotioni contained in (Ml publication hova been cMnplted from tovrcei believed to b e rofiqbta and to tepreienl fee be a current opinion on the tubject No warranty, guarani#, or representation is mod* by the Notional Safety Coun The general principles presented can be applied to evaluate most in dustrial situations involving these cil a t to ih* absolute correctness or iirffklency of any reprMcntatioi contained In this and other publications, and the Notional Safety Council assumej no retpomibiCty In connection therewith] nor f a n H b e assumed that oB acceptable safety measures are con tained in this (and oihor publication*!, or that artier or additional air contaminants and to determine the need for controls. This data sheet measures mey not bo required under particular or eaccpHono) con dition* or cireumitaoces is intended to guide employers, plant safety engineers, personnel man agers, and supervisors. 2. A plant manager who believes that he has a toxic or irritating dust problem should consult a competent industrial hygienist. Such help may be obtained from his own company, insurance carrier, private consul b. The particular exposure must be evaluated by dust counts or by chemical analyses of air samples, and a step-by-step analysis of the operations must be made to find tants, or state health or labor the areas where employees are ex agency. 3. To protect the health of em ployees who work where a dust, fume, or mist created by a manufac posed to hazardous amounts of the material. The operational anal ysis also should determine how the dust, fume, or mist is dispersed. turing process is released into the at mosphere, a control program may be required. In such a case, three steps must be taken: a. The properties of the specific dust, fume, or mist and its possible physiological effects on employees must be ascertained. c. Appropriate methods o f control must be provided where indicated. The type and extent of controls will depend upon the physical, chemical, and toxic properties of the dust, fume, or mist, the evalua tion made of the exposure, and the operation that disperses the con taminant. The extensive controls 'This data sheet covers toxic and irri tating air contaminants encountered in industry. It does not include a discussion of the explosive properties of such air borne particulate matter. reeded for lead oxide dust, for example, would not be needed for limestone dust, since much greater quantities of limestone dust can be tolerated. 4. Except for the skin diseases, most occupational diseases are ac quired by inhalation of material. Lung tissue is by far the most efficient medium the body possesses for ab sorbing materials. In addition, the surface area of this lung tissue aver ages 55 square meters or about 590 square feet. 5. Certain dusts that reach the lungs can pass directly into the blood stream and be absorbed over a long period of time. Others may stay in the lungs and set up local irritant or dam aging action. 6. Toxic and irritant dusts can also be ingested in amounts that may cause trouble. If toxic dust swal lowed with food or saliva is not sol uble in body fluids, it is eliminated directly through the intestinal tract, Toxic materials that are readily sol uble in body fluids can be absorbed in the digestive system and picked up by the blood. 7. A third way in which toxic and irritant substances may enter the system is skin absorption. Many or ganic compounds, such as TNT, cy anides, and most aromatic amines, amides, and phenois, can produce systemic poisoning by direct contact with the skin. Contact of toxic and irritant dusts with the skin also may result in skin irritation. 8. As compared to inhalation, N A T IO N A L S A F E T Y C O U N C IL 1963 GY04-084854 GY-033842 however, both ingestion and skin contact are of relatively minor impor tance in industrial poisoning inso far as dusts, fumes, and mists are con cerned. Origin and Properties of Particulate Matter 9. The dust normally present in the atmosphere has a beneficial effect in screening out some of the harmful rays of the sun. Inhalation of this dust may not be harmful because either the dust may be nontoxic or body mechanisms capture, remove ' and eliminate or isolate the small amounts of dust trapped in the lungs. Air pollution, radioactive fallout, pollens, and similar conditions may have an adverse effect on some indi viduals. Also, when the air breathed contains excessive amounts of dust, the body has difficulty in handling the load and dust may remain in the lungs. Sources 10. The term dust as used in in dustry is generally applied to air borne solid particles that range in size from 0.1 micron to 25 microns (one micron = I /10,000 centimeter = 1/25,000 inch). Process dusts below 0.5 micron in size are rare. Dusts above 5 microns in size usually will not stay air-borne long enough to present an inhalation problem. 11. Dust may enter the air from various sources. It may be dispersed when a dusty material is handled, such as when lead oxide is dumped into a mixer or a product is dusted with talc. Dust may be formed and dispersed when solid materials are reduced to small sizes in processes such as grinding, crushing, blasting, shaking, and drilling. In these proc esses, the mechanical action of the grinding or shaking device supplies a source of energy to disperse the dust formed (Figure 1). 12. When a solid such as a.metal is heated to a temperature high enough to volatilize it, the volati lized matter later condenses in cooler air to form a fume (Figure 2 ). The solid particles that make up a fume are extremely fine, usually less than 0.5 micron in size. In some cases, the hot material reacts with the air to form an oxide. Examples are lead oxide fume from smelting and iron oxide fume from arc welding. Also, a fume can be formed when a material such as magnesium metal is burned or when welding or gas cutting is done on galvanized metal. 13. A mist is formed when a finely divided liquid is suspended in air. An example is the oil mist pro duced during cutting and grinding operations. 14. Smoke may be formed by the incomplete combustion of organic materials. Smoke generally contains droplets as well as dry particles. Tobacco, for instance, produces a wet smoke composed of minute tarry droplets. The size of the particles contained in tobacco smoke is about 0.25 micron. 15. Radioactive dust may be dis persed in the same ways as other in dustrial dusts. Radium, thorium, and other radioactive elements are pres ent in extremely minute amounts in the atmosphere. Figure 1. Dust from foundry send is generated during the shake-out of costings. The mechanical action of the shake*out machine disperses the dust. Path taken by the dust particles OS they are drawn into the hood shows the efficiency of the local exhaust system (Courtesy American Foundrym en's Society) Magnitude of particles 16. When a solid is broken into finely divided particles, its surface area is increased many times. For ex ample, 1 cubic centimeter (0.061 cubic inch) of quartz in the form of a cube when crushed into 1-micron , cubes will give 1012 (1,000,000, 000,000 or one trillion) particles with a total surface area of 6 square meters (9,300 square inches), as compared with 6 square centimeters (0.930 square inch) for the original cube. 17. When a solid is broken into finely divided particles, the volume occupied by the mass is also in creased because of the voids between the particles. A dust concentration of 50 million particles per cubic foot of air (mppcf), resulting from 1 cubic centimeter of material reduced to particles 1 cubic micron in size, will occupy an air space of 20,000 cubic feet. !8. Even smaller amounts of toxic dusts, fumes, and mists, will make a workroom atmosphere hazardous. For example, the threshold limit value for lead, as adopted by the American Conference of Govern mental Industrial Hygienists, is 0.2 milligram per cubic meter of air (m g/cu m ), which is 0.0000002 ounce per cubic foot. Therefore, the dispersion of only 0.002 ounce of lead will be enough to give the threshold limit value of 0.2 mg/cu m of dust or fume in an air space of 10,000 cubic feet (280 cubic me ters). The concentrations that may be present in the workroom without harm to health are different for differ ent substances. 19. A person with normal eye sight can detect dust particles as small as 50 microns in diameter. Smaller air-borne particles can be detected individually by the naked eye only when strong light is reflected from them. Dust of respirable size (below 10 microns) cannot be seen without the aid of a microscope. 20. Most industrial dusts consist of particles that vary widely in size, with the small particles greatly out numbering the large ones. Conse quently, with few exceptions, when dust is noticeable in the air around an operation, probably more in v i sible dust particles than visible ones are present. Separation in air-borne dust 21. Dust in the air may or may not have the same composition as its parent material. The determining factors are the particle size and density of each component in the original mixture, and the hardness of the materials (hard materials will resist the pulverizing action of a mechanical device.) 22. For example, foundry mold ing sand contains a large percentage of free silica (quartz) with a lower percentage of clays. Most of the clays consist of fine particles that can be air-borne, but most of the quartz particle's are too large to be air borne. The air-borne dust, there fore, as compared with the original mixture, may contain a much higher percentage of clays and a much GY04-084855 GY-033843 lower percentage of free silica. 