Document OJDpr4e24295aMrMYQvMwVVg1

590 CHAPTER 39 1960 Guide Table 3____Number of Defrosts per Year* (100 Percent Running Time) Climate (7AO Normally dry Normally damp -10 te 5 6-6 475 450 800 750 9-41 12-14 15-17 18-20 21-22 24-26 27-29 30-32 33-35 35-39 39-41 400 375 350 300 250 200 175 150 100 75 50 700 625 575 500 425 350 300 225 175 125 100 The figure* pva mu*t be multiplied by the running-time mtio (or the period considered Chapter 12, which take into account the probabilities of oc currence. Reference l of Chapter 12 provides the correla tion of these design temperatures with the TAC tempera tures. Extra power consumption allowance must be made where periodic defrosting of an air-source evaporator is required, and where supplemental heating is employed. The number of defrosting operations required per month or a complete heating season is difficult to evaluate ac curately. it will depend on the detailed design and control of the heat pump, the climate, and the hours of operation. Table 3 gives the range in annual number of defrosts that may be expected on typical small unitary heat pumps. To obtain a total yearly operating cost, the energy con sumption for cooling must be added to that required for healing. Suggested procedures for calculating cooling en ergy consumption are given in Chapters 46 and 64. Annual Operating Cost A tabulation such as is shown by Table 4 may be used for estimating the operating cost for commercial and in dustrial installations. It is necessary to know the monthly kilowatt electric demands and the corresponding kilowatthour consumption for the base electric load, as well as for the heat pump or any other electric equipment, in order to apply the proper electric tariff. The base loads, shown as Columns 1, 2 and 3 of Table 4, may include lighting, ele vators, office machinery, exhaust and supply fans, circulating pumps, and similar items which are normally essential in a structure and are not affected by a particular air-condition ing design. The heat-pump kilowatt demand, during the month, which is required to satisfy the net day and night heat loss or heat gain (whichever is the greater), can be obtained from manufacturers' data. These resulting kilo watt demands are multiplied by a coincident factor to ob tain the coincident demands, listed in Columns 4 and 7. These coincident demands can be added to the base load demands to obtain the total electric load in Column 10. The coincident factors can best be obtained from published data on similar installations. The procedure for finding the heating and cooling kilowatt hours, Columns 5, 6 and 8, has been previously described. for residential installations, a detailed monthly estimate generally is not justified unless a monthly demand type of rate is in effect. In making a power consumption estimate for unitary heat pumps, a detailed breakdown into periods less than a com plete season, or the breaking down into small temperature spans, is not ordinarily justified. Manufacturers of this type of equipment provide estimating procedures which are' sim pler to use, yet are of sufficient accuracy for the purpose in tended. These methods usually consist of an empirical equation, tabular data, or plotted curves which combine the influences of the size and thermal properties of the struc ture, the heating design temperature, the characteristics of the beat pump, and supplemental beat usage. HEAT-PUMP COMPONENTS For the most part, the components used in heat pumps and the practices followed bear a direct relation to the low temperature refrigeration art. This section will outline the major components used and point out characteristics or special considerations which apply to the heat-pump field. Compressors Reciprocating compressors are used more than any other type on systems in the general range of Vs to 100 tons, and frequently even larger. A brief description of this type of compressor is given in Chapter 38. For the most economical application, ft is general practice to select the reciprocating compressor to provide the desired cooling capacity. The cooling capacity is the evaporator capacity and represents the ability of the compressor to pump refrigerant vapor between the existing temperature limits. When heating, the capacity of a particular compressor is the sum of the evapo rator capacity (i.e., heat-source coil capacity) plus the heat equivalent of the compressor work. figs. 13, 14 and 15 in Chapter 38 shows the capacity and power characteristics of typical reciprocating compressors. Table 4 .... Suggested Procedure for Computing the Operating Cost of Commercial and Industrial Heat-Pump System Period 0am load lighting and Mttcetiamoet Coif 8em load Hoot Pomp Coinci dent demand Heat Cool Supplemental Rfetritonce Heating Vt U*d) Totaf Heating and Cooling Total Electric load Total Cod onkw kwh kwh kw kwh kwh kw kwh kwh lew kwh 02) 111 (2) <3> <4) (51 <6| <71 <8) (9) 00} June July May Fil in one ine for eaeh moo h throu jh May The Heat Pump 591 A compressor normally employed for comfort cooling use will have a clearance volume (ratio of gas volume remaining in cylinder after compresion stroke to total swept-cylinder volume) of about 5 percent. The capacity drop off at low evaporator temperatures corresponding to low heat-source temperatures is also evident. The drop off in power at low evaporator and condensing temperatures is also evident. If the compressor has low clearance volume, say 2Vr per cent, then it is more suitable for low-temperature operation, and will provide, for example, about 15 percent greater re frigerating capacity at an evaporator temperature of O F and a condenser temperature of 110 F. However, tins com pressor has somewhat more power demand under mas-imnm cooling load conditions than