Document NEZGLBBKm83B8RBBpe9J4wgkE

HEATINC VENTILATINC AIR CONDITIONING GUIDE 1944 is considered good practice to allow 20 per cent additional for weights of joints and bracings. Various weights and thicknesses of standard copper sheets will be found in Table 7. Table 6. Weights of Sheet Metal Used for Duct Construction u. s. Std. Gage Black Sheets Approximate Thickness, In. Weight Per Square Foot Galvanized Sheets Approximate Thickness, In. Weight Per Square Foot Steel Iron Ounces Pounds Steel Iron Ounces' Pounds 30 28 26 24 22 20 18 16 14 12 n 10 0.0123 0.0153 0.0184 0.0245 0.0306 0.0368 0.0490 0.0613 0.0766 0.1072 0.122q 0.1379 0.0125 0.0156 0.0188 0.0250 0.0313 0.0375 0.0500 0.0625 0.0781 0.1094 0.1250 0.1406 8 10 12 16 20 24 32 40 50 70 80 90 0.500 0.625 0.750 1.000 1.250 1.500 2.000 2.500 3.125 4.375 5.000 5.625 0.0163 0.0193 0.0224 0.0285 0.0346 0.0408 0.0530 0.0653 0.0806 0.1112 0.1265 0.1419 0.0165 0.0196 0.0228 0.0290 0.0353 0.0415 0.0540 0.0665 0.0821 0.1134 0.1290 0.1446 10.5 12.5 14.5 18.5 22.5 26.5 34.5 42.5 52.5 72.5 82.5 92.5 0.656 0.781 0.906 ' 1.156 1.406 1.656 2.156 2.656 3.281 4.531 5.156 5.781 "Galvanized sheets are gaged before galvanizing and are therefore approximately 0.004 in. thicker. Table 7. Weights and Thicknesses of Standard Copper Sheets'5 Rolled to Weight Weight per Square Foot . Thickness, Inches Ounces Pounds . r Decimal Equivalent Nearest Fraction 10 0.625 0.0135 Hi 12 0.750 0.0162 14 0.875 0.0189 Hi 16 . lb 20 24 1.000 1.125 1.250 1.500 0.0216 0.0243 O.027O 0.0324 %2 M2 M2 H2 28 1.750 0.0378 32 2.000 0.0432 Hi 36 2.250 0.0486 40 2.500 0.0540 Hi 44 2.750 0.0594 Me 48 56 3.000 3.500 0.0648 0.0756 Me Hi 64 4:000 0.0864 Hi ^Variations from these weights must be expected in practice. Nearest Gage No. B. &S. Stubs U. S. Std. 27 29 29 26 27 28 25 26 26 23 24 25 22 23 - 24 21 22 23 20 21 22 19 20 20 17 19 19 16 18 18 15 17 17 15 17 14 16 13 -'15 11 14 17 16 14 13 HEAT LOSSES FROM DUCTS The thermal transmission coefficient U for an uninsulated metal duct can be obtained from the equation: V= -L+-L fi So 614 (8) CHAPTER 32. AIR DUCT DESIGN In the case of non-metallic ducts the formula in Equation 8 will become: (9) where U = thermal transmittance, Btu per square foot per hour per degree Fahrenheit difference in temperature between the average temperature inside the duct and the air outside the duct. fi -- film conductance inside the duct, Btu per hour per square foot per degree Fahrenheit. /o> -- film conductance outside the duct, Btu per hour per square foot per degree Fahrenheit. x = thickness of duct wall in inches. k = conductivity of duct material, Btu per square foot per hour per degree Fahren heit difference between the two surfaces of material. Where * is small and k is large, however, this factor is of little im portance and may be neglected. Film conductance/i for air flowing in ducts apparently depends only on the velocity of the air and the diameter of the duct. A fairly reliable inside coefficient can be calculated from Schultz's modified equation: , 0.32 To0-* j)ojs where . Vo = velocity of air in duct, feet per second. D = diameter of duct, feet. (10) Film conductance/o depends on a number of variables including tem perature, diameter, and emissivity of the outer surface and can readily be calculated from data in Chapter 3. From this explanation, it is seen that it is unwise to recommend a given value of U for all uninsulated metal ducts. ' The heat loss from a given length of duct can be expressed by: Q = UPL - < ] (H) The heat given up by the air in the duct is: Q = 0.24 M (/, - <,) = 14.4 A Vp (/, - *,) (12) Equating 11 and 12 enables the determination of the temperature drop in the duct: tj 4: h -- % 28.8 AVp <i - h UPL Let y = UJr-Lt solving for h and h : fr rectangular ducts, = ^ U-Lu <. (y + 1) -- 2f, Ii = b - l) h (y -- 1) 4- 2f (y + l). 615 for round ducts, ( (13) (14) nji i i' i 11 i