23. Dust particles are, of course, attracted by gravity. Their settling rate through still air will vary with their size, density, and shape. Mi croscopically small particles settle out more slowly than larger particles be cause of their relatively minor densi ty and because of their being in fluenced by Brownian movement. Mineral particles larger than 10 mi crons will settle out relatively fast. The estimated settling rates for silica dusts in still air are given in Table I. TABLE I. SETTLING RATES FOR SILICA DUSTS Size in Microns 0.25 0.50 1.00 2.00 5.00 Time to Fall 1 Foot (m inutes) 590.0 187.0 54.0 14.5 2.5 24. Most of the particles in air borne industrial dusts are small. Be cause of air currents, the fine parti cles in dust clouds at an operation will remain suspended in the work room air for relatively long periods of time. The smaller dust particles, moreover, will travel farther away from their point of origin than will the larger particles so that the far ther dust is from its source, the greater the percentage of small par ticles it contains. Inhalation of Dusts, Fumes, and Mists 25. With the exception of such fibrous materials as asbestos, dust particles must usually be smaller than 5 microns in order to enter the alveoli or inner recesses of the lungs. Al though a few particles up to 10 thicrons in size may enter the lungs occasionally, nearly all the larger particles are trapped in the nasal passages, throat, larynx, trachea, and bronchi, from which they are expec torated or swallowed into the diges tive tract. 26. When larger particles of cer tain toxic dusts are trapped in the upper respiratory passages, they can be absorbed by the body fluids in the nasal passages and in the digestive tract before they are elimi nated. Hence the final toxic effects of larger dust particles may be de layed. The larger particles of irri tant dusts can cause immediate effects in the upper respiratory system. 27. Ragweed pollen, which var ies from 18 to 25 microns in diameter can cause hay fever from its action in the upper respiratory system. This type of dust and other allergenic types, as well as bacterial and irritant dusts, can cause difficulty even in the larger air-borne sizes. 28. When dust-laden air is in haled, some of the larger particles are trapped by the hairs in the nose. Other dust particles are removed from the air as it passes over the moist mucous membranes of the nose, throat, and other portions of the upper respiratory system. 29. T h e . bronchi .and. pther .ter. spiratory passages are covered with a large number of tiny, hairlike cilia or microscopic whiplashes, which aid in the removal of dust trapped onjhese moist surfaces. The cilia, all bending" in one direction, make a fast stroke toward the mouth and a slower return stroke. This action tends to push mucous and deposited dust upward to the mouth so that the particles can be ex pectorated or swallowed. Retention of dust 30. Many studies have been made in an effort to determine the amount of dust that is retained in the lungs, but there is no simple answer to this question. It has been shown that the size of the dust particles, the rate of respiration, the density of the dust in the air, the efficiency of the dust-catching mechanism, and probably many other factors are in volved. Sizes of particles inhaled 31. Although an occasional dust particle of larger size will enter the lungs, particles less than 3 microns in diameter are the most likely to do so and thus have the greatest oppor tunity to cause a physiological re action. In silicotic lungs, for example, dust particles under 3 microns greatly outnumber larger ones, and many particles are less than 1 micron. 32. In the case of very fine fibrous asbestos dust, an exception occurs in the size of particles in haled. Many fibers up to 100 microns long have been found in the lungs Figure 2. Metal volotilized by the heat of weld ing later condenses to form a fume. O n this bench-welding Installation, fumes ore removed at their paint of origin by a properly located local exhaust installation. (Courtesy American Foundrymen's Society) erf asbestos workers at autopsy. A typical fibrosis caused by asbestos is produced by fibers ranging from 20 to 50 microns in length, but only a few microns wide. .Physiological effects 33. The physiological reactions caused by the inhalation of air borne particulate matter will vary with different types of dusts, fumes, and mists. The reactions include: a. The cardiopulmonary reaction which consists of the pneumoco nioses, such as silicosis and asbestosis. In certain cases, specific types of lung pathology result, and the heart may be affected (cor pul monale) when the fibrosis is ad vanced. In other cases, there is mainly just an accumulation of a relatively inert dust in the lungs. b. The systemic reactions which are caused by toxic dusts of such ele ments as lead, manganese, cad mium, and mercury, by their com pounds, and by certain organic compounds. c. Metal fume fever which results from the inhalation o f finely divid ed and freshly generated fume of zinc or possibly of magnesium or of their oxides. This is a transient condition. d. Allergic and sensitization reactions which may be caused by inhala tion of, or skin contact with, such materials as organic dusts from flour, grains, and some woods and dusts of a few organic and inor ganic chemicals. e. Bacterial and fungus infections which occur from inhalation of dusts containing active organisms, such as wool or fur dust contain- G Y 0 4 -084856 GY-033844 Substance TABLE II. SELECTED IN D U ST RIA L M IN ERA L DUSTS Description and Uses ThreshoIcTTimit in Million Particles per Cubic Foot of Air* Chalcedony Chert CRYSTALLINE FREE SILICA " ^ . . (SiOQ, including microcrystalline forms) ... -*-- ------------------2 -----------------------r-r:1.1-' , A heat-resistant, chemically inert form of microcrystalline quartz. A decorative material. Rare in industry. A micrccrystalline form of silica. An impure form of flint used in abrasives. Calculate Troni formula;* 4 250 % Si02 + 5 Cristobalite A crystalline form of free silica, extremely hard and inert chemically; very resistant to heat, Quartz in refractory bricks ond amorphous silica in diatoma* ceous earth ore altered to cristobalite when exposed to high temperatures (cal cined). Cristobalite is extensively used in precision casting by the hot wax process, dental laboratory work, and certain specialty ceramics. Flint A microcrystalline form of native quartz, more opaque and granular than chalcedony. Used as an abrasive and in ceramics. Jasper A mkracrystalline impure form of silica similar to chert. Used for decorative purposes. Rare in industry. Quartz Vitreous, hard chemically resistant free silica, the most common form in nature. The main constituent in sandstone, igneous rocks, and common sands. Tridymite Vitreous, colorless form of free silica. Formed when quartz is heated to 870 C 0,598 R. I Tripoli A porous, siliceous rock, resulting from the decomposition of chert or siliceous (Rottenstone) limestone. Used as a base in soap and scouring powders, in metal polishing, os a filtering agent, and in wood and paint fillers. A cryptocrystailine form of free silica. -- -- -------- - * --1--------- AMORPHOUS FREE SILICA ` (Noncrystalline) I Diatomoceous earth A soft, gritty amorphous silica composed of minute siliceous skeletons of small Amorphous ^ 20 mppcf aquatic plants. Used In filtration and decolorization of liquids, insulotion, filler Calcined -- use formula: in dynamite, wax, textiles, plastics, paint, and rubber. Calcined and flux-cal 250 cined diatomaceous earth contains appreciable amounts of cristobalite, and dust levels should be the same os for cristobalite. % Si02 + 5 Silica gel A regenerative absorbent consisting of the amorphous silica manufactured by the action of HCI on sodium silicate. Hard, glossy, quartz-like in appearance. Used in dehydrating and in drying and os a catalyst carrier. 20 mppcf Asbestos Clays Feldspar SILICATES ;t~. 3jm*\ r-r* : . ,,r.. ; , (Compounds made up of silicon, oxygen, ond ane or more metals with or without hydrogen. These dusts cause nonspecific dust reactions, but generally do not interfere with pulmonary function or result in disability.) . .. - mt .. - - - - - , - J" - ;----T -----i-- A hydrated magnesium silicate in fibrous form. The fibers are believed to be 5 mppeft i the more hazardous component of asbestos dust. A great variety of aluminum---silicate bearing rocks, plastic when wet, hard 50 mppeft \ when dry. Used in pottery, stoneware, tile, bricks, cements, fillers, ond abra sives. Kaolin Is one type of clay. Some day deposits may include appreciable f i quartz. Commercial grades of clays may contain up to 20 per cent quortz. Most abundant group of materials, composed af silicates of aluminum with 50 mppeft sodium, potassium, calcium, and rarely barium. Most economically important \ mineral. Used for ceramics, glass, abrasive wheels, cements, insulotion, and fertilizer. *These threshold limit values were adopted by the American Conference of Governmental Industrial Hygienists in 1962. Threshold limit values obtained from formula apply to all the substances in "Crystalline Free Silica" group. tThreshold limits given for substances in "Silicates" group are for compounds containing less than I per cent crystalline silica. For compounds containing more than 1 per cent silica, calculate threshold limit from formula: 250 ' % SiOv + 7 GY04-084857 GY-033845 TABLE II. SELECTED INDUSTRIAL M IN ERA L DUSTS (Continued) SILICATES " (Compounds made up of silicon, oxygen, and one or more metals with or without hydrogen. These dusts cause nonspecific dust reactions, but generally do nol interfere with pulmonary function or result In disability.) Fuller's earth Kaolin Mrca Prtland cement Silicon Carbide (Carborundum) Tale Vermiculite A hydrated silica--alumina compound, associated with ferric oxide. Used as a filter medium and as a catalyst and catalyst carrier and in cosmetics and Insecticides. A type of day composed of mixed silicates and used for refractories, ceramics, tile, and stoneware. A large group of silicates of varying composition, but similar in physical proper ties. All have excellent cleavage and can be split into very thin sheets. Used in electrical insulation. fine powder containing compounds of lime, alumina, silica, and iron oxide. Used as construction material. Bluish-black, very hard crystals. Used as abrasive and refractory material. 