BACKGROUND OF THE INVENTION
[0001] The present invention relates to a multiple room type heat pump air conditioning
system in which a single outdoor unit and a plurality of indoor units connected to
the outdoor unit and to a method for controlling excess flow of refrigerant in refrigeration
cycle when any indoor unit is inoperated.
[0002] In a conventional system, as shown in JP-A-61-114060, in order to control an excess
flow of refrigerant when one or more indoor units are inoperated, electric expansion
valves associated with the inoperating indoor units, or such expansion valves and
solenoid valves associated with the inoperating indoor units are controlled to be
opened or closed, on the operation of the system, to retain the subcooling degree
of the operating indoor unit (in heating operation mode of the system) or the super
heating degree thereof (in cooling operation mode thereof) in a predetermined value,
whereby the amount of refrigerant circulating through the operating cycle becomes
proper.
[0003] However, in such conventional system, it is not taken into the consideration that
there is a time lag between the time when the above control is made for the valves
and the time when the subcooling degree or the super heating degree is actually changed.
In case that such control is continuously conducted to retain the subcooling degree
or the super heating degree in the predetermined value, since the detected subcooling
degree or the super heating degree changes gradually, i.e. the responsibility is not
so good, it is difficult to stop conducting such control when the detected subcooling
degree or the super heating degree just becomes to a level accurately identical to
the predetermined value. Accordingly the excess flow of refrigerant is controlled
inproper and immoderately, so that the problem is raised that the operation cycle
of the refrigerant becomes unstable. Further in the conventional system, if the refrigerant
flow circulating through the operating cycle is changed, another significant controlled
variable is also changed, whereby making a considerable effect on another control.
However, the conventional system does not take it into the consideration. Accordingly
the excess flow control causes the problem that the refrigerant distribution control
based on the super heating degree of the refrigerant from the compressor.
OBJECT AND SUMMARY OF THE INVENTION
[0004] An object of the present invention is to provide an air conditioning system by which
the above mentioned problems are solved, and in which the excess flow of refrigerant
is properly controlled corresponding to the conditions of the operating cycle to form
an effective and steady refrigeration cycle, whereby obtaining a comfortable circumstance.
[0005] To this end, according to the present invention, the system comprises a controller
for receiving data from the sensors for detecting the subcooling degree and the super
heating degree of the refrigerant and for calculating signals regarding to the expansion
valves associated with the inoperating indoor units, or not only to such expansion
valves but also the solenoid valves associated with the inoperating indoor units on
the basis of such data from the sensors, and a control signal outputting means for
outputting open/close control command signals to such expansion valves, or such expansion
valves and such solenoid valves, in compliance with the calculated signals in the
controller, to intermittently open or close such valves. In addition, in another respect
of the present invention, the controller receives the data corresponding to the super
heating degree of the refrigerant from the compressor from the sensor for detecting
such data and the controller outputs signals to the control signal outputting means
so as to interrupt a discharge flow from the inoperating indoor units.
BRIEF DESCRIPTION OF THE DRAWINGS
[0006]
Fig. 1 is a circuit diagram showing a refrigeration cycle of one embodiment of the
present invention;
Fig. 2 is a diagram showing the operation of the valves shown in Fig. 1;
Fig. 3 is a flow chart showing the control of the embodiment shown in Fig. 1;
Figs. 4 and 7 are flow charts showing the control of another embodiments;
Fig. 5 is a flow chart showing the process K in Fig. 4; and
Fig. 6 is a diagram showing the change of the super heating degree.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0007] The present invention will be described hereinunder with reference to one embodiment
shown in Fig. 1. A refrigeration cycle of an air conditioning system comprises a single
outdoor unit A and three indoor units B, C and D connected to the outdoor unit A.
