Background of the Invention
[0001] This invention relates generally to controlled environment chambers, and has particular
reference to an improved construction for a clean room module.
[0002] With the growth of high technology industries, the need for contamination free work
areas has greatly increased. This has led to the development of completely enclosed
work areas, known as clean rooms, in which the environment is closely controlled to
rid the ambient air of contaminants. Heretofore, most clean rooms have been built
on site and this had led to inefficiencies and other problems.
[0003] More recently, modular type clean rooms have been developed wherein the principal
components of the room are prefabricated at the factory and then are assembled on
site. The modular constructions are more efficient and have fewer problems than the
completely on site constructions but some problems do remain. An example of a modular
type clean room is disclosed in U.S. Patent No. 4,409,889, issued October l8, l983
to M. L. Burleson. A prefabricated knockdown clean room is disclosed in U.S. Patent
No. 4,267,769, issued May l9, l98l to G.B. Davis et al. These two patents represent
the closest prior art known to the applicant.
[0004] Other patents noted in a preliminary search are U.S. Patent Nos. 2,559,654; 3,505,989;
3,60l,03l; 3,766,844; 4,044,772 and 4,202,676.
Summary of the Invention
[0005] The present invention provides a pre-assembled, self-contained clean room module
having all of the equipment necessary for maintaining the temperature, humidity and
pressurization that are required for the work space within the room. Because the module
is factory built rather than built on site, precise quality control can be achieved
and each module can be thoroughly tested before shipment. This obviously is advantageous
to the end user who can avoid the problems and inefficiencies of a field erected,
one-of-a kind clean room.
[0006] An important feature of the invention, not found in any of the prior art cited above,
is the provision in the module of its own sealed base unit. This base unit permits
the module to be moved or relocated without having to be disassembled and also insures
that the module will have a completely sealed sump area beneath its floor. Obtaining
such a sealed area or plenum is difficult when the clean room is constructed or assembled
on site.
[0007] Another important feature of the invention is the provision in the module of its
own self-contained air conditioning unit which can be easily incorporated in the module
as a whole. This unit has two independent air systems or paths whereby only a portion
of the recirculating air need be conditioned as will be explained in greater detail
hereinafter. This feature of the air conditioning unit saves energy and gives better
operating control.
[0008] The principal object of this invention therefore is to provide a modular clean room,
which will be a self-contained unit, with all the mechanical equipment necessary to
control the air temperature, humidity, pressurization and cleanliness inside the space
provided.
[0009] Another object of this invention is to provide a mobile modular clean room the base
unit of which will include casters that can be cranked up and down to enable the invention
to be rolled into position and set into place.
[0010] Another object of this invention is to provide a modular clean room which will be
so designed as to meet or exceed the U.S.A. Federal Standard 209B for a Class l00
Clean room. This means that there can be no more than l00 particles 0.5 microns in
size and no more than four particles 2.0 microns in size per cubic foot (i.e. per
0.028 cubic metre).
[0011] A further object of this invention is to provide a modular clean room which will
be so designed as to have its return floor plenum sealed underneath and epoxy coated
to contain any chemical spills through the unit's perforated raised tiles.
[0012] Another object of this invention is to provide a modular clean room that can be moved
or relocated as a complete unit, it only being necessary to disconnect electric, water
and drain lines.
[0013] A still further object of this invention is to provide a modular clean room which
employs a self-contained air conditioning unit that may be a component of the entire
unit or separated for other uses.
[0014] Other objects are to provide a mobile modular clean room, which is simple in design,
inexpensive to manufacture, rugged in construction, easy to use and efficient in operation.
[0015] Yet another object of this invention is to provide modular clean rooms which can
be joined to one another to form a multiple unit clean room with a minimum of labor
and without extensive or complex modifications.
[0016] It is still another object of this invention to provide such modular clean rooms
whose air conditioning units an be connected together in a master/slave configuration
to ensure uniform pressure, temperature, and humidity conditions in a multiple unit
clean room.
[0017] These and other objects, will be readily evident upon a study of the following specification
and the accompanying drawings, wherein:
Brief Description of the Drawings
[0018]
Fig. l is a perspective view of the present invention, shown partly broken away;
Fig. 2 is a diagrammatic end elevational view, taken from the right end of Fig. l;
Fig. 3 is an end elevational view of the opposite end of Fig. l;
Fig. 4 is a fragmentary rear elevational view of Fig. l, shown partly broken away.