50 mppeff 50 mppeff 20 mppeff 50 mppeff 50 mppeff A hydrous magnesium silicate used in ceramics, cosmetics, paint, and phar maceuticals, and as a filler in soap, putty, and plaster. An expanded mica (hydrated mognesium-aluminum-lron silicate). Used in light weight aggregates, insulation, fertilizer, and soil conditioners, as a filler in rubber and paints, and as a catalyst carrier. 20 mppeff 50 mppeff (Threshold limits given for substances in "Silicates" group are for compounds containing less than 1 per cent crystalline silica. For compounds containing more than 1 per cent silica, calculate threshold limit from formula: 250 % SiOa 4- 5 ing anthrax spores or wood bark or grain dust containing parasitic fungi. f. Irritation of the nose and throat, which is caused by acid, alkali, or other irritating dusts or mists. Some dusts such as soluble chromate dusts may cause ulceration of the nasal passages or even lung cancer. g. Damage to internal tissues, which may result from inhaled radioac tive materials such as radium and its daughter products and from other radioisotopes that emit highly ionizing radiation. Pneumoconioses 34. Pneumoconiosis comes from three Greek words that mean "lung," "dust," and "abnormal condition." The present generally accepted meaning of the word is merely "dusty lung." The kind of dust inhaled determines the type of condition or injury. A number of organic dusts are capable of producting lung dis eases, but not all these diseases are classified as pneumoconioses be cause they are not all a "dusty con dition" of the lung. 35. In very rare cases, enough dust had been inhaled to cause mechanical blockage of the air spaces. Flour dust has been known to cause this condition. Some dusts may be essentially inert and remain in the lungs indefinitely with no recognizable irritation, and a few like limestone dust may be gradually dissolved and eliminated without harm. Silicosis 36. The most important lung dis ease caused by the inhalation of mineral dust is silicosis--well-known in industries where crystalline free silica dust is present, such as foun dries, glass manufacturing, granite cutting, mining, and tunneling in quartz rock. It is found throughout the world, and in the past it has had many names, such as miner's asth ma, grinder's consumption, miner's phthisis, potter's rot, and stone mason's disease. The same occupa tional disease, however, is meant by all these names, and it is caused by dust from crystalline free silica, us ually quartz (see Table II). 37. Although considerable prog ress has been made in dust control in industry, men still develop sili cosis in plants and on jobs where dust control is not adequate. Engi neering control is stili the basic means of preventing this disease, and dust control equipment and proce dures must be carefully maintained. 38. Definition, Silicosis has been defined as "a disease due to breath ing air containing silica (SiO-,) characterized anatomically by gener alized fibrotic changes and the de velopment of miliary nodulation in both lungs, and clinically by short ness of breath, decreased chest ex pansion, lessened capacity for work, absence of fever, increased suscep tibility to tuberculosis (some or all of which symptoms may be present), and by characteristic X-ray find ings.''* 39. Factors of influence. Sili cosis has been known to manifest itself after widely differing periods of exposure to silica dust. Appar ently, development of the disease depends upon: a. The amount and kind of dust in haled. b. The percentage of free silica con tained in the dust. c. The form of the silica. d. The size o f the particles inhaled. e. The duration o f the exposure. "Report (Joint) of the Committee on Pneumoconiosis and the Committee on Standard Practices in Compensation of Occupational Diseases." Year Book, 1933, American Public Health Association, 1790 Broadway, New York 19. p 100. GY04-084858 GY-03 f. The powers of resistance of the individual concerned. g. The presence or absence of a com plicating process such as infection. 40. Many theories have been ad vanced over the years to explain why crystalline free silica acts as it respiratory diseases. Chest X-rays may show an enlarged heart as a re sult of the body's attempts to over come the resistance of restricted blood vessels in the lungs. Pulmonary tuberculosis is a frequent complica tion and occasionally results in death. a result, the available functional volume of the lung is reduced. 51. In some advanced cases, the fibrous tissue will slow down or even prevent the diffusion of oxy gen from the lung to the blood in the capillaries, and the blood in the does in the lungs. Theories have been based on the hardness of the material and the effect of sharp edges, solubility phenomena, elec trochemical action of the crystals, and immunological reactions. 41. It is believed now that the fibrosis produced is caused not by 46. Detection and development. Silicosis may be detected by chest X-rays in each of the three stages. However, X-rays alone are not sufficient for a positive diagnosis, for the shadows may be due to a variety of other conditions, includ ing infection or another type of area will not be completely oxy genated. The fibrous tissue can also affect the blood vessels by oblitera ting them or cutting down the flow of blood. All these effects tend to limit the rate at which oxygen is supplied to the body tissues. Emphy sema is the most obvious symptom. the hardness or sharpness of the particles, but by a combination of slight solubility with a physiochemical effect and an immunological effect--but no one is certain of the exact mechanism of the disease. Ex perimental work on the reasons for the development of silicosis is still going on in various parts of the world. If the precise mechanism of silicosis could be determined, better medical preventive measures might be developed and possibly a cure could be found. 42. Three stages. Silicosis is gen erally classified in three separate stages by medical authorities. More sophisticated classifications are some times used for the various X-ray stages and complications of the dis ease, but for a basic understanding the three stages give a good break down. 43. The first stage of the dis ease produces no disability. The affected man can carry on his work as well as ever. Frequently, the in dividual is not aware that anything is wrong, and the disease is revealed only by opaque nodular shadows on a chest X-ray coupled with a known exposure to crystalline free silica. pneumoconiosis. The individual must have had a definite exposure to free silica, because only it can cause sil icosis. The complete occupational and medical history of the employee must therefore be evaluated before a conclusion can be reached. The cor relation of chest X-ray findings and physical disability may be poor in many cases. 47. From most industrial expe rience, silicosis seldom develops in less than five years and in many cases may take 20 years or longer to become disabling. 48. The development of silicosis in its earliest stage is not perceived by the individual. The disease cannot be cured by any means yet known. Tuberculosis is more prevalent in persons with silicosis, but the inci dence is decreasing, as it is in the general population. 49. Men with early signs of sili cosis are able to perform their duties and are not a menace to other em ployees, for it is not a contagious disease. A perceptible X-ray change is not grounds for assuming disability because most people show chest changes with advance in age even without exposure to dust. Where 52. As the inhalation of silica continues over the years, the amount of fibrous tissue will, of course, in crease, with the ultimate result that the lungs will not readily oxygenate sufficient blood for the body's needs. Then when the oxygen demand of the body is increased by exertion, the individual will feel distress with shortness of breath. 53. Amorphous free silica differs from crystalline free silica in physical structure and in physiological effects. In the amorphous state, molecules of silica exist in random orientation, which may be caused by natural forc es to form opal and diatomaceous earth (kieselguhr). Amorphous silica may be converted by artificial proc esses into such forms as silica gel, silica fume, and fused silica or quartz. 54. If amorphous silica is heated to a high temperature, as in calcining, forms of crystalline free silica called cristobalite and tridymite result. These intermediate forms of amor phous silica are known as crypto crystalline (ultra-microcrystalline. ) Inhalation of these crystalline forms can readily cause diatomite pneu moconiosis. 55. When diatomaceous earth is 44. In the second stage, respira tion may be affected in some persons there is a known exposure to silica dust, however, men with early signs calcined, particularly in the pres ence of a trace of alkaline flux, but not in all by any means. Labored breathing on heavy exertion usually is noted first, and a dry cough also may be present. 45. The third stage can develop after the second stage even though the of silicosis should be seen periodi cally by a physician. 