Simulated landscaping heat pump heat exchange system
Through the simulated landscaping heat pump heat exchange system, the use of thermal circulation and cold circulation pipelines combined with simulated landscaping parts solves the problem that the existing heat pump system cannot create ambient temperature and constant temperature water temperature at the same time, and achieves an energy-saving and comfortable natural bathing effect.
Patent Information
- Application Number
- CN202422108261.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-29
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-08-29
AI Technical Summary
The existing heat pump system cannot meet the needs of creating ambient temperature and constant temperature water temperature at the same time, and the increase in construction costs of traditional equipment cannot simulate the natural environment, resulting in energy waste and discomfort.
The simulated landscaping heat pump heat exchange system is adopted, and the constant temperature bubble pool is connected to the condenser through the thermal circulation pipeline, and the cold circulation pipeline is connected to the evaporator and the simulated landscaping parts to realize radiative heat exchange and heat recovery, combining simulation trees and simulated mountains to increase the heat exchange area and frosting layer to simulate the natural environment.
It realizes constant temperature maintenance of constant temperature bath pools, reduces the ambient temperature of the bath area, saves energy, avoids hair drying discomfort, saves space, and simulates a variety of ambient temperatures to provide a natural bathing experience.
Smart Images

Figure CN223121718U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of heat pump heat exchange, and particularly relates to a simulation landscape heat pump heat exchange system. Background Art
[0002] The heat pump heat exchange system is an essential device in a bathing pool, which can provide the required heat for the bathing pool and ensure the temperature of the bathing water in the pool. With the continuous improvement of people's living quality, the bathing culture is becoming more and more popular. According to data, bathing in a natural environment can better promote blood circulation, improve the body's immunity, enhance skin elasticity, and bring many benefits to physical health. For example, natural hot spring bathing is a bathing method that simulates a natural environment. Therefore, it is very necessary to provide a new bathing environment that approaches the natural environment.
[0003] Most of the existing bathing places use heat pump units to maintain a constant temperature, and their heat sources basically come from groundwater or air. When air is used as the heat source, traditional air radiators are often used, which have a single function. Traditional capillary air conditioners are prone to moisture return and mildew, so they are basically not used in bathing pools. And the existing technology relies on forced convection heat exchange by a fan, and the wind feeling is very obvious, which brings obvious discomfort to the people in the thin bathing area. Therefore, the multiple functions of landscaping and heat exchange cannot be achieved integrally, and two devices, namely a decorative object and a heat exchanger, must be configured separately, which will undoubtedly increase the construction cost of the bathing pool, and conventional industrial equipment cannot meet the effect of being close to nature. Due to the geographical environment factors in the urban area, most of the urban areas are indoor bathing areas, which cannot meet the atmosphere of creating an outdoor hot spring bath.
[0004] Moreover, the environmental temperature in the indoor bathing area is relatively high, and this high-temperature gas is often directly discharged into the atmosphere, which will undoubtedly cause a large amount of heat loss.
[0005] Therefore, there is an urgent need for a device that can not only meet the creation of a winter environment outside the water surface but also meet the constant temperature effect underwater, that is, a device that can achieve the integrated production of cold and heat. Summary of the Utility Model
[0006] To solve the above problems, that is, the existing heat pump system cannot meet the simultaneous creation of environmental temperature and constant water temperature, the utility model provides a simulation landscape heat pump heat exchange system, which includes a constant temperature soaking pool and a heat pump unit. The heat pump unit includes an evaporator and a condenser. The constant temperature soaking pool is connected to the condenser through a heat circulation pipeline. A cold circulation pipeline is connected to the evaporator, and the cold circulation pipeline is arranged in the indoor bathing area; a circulation pump is installed on both the heat circulation pipeline and the cold circulation pipeline.
[0007] A further setting of the present utility model is: It further includes a simulation landscaping component, the simulation landscaping component is arranged in the indoor bathing area, and the cold circulation pipeline is installed inside the simulation landscaping component.
[0008] A further setting of the present utility model is: The simulation landscaping component includes a simulation tree and a simulation mountain. The cold circulation pipeline is installed inside the trunk of the simulation tree, and the cold circulation pipeline is also communicated with a cold circulation branch, and the cold circulation branch is installed inside the simulation mountain.
[0009] A further setting of the present utility model is: A stop valve is installed on the cold circulation branch.
[0010] The beneficial effects of the present utility model are:
[0011] 1. By using the hot circulation pipeline to connect the condenser with the constant temperature soaking pool, the purpose of maintaining the constant temperature of the constant temperature soaking pool can be achieved. And by using the cold circulation pipeline to connect with the evaporator, the purpose of heat exchange between the cold circulation pipeline and the evaporator can be achieved, thereby achieving the purpose of absorbing the heat of the cold medium in the cold circulation pipeline and reducing the temperature of the cold medium. And by transporting the cold medium to the simulation landscaping component through the cold circulation pipeline, the purpose of radiant heat exchange with the bathing area environment can be achieved, thereby reducing the environmental temperature of the bathing area. At the same time, the heat in the bathing area environment can also be extracted through the cold medium, and the extracted heat can be used for heating by the heat pump system. Further, through this system, a cold environment temperature can be created, and the purpose of maintaining the water temperature in the constant temperature soaking pool can be satisfied. And by absorbing and reusing the heat dissipated from the constant temperature soaking pool into the environment, energy waste can be further saved.