Fig. 5 is similar to Fig. 2, but is modified to include access or inspection covers;
Fig. 6 is a front elevational view of Fig. l;
Fig. 7 is a perspective view of a modified form of the invention, shown partly broken
away;
Fig. 8 is a perspective view somewhat similar to Fig. 7, illustrating the side walls
and the top partly broken away;
Fig. 9 is a perspective view of another modified form of the invention, illustrating
a stand-alone air conditioner, which is optional;
Fig. l0 is a fragmentary perspective view of a further modified form of the invention,
illustrating a composite grouping thereof;
Fig. ll is a schematic drawing illustrating the arrangement and operation of the air
conditioning unit;
Fig. l2 is a perspective view, partly in ghost and partly cut away, of a group of
modules of this invention configured in a master/slave arrangement; and
Fig. l3 is a sectional partial view of a corner post, side panel and end panel of
the module of this invention.
Description of the Preferred Embodiments
[0019] Having reference now to the drawings, and with particular reference to Figs. l-4,
the clean room module of the invention is essentially comprised of a base unit l5,
a ceiling unit l6, a front wall l7, a side wall l8 and a back wall 20, Fig. 6, which
abuts the inside panel or back wall of the air conditioning unit indicated generally
at 2l. An access door 22 is provided in the front wall l7 and, if desired, the side
wall l8 can be provided with windows 24, Figs. l and 6. The other side wall of the
module can be formed by a panel shown fragmentarily at 25 in Fig. l; however, if this
side of the module is connected to a like module to provide a larger work space, the
side will be left open for communication between the two as shown in Fig. 7.
[0020] The base unit l5, Figs. l-4, comprises a sheet metal bottom 26 and four sheet metal
side walls 27 that are welded together to form a sealed box-like receptacle that serves
as an air and water tight sump area. The module floor is comprised of perforated tiles
28, Fig.l, that are spaced above the bottom 26 of the base unit and supported by transversely
extending steel strips 30 that are in turn supported by truss-like members 3l. Because
the base unit is self-contained with its own sealed bottom and side walls, the complete
module can be moved or relocated as required. To increase the mobility of the module,
the base unit can be provided with casters 32 that can be raised or lowered by conventional
crank means (not shown).
[0021] The ceiling unit l6, like the base unit l5 has a hollow chamber or plenum, the unit
including a top panel 34 to which are secured four depending side panels 35 in an
airtight manner. A filter block 36 is spaced below the top panel 34 as best shown
in Fig. 8 whereby a plenum chamber 37 is formed between the block and panel. The ceiling
unit is entirely supported by four columns, one in each corner, such a column being
shown at 38 in Figs. l, 7 and 8. With this construction, the side walls are not load
bearing and can be removed as necessary when connecting two or more modules together.
[0022] As indicated in Fig. l, the interior of the module or work space may be provided
with a sink 40, storage cabinets 4l or any other needed equipment.
[0023] The air conditioning unit 2l, Figs. l, 2, 4 and 9, is an upstanding, self-contained
unit which abuts the back wall 20 of the module interior. The top of the air conditioning
unit is in communication with the ceiling unit plenum chamber 37 and the bottom of
the unit is in communication with the interior of the base unit l5 as will be described
in more detail hereinafter. A shelf 42 in the air conditioning unit supports recirculating
fans 44 which are driven by a motor 45. These fans direct the recirculating air into
the ceiling unit plenum 37 as shown by arrow 46, Fig. 4.
[0024] The air conditioning components are located below the shelf 42 and comprise a compressor
47, a condenser 48 and the make-up air components 49 including a make-up air fan 50,
a reheat coil 5l and a DX coil 52, all to be described in more detail below. Also
located in this area of the air conditioning unit are a humidifier 54, the power supply
55 and a controls recorder 56. Between the components just listed and the back wall
of the air conditioning unit there is an enclosed vertical air duct 57, Fig. 4, through
which return air from the base unit sump is drawn upwardly by the fans 44 as indicated
by the arrows 58. The air duct is also in communication with the make-up air components
49 as indicated by the arrows 60.
[0025] The exposed side of the air conditioning unit 2l is normally closed by a wall or
panel 6l shown in Figs. 7 and 9 and fragmentarily in Figs. l and 2. This wall has
a smaller removable panel 62 that permits access to the air conditioning components.
Alternatively, the air conditioning unit can be provided with hinged, louvered access
doors 64 as shown in Fig. 5.
