Document 1x0L3gmBVqynbGryYRX9Z0r5
58
CHAPTER 4
1962 Guide And Data Boole
* 20 pel cent bat 6im added to the o'notable internal gaia to account for (ft* luat of coopfcaioa added with the air-conditioning compressor.
Rg. 11 .... Quantity of Internal Heat Available to External Areas and Storage Tank at Various Outdoor Temperatures During Occupied Periods*
exterior and interior zones. Figure 11 shows the result of transferring this internal excessive heat gain to the exterior zone by means of a heat pump. Curve A of Fig. 11 is the total internal heat available and curve B is excess heat (above that needed by the exterior zone) which can be kept in a storage tank (using a cycle similar to that shown by Fig. 4) for future use at night, weekends, or other unoccupied periods. For this particular installation, during the occupied periods no out side heat source or supplemental heat is needed at outdoor temperatures of minus 5 F or above.
OPERATING COST
It is preferable to compute the electric consumption of the refrigerating compressors and outdoor fans separately from that of the auxiliary equipment which is used more or less constantly, such as conditioner fans and water circulating pumps. This auxiliary equipment can then be included as part of the basic load of the structure. This is particularly true with air source-sink systems where the kilowatt inputs to the compressor and the heat source-sink fans vary with the outdoor temperature and, consequently, must be related to the expected hours of operation at the various outdoor temperatures.
In computing operaring cost of air-source heat pumps, it has been found from a study of actual installations that the kilo watt-hours consumed during the defrosting cycle are approxi mately 2-3 percent of the total heat pump electrical con sumption during the two or three coldest months and, there fore, can be neglected in the calculations without causing an appreciable error.
The first step in operaring cost analysis is to plot the day and night heat loss and the system beating capacity at various outdoor temperatures, as illustrated by Fig. 12, in order to obtain the day and night balance points, which are the points at which the hearing capacity satisfies the structure heat loss for the period. If.these balance points are above the outdoor design temperature, the portions represented by the shaded area must be furnished by supplemental heat. The actual re quired supplemental heat is represented by the difference between the quantity needed to heat the structure below the balance point and the quantity supplied by the heat pump system.
It can be noted from Fig. 12 that do heat is required during
Rg. 12 .... Typical Plot of Structure Heat Loss and Sys tem Capacity for Various Outdoor Temperatures
the day at outdoor temperatures above 41 F. This tempera ture, at which the system changes from heating to cooling cycle, is referred to as the changeover temperature. The hourly occurrence of the various outdoor temperatures, needed to properly evaluate the operating cost for a particular area, can be compiled, for convenience, in the form of Table 1. This type of weather data, for the period of 1935-1939, can be obtained from the United States Department of Commerce, Weather Bureau, Asheville, North Carolina. Also, a number
Table ]
Average Hourly Occurrence of
Outdoor Temperatures*
For the 5-rear period 1934-39 far ftocncke, Virginia
Temp Range
f
iANUASr
Accmwlatf** Hoars
Weighted Average Operating Tem^
Doy* Night* Total Day* N/Bh#b Total
Heating
0-4
5-9
10-14
2
4
6 12 12 12
15-19
7
13 20 15 15 15
20-24
18
31
49 19 19 19
25-29
39
68 107 23 23 23
30-34 101
141
242
28
28
28
35-39 171 227 398 32 31 31
40-44 234 290 524 35 34 34
45-49 286 333 619 37 35 36
50-54 319 354 673 38 36 37
55-59 344 367 711 39 37 38
60-64 362 371 733 41 37 39
55-59
__
60-64
12
65-69
35
to 70-74 102
75-79 175 . o 80-84 264
O 85-89 335
90-94 362
95-99 370
100-104 372
JULY
9_
50 62
167 202
292
394
347
522
367
631
371 706
372
734
--373
743
--
We*ter Buitu. Asheville, North Cardin*. * The dar hours, columa* 3, 3 sad 4, wvrv srimori for tire period S *.
8 p.m. sad the niebt futon from 8 pjn--8 a.m.