50. Action of silica on the lungs. At the points in the lung where silica dust is deposited and accumu lated, a fibrous tissue develops and appreciable quantities are converted to cristobalite. As a result of studies made by the U. S. Public Health Service, it has been recommended that the threshold limit value for crude or amorphous diatomite be individual has been removed from ex posure to silica dust. However, the progress of the disease will be slow er without continued dust exposure. grows around the particles. This fibrous tissue is tough like scar tissue. It is not as elastic as normal lung tissue, does not permit the ready placed at 20 mppcf (see Table II), but that the atmospheric concentra tion for dust containing cristobalite be kept under 5 mppcf. Breathing may become severely passage of oxygen and carbon diox 56. Various commercial products 1 labored. The worker is far below nor ide, and as it proliferates, cuts down containing particles of silica under mal physically and is susceptible to the amount of normal lung tissue. As 1 micron in size are available. The GY04-084859 GY-033847 physiological effects of these prod ucts have not been well defined. Until more experience with human beings is available, it is believed these products should be handled with care. 57. Free silica and silicates. Free silica is uncombined silicon dioxide (SiO->). Silicates contain silicon and oxygen combined with other ele ments in a more complex molecule. Analyses of minerals, particularly in geological reports, are sometimes re ported as percentages of oxides, which may include Si02, A 120 3, K20, Fe20;1. The Si02 reported in such chemical analyses is the total of the silicon dioxide present, both the free silica (if present), and the silica combined in the mineral. Such analyses are not reliable indications of the silicosis potential of the material. 58. It is uncombined or free silica that is most important in industrial dust exposure. So that an exposure can be properly evaluated, the per centage of uncombined silica must be determined by petrographic analysis using a polarizing microscope or, preferably, by X-ray diffraction analyses and special analytical chemical procedures. 59. There has been some experi mental evidence that some dusts may tend to inhibit the action of silica on the body, but this inhibiting action is so slight and uncertain that it must be discounted in practice. In fact, there also is evidence that the nonsiliceous components of a dust mixture containing free silica may provoke a disabling condition more severe than that caused by the silica acting alone. 60. With the exception of asbes tos and some talcs, the silicate dusts do not ordinarily cause a serious disabling lung condition such as is produced by free silica. Much higher levels of silicate dusts than of free silica dust can be tolerated. 61. In many industries, men have worked with silicate dusts that con tained no free silica without devel opment of disability or of nodulation in the lungs. The X-ray may show shadows indicating dust deposits in the lungs, but the pneumoconiosis is essentially harmless. However, par tially disabling pneumoconioses have been reported where men have worked for long periods of time in very high concentrations of certain silicate dusts. 62. Disabling pneumoconioses from exposure to abnormally high concentrations of mica, tremolite talc, and kaolin dusts have been de scribed in the literature. The clinical signs are not the same for these sili cate dusts as for free silica, but the symptoms can be marked. 63. The body does not have ade quate defense against indiscrimi nate amounts of dust of any kind. Therefore, although specific symp toms have not been described for many mineral dusts, the general ex perience would indicate that dust levels should be kept within thresh old limit values or below (Table II). Asbestosis 64. Asbestos is a general term ap plied to several minerals having a fibrous character. These asbestos minerals are hydrated silicates of magnesium with variable amounts of iron, calcium, sodium, potassium, and aluminum present as impurities. 65. Asbestos when inhaled pro duces fibrous tissue in the lungs of both men and animals. It has been shown that fibers of asbestos must be present for the production of asbestosis. Other silicate minerals of the same chemical composition but nonfibrous in form produce no re action or a relatively mild reaction, but not the severe reaction of fibrous asbestos dust. 66. These facts lead to the con clusion that asbestosis is mainly the result of physical irritation of the lung tisssue and not of a chemical action, which is thought to be one of the causes of silicosis. It is suspected that lung cancer may be induced by asbestos. However, there is no im pressive amount of evidence to sup port this assumption. 67. The fine air-borne fibers of asbestos can pass through the upper respiratory tract to the lower parts of the lungs to cause irritation and to form "asbestos bodies" where the fibers are encapsulated. This diffuse fibrosis probably begins as a "collar" about the terminal bronchioles. There is evidence that other min erals having a fibrous character can produce a reaction similar to that of ashestos. Fiber glass, however, does not produce such a reaction. 68. Following a study by the U. S. Public Health Service of the asbestos textile industry, * it was recommended that the dust concen tration be kept at less than 5 mppcf to prevent asbestosis. Evaluation of an exposure to abestos dust is based on the total amount of dust because it has proved out in practice that if the fine dust is kept below the suggested threshold limit, the concen tration of injurious fibers will also be kept within safe limits. Talcosis 69. As used in industry, "talc" is a very general term. To the geolo gist, talc is a hydrous magnesium sili cate, which may be a relatively pure mineral or may be mixed with tremo lite or with dolomite depending upon where it is mined. The term "talc" is applied commercially to carbonate mixtures that have the same general feel and physical properties; it also is applied to pyrophyllite, a hydrous aluminum silicate, which frequently is mixed with a high percentage of quartz. The free silica generally found with pyrophyllite can cause silicosis. It is therefore essential to know which talc is being used in order to evaluate a specific dust ex posure. 70. Talcosis is usually associ ated with tremolite talc. This disease produces changes in the lungs and symptoms similar to those of as bestosis. Anthracosilieosis 71. Anthracosilieosis, a complex form of pneumoconiosis, is a chronic disease caused by breathing air con taining dust that has free silica as one of its components and that is generated in the various processes involved in mining and preparing anthracite (hard coal)** and, to a lesser degree, bituminous coal. 72. The disease is characterized anatomically by generalized fibrotic changes throughout .both lungs and by the presence of excessive amounts *Dreesen, W. C.. Dalla Valle. J. M., Edwards, T. I., Miller, J. W., and Sayers, R. R., A Study of Asbestosis in the As bestos Textile Industry, U. S. Public Health Bulletin No. 241, U. S. Public Health Service, Washington 25, D. C. 1938. **Anthracosilieosis among Hard-Coal Miners, U. S. Public Health Bulletin No. 221, U. S. Public Health Service, Wash ington 25, D. C,, 1935. GY04-084860 GY-033848 of carbonaceous and siliceous ma terial. Such lungs on autopsy are coal black. 73. Symptoms found in early stages of the disease are shortness of breath, cough with a coal-black sputum, pain in the chest, and in some cases physical weakness. In the advanced stages, there are loss of weight and decreased capacity for work, partly caused by pulmonary infection (frequently bronchitis), and in some cases there may be heart failure. 74. Experiments with animals showed that mixtures of coal and quartz produced more fibrosis than did quartz alone. The harmful effects of coal dust do not come only from the silica in the dust. Coal dust alone in very heavy concentrations over a period of many years can cause breathlessness and ventila tory impairment. TABIE III. SELECTED TOXIC DUSTS A N D FUMES Substance Description and Effects Threshold Limit in Milligrams per Cubic Meter of Air' Antimony Arsenic Barium (soluble compounds) Beryllium Chromic acid and Chromates Cyanide (as CN) Gray metal often associated with lead and arsenic. Hcrordous from inhala tion and ingestion. Soluble salts may cause dermatitis. Silvery brittle crystalline metal. Haz ardous from inhalation and Ingestion. Usually encountered as arsenic tri oxide. Soluble barium chloride and sulfide are toxic when taken by mouth. Light weight, gray metal. The metal, low-fired oxides, soluble salts, and some olloys are toxic by inhalation. Red, brown, or black crystals. Caustic action on mucous membranes or skin. Nonvolatile cyanides are ingestion haz ards. Cyanides inhibit tissue oxidation upon inhalation and cause death. 0.5 0.5 0.5 0.002 O.l 5.0 (skin**) Miscellaneous pneumoconioses Dinitrobenzene Yellowish crystal. Hazardous from skin 1.0 (skin**) 75. Even though a dust is classi absorption, Inhalation, and ingestion. fied as harmless, excessive amounts of it can lead to trouble by causing a Fluorides Inorganic fluorides are highly irritant 2.5 and toxic. pneumoconiosis or simply by me chanically irritating the walls of the respiratory system. Moreover, even though there is no chemical or physi cal irritation, mechanical plugging of the lungs and interference with their Hydroquinone Iron oxide fume Colorless hexagonal crystals. Contact 2.0 with the skin may cause sensitization and irritation. Excessive exposure to dust may cause corneal injury. Major sources are cutting and welding. 