[0026] Reference is now made to Fig. ll which is a schematic drawing that illustrates the
operation of the air conditioning unit 2l and its relationship to the remainder of
the clean room module. As indicated in Figs. l, 2 and 3, the air conditioning components
are all actually located within the confines of the unit. In operation, the recirculating
air is continuously blown through the interior of the clean room module by the fans
44, the air entering the ceiling unit plenum 37 and then passing down through the
filter block 36 into the room. Because the air is under positive static pressure,
it flows downwardly through the room in a vertical laminar flow. At the bottom of
the room, the air passes through the floor tiles 28 and into the sump area of the
base unit l5. From thence the air flows through an opening 65, Fig. ll, into the return
air duct 57 which directs the air upwardly to the intake side of the fans 44. Before
entering the fans, the air passes through recirculation prefilters 66.
[0027] As the air passes through the return air duct 57, a portion of it is drawn into the
air conditioning system where it is combined with a certain amount of make-up air
which, because of room exhaust and leakage, is needed to maintain room pressurization.
This combined air flow is then blown through cooling and reheating coils by a make-up
air fan. The conditioned air is then reinjected into the recirculating air stream.
[0028] The portion of the recirculating air that is drawn into the air conditioning system
passes through a spring loaded, weighted backdraft damper 67 into a by-pass air conduit
68 that takes it to the make-up air fan 50. The make-up air enters the system through
a conduit 70, passes through a prefilter 7l, damper 8l and then is drawn into the
fan 50 where it is combined with the by-pass air. The combined air flow is blown by
the fan through the DX coil 52, the latter being a cooling coil that removes moisture
from the make-up air. As shown in Fig. ll, the DX coil 52 is connected to the compressor
47 and condenser 48 through a suction throttling valve 72 and expansion valve 74,
respectively, the operation of all of these and other commercially available components
being well known.
[0029] The combined air flow that passes through the DX coil 52 is thereafter blown in part
through the reheat coil 5l and in part through by-pass dampers 75 on the coil depending
on the temperature of the air, the control settings, etc. From the coil 5l and dampers
75, the conditioned, combined air flows into a conduit 76 that takes it back into
the return air duct 57 just upstream of the prefilters 66 as shown, the conditioned
air being injected into the recirculating air stream at this point.
[0030] The temperature in the clean room is controlled by the temperature of the air leaving
the air conditioning system, just described. To this end, a dry bulb sensor 77, Fig.
ll, is located in the return air duct 57, and this sensor transmits a signal to the
controller 56 which signal is in proportion to the return air (room) temperature.
This signal is analyzed by the controller with respect to the set point and the controller
sends an output signal to a control element 78 on the by-pass dampers 75. By regulating
the amount of conditioned air going through or bypassing the reheat coil 5l, the leaving
air temperature of the conditioned air flow is varied to meet the controller's set
point condition.
[0031] The humidity in the clean air room is maintained by regulating the amount of moisture
taken out of or added to the combined air stream. Thus, a sensor 79 located in the
leaving air stream of the DX coil 52 sends a signal to the controller 56 which modulates
the suction throttling valve 72 in the refrigeration lines to maintain setpoint. This
setpoint is selected as the upper limit of the room dewpoint at saturated air conditions,
i.e. so that dry bulb approximately equals wet bulb and dewpoint. The setpoint will
control the refrigeration system to maintain maximum leaving air temperature and therefore
the
maximum amount of moisture in the air.
[0032] The steam generating humidifier 54, Fig. ll adds moisture to the recirculating air
stream thereby controlling the
minimum level of humidity. Humidity sensor 80, through controller 56, controls humidifier
54 to add the proper amount of moisture for maintaining set point conditions. The
range between minimum and maximum is termed the humidity tolerance. A relatively wide
tolerance conserves energy because it allows the clean room humidity to float without
refrigeration or steam energy. Closer tolerances require more energy. For a very close
tolerance, the refrigeration must be set up to subcool the air slightly below the
design dewpoint and then the steam humidifier 54 must continuously add moisture to
hold the tolerance.
[0033] The pressurization in the clean air room is maintained by controlling the amount
of make-up air that is drawn into the make-up air fan 50, Fig. ll, of the air conditioning
unit. This air, as noted above, combines with a certain amount of bypass air from
the recirculating air stream to maintain a constant air flow through the DX refrigeration
coil 52. This prevents frosting of the coil and loss of efficiency.
