Document baKxRQrav8r8KDbByyeLRpMYO

HEATING VENTILATING AIR CONDITIONING GUIDE 1940 If the conditions are such that the air may circulate through cracks and crevices in the insulation, the increases may be far greater than those given. Therefore, it is essential that insulation be sealed as tightly'as possible. Pipe insulation exposed to the elements should be thoroughly waterproofed. Example 3. If the steam line given in Examples X and 2 is covered with 1 in. thick 85 per cent magnesia, determine the resulting total annual loss through the insulation. Also compute the monetary value of the annual saving and the percentage of saving over the heat loss from the bare pipe. Solution. By referring to Fig. 2, the coefficient for 1 in. magnesia on a 2 in. pipe is found to be 0.285 Btu per hour per linear foot of pipe per degree temperature difference at a temperature difference of 169.4 F. The total hourly loss per linear foot of pipe will then be 0.285 X 169.4 = 48.3 Btu. The total annual loss through the insulation -- 48.3 X 165 (linear feet) X 4000 (hr) ** 31,900 Mb. The annual bare pipe loss as determined in the solution of Example 1 was found to be 181,600 Mb. The saving due to insulation is then 181,600 -- 31,900 ~ 149,700 Mb per year. From the solution of Example 2, it was found that the heat supplied to the system cost $0,804 per thousand Mb. Therefore, the monetary value of the saving = 0.804 (dollars) X 149.7 (thousand Mb) -- $120.36, or 82.4 per cent of the cost when using uninsulated pipe. Table 14. Pipe Covering Factors FTemperature Difference. Pipe to Air, Dbg (4 Plies per X in. thick) (8 Plies per 1 in. thick) (30-40 Laminations per 1 in. thick) (14-20 Laminations per 1 in. thick) (Diatomaceous Earth and Asbestos) (Felted Fiber) 100 200 1.050 1.024 1.425 1.465 1.435 1.437 0.969 0.960 1.103 1.104 1.023 1.028 1.560 1.489 1.003 0.997 300 0.997 1.505 1.438 0.951 1.105 1.033 1.418 0.990 400 0.971 1.545 1.440 0.942 1.106 1.038 1.347 0.984 500 _0._94_4 0.933 1.107 1.043 1.276 0.977 600 0.918 __ 0.924 1.108 1.048 1.205 0.971 HEAT LOSSES FROM DUCTS The thermal transmission coefficient U for an uninsulated metal duct can be obtained from the equation: ___ 1 V= l + _1_ fo (4) 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. fo = film conductance outside the duct, Btu per hour per square foot per degree Fahrenheit. . 694 SW8W*-****"' CHAPTER 40. PIPE AND DUCT INSULATION 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 Fo0-* f1------- /joli where Vo -- velocity of air in duct, feet per second. D -- diameter of duct, feet. ... W Film conductance f0 depends on a number of variables including tem perature, diameter, and emissivity of the outer surface. Conductance fQ can be readily calculated from Tables 1, 2, 3, 4, and 5. From this ex planation, 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: 0= (6) The heat given up by the air in the duct is: Q = 0.24 M (h - h) = 14.4 A Vd (h - h) (7) Equating 6 and 7 enables the determination of the temperature drop in the duct: h + h - 21, = 28.8 A Vd ti -- ti UPL y ,, 28.8 AVd, ,, , , . 7.2 DVd , , , . ,. , Let x = --IJpL-- or rectangular ducts, = ---- for round ducts, solving for h and fe: , _ k (x + 1) - 21, ' fi-- 1) T (8) = h (*-!)+ 21, *+1 (9) For low velocities and long ducts of small cross-section, a somewhat more accurate formula may be used as follows: In these equations k = +h (-UPL \ :\14.4 AdV) (10) Q = heat loss through duct walls, Btu per hour. V = thermal transmission coefficient, Btu per square foot per hour per degree Fahrenheit. P ** perimeter of duct, feet. L -- length of duct, feet. h -- temperature of air entering duct, degree Fahrenheit. h = temperature of air leaving duct, degree Fahrenheit. ti = temperature of air surrounding duct, degree Fahrenheit. M = weight of air per hour, through the duct, pounds. A cross-sectional area of duct, feet. 695