Document jBZK53ZJ3bN9Vdmdk4OYZBxBN
706
CHAPTER 52
1959 Guide
Table 3 .... A Guide to Ventilation Rates for Typical Industrial Equipment (Continued) State or Local Kegelatiota SboaU be Comalted and Followed Where Higher Veatfafran Rate* or* Specified
Operation
Tjrpt of Hood
VeaiBatioe
Air Row
Uwaf Tnatspof Velocity Fpm
Resort* aod References
Pouring hoods Foundry
Side hood
200 to 300 cfm per linear ft o:
hood with slot velocities ol 1500 fpm. Exhaust take-of every 8 to 10 ft
3500
Ref. 20
Rock drilling Dry drilling (rock)
Special trap (see refer- 60 cfm--vertical (downward]
erenees)
work
200 cfm--horizontal work
3500
. Ref. 28,27. May vary with size
and speed of drill. Wet drilling offers alternate con trol methods
Rubber calender rolls
Canopy--side panels 75-100 fpm indraft
3500
Ref. 24, 31
Quarts fusing
Booth on bench
150-200 fpm at faee
Ref. 34, 35
Screens Vibrating Flat deck
Enclosure
150-200 fpm indraft through hood openings but not less than 25-50 cfm per sq ft of
screen area
3500
Ref. 15, 19
8hakeouts Foundry
Enclosure
200 fpm through all openings in enclosure, but not less than 200 cfm per sq ft of grate area
3500
Ref. 20, 22
Spray coating
Booth--operator inside 100-200 fpm at booth cross-sec
tion
Booth--operator out 150-200 fpm at booth cross-sec
side
tion
Booth--downdraft
100-200 fpm downdraft
1500-2000 1500-2000 1500-2000
Ref. 15
Use higher ventilation rate for small booths 4 sq ft or less
Tanks, open surface
See Table 6
Ref. 38, 37, 38, 39
Tumbling mills Hollow trunnion type
Exhaust connection by manufacturer
Use branch diameter same size as exhaust outlet. For round mills branch dia should be X dia of mill; for square mills branch dia should be l in. plus
X side dimension of mill
3500-5000
Ref. 14
Tumbling mills, drums, Enclosure cages, barrels
400 fpm through openings but not less than 75 cfm per sq ft plan area
3500
Where equipment is enclosed and dust tight during rota
tion, enclosure may not be needed if feed and discharge operations can be otherwise
controlled
Welding
Local hood with flange
Downdraft bench Booth
6 in. from arc--150 cfm 6-9 in. from arc--275 cfm , 8-10 in. from arc--425 cfm 10-12 in. from arc--600 cfm 150-250 cfm per sq ft grille area 100 fpm at booth face
2000-4000
2000 200Q
Ref. 40
Woodworking
See Table 7
Ref. 22, 41
Miscellaneous
Complete enclosure
Packaging, machines,
granulators, enclosed
dust producing units
Packaging, weighing, Booth
container filling, in
spection
Downdraft .
100-400 fpm indraft through in spection or working openings, but not less than 25 cfm per sq ft of enclosed plan area
50-150 cfm per sq ft of open faee area
75-150 cfm per sq ft of dust pro ducing plan area
3000
3000 3500
Ref. 19
Industrial Exhaust Systems
707
For high canopy hoods, Equation 5 may be used:
q, m 7.4
(5)
where
lt -- effective height, feet.
The effective height L may be taken as the actual vertical distance from hood to hot surface plus twice the width of the hot surface.
Where it is necessary to have, openings at the top of a hood that is filled with heated air, leakage of the hood contents through these openings may be prevented by ncing sufficient ventilation to obtain a face velocity V as calculated from the following equation:
where
lm -- height of the air column, feet.
Af -> area of the (sharp-edged) openings, square feet.
H, -- sensible heat released to air stream, Btu per minute.
