The present invention claims the benefit of priority of Taiwan application No. 105219946 of Dec. 29, 2016, entitled “Appliance Waste Heat Recovery Apparatus,” the content of which is herein incorporated by reference.
The present invention relates to a waste heat recovery system, and more particularly to a waste heat recovery system involving household appliances.
With continuous development of science and technology, more and more diversified food-cooking apparatuses are available, such as a microwave oven, an oven, a rice cooker, an induction cooker, or a steamer, which improve human daily life and the quality of one's diet. However, food is easily spoiled at room temperature, resulting in the loss of original nutrition and the quality of the food. Therefore, it is of great importance that food be preserved at a low temperature to secure its freshness.
A household appliance such as a refrigerator is quite common in these times for preserving food. A refrigerator can store various foods or beverages at a low temperature so that the articles are cooled and/or frozen for preservation. However, it is well known that a refrigerator generates waste energy such as waste heat when in use. Such waste energy is mostly discharged or dissipated in the air and is not reused or recovered for other purposes.
With increasing awareness of environmental protection and the highlights of the importance of green energy in recent years, a waste heat recovery system that can recycle/recover energy generated from a household appliance is needed.
The present invention provides a waste heat recovery system that can recycle heat energy generated by a household appliance so as to effectively reduce electric energy consumption and achieve an environmental protection goal. Furthermore, the household appliance in the system has refrigeration, thawing, and/or cooking functions.
In one embodiment of the present invention, a waste heat recovery system is provided. The system comprises: an appliance, a tank, a pump and a pipeline switch. The appliance comprises: a housing, a refrigeration module, a heat exchanger, and a circulating water pipe. The housing has a space therein and the space is formed of a plurality of side walls. The refrigeration module is disposed between a first side wall of the plurality of side walls and the housing, for maintaining the space at a refrigeration temperature and heat dissipation. The heat exchanger is disposed between the housing and the refrigeration module and is configured to absorb the heat energy, wherein the heat exchanger has a first inlet end and a first outlet end. The tank has a first water inlet, a second water inlet, and a first water outlet. The first water inlet of the tank is connected to the first outlet end of the heat exchanger, and the second water inlet of the tank is connected to the second outlet end of the circulating water pipe. The pump has a third water inlet and a second water outlet, and the third water inlet of the pump is connected to the first water outlet of the tank. The pipeline switch has a fourth water inlet, a third water outlet, and a fourth water outlet. The fourth water inlet of the pipeline switch is connected to the second water outlet of the pump, and the third water outlet of the pipeline switch is connected to the first inlet end of the heat exchanger. The fourth water outlet of the pipeline switch is connected to the second inlet end of the circulating water pipe. The pipeline switch is configured to switch between the third water outlet and the fourth water outlet thereof.
In an alternative embodiment, the tank, the pump, and the pipeline switch of the above embodiment are disposed between the housing and a third side wall of the plurality of side walls.
In a further embodiment of the present invention, a waste heat recovery system is provided. The system comprises: an appliance, a tank, a first pump and a second pump. The appliance comprises: a housing, a refrigeration module, a heat exchanger and a circulating water pipe. The housing has a space therein, and the space is formed of a plurality of side walls. The refrigeration module is disposed between a first side wall of the plurality of side walls and the housing, for maintaining the space at a refrigeration temperature and heat dissipation. The heat exchanger is disposed between the housing and the refrigeration module and is configured to absorb the heat energy, wherein the heat exchanger has a first inlet end and a first outlet end. The circulating water pipe is disposed between a second side wall of the plurality of side walls and the housing, wherein the circulating water pipe has a second inlet end and a second outlet end. The tank has a first water inlet, a second water inlet, a first water outlet, and a second water outlet. The first water inlet of the tank is connected to the first outlet end of heat exchanger, and the second water inlet is connected to the second outlet end of the circulating water pipe. The first pump is connected between the first water outlet of the tank and the first inlet end of the heat exchanger. The second pump is connected between the second water outlet of the tank and the second inlet end of the circulating water pipe.
The characteristics, subject matter, advantages, and effects of the present invention are detailed hereinafter by reference to embodiments of the present invention and the accompanying drawings. It is understood that the drawings referred to in the following description are intended only for purposes of illustration and do not necessarily show the actual proportion and precise arrangement of the embodiments. Therefore, the proportion and arrangement shown in the drawings should not be construed as limiting or restricting the scope of the present invention.
Please refer to
As shown in
The heat exchanger 30 is disposed between the housing 10 and the refrigeration module 20 and is configured to absorb the heat energy. The heat exchanger 30 in an alternative embodiment is preferably disposed at a position corresponding to the heat exchange pipe 24 so as to absorb the heat energy generated by the heat exchange pipe 24 of the refrigeration module 20. The heat exchanger 30 has a first inlet end 32 and a first outlet end 34. The heat exchanger 30 has a first inlet end 32 and a first outlet end 34. The tank 50 has a first water inlet 52, a second water inlet 54, and a first water outlet 56. The first water inlet 52 of the tank 50 is connected to the first outlet end 34 of the heat exchanger 30, and the second water inlet 54 of the tank 50 is connected to the second outlet end 44 of the circulating water pipe 40. The pump 60 has a third water inlet 62 and a second water outlet 64, and the third water inlet 62 of the pump 60 is connected to the first water outlet 56 of the tank 50. The pipeline switch 70 has a fourth water inlet 72, a third water outlet 74, and a fourth water outlet 76. The fourth water inlet 72 of the pipeline switch is connected to the second water outlet 64 of the pump 60, and the third water outlet 74 of the pipeline switch 70 is connected to the first inlet end 32 of the heat exchanger 30. The fourth water outlet 76 of the pipeline switch 70 is connected to the second inlet end 42 of the circulating water pipe 40. The pipeline switch 70 is configured to switch between the third water outlet 74 and the fourth water outlet 76 thereof.
