The invention relates to a refrigeration, air conditioning and ventilation equipment, and can be used to improve the indoor microclimate.
A compression indoor refrigerator is known from the prior art (Veynberg B. S., Vayn L. N., Household compression refrigerators, Moscow, Pishchevaya Promyshlennost, 1974, pp. 25-30), consisting of a thermally insulated cabinet with an evaporator, a filter-dryer, a capillary tube, and a motor-driven compressor with an air-cooled condenser mounted on the thermally insulated refrigerator cabinet. The operation of the refrigerator is accompanied by various physical processes resulting from a vapor-compression cycle taking place within the refrigeration circuit thereof, such as a heat generation in the condenser and an indoor dissipation of this heat. During the cold season, such heat generation improves the indoor microclimate.
However, during the warm season, and especially in hot climates, the excessive heat worsens the indoor microclimate, and creates an additional load on an air conditioning device, if any, leading to increased energy consumption.
An indoor dual-function refrigerator is know from the prior art (CN 2264347Y), which combines the refrigeration and air conditioning functions. This device combines two functional modules, including a refrigeration module and an air conditioning module arranged inside the building. The modules have a common motor-driven compressor and a condenser, but separate evaporators. The motor-driven compressor and the condenser with forced air cooling are located outside of the building, which is not always permissible due to the architectural and administrative restrictions of the building. In addition, the dual function of the device is achieved by mechanically combining two functionally independent modules: a refrigeration module and an air conditioning module. Furthermore, each module retains its own functions without expanding them.
The closest technical solution, selected as a prototype, is a household refrigerator (RU 2342609) intended for use in cold climates, which consists of indoor and outdoor units. The indoor unit is located inside the building and consists of a thermally insulated cabinet with an evaporator, a temperature sensor, and a temperature controller. A motor-driven compressor and a condenser are arranged as the outdoor unit installed outside of the budding and connected with the indoor unit via direct and return lines of the refrigeration circuit. Furthermore, the refrigerator is further provided with an additional liquid coolant heat circuit comprising a heat exchanger in the indoor unit and a radiator in the outdoor unit. The heat exchanger and radiator are also interconnected via direct and return lines. The liquid coolant inside the additional heat circuit is circulated by a pump. In this case, both the condenser of the refrigerator and the radiator are cooled by outside air.
The arrangement of the outdoor unit outside the building, as in the previous example, is not always acceptable due to the architectural and administrative restrictions of the building. In addition, extended length of the lines connecting the outdoor and indoor units causes higher hydraulic resistance when circulating refrigerant through the refrigeration circuit. This increases the load on the motor-driven compressor, which results in higher energy consumption by the refrigerator.
During the cold season, the motor-driven compressor of the refrigerator is turned off, and the thermally insulated cabinet is cooled due to a natural external cold by pumping the liquid coolant through the additional heat circuit connecting the outdoor and indoor units. During such process, the heat penetrating inside the thermally insulated cabinet from the room is carried outside by the coolant. As a result, the indoor temperature decreases, which worsens the microclimate and imposes an additional load on the heating and air conditioning device, if any. This, in turn, leads to an increased consumption of energy required to maintain a comfortable microclimate.
During the warm season, the additional heat circuit is disconnected, the motor-driven compressor is turned back on, and the refrigeration circuit operates as in a conventional refrigerator. In this case, the heat penetrating inside the thermally insulated cabinet from the room is also carried outside by the coolant in the process of a vapor-compression cycle. As a result, same as during the cold season, the indoor temperature decreases. However, even during the warm season, reducing indoor temperature is not always necessary, for example, in case of cool weather, when it becomes desirable to warm-up the building by turning on the heating or air conditioning device, which subsequently increases the consumption of energy required to maintain a comfortable microclimate.
Thus, regardless of the indoor microclimate, the prototype consistently realizes only one cooling mode. As a result, the device does not provide a comfortable indoor microclimate on a year-round basis, and increases the consumption of energy required to maintain a comfortable indoor microclimate due to additional energy consumed by the air conditioning device. The device lacks the microclimate improvement modes with respect to improving the quality of an indoor air.
The objective of the invention is to expand the functionality of the refrigerator by imparting the device with the properties of an air conditioner.
The technical result of the invention consists of improving the indoor microclimate and reducing the energy consumption.
