Document NeObgY1bzKjam4zgpJ3xxNdqb

566 CHAPTER 38 1960 Guide Sat. Tamp. F Abi. Pftu. Lb par Sq In. Table 3 .... Properties of Trichloromonoftuoromethane (CC1*F)" Vsbnt Enthalpy Enthalpy and Entropy Takan fro*i -40 F Entropy 25 f Superheat Liquid Vapor liquid Vapor liquid Vapor Enthalpy Entropy 50 F Superheat Enthalpy Entropy 0 2.59 0.01020 13.700 7.81 90.4 0.0178 0.1975 93.9 0.2049 97.4 0.2120 5 2.96 0.01024 12.100 8.81 91.2 0.0200 0.1974 94.7 0.2047 97.2 0.2117 10 3.38 0.01028 10.700 9.82 92.0 0.0222 0.1973 95.5 0.2045 99.0 0.2114 15 3.85 0.01032 9.530 10.80 92.8 0.0243 0.1971 96.3 0.2043 99.8 0.2111 20 4.36 0.01036 8.490 11.90 93.7 0.0264 0.1970 97.2 0.2041 100.7 0.2109 25 4.94 0.01040 7.580 12.90 94.5 0.0286 0.1969 98.0 0.2039 101.5 0.2107 30 5.57 0.01045 6.770 13.90 95.3 0.0307 0.196ft 98.8 0.2038 102.3 0.2105 35 6.27 0.01049 6.080 14.90 96.1 0.0328 0.1968 99.6 0.2037 103.1 0.2103 40 7.03 0.01053 5.460 16.00 96.8 0.0349 0.1968 100.3 0.2036 103.8 0.2101 45 7.88 0.01057 4.920 17.00 97.6 0.0370 0.1967 101.1 0.2035 104.6 0.2099 50 8.79 0.01062 4.440 18.10 98.4 0.0391 0.1967 101.9 0.2034 105.4 0.2098 55 9.80 0.01066 4.020 19.10 99.2 0.0412 0.1967 102.7 0.2033 106.2 0.2097 60 10.90 0.01071 3.640 20.20 100.0 0:0432 0.1967 103-5 0.2033 107.0 0.2096 65 12.10 0.01076 3.300 21.30 100.8 0.0453 0.1967 104.3 0.2032 107.8 0.2094 70 13.40 0.01081 3.000 22.40 101.5 0.0473 O.1967 105.0 0.2032 10S.5 0.2093 75 14.80' 0.01086 2.740 23.50 102.2 0.0493 0.1967 105.7 0.2031 109.2 0.2092 80 16.30 0.01091 85 17.90 0.01096 90 19.70 0.01101 95 21.60 0.01106 100 23.60 0.01111 105 25.90 0.01116 * ASHRAE deuigmUoa--Rcfcigtreat 11. 2.500 2.280 2.090 1.918 1.761 1.620 24.50 25.60 26.70 27.80 28.90 30.10 102.9 103.6 104.4 105.1 105.7 106.4 0.0513 0.0533 0.0553 0.0573 0.0593 0.0613 0.1966 0.1966 0.1966 0.1966 0.1965 0.1965 106.4 107.1 107.9 108.6 109.2 1099 0.2030 0.2029 0.2028 0.2028 0.2027 0:2026 109.9 110.6 111.4 112.1 112.7 113.4 0.2090 0.2089 0.2088 0.2087 0.2085 0.2084 of liquid leaving the condenser from the enthalpy of super heated vapor going into it, thus, Qt - 26.3 (89.34 - 29.68) =* 1569 Btu per minute. (e) The cooling water rate (based on a gallon as 8-34 lb) is 1569 -i- (8 X 8.34) - 23.5 gpm. (f) The compressor size is fixed by the volume of gas which must be drawn into the machine per unit time. Saturated vapor at 52.7 psia has a specific volume, from Table 1, of 0.779 cu ft per pound, hence 2o-3 X 0.779 = 20.49 cfm of gas must be han dled- Assuming a volumetric efficiency of 90 percent, the com pressor must then displace 20.49 -5- 0.9 *= 22.8 cfm. The speed is given as 500 rpm and, as the unit is known to be double-acting, the displacement is therefore (22.8 X 1728) + (2 X 500) 39.4 cu in. If the unit were designed so that bore d and stroke were the same, (wd*) + .4 - 39.4 d - 3.69 in. (?) (CP) - (K< - A,,) + (A, - A..) = (82.82 - 29.68) + (89-34 - 82.82) - 8.17 where Arc is the specific enthalpy of liquid at discharge from the condenser. Tbe coefficient of performance of Example 1 may be com pared with that of an ideal system operating on the Carnot cycle between the same temperature limits. Then Tt = 501 F (which is 41F + 460) aod Tc = 554 F (which is 94 F + 460) and, The actual cycle is therefore 8.17 ~ 9.6 or 85 percent as effective as a Carnot cycle between the same temperature limits. Influence of Suction Pressure Brief consideration of the analytical procedure used in dis cussion of the simple saturation cycle will bring out the need for maintaining the suction pressure on any refrigeration system as high as the load will permit. As the suction pressure increases, for fixed discharge pressure, the enthalpy of re frigerant entering the evaporator remains unchanged, but the leaving enthalpy increases and, hence, the refrigerating effect increases. Further, compressor energy input is reduced not merely because of the greater enthalpy of the gas at suction, but also because of a reduction in the enthalpy of the super heated gas at discharge. Since the refrigerating effect is greater and the work less, it is obvious that there will be a substantial gain in the coefficient of the performance. See Chapter 54, Fig. 1. The actual value of suction pressure on any system is ob viously determined by the required temperature which must be maintained in the conditioned space. For a direct-expan sion system the evaporator can be held at a temperature not much less than that of the conditioned enclosure, except in cases where lower temperatures