15.0 ordinary processes can result. Mica Lead dust and kaolin dust are two good examples of dusts that ordinarily are Lead fumes and lead compounds cause 0.2 poisoning after prolonged exposure. Most important means of entry into considered benign but in excessive , body is inhalation. Skin absorption is amounts can cause a troublesome pneumoconiosis. of significance only from such organic compounds as lead tetraethyl. 76. Mica pneumoconiosis has been observed in grinding operations where mica dust, but no free silica was present. There were marked changes in the X-ray pictures of the Lead arsenate Magnesium oxide fume White crystals--highly toxic. White powder, inhalation of freshly generated fume may cause metal fume fever. 0.15 15.0 lungs and some disability. The cases occurred where the dust exposures were massive over many years., 77. Kaolinosis has been described as a condition induced by inhalation ` These threshold limit values were adopted by ihe American Conference of Govern mental Industrial Hygienists in 1962. of dust released in the grinding and handling of kaolin (china clay). curred in the grinding of aluminum pure form of aluminum oxide. It is Where the cases occurred, dust levels parts and castings, it can therefore essentially a diffuse interstitial fi of several hundred million particles be concluded that reasonably good brosis and marked associated em per cubic foot of air were common. control will prevent harm from alu physema, with a complete absence 78. Aluminum dust is not consid minum dust. of any nodular fibrosis. It definitely ered to be harmful except where exposures are massive. Without ad 79. Bauxite pneumoconiosis (Sha does not occur from the use of cor ver's disease) has been found only undum grinding wheels or from other verse effects, aluminum dust inhala in workers exposed to fumes contain forms of aluminum oxide. f tion has been used as part of an ing aluminum oxide and minute or 80. Some pneumoconioses may endeavor to prevent silicosis. Also ultramicroscopic silica particles aris show marked shadows on an X-ray without adverse effects, extensive ing from smelting bauxite in the film; these shadows, without the nec exposures to aluminum dust have oc manufacture of corundum, an im- essary information on the exposure GY04-084861 GY-032 TABLE III. SELECTED T O X IC DUSTS A N D FUMES (Continued) Substance Description and Effects Threshold Limit in Milligrams per Cubic Meter of Air* tiie lungs are somewhat similar to the shadows from silicosis. Because of this, similarity, differential diagnosis is often difficult, and heavy exposures to medicolegal problems. It is there Manganese Silvery gray metal. Hazardous from 5.0 inhalation of fumes or dust. fore important to control iron oxide exposures even though siderosis is Pentach(aropheno( Dark-colored flakes. Harmful dust. Emits toxie fumes when heated. 0.5 (skin**) not disabling. 83. Limestone, marble, lime, gyp sum, and portland cement dusts ap Phosphorus (yellow) Poisonous mainly by inhalation. Severe 0.1 parently have no serious effect even burn hazard from skin contact. after long exposures. Also, many sili Picric add Yellow crystals or liquid. Explosive-- particularly metallic salts. Emits toxic fumes on decomposition. 0.1 (skin**) cates and other minerals have not caused impairment in individuals in haling the dusts, and the resulting Selenium compounds Toxicity vories somewhat according to 0.1 the solubility of the specific com pneumoconioses are generally classed as benign. pound. Often causes contact dermatitis. Toxic Dusts and Fumes Sodium hydroxide White deliquescent pieces or lumps. 2.0 Has severe action upon all body tissue. 84. Systemic reactions are caused by toxic dusts and fumes of various Tellurium Similar to selenium chemically and in 0.1 physiological effects. elements and their compounds and by certain organic compounds. All metallic fumes are irritating, especi Titanium dioxide White ta black powder. Considered in 15.0 the nuisance category. ally when freshly generated. Indus trially important metals and their Trinitrotoluene Colorless to yellow monoclinic crystals. Emits toxic fumes of oxides of nitrogen when heated to decomposition. Highly poisonous explosive. 1.5 (skin**] compounds that can have a toxic effect when the dust or fume is in haled include arsenic, antimony, cad mium, chromium, lead, manganese, mercury, selenium, tellurium, thall Uranium Highly toxic and a radiation hazard that requires special consideration. 0.05 (soluble com pounds) 0.25 (insoluble com pounds) ium, uranium, and a few others.'1' 85. The effect of some metals, such as magnesium and zinc, appears to be transient. Only limited data Vanadium penfoxide Yellow to red crysfols. Acts chiefly as an irritant to the con|unctiva and re spiratory troct. 0.5 (dust) 0.1 (fume) are available on the exotic and rare earth metals. 86. Although the dusts and fumes Zinc oxide fume Amorphous white or yellow powder. 5.0 The powder is essentially nontoxic, but freshly generated fume moy cause metal fume fever. from metals with low toxicity do not need as much attention as the dusts and fumes from highly toxic metals, they should not be neglected or disregarded. The metals with low Zirconium com pounds Most compounds are insoluble and 5.0 have low toxicity. toxicity are controlled more readily because greater amounts can be tol- _ _erated, .but their dusts and fumes ` These threshold limit values were adopted by the American Conference of Govern mental Industrial Hygienists in 1962. " The word "skin'' in this table indicates that the substance can penetrate the skin to contribute to the exposure. should be kept at reasonable levels since excessive amounts of any of them can be harmful (Table III). Lead poisoning of the individual, may be alarming in a general X-ray screening pro gram. On clinical examination of in dividuals showing the X-ray mark ings, however, often no disability or symptom can be found. 81. These shadows are frequently encountered when the dusts contain atoms of relatively high molecular weight because the heavier atoms are fairly opaque to X-rays. Insoluble barium dusts and tin oxide dusts, for example, can show very marked shadows on X-ray films without pro ducing signs of significant pathology (barium dust that is soluble in the body fluids can give a toxic reaction). 82. Iron oxide, particularly ex cessive fume from welding opera tions, may produce siderosis with a pigmentation of the lungs (black in welders and red in iron ore miners) without disability. The X-ray shad ows produced by the iron oxide in 87. Although extremely severe cases of lead poisoning are rare in industry today, lead exposures must be controlled to prevent even the moderate symptoms, which can be ` See Ihe following National Safety Council Data Sheets; Antimony and Its Compounds, 408; Arsenic and Its inor ganic Compounds. 499; Cadmium, 312: Lead, 443, Magnesium, 426; Manganese, 306; Mercury, 203; Titanium, 485; Zinc and Zinc Oxide, 267; Zirconium Powder, 382. GY04-084862 GY- troublesome. Inhalation of the dust never been demonstrated in individ tible individuals. Examples of such of lead compounds is the most com uals mining or handling ore only. agents are certain animal products, mon mode of entry of lead into the There is no evidence of intoxication foods, drugs, and chemicals. The system. Ingestion of lead compounds from the ingestion of beryllium bodily systems usually involved in can add to the problem if personal oxide, beryllium metal, or any of allergic reactions, which may be quite | hygiene is poor. Workers should the beryllium alloys. Only the in severe, are the skin, respiratory sys therefore be encouraged to wash halation of beryllium-bearing dusts tem, and gastrointestinal system. Oc thoroughly before eating, and lunch or fumes produces systemic disease. casionally, two or more systems are rooms should be segregated from Accordingly, control of such dusts involved. Some of the allergic reac work areas. and fumes at or below concentra tions are dermatitis, hay fever, asth 88. It should be recognized that tions specified by ACG1H threshold ma, and hives. lead is a normal constituent of plants limit values* is to be recognized as 99. Usually, the victim is subject and animals. People ingest and ex a basic protective measure. ed to a series of exposures without crete lead daily even though they 94. When the soluble salts of any reactions during which sensiti are not exposed to lead in their beryllium, especially beryllium fluo zation is built up. These exposures daily work. The body can handle ride, come in contact with cuts or may occur continuously for years. and eliminate small amounts without abrasions on the skin, deep ulcers Then, at the end of the "incubation harm. When intake rates exceed the may be formed that heal very slowly. period," which varies according to normal excretion level, build-up oc Complete surgical excision of the ul the individual, a reaction is pro curs in the body. There is a safe level of absorption, and if the con cer is sometimes required in order to effect healing. duced. 100. For a true allergic reac centration of lead dust in the air of work areas is kept below the threshold limit, there should be no difficulty. Metal fume fever 95. Metal fume fever is an acute condition of short duration caused tion two factors are required: a. A history of prior exposure to the material involved (sometimes not known by affected employees). 