The indoor unit A includes a compressor 1, a four-way valve 2, an accumulator 3, an
outdoor heat exchanger 4 and a receiver 5 disposed in a liquid side primary pipe 6
through which the liquid refrigerant flows. The pipe 6 branches out into three liquid
side branching pipes 7b, 7c and 7d. The indoor units B, C and D comprise indoor heat
exchangers 8b, 8c and 8d, respectively. Electric reversible expansion valves 9b, 9c
and 9d are disposed in the respective liquid side branching pipes 7b, 7c and 7d through
which the low temperature and low pressure liquid refrigerant flows. In the same manner,
solenoid valves 10b, 10c and 10d are disposed in the respective gas side branching
pipes 11b, 11c and 11d through which the low temperature and low pressure gaseous
refrigerant flows. The branching pipes 11b, 11c and 11d are integrated into a gas
side primary pipe 12 through which the low temperature and low pressure gaseous refrigerant
flows. These elements are connected to each other as shown in Fig. 1 so as to form
a heat pump type refrigeration cycle. A control system is also provided, which includes
a sensor 13 for detecting a refrigerant condensation temperature, provided in a condensation
pipe connected to a refrigerant discharge pipe from the compressor, a sensor 14 for
detecting a temperature of a gaseous refrigerant discharged from the compressor,
sensors 15b, 15c and 15d for detecting the respective temperatures of the refrigerant
before pressure decrease by the expansion valves 9b, 9c and 9d in heating operation
mode, a controller 16 for processing the data from these sensors 13, 14, 15b, 15c
and 15d and a means 17 for outputting command signals, on the basis of the commands
from the controller 16, to the expansion valves 9b, 9c and 9d to make the opening
degrees thereof in determined levels and to the solenoid valves 10b, 10c and 10d to
close or open them. The control system further includes sensors 18b, 18c and 18d provided
in a conduit wall of the respective indoor heat exchangers 8b, 8c and 8d for detecting
a saturation temperature of the refrigerant therein, and sensors 19b, 19c and 19d
provided in the respective branching pipes 11b, 11c and 11d for detecting a temperature
of the refrigerant therein.
[0008] In Fig. 2, reference numerals 20 and 21 designate a wave form representing an opening
degree of the electric reversible expansion valve associated with the inoperating
indoor unit and a wave form representing an open/close condition of the solenoid valve
associated with the inoperating indoor unit, respectively.
[0009] The operation of the above mentioned embodiment will be described hereinunder with
reference to Fig. 1 and Fig. 3 showing a flow chart of the control therefor.
[0010] In the heating operation mode, when only one indoor unit B is operated, the gaseous
refrigerant is delivered from the compressor 1, via the gas side primary pipe 12,
the gas side branching pipe 11b, and the solenoid valve 10b, to the heat exchanger
8b in which the gaseous refrigerant is heat-exchanged with the indoor air and radiates
heat outsides to condense into condensation or liquid refrigerant. The liquid refrigerant
is further delivered, through the expansion valve 9b, the liquid side branching pipe
7b, the liquid side primary pipe 6 and the receiver 5, to the heat exchanger 4 in
which the liquid refrigerant is heat-exchanged with the outdoor air and absorbs heat
to evaporate into gaseous refrigerant. The gaseous refrigerant returns to the compressor
1 through the four-way valve 2 and the accumulator 3. In this case, the expansion
valves 9c and 9d, and the solenoid valves 10c and 10d associated with the inoperating
indoor units C and D are fully closed.
[0011] The controller 16 calculates a temperature difference between the refrigerant temperature
detected by the sensor 18b and the refrigerant temperature detected by the sensor
19b, or the subcooling degree SC of the refrigerant (step 301). If the subcooling
degree SC is lower than the predetermined level E (step 302), i.e. the subcooling
degree SC is with in a range 22a (Fig. 2), the controller 16 decides that the amount
of the refrigerant circulating through the refrigeration cycle is insufficient (step
303). Thereafter, in step 304, the controller 16 outputs commands to the means 17
to hold the solenoid valves 10c and 10d associated with the inoperating units C and
D in closed positions (as designated by 21a in Fig. 2) and to open the expansion valves
9c and 9d in the predetermined opening degree Hi for a period t1 (as designated by
20a in Fig. 2). Therefore, the refrigerant in the inoperating units C and D is extracted
therefrom and after the lapse of time period t1 (step 305), the controller 16 outputs
commands to the means 17 to close the expansion valves 9c and 9d (step 306). After
the lapse of time period t2 (Fig. 2) (step 307), the controller 16 calculates the
temperature difference (SC) again (step 301). If such difference is still with the
range 22a, the above flow is repeated to extract the refrigerant from the inoperating
units C and D.
