Background of the Invention
[0001] This invention is directed toward the art of effectively operating variable air volume
delivery systems, and particularly toward the control of static pressure in the supply
ducts of said variable air volume delivery systems during the delivery of air irrespective
of the amount of air delivered in such systems.
[0002] One example of a variable air volume delivery system includes rooftop air conditioners
in the 20-100 ton operational range, which include extensive ductwork to the rooms
and spaces subject to air delivery. Such air conditioners frequently face the problem
of controlling static pressure in their ductwork during variable air volume applications,
because of the need to continually modify the amounts and quantities of air needed
to be delivered in order to establish effective building temperature control with
regard to conditioned and conditionable rooms and spaces therein.
[0003] The problem of static pressure control can be usefully understood and illustrated
by the following example. As the need for cooling a room or space to be conditioned
decreases, the air terminals in the rooms and spaces addressed begin to modulate between
open and closed states, to reduce the amount of air delivered to the region being
conditioned. This of course increases the static pressure delivered by the blower
of the variable air volume delivery system driving the air in direct relationship
to the reduction in the amount of air delivered.
[0004] In other words, as the amount of air is reduced with diminished need, the system
itself requires only a reduced level of static pressure. Instead, the level of static
pressure is in fact increased, because less amounts of air are actually lost during
operation under reduced air flow conditions.
[0005] Significantly, not only are static pressure levels at their maximum just when they
are clearly least needed, but the excessive level of static pressure applied at repeated
intervals can indeed increase energy costs and additionally cause damage to the ductwork
of the air volume delivery system being operated and also to the room terminals delivering
the air to the spaces being conditioned.
[0006] It would thus be advantageous to regulate, or reduce, the static pressures present
during system operation for many reasons relating both to energy savings and to the
structural integrity and mechanical maintenance of the system. Beyond that, it is
of course clear that solving the static pressure problem indicated would tend to promote
energy savings for the user and to reduce the work done by the air volume delivery
system blower which bears in substantial part the burden of producing such excessive
static pressure levels.
Summary of the Invention
[0007] In view of the problems indicated above, the regulation of static pressure in variable
air volume delivery systems is proposed in a manner effective for changing fan or
blower speed stepwise in response to static pressure measured in the duct work of
the air volume delivery system. According to one aspect of the invention, blower fan
speed is controlled under direction of a multi-speed motor in turn controlled by a
motor controller, capable of operation at two or more discrete speeds.
[0008] According to the invention herein, when duct static pressure rises to an excessive
level, the fan motor is switched to a next lower speed by action of the motor controller
in response to a pressure detector in the supply duct of the air volume delivery
system, which pressure detector is effective for delivering a signal indicative of
pressure levels detected therein. The speed change of the fan motor and its connected
blower arrangement in turn is effective for producing a reduction in static pressure
for example proportional to the square of the ratio of initial and final revolutions
per second, as will be seen. Concurrently therewith, according to the invention,
the quantity of air delivered in cubic feet per minute for example, will be reduced
in direct proportion to the ratio of initial and final revolutions per second.
Brief Description of the Drawings
[0009] Figure 1 is a schematic illustration of a typical centrifugal blower system used
for air conditioning and variable air volume delivery, and employing supply and return
ducts leading to and from the rooms and spaces to be conditioned.
[0010] Figure 2 is a graph displaying the operating characteristics of the air volume delivery
system according to Figure 1, in particular indicating external static pressure in
inches of water as a function of air flow rate in cubic feet per minute.
Description of the Preferred Embodiment
[0011] Figure 1 shows a variable air volume delivery system 130 including an outer cabinet
140 containing filters 150 for receiving air from a return duct 160, an evaporator
coil 170 for conditioning the air received from filters 150, a condenser arrangement
175, and a motor 180 for driving a centrifugal blower 190 subject to the direction
of motor controls 200, the centrifugal blower 190 being effective for blowing the
air passing through the evaporator coils 170 out of cabinet 140 into supply duct 210
and then in turn into the rooms and spaces 215 to be conditioned by way of respective
room terminals 220. Such a system 130 further includes a conventional and well known
closed loop refrigerant system and a compressor (not shown) for circulating refrigerant
between condenser 175 and evaporator coil 170. It is however not an object herein
to address the features and operation of the refrigerant system which operates in
conjunction with the air delivery objectives of direct interest herein. The outer
cabinet 140 is moreover supported on a substantial roof structure 300 as suggested
in Figure 1. Supply duct 210 is further subject to measurement by a static pressure
sensor 310, which communicates along line 320 with motor controller 200 to provide
an indication of pressure levels detected by sensor 310.