89. The importance of maintain by a brief high exposure to the b, A "challenge dose" of the mate ing the concentration of air-borne freshly generated fumes of metals rial, which provokes the allergic re lead at a very low value stems from such as zinc or magnesium or their action. lead's high toxicity and its tendency, oxides. Symptoms appear from four 101. Continuous exposures may in small amounts, to accumulate in to twelve hours after exposure and act as "desensitizing doses," and the human system. When lead ab consist of fever and shaking chills. under these conditions an allergic sorption in the body reaches a suf There is complete recovery usually individual may work without incident . ficient degree, symptoms of poison within one day, and ordinarily the for long periods of time only to find f ing or intoxication appear. employee can return to the same job that re-exposure after removal from without recurrence. However, after the sensitizing material (such as after a period in which there has been no a vacation) causes an allergic re Beryllium intoxication contact with the fume, for example, sponse to recur. 90. Beryllium intoxication is a after a layoff, resumption of exposure 102. Medical and engineering rec severe systemic disease that can re is likely to bring on an attack. ommendations to prevent allergic sult from the inhalation of dust or 96. To cause metal fume fever, reactions are based on prevention of fume of metallic beryllium, beryl heavy concentrations of fumes are exposure by means of personal pro lium oxide, and soluble beryllium required. Zinc oxide fume is the tective equipment, ventilation meth compounds. most common source, but cases ods, or removal of sensitized individ 91. There are two forms of the caused by the inhalation of fumes uals from the exposure. disease. One is an acute form of from magnesium oxide, copper oxide, chemical pneumonitis with cough, and other metallic oxides have also Infections pain, difficulty in breathing, cyano been reported. The condition does Infection and pneumoconiosis sis, and loss of weight. In the chronic not occur from the handling of these 103. The presence of pulmonary type, known as berylliosis, there oxides in powder form. Apparently, disease that significantly interferes may be loss of appetite and weight, it results only from the inhalation of with the natural defenses against weakness, cough, extreme difficulty extremely fine particles freshly foreign particles may increase sus in breathing, cyanosis, and cardiac formed as fume (nascent fume). ceptibility to pneumoconiosis. Con failure. Formerly, mortality was 97. Nickel, mercury, and other versely, a pneumoconiotlc lung is high in chronic beryllium intoxica metals may also produce a fever fol more prone to infection. For exam tion, and many who survived suffer lowed by the toxic effects of the ple, tuberculosis occurs more fre from pulmonary distress. element. quently among silicotics than among 92. Individual susceptibility ap parently is an important factor in Allergic Reactions normal persons. Severe disability or death of a silicotic, when caused by the development of the disease. In 98. When in the form of dust, a pulmonary conditions, usually results many instances, one employee has large number of materials may cause from complicating tuberculosis either ( developed the severe symptoms various allergic reactions in suscep- alone or combined with other infec while other employees doing the same work have shown no signs of *Threshold Limit Values for 1962, tions. disability. published by American Conference of Governmental Industrial Hygienists, 1014 Bacteria and fungi 93. Beryllium intoxication has Broadway, Cincinnati 2, Ohio. 104. The possibility of lung in- GY04-084863 g y -o: fections from the inhalation of bac teria and fungi exists in several in dustries. Pulmonary anthrax from the inhalation of dust containing an thrax spores has occurred among em ployees engaged in the handling of wool and the crushing of bones from infected animals. 105. Fungi (molds) growing on grain have been found in sputum of workmen shoveling the grain and are believed to be the cause of out breaks of respiratory disorders. Fungi found in sugar cane residues (bagasse) are believed to be part of the cause of bagcusosis. Fungal spores formed under the bark of some trees have been blamed for respiratory difficulties among em ployees who debark dry logs. 106. Although the incidence of occupationally related bacterial and fungal infections is found to be relatively low, the respiratory effects can be troublesome and, in the case of pulmonary anthrax, even fatal. The basic methods of control are the same as those for the pneumoconio sis producing dusts, but sterilization and disinfection must be added. Radioactive Dusts* 107. A radioactive contaminant may offer a chemical toxicity hazard in addition to an ionizing radiation exposure, and it may be present as a gas, dust, fume, or mist. 108. Radioactive contaminants taken into the body may be deposited in various organs whore they consti tute sources of internal radiation. The chemical characteristics of the radioactive contaminant or isotope determine the organ in which it will be deposited. The excretion rate is also dependent upon the chemical nature of the isotope, because the radioactive isotopes of an clement follow the same metabolic process as do the stable isotopes of that ele ment. 109. If a radioisotope has been deposited in the body, the internal exposure is regarded as continuous until the isotope is lost by radiologi cal or biological decay. In some cases, exposures may last a lifetime. For a detailed discussion of radio activity and an extensive bibliography, see the chapter entitled "Ionizing Radia tion" in the Accident Prevention M'anual for Industrial Operations, published by the National Safety Council. 110. Since radioisotopes are se lectively taken up in individual or gans, they may cause only localized irradiation. The radiosensitivity of the organ dictates the extent of the hazard of a particular radioactive substance. Solubility and particle size determine how much of the ac tive material will gain access to and remain in the blood stream and var ious organs. 111. If radioactive air-borne con tamination is known to be present, control measures are mandatory. If the presence of contamination is un known but suspected, sampling must be done to determine whether or not air-borne concentrations of the ra dioisotope are below the threshold limit value. 112. Good personal hygiene and good operating techniques are much more important in the handling of radioactive materials than in the han dling of most other materials used in industry. 113. Engineering controls for radioactive dusts are similar to those for other dusts and depend primarily upon capture at the point of genera tion. The difference lies in the fact that controls for radioactive dusts must be extremely efficient. Thresh old limit values for radioactive par ticulate matter are very low, and in some cases 100 per cent efficiency in capture and retention is required. Permissible Dustiness 114. Threshold limit values of mineral dusts and toxic dusts--that is, time-weighted average concentra tions considered permissible for ex posures of eight hours per day, live days per week--have been pub lished by the American Conference of Governmental Industrial Hygien ists. These values have been obtained from the experience of many groups in industry and from laboratory studies on animals. They are re viewed annually and changed as nec essary on the basis of experience. 115. These values are set only as guides for the best practice and are not to be considered absolute values. There is reasonable assur ance that occupational disease will not occur if exposures are kept be low these levels. On the other hand, occupational disease is likely to de velop in some people if the recom mended levels arc exceeded consis tently. 116. The currently recommended threshold limits of particular dusts can be found in the most recently published ACGIH list, or the ACG1H can be consulted directly. Information on threshold limits also can be obtained from the National Safety Council, state occupational health agencies, the American Indus trial.Hygiene Association, and com pensation insurance carriers. 117. No one knows the exact concentration at which men will start to develop silicosis, asbestosis, or lead poisoning. With some toxic dusts, however, experience has been wide enough to establish the present threshold limits as fairly reliable. 118. For example, if the level of lead in a workroom is kept below 0.2 mg/cu m, experience has shown that cases of lead intoxication will not occur. Experience also has shown that many men can tolerate lead levels well above 0.2 mg/ cu m without signs of trouble. Mineral dusts 119. In the United States, the threshold limits for mineral dusts are expressed in millions of par ticles per cubic foot of air (mppcf). The concentration of a mineral dust is determined by counting dust par ticles that arc less than 10 microns in size in an aliquot sample after sampling a known volume of air in a known volume of liquid. In some European countries, mineral dusts are weighed, and permissible levels are expressed as milligrams of dust per cubic meter of air (m g/ cu m ). In England and some other areas, the number of particles per cubic centimeter is the current basis of measurement. 120. In comparing United States and foreign dust counts, it is helpful to keep in mind that 100 particles per cubic centimeter is equivalent to approximately 3 million particles per cubic foot. 121. It is difficult to compare dust counts with results obtained on the basis of weight. However, with either type of measurement, a thresh old limit can be set as an objec tive. Experience has shown that maintaining dust levels below the recommended threshold limits has resulted in a great decrease in the incidence of occupational diseases. 122. Threshold limits are based on the percentage of free silica where this substance is the impor- GY04-084864 GY-0 tant constituent of the dust. If sili cosis is to be prevented, these limits must not be exceeded. Concentra tions of dusts containing less than 5 per cent free silica should not exceed 50 million particles per cubic foot (mppcf). Concentrations of dusts containing from 5 per cent to 50 per cent free silica should not exceed 20 mppcf. Dusts containing more than 50 per cent free silica should be kept at concentrations below 5 mppcf. 