[0012] To the contrary, if the subcooling degree SC is higher than the predetermined level
F (step 302), i.e. the subcooling degree SC is with in a range 22b (Fig. 2), the controller
16 decides that the amount of the refrigerant circulating through the refrigeration
cycle is excessive (step 308). Thereafter, in step 309, the controller 16 outputs
commands to the means 17 to hold the expansion valves 9c and 9d associated with the
inoperating units C and D in closed positions (as designated by 20a in Fig. 2) and
to open the solenoid valves 10c and 10d for a period t3 (as designated by 21a in Fig.
2) by means of supplying a voltage HI (v) to the solenoid coil thereof. After the
lapse of time period t3 (step 310), the controller 16 outputs commands to the means
17 to close the solenoid valves 10c and 10d (step 311). After the lapse of time period
t4 (Fig. 2) (step 312), the controller 16 calculates the temperature difference (SC)
again (step 301). If such difference is still with the range 22b, the above flow is
repeated to introduce the refrigerant into the inoperating units C and D.
[0013] As the result of the above mentioned control, when the subcooling degree SC is within
a range 22c (Fig. 2) (step 302) and the amount of the refrigerant circulating through
the refrigeration cycle is proper (step 313), the solenoid valves 10c, 10d and the
expansion valves 9c, 9d associated with the inoperating units C and D is held in closed
positions (as designated by 21c and 20c in Fig. 2) so as to maintain the refrigerant
within the inoperating indoor units C and D. After the lapse of sampling time period
t5 (step 314), the process returns back to the step 301.
[0014] In the cooling operation mode, when only one indoor unit B is operated, the gaseous
refrigerant is delivered from the compressor 1, via the four-way valve 2, to the heat
exchanger 4 in which the gaseous refrigerant is heat-exchanged with the indoor air
and radiates heat outsides to condense into condensate or liquid refrigerant. The
liquid refrigerant is further delivered, through the receiver 5, the liquid side primary
pipe 6, the liquid side branching pipe 7b, and the expansion valve 9b, to the heat
exchanger 8b in which the liquid refrigerant is heat-exchanged with the indoor air
and absorbs heat to evaporate into gaseous refrigerant. The gaseous refrigerant returns
to the compressor 1 through the solenoid valve 10b, the gas side branching pipe 11b,
the gas side primary pipe 12, the four-way valve 2 and the accumulator 3. In this
case, the expansion valves 9c and 9d, and the solenoid valves 10c and 10d associated
with the inoperating indoor units C and D are fully closed.
[0015] The controller 16 calculates a temperature difference between the refrigerant temperature
detected by the sensor 18b and the refrigerant temperature detected by the sensor
19b, or the super heat degree SH of the refrigerant (step 315). If the super heat
degree SH is higher than the predetermined level G (step 316), the controller 16 decides
that the amount of the refrigerant circulating through the refrigeration cycle is
insufficient (step 317). Proceeded are the same steps 318 to 321 as in case that
the subcooling degree SC is lower than the predetermined level in heating operation
mode. Therefore, the refrigerant in the inoperating units C and D is extracted therefrom.
In this case, since the refrigeration cycle is reversed one, the expansion valves
9c, 9d and the solenoid valves 10c, 10d operate reversely to each other in step 318.
To the contrary, if the super heat degree SH is lower than the predetermined level
H (step 316), the controller 16 decides that the amount of the refrigerant circulating
through the refrigeration cycle is excessive (step 322). Proceeded are the same steps
323 to 326 as in case that the subcooling degree SC is higher than the predetermined
level in heating operation mode. Therefore, the refrigerant is introduced into the
inoperating units C and D. In this case, since the refrigeration cycle is reversed
one, the expansion valves 9c, 9d and the solenoid valves 10c, 10d operate reversely
to each other in step 323.
