Document RJ01BvLGgxxMg5nYx1KxVx6Vn
226
CHAPTER 11
1955 GuideJl|
are indicative of what might be expected in this connection, but it should^ be noted that Table 3 is based on a no-wind condition, and therefore notif?
directly applicable to heating design.
.
A wide range of infiltration rates would be expected for swinging doore d
because of variations in the indoor-outdoor pressure difference caused by
wind, temperature differences, and the degree to which a heating or an air-
conditioning system tended to raise or lower the inside pressure by blower-
action. The frequency of door usage would also affect the amount of;'
leakage per passage.
`y
Air Change Method
The amount of air leakage may be estimated by assuming a certain num ber of air changes per hour for each room, the number of changes as-' sumed being dependent upon the type, use, and location of the room, as
Table 3. Infiltration Through 72-Inch Revolving Door and 36-Inch
Swinging Dooa*b
(Cubic Feet per Person per Passage)
U&AGB
Fbbelt-Revolving Doob
Doob Equipped with Brake
75 60 ; 60 50 40 40
.......... 20 to 100 i
use in one wall only. Any swinging doors in accorddaanncce with these recommended standards..
Refrioerating Machinery Association, rcou of Standards. Used by permission.
rwcTM* i47 Air Conditioning <* DC. an^m^perhnental data of National B+
indicated in Table 4. Where it is not possible to determine or pre-de-
termine with accuracy the width of crack or clearance of windows, or where other sources of air leakage cannot readily be evaluated, as is often the
case, the use of the air change method may be justified.5
The values in Table 4 may be used with reasonable accuracy for res>dences, and are the requirements for each room. The total infiltration allowance for the entire building should be one-half the sum of the iofl'
tration allowances of the individual rooms, since whatever air enters on tte windward side, generally leaves the building on the leeward side, and the
infiltration requirements therefore do not exist simultaneously on sides or in all rooms. An allowance of one air change per hour for n" sources of air leakage for the entire volume may be considered average
for a well constructed residence. The air leakage, due to opening and closing of doors in vestibules, ?
sometimes based on the air change method, even though the air leakage
estimates for other rooms are based on the crack method. Except
vestibules and reception halls, it is not advisable to attempt to apply air change method to factories and industrial and commercial building'
because of wide variations in the type and percentage of fenestration whiTM
is the principal source of air leakage in such buildings.
",
Infiltration and Ventilation
227
INFILTRATION DUE TO TEMPERATURE DIFFERENCE
The air exchange due to temperature difference, inside to outside, is a chimney effect, causing air to enter through openings at lower levels, and to leave at higher levels6 when the building is heated or' causing flow in the reverse direction when the building is cooled. This air exchange is usually of considerable importance in tall, single-story buildings with open ings near the ground level and near the ceiling; it should also be considered in tall, multi-story buildings unless the sealing between various floors is nearly perfect; and may be appreciable in one-stoiy buildings with base ments and attics.
The flow of air through a building under the influence of indoor-outdoor temperature difference is quite complex except for single-stoiy structures without a basement or attic. It can best be understood by visualizing the building as a complex chimney with a number of passages and a number of restrictions. The basement represents the lower section of this imaginary chimney with air moving inward through cracks in the walls and around
I-LACE UNDER AVERAGE CONDITIONS IN Residences, Exclusive of Air Provided for Ventilation*
Kind op Room or Building
Number op Ant Changes taking
Place per Hour
Rooms, 1 side exposed_____ Rooms, 2 sides exposed___ i Rooms, 3 sides exposed-----Rooms, 4 sides exposed:__
i
m
2 2
. `ernwmswiwwe Jeas than J air change.
Rind op Room or Building
Rooms with no windows or outside doors ....
Entrance Hails ReceDtion Halls Bath Rooms.
Number op Air Changes taking Place per Hour
^to % 2 to 3
2 2
windows and doors. The air then moves upward through cracks and open
ings in the floor which acts like a damper in the chimney. Above the floor the chimney has many parallel passages consisting of the several rooms and the hollow wall spaces in certain types of construction. These separate
passages are all interconnected by cracks and also communicate with the outside through cracks and fissures. The ceiling acts as another damper with air flowing upward through various cracks and openings. This condi tion is repeated in every story of a multi-story building and can be further
complicated by open stairways, elevator shafts, and utility ducts. The attic finally represents the union of all the parallel passages in the chimney "ith the outward flow of air being again restricted by the roof construction.
Since the chimney effect in a building produces a negative pressure and
an inward flow of air at the lower levels and positive pressure and outward now at the higher levels, a neutral zone7 exists near midheight where there ls. n Pressure difference between indoors and outdoors, if the openings are about uniformly distributed in a vertical direction. At the neutral zone here would be no air flow through openings in the outside walls as a result 0 temperature differences.
The infiltration caused by the indoor-outdoor temperature differences
can be calculated by means of the crack method described earlier in this napter for determining the infiltration caused by wind pressure. This is one by determining the equivalent wind velocity that would produce the me rate of infiltration as was caused by the prevailing temperature difrence. It is recommended that one-half the total crack length of the