123. As more experience accu mulates, original threshold limits sometimes can be modified. In some cases, it has been necessary to lower the limits, for the objective is to protect the more susceptible indi viduals. In a few cases, experience has shown that the limits were too stringent, and it has been possible to raise the limits to allow for more reasonable controls. Toxic dusts 124. In all countries, threshold limits for toxic dusts are expressed in milligrams per cubic meter of air. With toxic dusts, the average levels must be kept below the sug gested threshold limits. In fact, it is advisable to keep the levels of toxic dusts as low as practical in the specific circumstances. Little in the way of experience or data will be developed if the levels are kept unusually low, but few if any cases of occupational disease will occur from these dusts. Nuisance dusts 125. Even though a dust may be considered generally innocuous and not be recognized as the direct cause of a serious pathological condition, its level should be kept as low as is practical. Dust levels well below the suggested threshold limits arc desirable. 126. A concentration of 50 mppcf is suggested as the threshold limit for a number of nuisance dusts. With good engineering prac tice, there is no need for this level to be exceeded. Any reduction be low this level will increase the com fort of employees and improve plant housekeeping. Methods of Control 127. Various methods of con trolling dusts, mists, and fumes are available. Basic engineering dictates where possible an operation should Figure 3. Each of these grind ing wheels is partially enclosed by an exhaust hood. Efficient local exhaust Is achieved by draw ing the dust into the hoods, through branch ducts, and into a central duct which leads to the collection point. (Courtesy American Foundrymen's Society) be made dustless through control at foundry and the use of water in the source. This method is always drilling. the most effective, for it either com e. Local exhaust systems may he in pletely prevents the contaminant stalled with virtually full or partial from entering the workroom atmos enclosure. Examples are an ex phere or limits to safe levels the haust hood on a grinding wheel amounts that do escape. In addi ( Figure 3) and an exhaust hood at a bagging or filling operation. tion, this method is generally the f. General room ventilation can be least expensive. used to dilute the dust by adding 128. When control at the source large quantities of air and thus is not possible, other methods may preventing build-up of dust con have to be considered. Any one or centrations. Examples of this meth a combination of the following types od are roof fans and roof moni of dust control may be needed to tor windows. But it generally is limit the exposure. inefficient and expensive to attempt a. The dusty operation may be en closed, with or without a local to control contaminants by dilu tion. exhaust system. An enclosed op g. The dusty work may be performed eration generating large quantities of dust usually needs to be ex at night or on week-ends to reduce the number of employees exposed. hausted. or the dust will leak into Cleaning dust accumulations from the surrounding atmosphere. Ex overhead beams, for instance, is ' amples are sandblast cabinets or preferably done during a weekend. sandblast rooms and the dry boxes The employees who are exposed used to handle radioactive materials. should wear appropriate type of b. The dusty work may be performed respiratory protective equipment in a separate building or may be h. The number of working hours at isolated by partitions to reduce the the particular exposure can be re number of employees exposed to duced. However, other methods of the dust. The employees who are control are preferable. still being exposed should be pro tected by respiratory protective equipment. i. Use of respiratory protective equip ment approved for the exposure by the U.S. Bureau of Mines can c. A less hazardous material may be give excellent protection against substituted. For instance, steel shot all types of dust, but in most cases may be used instead of silica sand should be considered as a tem in abrasive cleaning. porary control measure. In a d. Keeping the materials moisl may sandblast room, however, air-sup be a practical means of control. plied helmets usually are required Examples are the careful and prop continuously during operations er wetting down of aisles in a Respiratory protective equipment. GY04-084865 g y -o: b. Ducts, to carry the contaminated 138. Enough air must be sup r Figure 4. Since this swing-frame grinder Is used in a variety of positions, the local exhaust sys tem must be adjustable. The flexible duct (A) permits movement o f the exhaust hood (B) os needed. (Courtesy American Foundrym en's So ciety) nevertheless, should not be con sidered as a universal substitute for adequate local exhaust re moval, elimination of the con taminant, or containment. 129. Many states and municipal ities have dust control codes ox or dinances with which employers must comply. In a few states, for instance, written approval of plans must be obtained before a local exhaust system is installed. Each employer should therefore know his state and municipal dust control re quirements. 130. Each type of exposure must be considered separately. For ex ample, a local exhaust system suit able for welding or cutting of steel might not be satisfactory for weld ing or cutting steel coated with red lead. air to a central point. c. Dust and fume collectors, to clean the air before it is discharged. d. A fan and motor to keep the air moving through the system. 133. While each of these parts should be designed and installed to perform its required function with respect to the system as a whole, design of the exhaust hood demands the greatest care. The degree of control of dust at the point o f gen eration or dispersion is determined by the shape of the hood or degree of enclosure, the location of the hood and its distance from the dust source, and the rate of flow of air into the hood. A poorly designed hood can make an exhaust system ineffective. 134. There is no standard hood. In every case, the hood must be designed to fit the specific opera tion and to make the exhaust effec tive without interfering with the operation (Figure 4 ). Among the factors to be considered are the nat ural air currents in the room and other exhausts or windows in the area. 135. The hood should be shaped to conform to the shape of the area of dust production so as to secure reasonably uniform air velocity over this area. A hood which does not en close the process should be placed with its opening as close as possible to the point of generation of the dust or fume (Figure 5) because the velocity of the air in the zone of the hood influence is inversely plied to the room from the outside to replace the air that is removed by the exhaust system. Otherwise, there will be interference with other exhaust systems in the area or with gas or oil flames in nearby furnaces. Great difficulty has occurred where an exhaust system caused a slightly negative pressure in a room con taining a gas furnace. As a result air came down the furnace flue, and the area became contaminated with carbon monoxide from the fur nace. 139. With small exhaust systems, air that is removed usually can be replaced by infiltration flow, but larger exhausts may need a positive air supply (Figure 7 ). An adequate supply of make-up air, tempered when necessary, is one of the most frequently overlooked fundamentals of ventilation. Air always should be supplied in quantities equal to or slightly in excess of the amounts exhausted. 140. The size of the ducts, the type and size of the dust collectors, and the type and size of the fan and motor (explosion-proof where necessary) are among the other fac tors which must be considered in the design of an exhaust system. Pre venting ignition of a combustible Local exhaust systems proportional to the square of the 131. A local exhaust system for distance from the face of the hood. the control of an industrial dust or fume traps the air contaminant 136. The hood opening, or part of it, should be located so as to re near its source so that an operator ceive directly dust that is thrown standing at the process is not ex off along a well-designated path posed to harmful concentrations. (Figure 6 ). The directional energy The system should be designed to of the material can thus be used enclose the process as completely for its own capture. Air movement as possible. This method usually is must always be past the employee, preferred to general ventilation, then over the dust source, and di but should be Used only when the rectly into the face of the hood. contaminant cannot be controlled 137. The fan should be of suffi by isolation, process revision, or cient capacity to maintain the re substitution of less harmful mate quired air capture velocity at the rials. Even though a process has point of generation of the dust. In been isolated, it may still require ternal baffles should be installed to a local exhaust system. 