The circulating water pipe 40 is disposed between the second side wall 15 and the housing 10. The location of the circulating water pipe 40 preferably corresponds to the entire second side wall 15 but is not limited thereto. In an alternative embodiment, the circulating water pipe 40 can be disposed between the third side wall 16 and the housing 10, between a top face of the space 12 and the housing 10, and/or between a bottom surface of the space 12 and the housing 10. The circulating water pipe 40 can also be arranged at another location within the housing.
In the freezing mode, the space 12 is maintained at a low temperature and the appliance 1 dissipates heat energy. Also, when the appliance 1 is in freezing mode, the refrigeration module 20 is actuated, and the pipeline switch 70 is switched to the third water outlet 74, so that water flowing from the tank 50 and through the heat exchanger 30 is heated to a moderate temperature and is thereafter stored in the tank 50. Specifically, the heat exchanger 30 absorbs the heat energy dissipated by the refrigeration module 20, and water in the heat exchanger 30 is heated to a moderate temperature, which is then output to the tank 50 through the first outlet end 34 of the heat exchanger 30. The foregoing water heating circulating operation is continued, until a water temperature inside the tank 50 reaches a predetermined temperature. The predetermined temperature is preferably between 20 degrees Celsius and 40 degrees Celsius, and is more preferably between 30 degrees Celsius and 40 degrees Celsius but is not limited thereto. In a preferred embodiment, when the water temperature inside the tank 50 reaches the predetermined temperature, a control unit (not shown in the figure) may control the pump 60 to be turned off so as to stop the water heating operation. The water temperature may be detected, for example, by using a temperature detector or a thermometer.
When the appliance 1 is in a thawing mode, the refrigeration module 20 is terminated, and the pipeline switch 70 is switched to the fourth water outlet 76 so that water at the moderate temperature flows from the tank 50 to the circulating water pipe 40 to heat the space 12. The pipeline switch 70 switches the water discharging path to the fourth water outlet 76 so that the moderate temperature water in the bucket flows to the circulating water pipe 40 to heat the space 12, thereby thawing frozen food previously stored in the space 12.
As shown in
In an alternative embodiment, the waste heat recovery system 100 of the present invention may further include a timing apparatus 80 disposed on the cover 11 as shown in
In operation, when the waste heat recovery system 200 is in freezing mode, the refrigeration module 20 is actuated, the first pump 601 is turned on, and the second pump 602 is turned off so that water flowing through the heat exchanger 30 is heated to a moderate temperature and is output to the tank 50. The foregoing water heating and circulation continues until a water temperature inside the tank 50 reaches a predetermined temperature. The predetermined temperature is preferably between 20 degrees Celsius and 40 degrees Celsius, and is more preferably between 30 degrees Celsius and 40 degrees Celsius but is not limited thereto. In a preferred embodiment, when the water temperature inside the tank 50 reaches the predetermined temperature, a control unit (not shown in the figure) turns off the first pump 601 to stop the water heating. The water temperature may be detected, for example, by using a temperature detector or a thermometer.
When the waste heat recovery system 200 is in thawing mode, through orders sent from a control unit (not shown), the refrigeration module 20 stop working, the first pump 601 is turned off, and the second pump 602 is turned on so that the moderate temperature water in the tank 50 is pumped by the second pump 602 and flows to the circulating water pipe 40 for heating the space 12 and thawing frozen food stored in the space 12.
In the embodiment of
In an alternative embodiment, the waste heat recovery system 200 includes at least one heat source (not shown in the figure) disposed between a third side wall 16 of the space 12 and the housing 10, and the heat source is configured to heat the space 12 so that the temperature of the space 12 rises from a low temperature to a high temperature for heating and/or cooking food. The heat source may be a microwave apparatus or an electric heating apparatus.
In an alternative embodiment, the waste heat recovery system 100 of the present invention may further include a timing apparatus 80 disposed on the cover 11 as shown in
In view of the above, the appliance 1 in the waste heat recovery system 100, 200 of the present invention in some embodiments, has refrigeration, thawing, and cooking modes. That is, the appliance 1 has functions of both a refrigerator and an oven.
The embodiments of the invention provides benefits, such as recovering heat energy generated by the refrigeration module 20 and storing the energy in a water tank 50, and the saved energy can be used to thaw the food in the appliance 1 so that energy consumption used for maintaining the appliance 1 can be effectively reduced.
The foregoing embodiments are illustrative of the technical concepts and characteristics of the present invention to enable a person skilled in the art to gain insight into the content disclosed herein and to implement the present invention accordingly. However, it is understood that the embodiments are not intended to restrict the scope of the present invention. Hence, all equivalent modifications and variations made to the disclosed embodiments without departing from the spirit and principle of the present invention should fall within the scope of the appended claims.
Number | Date | Country | Kind |
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105219946 U | Dec 2016 | TW | national |
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Number | Date | Country | |
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20180187963 A1 | Jul 2018 | US |