The specified technical result is achieved by introducing the following changes to a bifunctional compression refrigerator located inside a building and including a thermally insulated cabinet with an evaporator, a condenser, a motor-driven compressor, a temperature controller, and a first temperature sensor. The refrigerator is complemented with a ventilation module consisting of a housing, an inlet ventilation pipe, an outlet ventilation pipe, and a fan. The inlet and outlet ventilation pipes are arranged on the opposite sides of the housing, while the fan is installed inside the housing between the inlet ventilation pipe and the outlet ventilation pipe. The condenser is installed inside the housing, the housing is configured to have access to an outdoor air outside the building. The condenser is cooled by the air passing through the housing.
In the specific embodiments of the proposed device, the housing connection to the outdoor air can be accomplished using various methods. In case of existing supply and exhaust ventilation inside the building, within which the refrigerator is located, the housing can be connected to the outdoor air by connecting the inlet ventilation pipe to a supply grill of the supply and exhaust ventilation, and by connecting the outlet ventilation pipe to an exhaust grill of the supply and exhaust ventilation device. In the absence of the supply and exhaust ventilation inside the building, supply and exhaust grills for connecting the inlet and outlet ventilation pipes are arranged in a building external wall or a window.
During the operation of the bifunctional compression refrigerator, in the process of a vapor-compression cycle inside its refrigeration circuit, there are a heat generated in the condenser, which penetrates into the thermally insulated cabinet from the interior of the building, and a heat produced by the motor-driven compressor. The ability to establish the connection between the housing and the outdoor air results in this heat being removed from the condenser by the flow of the outdoor air, which carries it outside of the building, thus, enabling cooling of the building during the hot season. During the cold season, the housing is connected to the indoor air, and the heat remains inside the building due to recirculation of the indoor air through the housing, which leads to an increase in an indoor temperature. The indoor microclimate improvement modes with respect to the air quality have also been realized by using the exhaust and supply ventilation. The operation of the device in the refrigeration mode occurs in the typical manner based on the readings of the first temperature sensor, while helping to maintain the heat balance and improving the indoor microclimate without requiring any additional consumption of energy.
Switching the air flows passing through the housing helps realize various additional modes of refrigerator functionalities.
According to the basic embodiment of the device, the connection between the housing and both the indoor and outdoor air is realized by means of the inlet and outlet ventilation pipes. Switching the air flows passing through the housing is performed manually by connecting or disconnecting the air ducts joining the inlet ventilation pipe to the supply grill and the outlet ventilation pipe to the exhaust grill.
In the specific embodiment of the device, to ensure the direct connection to the indoor air, an inlet vent, geometrically coupled to the inlet ventilation pipe, and an outlet vent, geometrically coupled to the outlet ventilation pipe, are arranged inside the housing. A first switching unit is arranged between the inlet vent and the inlet ventilation pipe, said first switching unit being configured to open the inlet vent and to close the inlet ventilation pipe, as well as to close the inlet vent and to open the inlet ventilation pipe. A second switching unit is arranged between the outlet vent and the outlet ventilation pipe, said second switching unit being configured to open the outlet vent and to close the outlet ventilation pipe, and to close the outlet vent and to open the outlet ventilation pipe. A second temperature sensor and a control unit are arranged on the thermally insulated cabinet, while the control unit is integrated with the temperature controller.
It is preferable to use electrically-driven switching units operated by the control unit arranged inside the refrigerator. The switching of the air flows in this specific embodiment of the device is performed automatically via the first and second switching units operated by the control unit.
In another embodiment of this device, the motor-driven compressor is arranged on the thermally insulated cabinet.
In yet another embodiment of this device, the motor-driven compressor is installed inside the housing.
In yet another embodiment of this device, a first air filter is arranged inside the inlet ventilation pipe.
In yet another embodiment of this device, a first air filter is arranged inside the inlet ventilation pipe, and a second air filter is arranged inside the inlet vent.
In yet another embodiment of this device, the housing is thermally insulated.
The thermal insulation localizes the heat transfer process between the condenser and the condenser-cooling air inside the housing, thus, cutting off the direct heat transfer between the indoor air and the condenser-cooling air. In addition, the thermal insulation helps suppress a noise from the fan and the motor-driven compressor installed inside the housing.