132. A local exhaust system con sists of four principal parts: a. Hoods or other inlets, into which the air-borne contaminant is guide the air flow where it is most needed. Flanges should be provided wherever possible to reduce the air flow from areas where no dust is produced; that is, air-flow contours Figure 5. To achieve the proper exhaust air velocity, the hoods for these barrel furnaces can be positioned as close to the furnace spouts as practical. Such positioning is made possible by mounting the hoods on a trolley suspended from an overhead track. (Courtesy American drawn. should be controlled. Brake Shoe Co.) GY04-084866 g y -o: contaminant is a prime safety con as readily as dry dust-- advantage of a thorough pre-employment history sideration. Since discussion of the this fact should be taken whenever with the occupational background subject of exhaust system design is possible. Carloads of dry minerals given in detail. Chest X-rays should beyond the scope of this data sheet, in some cases may be wetted down be made of all new employees who an experienced ventilation engineer before they are unloaded. Aisles in will be working in dust exposures should be consulted. foundries should be wetted down that could produce disabling pneu 141. Also, information can be to prevent dispersal of the dust by moconiosis. The examining physi secured from several excellent pub traffic. Water sprays can be used cian should decide on placement of lications, one of which is the current at some operations. Wet drilling those who have pneumoconiosis, edition of Industrial Ventilation-- methods can be used for rock drill active or significant past tubercu A Manual of Recommended Prac ing to wet the dust as it is formed. losis, abnormally low timed vital e tice, published by the American Conference of Governmental Indus trial Hygienists. Another is the chapter entitled "Local Exhaust Systems and Ventilation" in the Accident Prevention Manual for Industrial Operations, published by the National Safety Council. General ventilation 142. Where it is impossible, im practical, or too expensive to con trol dust entirely by local exhaust systems, general ventilation must be used as a supplement or a substitute. It should be noted, however, that where local exhaust systems can be used, they will always do a better job than general ventilation. 143. General ventilation requires the introduction of enough clean air from the outside to dilute the con taminated atmosphere to a safe level. This method requires larger volumes of air than local exhaust systems to accomplish the same con trol, and will not be effective uni formly over a large room. It should be considered only when local ex haust systems require such assis tance. This is usually where the sources of dust are widely dispersed and each is small. 144. General room exhaust and supply fans must be carefully in stalled. Eddy currents, which will Personal protective equipment 146. Respirators of various de signs are available which will give protection against toxic and pneu moconiosis-producing dusts by fil tering out the contaminant from the air. The U. S. Bureau of Mines has set up performance standards for dust respirators and gives approval to respirators that meet these stand ards. It is important that a respirator be used only for the particular dust exposure for which it has been approved. 147. Although approved respira tors will give excellent protection when properly fitted, they should be used only as supplements to other methods of control or for short or occasional exposures and not as primary controls. 148. Proper fitting of a mechani cal filter respirator to the face of the individual is most important because a small space between the facepiece and the face will permit dustladen air to bypass the filter. 149. Respirators must be in spected and cleaned daily. Filters should be replaced before they be come so plugged with dust as to seriously increase resistance to breathing. Proper filters for replace ment should be available. Medical program capacity, or serious pulmonary dis eases. 153. Periodic physical examina tions, including chest X-rays, should be made of employees exposed to toxic dusts, fumes, and mists. Such checks can help find incipient cases of poisoning in which symptoms are slight, and the X-rays can pick up early symptoms of lung condi tions. Suitable preventive measures can then be taken. 154. Routine periodic clinical examinations, stipple cell counts, porphyrin determinations, and propperly evaluated blood and urine lead level measurements, are prac tical methods for checking em ployees exposed to lead. If unsafe exposures are found, further en vironmental control is mandatory. Affected employees should, of course, be given proper medical treatment. 155. Medical controls for em ployees who work with radioactive dusts must be more stringent than the medical controls for most dusts. An extensive bioassay sampling program is nearly always required. Other control measures 156. Although the most effective method of control is to prevent con tamination of workroom air and thus prevent inhalation of harmful interfere with local exhaust systems, must be avoided. Employees must not be exposed to excessive con 150. An effective medical con1 trol program will help prevent cases of occupational disease. Such centrations of dust as the dust-laden air moves away from the point of a program can also serve as a check on the engineering controls because generation, and sufficient makeup symptoms of exposure in a group air from the outside must be sup of workers will indicate a failure plied to the room to replace the air that must be corrected. The extent that is exhausted. The location and of the medical program will depend design of the source of supply are upon the seriousness of the expo important. It is becoming common sures. practice to supply clean, tempered air to the work zone for controlled dilution. Wet methods 151. An industrial hygiene pro gram should parallel the medical program. Both are essential to pro tect the health of employees. 152. The physical examination Figure 6. The centrifugal force created by this grinding wheel causes the generated dust to travel in a well-defined path. To prevent disper sion of the dust, the exhaust hoad is placed di rectly in the dust stream, cfase to its source. 145. Wet dust is not dispersed for new employees should include (Courtesy American Foundrymen's Society) GY04-084867 GY-033855 dusts, the importance of personal hygiene should not be overlooked. The periodic medical examinations provide a good opportunity for in struction of employees in various personal hygiene measures. 157. Good washing facilities, clean lunchrooms, and clean work clothes can help prevent additional, even though minor, exposure to toxic materials. Also, contaminated work clothes should not be taken home where a toxic dust could contaminate the home or expose other members of the family. These recommendations become manda tory where such materials as beryl Figure 7. In this foundry, local exhaust hoods are installed over each station having a shell-molding machine and glue press. Adequate make-up air is supplied from ventilating duct situated between molding machines and presses. (Courtesy American Foundrym en's Society) lium and radioisotopes are handled. BIBLIOGRAPHY Accident Prevention Manual for Industrial Operations, National Safety Council, 425 N. Michigan Ave., Chi cago 11. Anthracosilicosis Among Hard-Coal Miners, U. S. Public Health Bulletin N o. 221, U. S. Public Health Service, Washington 25, D. C. 1935. Brandt, A. D., Induslrial Health Engineering. John Wiley and Sons, Inc., 440 4th Ave., New York 21. 1948. Data Sheets, National Safety Coun cil: No. 408, Antimony and Its Com pounds No. 499, Arsenic and Its ganic Compounds Beryllium (in preparation) No. 312, Cadmium No. 443, Lead N o. 426, Magnesium No. 306, Manganese No. 203, Mercury No. 485, Titanium No. 267, Zinc and Zinc Oxide No. 382, Zirconium Powder Inor Dreesen, W. C,, Dalla Valle, J. M., Edwards, T. 1,, Miller, J. W., and Say ers, R. R., A . Study of Asbestosis in the Asbestos Textile Industry, U. S. Public Health Bulletin No. 241, U. S. Public Health Service, Washington 25, D. C. 1938. Drinker, Philip, and Hatch, T. F., Industrial Dust, 2nd Edition. Mc Graw-Hill Book Co., Inc., 330 W. 42nd St,, New York 36. 1954. Elkins, H. B., Chemistry of Indus trial Toxicology, 2nd Edition. John Wiley and Sons, Inc., 440 4th Ave., New York 21. 1959. Hunter, Donald, The Diseases of Occupations, 2nd Edition. Little Brown and Company, 34 Beacon St., Boston. 1957. Hygienic Guide Series. American Industrial Hygiene Association, 14125 Prevost, Detroit 27. Industrial Ventilation-- A Manual of Recommended Practice, 7th Edition. American Conference of Governmen tal Industrial Hygienists, Committee on Industrial Ventilation, Box 453, Lansing, Michigan. 1962. Johnston, R. T., and Miller, S. E. , Occupational Diseases and Indus trial Medicine. W. B. Saunders Com pany, Philadelphia. I960. Lanza, A. J., Silicosis and Asbes tosis. Oxford University Press, New York. 1938. Patty, F. A., editor, Industrial Hy giene and Toxicology, Volume I, 2nd Edition, 1958, and Volume II, 2nd edition (in preparation). Inter science Publishers, 250 Fifth Ave., New York 3. "Report (Joint) of the Committee on Pneumoconiosis and the Commit tee on Standard Practices in Com pensation of Occupational Diseases," Year Book. American Public Health Association, 1790 Broadwav, New York 19. 1933. ' Review of Literature on Dust, U. S. Department of the Interior, Bureau of Mines, Bulletin 478. U. S. Government Printing Office Office, Washington 25, D. C., 1950. ACKNOWLEDGMENT The text of this data sheei, which re places Health Practices Pamphlet No. 4, was prepared by the Health Commitlee of the Chemical Section. National Safety Council. The content has been extensively reviewed by members of the National Safety Council, representatives of chapters of the American Society of Safety Engi neers, medical authorities, and industrial hygienists. The data sheet has been ap proved for publication by the Publications Committee of the Industrial Conference, National Safety Council. GY04-084868 GY-02 IM S7009 Rep. Printed in U.& A. Stock No. 123.04*531 GY04-084869 GY-033857