[0016] When the super heat degree SH is within a range 23c (Fig. 2) (step 316) and the amount
of the refrigerant circulating through the refrigeration cycle is proper (step 327),
as same as in the subcooling degree SC is within the range 22c in the heating operation
mode, the refrigerant is maintained within the inoperating indoor unit. After the
lapse of sampling time period t6 (step 328), the process returns back to the step
315.
[0017] Namely, in the above mentioned embodiment shown in Fig. 3, the subcooling degree
of the refrigerant (in the heating operation mode) or the super heating degree thereof
(in the cooling operation mode) is detected by the sensors. When the subcooling degree
SC exceeds the predetermined range in the heating operation mode, or the super heating
degree SH is kept under the predetermined range in the cooling operation mode, the
controller decides that the refrigerant circulates through the refrigeration cycle
in the amount greater than that for the proper operation of the cycle, and then outputs
the commands to the command signal outputting means so that the expansion valves associated
with the inoperating units are held in closed position and the solenoid valves associated
with the inoperating units are switched over and held in open position for a predetermined
period in the heating operation mode, and such expansion valves are switched over
and held in open position and such solenoid valves are held in closed position in
the cooling operation mode. Therefore, the refrigerant circulating through the refrigeration
cycle is introduced into and maintained within the inoperating units to reduce the
amount of the circulating refrigerant. After the lapse of the predetermined time
period, the expansion valves and the solenoid valves are switched over into the open
positions. The valves are held in the closed positions for the predetermined period
of time so that the refrigeration cycle is subject to the above mentioned control
and then the subcooling degree SC of the refrigerant and the super heating degree
SH can change. Thereafter, if the subcooling degree SC and the super heating degree
SH are not within the desired range, the above mentioned control is repeatedly conducted
intermittently to reduce the excess refrigerant.
[0018] In the same manner, when the subcooling degree SC is kept under the predetermined
range in the heating operation mode, or the super heating degree SH exceeds the predetermined
range in the cooling operation mode, the controller decides that the refrigerant circulates
through the refrigeration cycle in the amount less than that for the proper operation
of the cycle, and then outputs the commands to the command signal outputting means
so that the expansion valves associated with the inoperating units are switched over
and held in open position and the solenoid valves associated with the inoperating
units are held in closed position for a predetermined period in the heating operation
mode, and such expansion valves are held in closed position and such solenoid valves
are switched over and held in open position in the cooling operation mode. Therefore,
the refrigerant maintained within the inoperating units is discharged into the refrigeration
cycle to increase the amount of the circulating refrigerant. In this case, the control
is conducted intermittently.
[0019] Such control changes the amount of the circulating refrigerant and makes any effects
on the controlled variables except such amount, e.g. the super heating degree of the
refrigerant from the compressor. However, if the steps 329 to 332 (Fig. 4) are added
to the control flow in Fig. 3, it becomes possible to eliminate such effects.
[0020] Accordingly, with reference to the control for distribution of refrigerant, which
is important for the multiple room type air conditioning system, when the detected
values, e.g. the super heating degree of the refrigerant from the compressor satisfy
the conditions by which the distribution control is adversely effected, the expansion
valves and the solenoid valves associated with the inoperating units are operated
to interrupt the refrigerant flow from the inoperating units into the refrigeration
cycle regardless of the values of the detected controlled variables in the excess
refrigerant control, e.g. the subcooling degree SC and the super heating degree SH.
[0021] With regard to the above mentioned distribution control, the detailed explanation
will be made hereinunder with referring to Figs. 1, 2 and 4 and Fig. 5 which shows
the process in the steps 330 and 332 in Fig. 4.