The weightedssersce tempersturn, column* 5, S sad 7, are equal to the sum of (the product of the individual tcropeatore* aad the boon of ooountece)
divided hr the (summation of the hour* of occurrence).
Heo* Pump Systems for Air Conditioning
59
Rg. 13 .... Calculated Heat Loss and Gain at Various Outdoor Temperatures
of manufacturer's product and application manuals include similar, weather data for many geographic areas.
The electric energy consumption for hearing must be added to that required for cooling to. obtain a total yearly cost. Tt is advantageous to compile the hours of operation at the different cooling loads, similar to the procedure followed for the hearing computations. Unfortunately, there is no positive way of predicting the operating time of a particular cooling installation. It is generally agreed by most air-con ditioning engineers, and has been substantiated in several (instances by published field test data, that commercial me chanical air conditioning equipment, during occupied periods, should be operated when the outdoor temperature is 55 F or above, and during other times when the outdoor temperature is 75 F and above, as shown by Fig. 13. Field data ran be . used as a guide in compiling the hours of operation at partial
loads, say 25, 50, 75 and 100 percent. Some judgment must be exercised, however, in using this data and design factors, since the amount of internal heat gain and size of equipment selected, in relation to the calculated load, will influence the partial load operating hours. The use of the equivalent full load hours of compressor operation is not realistic or accurate, even for conventional commercial cooling systems.
It is necessary to know the monthly kilowatt electric de mands and the corresponding kilowatt-hour consumption for the base electric load, as well as for the heat pump or any other electric equipment, in order to apply the proper elec tric tariff. The base loads, shown as columns 1, 2 and 3 of Table 2 may include lighting, elevators, office machinery, exhaust and supply fans, circulating pumps, and similar items which are normally essential to a structure and are not affected by a particular air conditioning design. The heat pump kilowatt demand, during the month, which is required to satisfy the net day and night heat loss or heat gain (which ever is the greater), can be obtained from manufacturer's data. These resulting kilowatt demands are multiplied by a coincident factor to obtain the coincident demands, listed in columns 4 and 7, and which can be directly added to the base load demands to obtain the values listed in column 10. These coincident factors can best be obtained from published data on similar installations.
Operating costs are dependent upon a number of important influencing factors. In order to make sure that all of the items are properly considered, the following procedure has been found very helpful as a guide in obtaining reasonably ac curate heating and cooling operating costs of the refrigerating compressors and toe associated outdoor air fans, for an airsource, air-sink, commercial and industrial heat pump system. The procedure described here is primarily for air-source heat pumps, but may also be used for water-source systems.
Procedure for Estimating Energy Requirements
For Heat Pump Heating and Cooling
It is necessary to compute the energy requirements for heating and cooling by months in order to apply the proper electric tariff as explained in toe section Operating Cost.
Heating
1. Calculate the Day and Night Heat Losses, obtain System Capacity data, and plat in the form given bu Fig. 12. The calculated gross had loss is credited with the useful internal gain to obtain the day had loss and with the reduced ventilation requirement for the unoccupied periods for the night heat loss. Suggestions are given in the section Heating and Cooling Load Estimates. The system heating capacities at various outdoor temperatures, including the additional heating effect obtained from liquid-gas heat exchangers or liquid suboooling coils, are obtained from manufacturers published data.
2. Obtain the Changeover Temperature (the outdoor temperature
Table 2 .... Suggested Form of Operating Cost Summary for Commercial and Industrial Heat-Pump System
Period
Bose Bedric load {lighting and Miscellaneows)
Cost of Base Load
dent
Heal Pump Heat
Cool
Supplemental Kedriance Heating
ittUsed)
Total Heeling and Cooling
Total Electric load
Total Cost
JUNE
kw kwh Dollars kw
0) (2) 13} (4)
kwh kwh
(5) (6)
kw' 17)
kwh (4)
kwh
19)
kw kwh Dollars
19) 01)
02)
f2J ip ooe tine for eodi raoaffl through MAY