Other distinctive features and advantages of the invention clearly follow from a non-limiting description provided below for illustration purposes referencing the following drawings, in which:
A basic embodiment (
This refrigeration circuit 2 may further comprise (see an example of the device shown in
The basic embodiment (
According to the invention, the refrigerator includes a ventilation module 12. This ventilation module 12 comprises a housing 13, an inlet ventilation pipe 14, and an outlet ventilation pipe 15. Furthermore, the inlet ventilation pipe 14 and the outlet ventilation pipe 15 are arranged on the opposite sides of the housing 13 (in the example, shown in
It is preferable to thermally insulate the housing 13 using a foamed polyethylene coating. Alternatively, the housing 13 can be fabricated from a polystyrene foam.
The example shown in
It is preferable to use thermally insulated flexible air ducts as the inlet air duct 17 and the outlet air duct 20. The flexibility of the air ducts 17 and 20 allows moving the device relative to the supply grill 18 and to the exhaust grill 21 arranged in the external wall of the building 19. The thermal insulation of the air ducts 17 and 20 reduces an uncontrolled direct heat transfer between an indoor air from the interior of building 19, where the refrigerator is arranged, and an air passing through the air ducts 17 and 20.
In the example shown in
Alternatively, the motor-driven compressor 4 can also be arranged inside the housing 13 (not shown in
The temperature controller 10 is electrically connected to the first temperature sensor 11 the motor-driven compressor 4, and the fan 16 (
In the specific embodiment of the device (
Under these conditions, a first switching unit 24 is arranged between the inlet vent 22 and the inlet ventilation pipe 14, said first switching unit 24 being configured:
Under these conditions, a second switching unit 25 is arranged between the outlet vent 23 and the outlet ventilation pipe 15, said second switching unit 25 being configured:
The first switching unit 24 and the second switching unit 25 can be embodied, for example, in the form of electrically driven air reversing valves. Alternatively, electric air dampers can be installed on the inlet vent 22, the inlet ventilation pipe 14, the outlet vent 23, and the outlet ventilation pipe 15.
Under these conditions, as shown in the example illustrated by
Furthermore, the control unit 27 is integrated with the temperature controller 10.
As shown in
Both basic and specific embodiments of the device (
The example shown in
In the example shown in
According to the basic embodiment of the device, during its operation in a building 19 cooling mode concurrently with an exhaust ventilation, the outlet air duct 20 is connected to the outlet ventilation pipe 15. Under these conditions, the inlet air duct 17 is disconnected from the inlet ventilation pipe 14 (
According to the basic embodiment of the device, during its operation in a forced ventilation mode with an air heating, the inlet air duct 17 is connected to the inlet ventilation pipe 14. Under these conditions, the outlet air duct 20 is disconnected from the outlet ventilation pipe 15 (
According to the basic embodiment of the device, during its operation in an indoor heating mode, the inlet air duct 17 is disconnected from the inlet ventilation pipe 14, and the outlet air duct 20 is disconnected from the outlet ventilation pipe 15 (
The motor-driven compressor 4 is arranged either on the thermally insulated cabinet 1 (
The installation of the motor-driven compressor 4 on the thermally insulated cabinet 1 (
The placement of the motor-driven compressor 4 inside the housing 13 (
When the motor-driven compressor 4 is arranged inside the housing 13 as depicted in
According to the basic embodiment of the device, it is possible to install the first air filter 28 in the inlet ventilation pipe 14 (
The device operates as follows:
When an internal temperature inside the thermally insulated cabinet 1 (
Various paths of the air passage through the housing 13 can be realized in the basic embodiment of the device by combining potential ways of connecting the inlet air duct 17 to the inlet ventilation pipe 14, and the outlet air duct 20 to the outlet ventilation pipe 15 (
If the current temperature inside the building exceeds the T2 value, one of the building cooling modes is activated (see below, the first mode or the second mode). If the current temperature inside the building drops below T2, one of the building heating modes is activated (see below, the third mode or the fourth mode).
The device allows for four air paths through the housing 13 and, hence, provides four additional functioning modes of the refrigerator, Each of these four modes is set depending on the need to maintain a certain microclimate inside the building.