[0034] The amount of make-up air is regulated by a damper 8l that can be either manually
or automatically controlled. A sensor 82 located in the clean air room immediately
below the filter block 36 sends a pneumatic signal to a pressure gauge (not shown)
located in the air conditioning unit and continuously indicates the room static pressure.
The damper 8l can be manually set to any pressure. If automatic operation is desired,
the pneumatic signal is also sent to the controller 56 which then automatically controls
the make-up air damper 8l to hold set point by means of a damper motor 84.
[0035] The controller 56 is preferably an electronic unit that senses not only the room
static pressure, but also the rate of change of the room static pressure. The controller
56 includes a continuously variable adjuster to move the make-up damper 8l in accordance
with both the detected differential static pressure and the detected rate of change
of static pressure. With this system, the differential pressure between inside and
outside air is easily maintained within ±0.02 inches (± 0.5l cm) of water of the set
point, typically ± 0.l0 inches (± 0.25 cm) WC.
[0036] Referring now to Figs. 7 and 8, these drawings illustrate how two clean room modules
can be joined to form a double unit having twice the work space of a single unit.
The Fig. 7 module is, except for its base unit l5a, essentially like the module of
Figs. l-4 having a ceiling unit l6a, a front wall l7a, a side wall l8a and a back
wall 20a abutting the air conditioning unit 2la. The Fig. 8 module is in effect a
mirror image of the Fig. 7 module so that the open back sides of the modules can be
brought into registering engagement with each other to double the area of the work
space.
[0037] As shown in Figs. 7 and 8, the base units l5a and l5b of the mating modules are recessed
at 85 and 86 respectively so that the modules can be "wrapped around" existing floor
mounted fixtures or vibration isolated equipment such as electron beam units. Stated
another way, an existing floor mounted fixture can be received in the space defined
by the base unit recesses 85 and 86 which recesses can be shaped as required to fit
around the particular fixture. With respect to Figs. 7 and 8, it should also be noted
that in this kind of arrangement one module can be a master and the other module a
slave meaning that the latter does not have its own air conditioning unit but receives
its conditioned air from the master.
[0038] Fig. 9 illustrates the air conditioning unit as a free standing, independent unit
2lc that can be utilized for other types of clean rooms or the like. The unit 2lc
includes a discharge duct 87, or the discharge duct may optionally be located at 88.
Likewise, the return air duct may be located at 90 with knockout 9l being provided
for an alternative return air connection. Knockout 92 is provided for supply air to
adjacent units.
[0039] Fig. l0 illustrates a multiple module arrangement in which twelve clean room modules
are connected together to form a relatively large clean room area. The drawing also
illustrates the versatility of the modules since it shows the different ways in which
they can be joined with one another. The multiple arrangement includes at least one
access door 94 which may open into a gowning room 95. Windows 96 are provided as necessary,
and for convenience one or more passthroughs 97 can also be provided.
[0040] Fig. l2 illustrates a multiple clean room assembly formed of three adjacent modules
disposed side by side, with the central module functioning as master and the adjacent
modules serving in a slave capacity. One of these modules (identified with double-primed
reference numbers) is shown only in ghost lines so as to minimize drawing clutter.
Here, the modules are joined with their air conditioning units 2l, 2lʹ and 2lʺ adjacent
one another. The central module air conditioning unit is of dual coil configuration,
with two DX coils 52, two reheat coils 5l, two by-pass dampers 75, and two make-up
air control dampers 8l defining two parallel air conditioning paths. These are both
controlled by a single controller 56. The output side of the by-pass dampers 75 and
reheat coils 5l feeds the conditioned air into a generally wedge-shaped distribution
chamber 98 that connects through an opening 99 at a central part of the air conditioning
module into the return air conduit 57 where it flows through the prefilters 66 and
thence into the main recirculating fans 44 which feed the recirculated air into the
ceiling unit plenum 35. The wedge-shaped distribution chamber 98 also feeds the treated
air through corresponding wedge-shaped openings (corresponding to knock-out 92), to
the distribution chambers of the slave modules through corresponding wedge-shaped
knock-out openings 92ʹ and 92ʺ. In this configuration only the central module air
conditioning unit 2l (shown with cover removed) is used to dehumidify, cool, reheat,
and control the pressure for all three modules. All three modules employ their own
recirculating air systems to maintain the laminar vertical clean air flow in each
module but the central or master module air conditioner 2l supplies the treated, temperature,
humidity, and pressure controlled air to the main recirculating fans of all three
modules. The control 56 of the central master air conditioner 2l only is functional.