[0022] In the excess refrigerant control, since the refrigerant is discharged from the inoperating
units into the operating cycle, the super heating degree of the refrigerant from the
compressor is decreased, so that the distribution control is adversely effected and
the stability of the cycle becomes worse. Accordingly, in this embodiment, in order
to prevent such stability from becoming worse, the controller 16 calculates a temperature
difference between the temperature of the gaseous refrigerant from the compressor
detected by the sensor 14 and the condensing temperature of the refrigerant detected
by the sensor 13, or the super heating degree TdSH of the refrigerant from the compressor.
The controller 16 interrupts the excess refrigerant control when the following conditions,
or the process K (steps 330 and 332 in Fig. 4) are satisfied. Namely, the excess refrigerant
control is temporary interrupted when the super heating degree TdSH of the refrigerant
from the compressor becomes lower than the pre-set value SHset which makes the refrigerant
distribution control proper, i.e. TdSH-SHSet < 0 (Figs. 5 and 6). To the contrary,
even if the super heating degree TdSH is higher than the pre-set value SHset, in a
J zone between the pre-set value SHset and a pre-set value J°C which is close to the
pre-set value SHset, in case that the super heating degree TdSH has an intention of
fallin down, i.e. the super heating degree TdSH at the sampling point 2 becomes lower
than the super heating degree TdSHʹ at the preceding sampling point 1 and closer to
the pre-set value SHset, it is interrupted to discharge the refrigerant from the inoperating
indoor units into the operating cycle by means of the steps 329, 330 or 331, 332,
regardless of the subcooling degree or the super heating degree. However, in case
that the super heating degree TdSH has an intention of increasing as designated by
the dotted line in Fig. 6, it is continued to discharge the refrigerant from the inoperating
indoor units into the operating cycle, even though the super heating degree TdSH is
within the J zone. Accordingly, in this embodiment, it becomes possible to eliminate
the interference between the excess refrigerant control and the refrigerant distribution
control both of which are important for the multiple room type air conditioning system.
[0023] Incidentally, the present invention is not limited to the above embodiments, but
the following modifications may be possible. For example, with regard to the objections
to be detected by the sensors, if the sensors are disposed in other positions, they
can detect any other objects which correspond to such objections. Further, even though
the sensors 18b, 18c and 18d are dispensed with, it is possible to calculate the saturation
temperatures which should be detected by the sensors 18b, 18c and 18d by means of
compensating for the detected values by the sensors 13, 15b, 15c and 15d with compensation
coefficients such as indoor unit capacities. Thus, various modifications are possible
within a scope of the present invention. In particular, although in the above embodiment
the process K is provided in not only in the heating operation mode but also in the
cooling operation mode (Fig. 4), it is practically sufficient to provide the process
K only for the heating operation mode as shown in Fig. 7. The control flow shown in
Fig. 7 is substantially identical to that in Fig. 4. Therefore, the explanation therefor
is omitted. The control circuit for the embodiment shown in Fig. 7 is more simplified
than that shown in Fig. 4.
[0024] In accordance with the above mentioned controls, the amount of the refrigerant circulating
through the cycle is always kept proper correspondence with the air conditioning conditions.
Therefore, it is possible to prevent the increase in the pressure and the temperature
of the refrigerant from the compressor, which increase is caused by the increase of
the amount of the refrigerant circulating through the cycle. The inoperation of the
compressor which is caused by the operation of the protection means therefor due to
such increase in the pressure and the temperature is also prevented. Further, it is
possible to prevent the increase of the compressor temperature which is caused by
decrease of the refrigerant circulating through the cycle and to prevent the generation
of flash gas. Accordingly, the refrigeration cycle is kept in steady and proper, whereby
a comfortable air conditioned circumstance is obtained.
[0025] According to the present invention, even though one or some indoor units of the multiple
room type air conditioning system become inoperating conditions, it is possible to
make the refrigerant in the proper amount circulate through the refrigeration cycle
correspondence with the number of the operating indoor units, so that the meritorious
advantages that a comfortable air conditioned circumstance is obtained is given.