The first mode provides cooling of the budding 19. The outdoor air enters through the supply grill 18, the inlet air duct 17, and the inlet ventilation pipe 14, then removes the heat from the condenser 5 while passing through the housing 13, and exits through the outlet ventilation pipe 15, the outlet air duct 20, and the exhaust grill 21. In case of the basic embodiment of the device, this first mode of cooling of the building 19 is realized by connecting the inlet air duct 17 to the inlet ventilation pipe 14, and the outlet air duct 20 to the outlet ventilation pipe 15 (
The second mode provides cooling of the building along with the concurrent exhaust ventilation. During this second mode, the indoor air from the interior of the building enters the housing 13. removes a heat from the condenser 5 and carries it outdoors. In case of the basic embodiment of the device, this second mode is realized when the inlet air duct 17 is disconnected from the inlet ventilation pipe 14, and the outlet air duct 20 is connected to the outlet ventilation pipe 15 (
The importance of the thermal insulation of the housing 13 becomes most critical when the device operates in the first mode or the second mode, since it cuts off the heat transfer from inside the housing 13 to the indoor air of the building 19, which prevents the reduction in efficiency of carrying this heat outdoors. The need to cool the budding 19 arises when the weather is hot, and the temperature of the outdoor air is higher than the temperature inside the building. The lack of the thermal insulation of the housing 13 will lead to the undesirable heating of the indoor air due to the heat transfer from the warm outdoor air passing through the housing 13.
The choice between the first mode and the second mode in case of the specific embodiment of the device is realized by setting the unit 27 to the cooling mode or the cooling mode with the exhaust ventilation.
The third mode realizes the supply ventilation of the building with air heating. During this third mode, the outdoor air enters the housing 13, removes a heat from the condenser 5, and enters the interior of the building. In case of the basic embodiment of the device, this mode is realized when the inlet air duct 17 is connected to the inlet ventilation pipe 14, and the outlet air duct 20 is disconnected from the outlet ventilation pipe 15 (
The fourth mode realizes heating of the building. During this mode, when the air passes through the housing 13, the indoor air is recirculated, the heat from the condenser 5 is removed, and this heat is supplied inside the building. In case of the basic embodiment of the device, this fourth mode is realized when the inlet air duct 17 is disconnected from the inlet ventilation pipe 14, and the outlet air duct 20 is disconnected from the outlet ventilation pipe 15 (
The choice between the third mode and the fourth mode in case of the specific embodiment of the device is realized by setting the forced air ventilation mode with the air heating or the building heating mode.
All additional functions of the device related to the improvement of the indoor microclimate are realized concurrently to its operation as a refrigerator, in the process of operating its refrigeration circuit 2. During the building cooling mode, the device complements the function of an air conditioning device while consuming 0.8 kW*hour of electric energy per day. The energy efficiency coefficients of the refrigeration circuits of the compressor refrigerators and air conditioners are close, therefore, the energy consumption by an air conditioner required to maintain the same level of comfortable temperature T2 inside the building is reduced by approximately the same value of E=0.8 kW*hour per day. The amount of heat Q1 is proportional to the temperature difference (T2−T1). When temperature T1 drops to 15 degrees, the device operates as a freezer. In this case, the amount of heat transferred from the interior of building 19 to the thermally insulated cabinet and then outside of the building increases to 200 W, the Q1 value increases to 4.8 kW*hour, and the energy savings are 1.6 kW*hour per day. When the device operates in different modes, no additional energy is required, and the energy consumption is reduced.
By complementing the refrigerator with the ventilation module 12, consisting of (see example in
An indoor microclimate improvement inside the building 19 also takes place with respect to the air quality by integrating the exhaust or supply ventilation with the respective operating modes of the device.
Thus, the indoor microclimate improvement inside the building 19 is realized concurrently with the device's main function, which is refrigeration, and does not require additional energy consumption. The total household energy consumption decreases.
The fact that the housing 13 is provided with the inlet vent 22 geometrically coupled to the inlet ventilation pipe 14 and the outlet vent 23 geometrically coupled to the outlet ventilation pipe 15; the first switching unit 24 is arranged between the inlet vent 22 and the inlet ventilation pipe 14 and configured to open the inlet vent 22 and to close the inlet ventilation pipe 14, and to close inlet vent 22 and to open the inlet ventilation pipe 14; the second switching unit 25 is installed between the outlet vent 23 and the outlet ventilation pipe 15 and configured to open the outlet vent 23 and to close the outlet ventilation pipe 15, and to close the outlet vent 23 and to open the outlet ventilation pipe 15; the second temperature sensor 26 and the control unit 27 are arranged on the thermally insulated cabinet 1, while the control unit 27 is integrated with the temperature controller 10, causes the device to operate automatically under various microclimate improvement modes.