may be needed in order to establish a desired ratio of dehumidifying to cooling load. When dehumidification requirements dictate the use of un usually low evaporator temperatures, the increased operating cost should properly be charged against the dehumidification rather than the sensible cooling. Refrigeration Temp Praam* ' Table A .... Properties of Trichlorotrifluoroethane (CjCljFj)* Volume Density Enthalpy from -- 40*F F psia psifl Uquid cu ft/tb Vapor cu ft/lb liquid Ib/cu ft Vapor tb/cu ft liquid Btu/lb Lotent Btu/lb Vapor Btu/lb 0 0.8377 28.21* 0.00966 31.31 4 .9503 27.99* .00968 27.84 8 1.075 27.73* .00971 24.81 12 1.213 27.45* .00974 22.17 16 1.366 27.14* .00977 19.84 20 1.534 26.80* 0.00979 17.81 24 1.719 26.42* .00982 16.02 28 1.922 26.01' .00985 14.43 32 2.145 25.55* .00988 13.03 36 2.388 25.06* .00991 11.79 40 2.655 24.52* 0.00994 10.68 44 '2.944 23.93* .00997 9.703 48 3.258 23.29* .01000 8.830 52 3.602 22.59* .01003 8.044 56 3.973 21.83* .01006 7.342 60 4.374 21.02* 001010 6.713 64 4.807 20.14* .01013 6.149 68 5.275 19.18* .01016 5.640 72 5.780 18.16* .01019 5.180 76 6.320 17.06* .01023 4.769 80 6.902 15.87* 0-01026 4.392 84 7.527 14.60* .01030 4.051 88 8.194 13.24* .01033 3.742 92 8.908 11.79* .01037 3 463 96 9.668 10.24* .01040 3.208 100 10.48 104 11.35 108 12.28 110 12.76 8.59* 6.82* 4.93* 3.95* 0.01044 .01048 .01051 0.01053 * Incite* of mercury below oae eUzusphere. t Btendeni cyde tempenum*. * ASHRAE desixaetioo--Relricenst.lU. 2.976 2.762 2.567 2.477 103.50 103.27 102.98 102.69 102.40 0.03194 .03592 .04031 .04511 .05040 7.98 8.78 9.59 10.41 11.22 102.10 202.81 101.51 101.21 100.91 0.05616 .06243 .06929 .07675 .08483 12.03 12.85 13.67 14.49 15.32 100.60 100.30 99.99 99.68 99.37 0.09361 .1031 .1133 .1243 .1362 16.16 16.99 17.82 18.66 19.50 99.05 98.73 98.42 98.10 97.77 0.1490 .1626 .1773 .1931 .2097 20.35 21.19 22.05 22.90 23.76 97.45 97.12 96.79 96.4696.13 0.2277 .2468 .2872 .2888 .3117 * 24.63 25.49 26.36 27.24 28.11 95.79 95.46 95.12 94.95 0.3360 .3620.3896 0.4038 28.99 29.89 30.78 31.22 70.92 70.68 70.44 70.20 69.96 69.72 69.48 69.24 69.00 68.75 68.50 68.25 68.00 67.74 67.48 67.22 66.96 66.69 66.43 66.16 65.88 65.60 65.32 65.04 64.75 64.46 64.16 63.86 63.71 78.89 79.46 80.03 80.61 81.18 81.75 82.33 82.91 83.49 84.07 84.65 85.24 85.82 86.40 86.98 87.57 88.15 88.74 89.33 89.92 90.51 91.09 91.68 92.28 92.86 93.45 94.05 94.64 94.93 567 Entropy from --40*F liquid Btu/lb/ F deg Vapor Btu/lb/ F deg 0.0182 .0199 .0216 .0234 .0251 0.1725 .1724 .1723 .1722 .1722 0.0268 .0285 .0302 .0318 .0335 0.1722 .1721 .1722 .1722 .1722 0.0352 .0368 .0385 .0401 .0418 0.1723 .1723 .1724 .1726 .1727 0.0434 .0450 .0467 .0483 .0499 0.1728 .1729 .1731 .1732 .1734 0.0515 .0531 .0547 .0563 .0578 0.1736 .1738 .1740 .1742 .1744 0.0594 .0610 .0626 0.0634 0.1746 .1748 .1751 0.1752 Influence of Discharge Pressure In contrast to suction pressure, the compressor discharge pressure should be kept as low as operating conditions will allow. This pressure must be high enough to provide a saturation temperature of refrigerant within the condenser that is greater thaD the exit temperature of the cooling water. The discharge pressure therefore is a direct function of the temperature of the cooling fluid, and will automatically rise whenever the temperature of cooling water (or air) rises; it will also rise when the flow rate of the cooling medium is decreased. Increase in discharge pressure (for fixed suction pres sure) raises the enthalpy of the gas leaving the compressor; hence, increases the work of compression. Further, as the enthalpy^ of saturated liquid leaving the condenser increases with pressure, the refrigerating effect must decrease. Thus the effect of such a pressure rise is to require more work per pound of refrigerant handled, and at the same time to necessitate an increase in the refrigerant flow rate. (See Chap ter 54, Fig. 1.) Influence of Water Jacket The preceding discussion has, in every case, assumed isentropic compression. Where exact performance data are not available, this assumption is a desirable one since it leads to a conservatively large determination of the power required. In most actual systems, the compression process departs from isentropic due to irreversible beat transfers which oc cur between the vapor in tbe cylinder and the cylinder walk and also because of intentional heat dissipation from the outside of the cylinder walls to the surroundings, or to a cooling fluid passing through a water jacket around the