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- V.'_______________ ' Chapter 42_________________ ' . 1945.Guide
0_
H ' \ 34,875 .
V 0.0175 (t-to) 0.0175X10 199,286 cfm.
This is equal to about 20 air changes per hour. From Equation 2 the inlet Cor outlet) opening area should be:
A= 9.4 H (t - to)
199,286 = 1224 sq ft. 9.4 ^30 X 10
Thg.flow per square foot of inlet or outlet would be 199,286 -s- 1224 = 163 cfm with all
windows open.
Solution for Wind Only: With 1,224 sq ft of inlet openings distributed around the sidewalls, there' would be about 410 sq ft in each long side and 202 sq ft in each end. The outlet area will be equally distributed on the two sides of the monitor, or 612 sq ft on each side. With the wind perpendicular to the long side, there will be 410 sq ft of opening in its path for inflow and 612 in the lee side of the monitor for outflow with the windward side closed. The air flow, as calculated by Equation !, will be:
Q = 0.60 X 410 X 704 = 173,200 cfm.
This gives 17.3 air changes per hour, which should be more than ample when there is no heat to be removed.
Solution for Combined Forces. Since the windward side of the monitor is closed when the wind is blowing, the flow due to temperature difference must be calculated for this condition, using Fig. 2. This chart shows that when inlets are twice the size of the outlets, in this case 1,224 sq ft in the sidewalls and 612 sq'ft in the monitor, the flow will be increased 26:5 per cent over that produced by equal openings. Using the smaller opening and the flow per square foot obtained previously, the calculated amount for this condition will be:
.612 X 163 ><. 1.265 = 126,200 cfm.
Adding the two computed flows:
Temperature Difference = 126,200 = 42 per cent.
Wind
= 173,200 = 58 per cent.
Total
299,400 = 100 per cent.
From Fig. 3, it is determined that when the flow, due to temperature difference, is 42 per cent of the total, the actual flow, due to the combined forces, will be about 1.6 times that calculated for temperature difference alone, or 201,920 cfm.
The original flow, due to temperature difference alone, was 199,286 cfm with all openings in use. The effect of the wind is. to increase this to 201,920 cfm even though half of the outlets are closed.
A factor of judgment is necessary in the location of the openings in a building, especially those in the roof, where heat,- smoke and fumes are
to be removed. Usually windward monitor openings should be closed, but if the. wind is low enough for the temperature head to overcome it, all windows may be opened. .
TYPES OF OPENINGS
Types of openings may be classified as: (1) windows, doors, monitor openings and skylights, (2) roof ventilators, (3) stacks connecting to registers, and (4) specially designed inlet or outlet openings.
Windows, Doors and Skylights
Windows have the advantage of transmitting light, as well as providing ventilating area when open. Their movable parts are arranged to open in various ways; they may open by sliding either vertically or hori zontally, by tilting on horizontal pivots at or near the center, or by swinging on pivots at the top, bottom or side. Regardless of their design, the air flow per square foot of opening will be the same under the same conditions. The type of pivoting should receive consideration from the
. Natural Ventilation
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standpoint of weather protection, and certain types may be advantageous, in controlling the distribution of incoming air. Deflectors are sometimes used for the same purpose, and these devices should be considered a part > of the ventilation system.
Hoof Ventilators
. The function of a roof ventilator is to provide a storm and. weather
proof air outlet. These are actuated by the same forces of wind and
temperature head, which create flow through other types of openings. The capacity of a ventilator depends upon four things: (1) its location
on the roof, (2) the resistance it and the duct work offers to air flow, (3) .
the height of draft, and (4) the efficiency of the ventilator in utilizing, the
kinetic energy of the wind for inducing flow by centrifugal or ejector
action.
,
For maximum flow induction, a ventilator should be located on that
part of the roof where it will receive the full wind without interference.
If ventilators are installed within the suction region created by the wind
passing over the building, or in a light court, or on a low building between,
two high buildings, their performance will be the, same there as for any other type of opening of the same area. Their normal ejector action, if
any, will be of no value in such a location.
The base of the ventilator should be of a taper-cone design to produce
the effect of a bell-mouth nozzle whose coefficient of flow is considerably higher than that of a square-entrance orifice. . If a grille is provided at
the base, additional resistance is introduced, and if should be increased
in size accordingly.
Air inlet openings located at lower levels in the building should be at
least equal to, and preferably larger than the combined throat areas of
all roof ventilators. The air discharged by a roof ventilator depends on
wind velocity'and temperature difference, and, in-general, their, per
formance will be the same as any monitor opening located in the same . place, but due to the four capacity factors already mentioned, no simple
formula can be devised for expressing ventilator capacity.
Roof ventilators may be classified as stationary, pivoting or oscillating,
and rotating. Generally, these have a round throat, but the continuousridge ventilator, or so-called heat valve, would fall in the stationary
classification.' When selecting roof ventilators, some attention should be
given to ruggedness of construction, storm proofing features, dampers
and. damper operating mechanisms, possibility of noise, original cost and
maintenance.
Natural ventilation units may be used to. supplement power-driven
supply fans, and under favorable weather conditions it may be possible
to stop the power-driven units.
Controls
Gravity ventilators may have dampers controlled by (1) hand, (2) thermostat, and (3) wind velocity, in combination with a fan. The. thermostat station may be located anywhere in the building, or it may be located within the ventilator itself. The purpose of wind velocity control is to obtain a definite volume of exhaust regardless of the natural forces, the fan motor being energized when the natural exhaust capacity falls below a certain minimum, and again shut off when the wind velocity rises ' to the point where this minimum volume can.be supplied by natural forces.