Document 5k4yn95pw22MVmv86vk2p7YKe
656
CHAPTER 24
1958 Guide V-;
Unit Heaters and Unit Ventilators
657
These quantities of heat are related by the following equations:
The only difference horn Example 1 is that, in the latter case, the ventila
H, = 0.24 W (t - t) Ht = 0.24 W (t, - O
H. = Ht - H, - 0.24 W (t, - t)
(1) tion load has been reduced. (2) (3) Applications of Unit Ventilators
W = d 60 Q = H. + 0.24 d 60 Q (t - to).
(4) Items to be considered in the application of unit ventilators are: (1) (5) combination with other means of heating, (2) selection of unit ventilator
where
size, (3) cycle of control, (4) location of units, and (5) method of venting and exhausting.
d = density of air, pounds per cubic foot (0.075 lb per cu ft for Standard Air by definition).
H, = surplus heat, Btu per hour. fl, = heat required to warm air for ventilation, Btu per hour. H, = total heat requirements for both heating and ventilation, Btu per hour. Q = volume of air handled by the ventilating equipment, cubic feet per minute.
t = temperature to be maintained in the room, Fahrenheit degrees. U, = outside temperature, Fahrenheit degrees. ti = temperature of the air leaving the unit, Fahrenheit degrees. .W = weight of air circulated, pounds per hour. 0.24 = specific heat of air at constant pressure (approximate rjalue).
In a split system the unit ventilator heat output is supplemented by that of additional radiators or convectors, and consequently a correspond ing reduction in required unit- ventilator heating capacity may be made. With the split system, temperature control equipment should operate to close the supply to auxiliary radiation or convectors as the first step in the control cycle on a rising room temperature.
The combined system employs a unit ventilator with sufficient heating capacity for both ventilation and normal heat losses. In such a case no direct radiation is required. The cost of installation of a combined system is usually less than that of a split system. The unit ventilator is normally arranged to circulate outdoor air constantly or to circulate room air con
stantly up to full capacity; or to circulate mixed and variable quantities of
Table 2. Typical Capacities op Unit Ventilators for an Entering Air Temperature op Zero
room air and outdoor air automatically, depending on the thermal require ment of the room. The minimum amount of outdoor air for ventilation
Cubic Feet op Aib peb Minute
Anemometer Rating
Standard Air Rating
Total Capacity in Squabs Feet, Equivalent Di
rect Radiation
Capacity Available fob Heating the Room,
Squabs Feet Equivalent Dibect Radiation
_ Final Aib F Deo
purposes may be governed by state or local codes or may be calculated by the engineer to meet the ventilating air needs of the particular application.
Selection of Unit Ventilator Size
750 500 1000 750 1260 1000 1560 1250
214 320 427 534
56 84 112 141
95 95 95 95
The primary consideration in the selection of the size of unit ventilator is the number of occupants in the space. Other factors to be considered are state and local code requirements, volume of the room, density of occu
pancy, and the usage of the room. A safe rule for determining air capacity
is to allow a total air quantity of 30 cfm per person, or six to nine room air
Example 1: The heat loss of a certain room is 24^000 Btu per hour, and the venti
changes through the unit, whichever is greater. With this quantity of air
i
lating requirements are 1000 cfm. If the room temperature is to be 70 F and all an is taken from the outside at zero, what will be the total heat demand on the unit if it is required to provide for both the heating and ventilating requirements (combined
handled, it is possible to obtain satisfactory cooling in mild weather. Since cooling is an important function, the unit ventilator must be selected to
system)?
supply adequate air quantities.
Solution: Since the surplus heat is available to replace the heat loss of the room,
H. -- 24,000 Btu per hour.
., j
After selecting the basic size of unit, the coil capacity to meet the heating requirement can be determined from the manufacturer's tables.
Substituting in Equation 5:
Control of Unit Ventilators
H. = 24,000 + 0.24 X 0.075 X 60 X 1000 (70 - 0) = 99,600 Btu per hour
________ 24,000
1/
+ 70 = 92.2 F 0.24 X 0.075 X 60 X 1000
If in Example 1 a 1000 cfm (Standard Air) unit were required, but oiily 25 percent of the air introduced were outdoor air, the solution is:
Ht = 24,000 + 0.24 X 0.075 X 60 X 0.25 X 1000 (70 - 0) 42,900
24,000 It = 0.24 X 0.075 X 60 X 1000 + 70 = 92.2
Three cydcs of control are available for use with unit ventilators. These
ycies of control determine the sequence of operation of the dampers and ating element as described in Chapter 38, Automatic Controls.
Location of Unit Ventilator
dgTJ'ki lo.atjn the unit ventilator in a room is important. Wherever
of th 6 shuld be placed against an outside wall and on the center line
install
^'s difficult to obtain proper air distribution if the unit is
dischii ejther on an inside wall or in a comer of the room. Standard units
to di<? TMle stream upward, but for special cases units may be installed cnarge air horizontally. Units may be set against the wall or par-