The fact that motor-driven compressor 4 is arranged on the thermally insulated cabinet 1 leads to a decreased length of the refrigeration circuit 2 compared to the prototype and, hence, to a decreased hydraulic resistance to passing a refrigerant along circuit 2 during the vapor-compression cycle. As a result, the load on the motor-driven compressor 4 is lowered, the energy consumption is reduced.
The fact that the motor-driven compressor 4 is installed inside the housing 13 enables the removal of heat in the cooling mode from the building to the outside, wherein this heat is generated due to heat losses while the motor-driven compressor 4 operates inside its box. Such solution helps improve the indoor microclimate inside the building and reduce the energy consumption required to maintain it. In addition, installing of the motor-driven compressor 4 inside the housing 13 in the flow of the air passing through the housing, helps intensively cool the motor-driven compressor 4.
The fact that in the basic embodiment of the device, the first air filter 28 is arranged inside the inlet ventilation pipe 14 prevents the condenser 5 from becoming contaminated when the air passes through the housing 13. The contamination of the condenser 5 can lead to a decreased efficiency of the refrigeration circuit 2 and an excessive energy consumption during the operation of the motor-driven compressor 4. Installing the first air filter 28 allows preserving the device performance during operation.
The fact that, in the specific embodiment of the device, the first air filter 28 is arranged inside the inlet ventilation pipe 14, and the second air filter 29 is arranged inside the inlet vent 22, prevents the condenser 5 from becoming contaminated when the air passes through the housing 13. The contamination of the condenser 5 can lead to a decreased efficiency of the refrigeration circuit 2 and an excessive energy consumption during the operation of the motor-driven compressor 4. Installing the first air filter 28 and the second air filter 29 allows for preserving the device performance during operation.
The fact that the housing 13 is thermally insulated leads to a decrease in uncontrolled direct heat transfer between the air passing through the housing 13 and the indoor air inside the building 19. The uncontrolled heat transfer reduces the efficiency of the heat flux distribution during a device operation in various microclimate improvement modes. The thermal insulation of the housing 13 eliminates this uncontrolled heat transfer and helps improve the microclimate and reduce the energy consumption. In addition, the thermal insulation of the housing 13 helps reduce the noise from the fan 16 and the motor-driven compressor 4 when the latter is placed inside the housing 13.
The preferable use of the device, either as the basic (
Performing additional functions by the device improves the indoor microclimate and does not require extra energy in addition to what the device consumes when functioning as a conventional refrigerator. The maximum reduction in the energy consumption occurs during a continuous operation of the device in the building cooling mode, which is especially important in hot climates, Under these conditions, almost all the electric energy consumed by the device is spent on maintaining the indoor temperature at a comfortable level T2 while concurrently maintaining the temperature at a desired level T1 inside thermally insulated cabinet 1.
Number | Date | Country | Kind |
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RU2019125181 | Aug 2019 | RU | national |
Filing Document | Filing Date | Country | Kind |
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PCT/RU2020/050094 | 5/9/2020 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2021/025594 | 2/11/2021 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
2984086 | Wertheimer | May 1961 | A |
9080801 | Arjomand | Jul 2015 | B2 |
20050183438 | Sessa | Aug 2005 | A1 |
20090241567 | Hausmann et al. | Oct 2009 | A1 |
20120000232 | Cieslik | Jan 2012 | A1 |
Number | Date | Country |
---|---|---|
2264347 | Oct 1997 | CN |
106949614 | Jul 2017 | CN |
109631210 | Apr 2019 | CN |
2019113244 | Jul 2019 | JP |
1020130137401 | Dec 2013 | KR |
22990 | May 2002 | RU |
37810 | May 2004 | RU |
2342609 | Dec 2008 | RU |
2438077 | Dec 2011 | RU |
2716444 | Mar 2020 | RU |
947584 | Jul 1982 | SU |
1742597 | Jun 1992 | SU |
2008025648 | Mar 2008 | WO |
2013180618 | Dec 2013 | WO |
Entry |
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International Search Report and Written Opinion dated Oct. 8, 2020 in counterpart application No. PCT/RU2020/050094; w/English partial translation and partial machine translation (total 15 pages). |
Veinberg et al., “Household Compression Fridges”, Moscow Food Industry, 1974, pp. 25-30; w/English translation (total 16 pages) cited in the Specification. |
Number | Date | Country | |
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20220057132 A1 | Feb 2022 | US |