1. In a heat pump type multiple room air conditioning system comprising a single
outdoor unit (A) including a compressor (1) and an outdoor heat exchanger (4), a plurality
of indoor units (B, C, D) each including an indoor heat exchanger (8b, 8c, 8d), a
plurality of electric reverse expansion valves (9b, 9c, 9d) each provided for flowing
a refrigerant in opposite directions in the respective branching pipes (7b, 7c, 7d)
into which a liquid side primary pipe (6) connected to said outdoor unit branches
out, and a plurality of solenoid valves (10b, 10c, 10d) each provided in the respective
branching pipes (11b, 11c, 11d) into which a gas side primary pipe (12) connected
to said outdoor unit branches out, the expansion valves associated with the inoperating
indoor units of said indoor units, or said expansion valves and the solenoid valves
associated with the inoperating indoor units of said indoor units, in operation of
said system, being opened or closed to change the amount of refrigerant stored within
said inoperating indoor units whereby making the amount of refrigerant circulating
through said cycle proper, characterized in that said system further comprises a controller
(16) for sampling a subcooling degree (SC) of the refrigerant in refrigeration circuit
in operating indoor units of said indoor units or a super heating degree (SH) thereof
periodically and for calculating and comparing the sampling data with predetermined
values, and control signal outputting means (17) for receiving signals from said controller
and for outputting command signals to said expansion valves and said solenoid valves
associated with said inoperating indoor units to intermittently close or open said
expansion valves, or said expansion valves and said solenoid valves, whereby the amount
of refrigerant stored within said inoperating indoor units are intermittently changed
to control an amount of refrigerant circulating through the cycle and then said subcooling
degree or said super heating degree in the indoor units to be controlled is kept within
a predetermined range.
2. A heat pump type multiple room air conditioning system according to Claim 1, wherein
said system further comprises a control means for detecting a super heating degree
of refrigerant from said compressor in a refrigeration cycle and for operate said
expansion valves associated with the inoperating indoor units of said indoor units,
or said expansion valves and said solenoid valves associated with the inoperating
indoor units of said indoor units to interrupt a refrigerant flow from said inoperating
indoor units into said refrigeration cycle.
3. A heat pump type multiple room air conditioning system according to Claim 2, wherein
said control means is provided only in a heating operation control circuit.
4. A method for operating an air conditioning system comprising a refrigeration cycle
including an outdoor unit (A) having a compressor (1), an outdoor heat exchanger (4)
and a four-way valve (2), a plurality of indoor units (B, C, D) each having an indoor
heat exchanger (8b, 8c, 8d), a plurality of electric reverse expansion valves (9b,
9c, 9d) each provided for flowing a liquid refrigerant in opposite directions in the
respective branching pipes (7b, 7c, 7d) into which a liquid side primary pipe (6)
connected to said outdoor unit branches out, and a plurality of solenoid valves (10b,
10c, 10d) each provided in the respective branching pipes (11b, 11c, 11d) into which
a gas side primary pipe (12) connected to said outdoor unit branches out, said method
comprising a step for opening or closing the expansion valves associated with the
inoperating indoor units of said indoor units, or not only said expansion valves but
also the solenoid valves associated with the inoperating indoor units of said indoor
units, in operation of said system, to change the amount of refrigerant stored within
said inoperating indoor units whereby making the amount of refrigerant circulating
said cycle proper, characterized in that said method further comprises the following
steps: of determining, in heating operation mode, that the amount of refrigerant
circulating through the operating indoor units of said indoor units is excess, in
case that the subcooling degree (SC) is greater than the predetermined value (F),
and that the amount of refrigerant circulating through the operating indoor units
of said indoor units is insufficient, in case that the subcooling degree (SC) is lower
than the predetermined value (E); of determining, in cooling operation mode, that
the amount of refrigerant circulating through the operating indoor units of said indoor
units is insufficient, in case that the super heating degree (SH) is greater than
the predetermined value (G), and that the amount of refrigerant circulating through
the operating indoor units of said indoor units is excess, in case that the super
heating degree (SH) is lower than the predetermined value (H); of introducing a part
of the circulating refrigerant into said inoperating indoor units in case of the amount
of refrigerant is excess; and of discharging the refrigerant stored within said inoperating
units into the operating cycle.