[0012] The operation of the blower system 130 of Figure 1 proceeds according to the invention
herein, in accordance with the scheme set forth in Figure 2, which scheme is programmed
into motor controls or controller 200 according to well known techniques. In particular,
point 1 on the characteristic curves of Figure 2 suggests the condition of operation
by system 130 at highest revolutions per second with the room terminals 220 delivering
a maximum load in cubic feet per minute, as per system curve "A", which shows how
the air volume delivery system 130 operates for a given setting of air terminals 220.
[0013] Further, point 2 of the operational graph set forth in Figure 2 suggests operation
according to system curve Aʹ with reduced air flow, at which time the room terminals
220 will have been throttled into a slightly closed condition to somewhat restrict
air flow into the rooms or spaces to be conditioned.
[0014] Point 3 shown in Figure 2 suggests a condition of even greater throttled operation
as per indicated system curve Aʺ. Point 4 of the Figure in turn sets forth the condition
at which the room terminals 220 have been closed sufficiently to cause the level of
static pressure to reach an upper limit setting for motor controls 200 for the given
level of revolutions per minute. At said limit, the fan motor 180 is, according to
the invention, switched to a next lower speed, represented by "RPM2".
[0015] At point 5 of the operational characteristic, system operation is repeated according
to the outer section of system curve B for a new level "2" of revolutions per minutes
as indicated on Figure 2, at which time the fan effect of centrifugal blower 190 slows
down and the air flow rebalances at a new state of operation. Point 6 accordingly
is suggestive of the operating point of system 130 with the room terminals 220 opened
slightly to compensate for the reduction in flow rate (in cubic feet per minute) caused
by the change in fan speed. Points in turn 7-12 are the operating points of system
130 which are analogous to points 1-6 discussed above, but which represent the operational
transition between motor states "2" and "3", whereas points 1-6 describe the transition
between motor states "1" to "2" as described immediately above.
[0016] While this invention has been described with reference to a particular embodiment
disclosed herein, it is not confined to the details set forth herein and this application
is intended to cover any modifications or changes as may come within the scope of
the invention.
1. The method of supplying variable amounts of air to an air volume delivery system
including a blower, a motor for driving said blower, a motor controller for controlling
said motor, a return duct bringing air to the blower, and a supply duct including
room terminals, for moving variable quantities of air from the blower to selected
rooms through corresponding room terminals, said blower effective for controllably
blowing air from said return duct into said supply duct and through selected ones
of said room terminals, said method comprising the steps of:
(a) blowing air into the supply duct at a first selected time rate of volume and within
a predetermined static pressure operating range including an upper limit, with said
motor being operable at selected motor speeds in response to control by aid motor
controller, and
(b) switching to a lower time rate of volume when the static pressure is at the upper
limit of said static pressure operating range.
2. The method of claim 1, wherein said rates of volume correspond to respective ones
of selected motor speeds.
3. The method of claim 1, including the step of detecting static pressure in said
supply duct.
4. The method of claim 3, including the step of providing an indication of detected
static pressure to said motor controller.
5. An apparatus for supplying variable amounts of air to an air volume delivery system
including a blower, a multispeed motor for driving said blower, a motor controller
for switching said motor from operational speed to speed, a return duct bringing air
to the blower, a supply duct including room terminals, for moving variable quantities
of air from the blower to selected rooms through corresponding room terminals, said
blower effective for controllably blowing air from said return duct into said supply
duct and through selected ones of said room terminals, means for blowing air into
the system at a first selected time rate of volume within a predetermined static pressure
operating range including an upper limit, and means for switching to a lower time
rate of volume when the static pressure is at the upper limit of said static pressure
operating range.
6. The apparatus of claim 5, wherein said means for switching includes said motor
controller.
7. The apparatus of claim 5, wherein said means for blowing air includes said multi-speed
motor.
8. The apparatus of claim 5, further comprising means for detecting static pressure
in said supply duct.
9. The apparatus of claim 8, further including a means for providing an indication
of said detected static pressure to said motor controller.