[0041] In this arrangement the side wall panels l8 or 25 are removed from the central or
master module, and one side wall panel l8 or 25 is removed from each of the slave
modules, so that they can be joined. Gaskets disposed along the corner columns 38
and at the base and ceiling units l5,l6 compress together to form a seal when the
modules are connected. Bolts or other fasteners can be passed between abutting side
walls of adjacent ceiling and base units of the master and slave modules to connect
the modules together. The slave module air conditioning unit 2lʹ here is shown as
a standard module with doors in place. A slave module does not contain any of the
air treatment and make-up elements, but is provided with only the recirculating fans
44 and associated ducts and filters.
[0042] The rigid side and front walls are removably connected to the corner columns 38 as
generally shown in horizontal cross section in Fig. l3. Here the side wall panels
l8 or 25 and the front panel l7 are each formed of a rigid panel and a surrounding
mounting frame formed of an extruded aluminum "h"-shaped channel member l00. The
panel 25 or l8 itself fits into a channel l0l defined between two flanges l02 and
abuts a gasket l03 to form a sealed entity. An outer flange l04 then projects around
the periphery of the column 38, and is fastened against the column 38 with a gasket
l06 compressed between the channel l00- and the column 38. These elements are easily
fastened together with machine screws l08. The top edge and bottom edge of the panels
25, l8 and l7 are fastened to the module base unit l5 and ceiling unit l6 in similar
fashion.
[0043] When two or more modules are to be combined, it is a simple matter to unscrew the
facing panels and join the modules together with the panels removed. Because the panels
are not load bearing, the modules maintain their structural integrity when one or
more panels are removed, so the modules can be moved together on their casters, with
their panels removed, to facilitate their combination.
[0044] The air conditioning circuit including the make-up air fan 50, the DX Coil 52, the
reheat coil 5l and the by-pass damper 75 and return duct 98 or conduit 76 handles
a constant volume of air per unit time, the volume being the sum of bypass air 68
plus make-up air 70. This volume constitutes only a fraction of the total recirculated
air, typically, between 5% and 20%. Because only a small part of the total circulated
air passes through this loop, the DX coil 52 can cool at full capacity for more efficient
operation; the coil 52 need not be held at the much higher room interior dry bulb
temperature but can be much cooler. Another benefit of the partial recirculation of
the air is the ability to hold room temperature (typically ± 0.l to ± 0.4 degrees
F -i.e.
+or 0.06 to ± 0.22 degrees C), even with the DX coil temperature variance ranging ± 2.0
degrees - ± l.l degree C -or more.
[0045] Preferably, the reheat coil 5l receives its heat from the heat absorbed in the DX
coil 52. This avoids the need for a separate electric heater.
[0046] The modular clean room of this invention has the advantage of being factory assembled,
pre-packaged and pre-tested. The modular unit can be simply connected to electric,
water, and drain and turned on ready for use. If there is any residual dust, it will
purge out in a short interval of time. Field certification is usually unnecessary,
depending on local regulations, because the built-in air conditioning is pre-tested
and factory certified. Modules constructed according to this invention have been found
to exceed federal quality standard 209B for a class l00 and better clean room, and
have consistently met class l0 standard (i.e., less than ten particles of l/2 micron
diameter per cubic foot (0.028 cubic metre), with no particles larger than five microns).
[0047] Temperature is maintained within ± 0.l degree F (± 0.05 degree C), humidity maintained
within 2.0% relative humidity, and pressure maintained within ± 0.02 inches (±0.05l
cm) of water column of the desired set point.
[0048] Also, because the clean rooms are transportable and modular, and not field-assembled,
they can be treated as capital expenditures by the purchaser, and are ideal for lease
arrangements.