C = a coefficient depending on the excess of temperature
inside the hood above room temperature with values
as follows:
Temperature excess 0-200 200-400 400-600 - 600-800
(F deg)
Value of C
20 18 16 14
The American Society of Heating and Air-Condi tioning Engineers has recognized the need for design criteria for determining exhaust ventilation .requirements for hot processes in industry. Research studies on this subject have been in progress since 1952, and the results to date have been published.*1
Induced Air How
Where quantities of individual particles are projected through an air space by gravity or by process forces, volumes of room air in proportion to the momentum of the particles are set in motion with resulting intermixing and flow in the same direction as the particles. Exhausted volumes from hoods or enclosures must be sufficient to include this induced air flow if control is to be effective. Induced air flow should be evaluated from high speed rotating machines including pulverizers, from material handling systems employing high speed belts or involving large tonnages of falling granular material, and from escaping compressed air jets from pneumatic tools. The energy represented by material of various particle sizes and falling heights has been computed by Hemeon.0 The theoretical equivalent induced air flow resulting from un enclosed air streams is summarized in Table 4.
Where falling streams occur largely within an enclosure such as a storage bin, it should be recognized that much of the air set in motion is recirculated within the bin. Exhaust volumes from the enclosure need only include the extra air induced before the failing material enters the enclosure although the recirculating induced air can cause localized positive pressures and outward leakage if the enclosure is not of airtight construction.
The amount of air induced by falling material is much less if the space through which the material falls is en closed effectively than if not enclosed, and can be re-
Table 4 .... Indueed-Air-Row Equivalent of the Energy in Falling, Unenclosed Streams of Partides
(Foe a tofid* flow rate R of 1 U> per tee aod a tpeerfie groWfy ( I referred to water)
Faffing Dtdaace,*
Area, tq ft
Air Row Eqe/ratecf,' Cfm, to be nettipBed by Partkte Size, MiDbaefem
1 2 5 10 20 50 100
3 ft . 6 ft
12 ft 20 ft 30 ft
X 450 350 220 180 150 80 65
1 750 550 350 300 250 150 100 2 1200 850 550 450 350 200 170 4 1900 1400 850 700 600 350 250
8 3000 2200 1400 1100 900 500 400 15 4600 3300 2000 1700 1400 800 650 25 6400 4600 3000 2500 2000 1000 900 50 10000 7500 4700 4000. 3200 1800 1400
X 350 300 250 200 150
600 500 350 300 200 2 900 700 600 400 350 4 1500 1200 900 700 500
8 2300 1800 1500 1000 900 15 3500 2800 2200 1500 1300 25 5000 4000 3200 2300 1800 50 8000 6000 5000 3700 3000
X 560 450 350 270 220
1 900 700 600 420 350 2 1500 1100 900 700 550 4 2300 1800 1500 1000 850
8 3600 2900 2300 1700 1300 15 5300 4200 3500 2600 2100 25 7800 6000 5000 3600 2900 50 -- 10000 8000 6000 4700
X 800 650 500 370 300
1 1300 1000 800 600 500 2 2000 1600 1300 960 760 4 3300 2600 2000 1500 1200
8 5000 4100 3200 2400 1900 15 8000 6400 5000 3700 2900 25 -- 9000 7000 5000 4000
X 1000 850 650 500 400
1 1700 1400 1100 800 600 2 2700 2100 1700 1300 1000 4 4400 3500 2700 2000 1600
8 6800 5400 4200 3200 2500 15 10000 8200 6600 4800 4000 25 -- 9000 6800 5400
From Plantand Aium VtntHatian by W. C- L. Hemoon, Tbo Industrial Press New York <MS5).
duced to-a minimum by enclosing as well as possible the openings at the feed point of the material.
DUCT SYSTEM DESIGN
The duct system will consist of branch ducts connected to a min duct that will convey the air from the hoods to the exhaust' fan and the air cleaning equipment, if used. Round ducts should be used wherever possible. Their gage size and construction differ from air supply practice due to the rougher usage encountered, and in the case of dusts, to the abrasive effect. (See later section on Construction Specifications for Local Exhaust Sys tems.) Usual conveying velocities are shown in Table 8. Where solid contaminants are handled, recommended ve locities must be maintained throughout the system to prevent material from settling in the ducts and obstructing