does one of medium clearance. It is obvious that more total heat capacity can be obtained at low outdoor temperatures by- deliberately oversizing the compressor. When this is done it may be necessary to provide some type of capacity reduction by means of two-speed motor drives, cylinder cutouts, or other methods as described in Chapter 38. The disadvantage of this arrangement is that the greater number of operating hours that occur at the higher suction temperatures must then be served with the compres sor in the unloaded condition which generally causes lower efficiency. Therefore, the annual operating cost will tend to rise. It is also true that the additional first cost of the oversized compressor must be economically justified by the gain in heat ing capacity. One method proposed for increasing the heating output at low temperatures involves the use of staged com pression in which one compressor may pump from --20 F suc tion temperature to 40 F condensing temperature and a sec ond compressor compress the vapor from 40-F to 120 F. In such an arrangement it is possible to interconnect any two compressors so that they are in parallel, both pumping from say 45 F to 120 F at the normal cooling rating point, while at some predetermined outdoor temperature on heating they are reconnected so that they pump in staged relationship. --" Fig. 8 shows the performance of such a pair of compressors for compressors of both medium and low clearance volume. It is apparent that at low suction temperatures the recon nection into a staged relationship does provide some added capacity. Also, it should be understood that the motor selec tion involved must be based upon the maximum loading con ditions for summer operation even.though the low stage compressor has a greatly reduced power requirement under the heating condition. tel z 80 o 11 11 LOW CLEARANCE, 1 ME >11* CL ARANCE VTM IMG -"| loo? S LOW CLEARANCE a Z 40 ao. o 30 2 A C* STAGED OPERATION ' --fcCDCUM CLEARANCE f / CROSS-OVER POINT | M3TC. | ! | { | 1 CAPACITIES Or MEDIUM WO LC>w CLEARANCE STAOCD COMPRESSOflS - ARC CASED UPON RATING POINrr -- CAPACITIES fOA RESPECTIVE HE triNG Range 1 1 i j | | JcOOLING RANGC^ "i i i i i i i i i iif -80 -10 0 ' 10 20 304 90 SUCTION TEMP.-F Fig. 8------Comparison of Parallel and Staged Operation The coefficient of performance will be approximately the same whether they are coupled in parallel or compoundstaged at any set of operating conditions depending some what on the motor characteristics when lightly loaded. A rotary compressor has characteristics similar to a re ciprocating compressor except that it is by nature pos sessed of low clearance and high volumetric efficiency. From this standpoint it is well suited to heat-pump service, pro viding about 30 percent greater capacity at 0 F--110 F lift than a medium-clearance reciprocating compressor. How ever, this characteristic tends also to increase the power de mand at the maximum cooling load conditions. At this time, reciprocating compressors are most widely used for heat pumps, with rotary compressors restricted to the first stage of a staged-compression system and not used during the cooling cycle. Heal Transfer Components Refrigerant-to-air and refrigerant-to-water heat exchang ers, as previously described in the section Heat Sources and Sinks, are similar to heat exchangers used in current air` conditioning practice. A refrigerant subcooler coil may be employed either in conjunction with an indoor air coil, or, on systems with a ventilation air supply, to preheat ventila tion air. A substantial gain in capacity and coefficient of performance can result. Refrigeration Components Refrigerant piping, receivers, expansion devices and. re frigeration accessories in heat pumps are usually the same as those used in other types of refrigeration and air-conditioning systems (see Chapter 38). A reversing valve is used to change the system from the cooling to the heat operation. This change-over requires the use of a valve, or valves, in the refrigerant circuit,* except where the change is accomplished in fluid circuits external to the refrigerant circuit (see Table I). Reversing valves are usu ally pilot-operated by means of solenoid valves which admit head and suction pressures to move the operating elements. Expansion devices for controlling the refrigerant flow are normally thermostatic expansion valves as described in Chap ter 38. Special requirements may sometimes be presented. If the circuiting is so arranged that the refrigerant line upon which the control bulb is placed can become the compressor discharge line, the resulting pressure developed in the power element of the valve may be excessive, requiring the use of a special control charge or pressure-limiting element. When a thermostatic expansion valve is applied to an outdoor air coil, a special cross-charge is desirable to limit the superheat at low temperatures, and thereby obtain a better utilization of the coil. When an expansion valve is attached to a coil that is operated as a condenser, a bypass with a check valve is normally provided as indicated in Table 1. On small factory-built systems, capillary tubes are nor mally used as expansion devices. While a single capillary tube on both heating and cooling is sometimes employed, better efficiency and performance ran be obtained by using a more restrictive capillary tube for heating than for cooling. This may be accomplished by using two capillary tubes in either a series or parallel arrangement with a check valve to bypass one for cooling or to block one for heating, respectively. On an air-source heat pump that must operate over a wide range of evaporating temperatures, a capillary tube will tend to pass refrigerant at an excessive rate at low ^