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562 IRVING HARTMANN
B. MINIMUM EXPLOSIVE CONCENTRATIONS
There is probably greater variation in the values reported by different vestigators of minimum explosive concentrations of dust clouds than for an|, other explosibility factor, because the uniformity of the dust cloud, which varij|
TABLE 5 Minimum Explosive Concentrations of Metal Powders
Powder
Aluminum, atomized Aluminum, stamped Antimony Dowmetal Iron, carbonyl Iron, hydrogen reduced Iron, carbon reduced Magnesium, atomized Magnesium, milled Magnesium, stamped Manganese
Tin
Minimum concentra-
tion (mg./liter)
40 35 420 20 105 120 250 10 20 20 125 100 190
Powder
Thorium Thorium hydride Titanium Titanium hydride Uranium Uranium hydride Vanadium Zinc Zirconium Zirconium hydride Ferrosilicon (88% Si) FeiTotitanium, low-carbon Magnesium-aluminum f50-50)
MinimuilJ concenttf.
(mg./U|||
75*ii 80*ii 45! rp 70 df
60*4
600$ 220 480
40-ijjg 85f| 425;H 140S
soil
TABLE 6 Minimum Explosive Concentrations of Dusts in Plastics Industry
Powder
Minimum concentration
(mg./liter)
Resins
AUyl alcohol
35
Cellulose acetate
Cellulose propionate Coumarone-indene
25 25 15
Lignin
40
" PEenoluT
............. 25----------
Pine-rosin base
55
Polyethylene
20
Polystyrene
15
Polyvinyl acetate
35
------SHeUadrrosihrgum___________ 15
Urea
Vinylbutyral
Resin ingredients
Hexamethylenetetramine
Pentaerythritol
Phthalio anhydride
Rennet casein
Resin stabilizer
Powder
Minim|
concentratiqj (mg./lite||
. .Molding compositions
. .no]
Cellulose acetate Cellulose acetate butyrate
25,^
Ethyl oellulose Methyl methacrylate Phenolic
2qrj .30*S|i
--Polystyrene------- ---------- ------
Rubber, .synthetic
'1
Urea
755M
. 'UWtsjks
iSIl
Fillers for molding compositions Ground alpha pulp Ground cotton flock Ground wood flour
. HAZARDS OF COMBUSTIBLE DUST
563
according to the experimental procedure, is very important in the determination, and because different interpretations were placed on what constitutes a feeble ^explosion, such aB is obtained at these low concentrations. For aluminum powder jthe published values16 range from 7 to 432 mg. per liter and for sugar dust they range from 10.3 to 370 mg. per liter.8 A dust concentration of 1 mg. per liter is approximately equal to 1 oz. per 1,000 cubic feet.
Tables 5, 6, and 7 list selected values of minimum explosive concentrations of metal, plastic, agricultural, and miscellaneous dusts and powders determined in
TABLE 7 Minimum Explosive Concentrations of Agricultural and Other Dusts
f Agricultural produots
Minimum concentration
(mg./liter)
Miscellaneous dusts
Minimum
concentration (mg./liter)
Alfalfa 'Almond flour Cellucotton Citrus peel, dehydrated plover seed
ornstarch, ordinary Cornstarch, modified Corncob, ground, dried '-arlic, dehydrated Guar Beed . Himr/dehydrated....... * j;ea, dehydrated ~eanut cracklings `Rice oybean
ugar ng kernels heat, cracked
jyhieat flour
35 70 60 50
Aluminum stearate Bark dust, Douglas fir Coal, bituminous0 Coal-tar pitch Cork Dinitro-orthocresol Gilsonite Liver protein Napalm Phenothiazine -p^Gxybenzaldehyde Rubber, hard crude Soap Sulfur Thyroid, desiccated
15 30 50 35 35 25 20 45 20
15 20 25 45 35 60
"See Figure 1.
She Bureau of Mines studies previously mentioned (see Figure 1 for data for coal |||iirrand ;in-oxygen), -In general,-these values are. determined by dispersing, vary-
`Mfe quantities of dust samples in a cylindrical test vessel in which a high-voltage electric spark is formed across an approximately V4-inch gap. The top of the
essel is closed by a filter-paper diaphragm, which ruptures upon ignition and -loaon, of,..a gpfficiently dense ,dust cloud (see Figure 6) . Recently' the lower plosive limits of several dusts have been determihed""aTso in h .flUntinUtiuS dust1-
ij stream. For the most part, the results check the earlier data rather satisfacfjrily, but further refinements in the test procedure are being made.
To date very little experimental work has been done on determination of jthe optimum concentrations and of the upper explosive. limits of dust clouds. The
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M R. B, Mason.and C. S. Taylor, Ind. Eng. Chem., 29, 626 (1937).