1. A clean room module comprising in combination a self-contained, unitary base unit
that includes a floor, bottom and side walls that define a sump chamber beneath the
floor, vertical side walls mounted on and supported by the base unit, an upstanding
self-contained air conditioning unit connected to the base unit adjacent one side
wall of the clean room module, a ceiling unit engaging upper edges of said side walls,
support members supporting said ceiling unit independently of said side walls, the
ceiling unit having filter material therein and a plenum chamber above the filter
material, with the floor, walls, and ceiling unit together defining an enclosed clean
room, the ceiling unit plenum chamber and the base unit sump chamber being in communication
with the air conditioning unit; characterized in that said air conditioning unit has
a first circulating path (57) for moving the air from said base unit sump chamber
(l5) to said ceiling unit plenum chamber (35), and a second circulating path (67,
68, 49, 76) including an automatically controllable diverter (67) for diverting a
part of the air of said base sump unit chamber (l5) from the first path (57), a blower
(50) having an intake (68) coupled to said diverter (67), a make-up air inlet (70)
coupled to the intake (68) of the blower (50) and including a controllable make-up
damper (8l), air conditioning elements (5l,52) following said a blower (50) for treating
the diverted air an make-up air, and a distribution duct (75,76) following said air
conditioning elements (5l,52) for injecting the treated air into said first circulating
path (57), said second path handling a constant volume per unit time of flow formed
of the sum of the diverted and make-up air flows, and a static pressure control sensor
(56, 82, 84) for controlling said make-up damper (8l) in accordance with the static
pressure in said enclosed clean room area so that the air conditioning unit (2l) circulates
filtered air at a constant predetermined pressure in a downward laminar flow through
the enclosed clean room area.
2. A clean room module as defined in claim l further characterized in that said distribution
duct includes a distribution channel (98,99) extending laterally and having a port
(92) disposed in at least one side wall of the air conditioning unit (2l), the port
(92) serving for coupling by a corresponding port (92ʹ or 92ʺ) to a distribution channel
of an air conditioning unit (2lʹ or 2lʺ) of an adjacent connected clean room module
for supplying the treated air from the first-mentioned clean room module to the first
circulating path of the second-mentioned clean room module, so that the first-mentioned
module functions as a master and the second-mentioned module acts as a slave unit
receiving treated air only from the air conditioning unit (2l) of the first-mentioned
module.
3. A clean room module as defined in claim l further characterized in that said second
circulating path (49, 50, 5l, 52 - Fig. l2) is disposed to one side of the air conditioning
unit (2l), and the latter includes a third circulating path disposed to the other
side thereof, and having an automatically controllable diverter (67), a blower (50)
having an input coupled to the diverter, a make-up air inlet (70) coupled to the intake
of the blower and including a controllable make-up damper (8l), an air conditioning
element (52) following said blower, and conduit connecting the air conditioning element
(52) to said distribution, said sensor (82) controlling the make-up damper (8l) of
the third circulating path as well as the make-up damper (8l) of the second circulating
path.
4. A self-supporting, self-contained air conditioning unit that can be connected with
a clean room module or the like, and in which a first fan blows recirculating air
into a room or area of the module, a return air duct has an intake port for receiving
the recirculating air after it has passed through the room and in which the duct delivers
air to the first fan, such that the room to be air conditioned and the return air
duct define a first air circuit for the air conditioning unit, a second fan delivers
ambient make-up air to the first fan, and a bypass coacts with the return air duct
in advance of the first fan and diverts a portion of the air passing therethrough
into the second fan, the second fan being disposed in an enclosure of the air conditioning
unit that contains a cooling coil and a reheat coil in the outflow of the second fan
for treating the air from the second fan; such that the second fan mixes the make-up
air and the air diverted from the duct and blows the combined air through the cooling
and reheat coils, and an outlet port for delivering the treated air back to the return
air duct for combining with the recirculating air passing therethrough, with the bypass,
the second fan enclosure, and the outlet port defining a second air circuit for the
air conditioning unit; characterized in that the second fan (50) operates at a constant
volume flow of about five to twenty percent of the air flow through the first circuit
(58), and a controller that includes an air pressure sensor (82) in communication
with said room or other area, and a damper control (84) which has a pressure sensor
(82) in communication with said room or area controls the make-up air damper (8l)
in accordance with the air pressure within said room or area, and with the rate of
change of air pressure in said room or area so as to maintain said room or area at
a substantially constant pressure.
5. An air conditioning unit as defined in claim 4 further characterized in that the
return air duct (57) is substantially vertically disposed, the first fan (44) being
located adjacent the upper end of the duct and the duct intake port (65) being located
adjacent the lower end of the duct (57) so that the return air (68) flows upwardly
from the port to the fan.
6. An air conditioning unit as defined in claim 5 further characterized in that a
prefilter (66) is disposed in the duct (57) adjacent the upstream side of the first
fan (44).
7. An air conditioning unit as defined in claim 5 further characterized in that a
diverter (67) for diverting a portion of the duct air to the second fan (50) is located
adjacent the lower end of the duct (57).
8. An air conditioning unit as defined in claim 6 wherein the outlet port (76) connects
with the duct (57) adjacent the upstream side of the prefilter (66).