[0012] 2. Through radiant heat exchange with the cold circulation pipeline, there is no sense of wind, and the discomfort of blowing on customers can be avoided.
[0013] 3. By installing the cold circulation pipeline into the simulation landscaping component, there is no need to install the cold circulation pipeline additionally in the bathing area. This can not only save the space in the bathing area, but also avoid the cold circulation pipeline being directly exposed in the bathing area.
[0014] 4. Since the environmental temperature in the indoor bathing area is always very high, and the temperature of the cold medium in the cold circulation pipeline is relatively low, a frost layer will form on the simulation landscaping component. When the frost layer and the environmental temperature in the indoor bathing area reach a relatively balanced state, the thickness of the frost layer remains stable and there is no defrosting process. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 The structural schematic diagram of the present utility model is shown.
[0016] Reference numerals: 1, constant temperature soaking pool; 2, heat pump unit; 21, evaporator; 22, condenser; 3, heat circulation pipeline; 31, hot water supply pipeline; 32, hot water return pipeline; 4, cold circulation pipeline; 41, cold water supply pipeline; 42, cold water return pipeline; 5, circulation pump; 6, simulation landscaping component; 61, simulation tree; 62, simulation mountain; 7, cold circulation branch; 71, stop valve. Detailed implementation manners
[0017] The preferred implementation manners of the present utility model will be described below with reference to the accompanying drawings. Those skilled in the art should understand that these implementation manners are only used to explain the technical principle of the present utility model and are not intended to limit the protection scope of the present utility model.
[0018] The present utility model provides a simulation landscaping heat pump heat exchange system, which includes a constant temperature soaking pool 1 and a heat pump unit 2. The heat pump unit 2 includes an evaporator 21 and a condenser 22. The condenser 22 is mainly used to discharge heat and release heat in a very fast manner. The evaporator 21 is mainly used to absorb heat to achieve the purpose of refrigeration.
[0019] The constant temperature soaking pool 1 is connected to the condenser 22 through a heat circulation pipeline 3. That is, the heat circulation pipeline 3 includes a hot water supply pipeline 31 and a hot water return pipeline 32. The input end of the hot water supply pipeline 31 is connected to the output end of the condenser 22, and the output end of the hot water supply pipeline 31 is connected to the constant temperature soaking pool 1. Thus, the hot medium released in the condenser 22 flows into the constant temperature soaking pool 1 through the hot water supply pipeline 31. The input end of the hot water return pipeline 32 is connected to the output end of the constant temperature soaking pool 1, and the output end of the hot water return pipeline 32 is connected to the input end of the condenser 22. Thus, the hot medium after heat release flows back into the condenser 22, absorbs heat and then circulates into the hot water supply pipeline 31 again, so as to achieve the purpose of heating circulation and maintain the water temperature in the constant temperature soaking pool 1.
[0020] A cold circulation pipeline 4 is connected to the evaporator 21. The cold circulation pipeline 4 is arranged in the indoor bathing area to exchange heat with the air in the bathing area environment, so as to achieve the purpose of recovering the heat in the bathing area environment. The cold circulation pipeline 4 includes a cold water supply pipeline 41 and a cold water return pipeline 42. The input end of the cold water supply pipeline 41 is connected to the output end of the evaporator 21, so that the cold medium in the evaporator 21 flows into the cold water supply pipeline 41. The output end of the cold water supply pipeline 41 is connected to the input end of the cold water return pipeline 42, so that the cold medium can flow into the cold water return pipeline 42. The output end of the cold water return pipeline 42 is connected to the input end of the evaporator 21, thus realizing the circulation purpose of the cold medium.
[0021] Circulation pumps 5 are installed on both the heat circulation pipeline 3 and the cold circulation pipeline 4 to realize the circulation of the hot medium and the cold medium through the circulation pumps 5.
[0022] It further includes a simulated landscape component 6, which is installed in the indoor bathing area. The cold circulation pipeline 4 is embedded inside the simulated landscape component 6 to prevent the cold circulation pipeline 4 from being exposed in the bathing area environment. At the same time, embedding the cold circulation pipeline 4 inside the simulated landscape component 6 can also improve the utilization rate of space, that is, there is no need to additionally select a location for installing the cold circulation pipeline from the indoor bathing area environment, further saving the bathing area space.
[0023] The simulated landscape component 6 includes a simulated tree 61 and a simulated mountain 62. The cold circulation pipeline 4 is installed inside the trunk of the simulated tree 61. A cold circulation branch 7 is also installed on the cold circulation pipeline 4. The input end of the cold circulation branch 7 is connected to the cold water supply pipeline 41, and the output end of the cold circulation branch 7 is connected to the cold water return pipeline 42. Cut-off valves 71 are installed at both the input end and the output end of the cold circulation branch 7 to block the connection between the cold circulation pipeline 4 and the cold circulation branch 7. The cold circulation branch 7 is installed inside the simulated mountain 62.
[0024] By embedding the cold circulation pipeline 4 inside the simulated landscape component 6, not only can the heat exchange effect be achieved, but also the purpose of forming a frost layer on the simulated landscape component 6 can be realized, achieving a decorative effect.
[0025] Compared with installing a conventional heat exchanger in the indoor bathing area, this structure can increase the heat exchange area through the stretching degree of the installed plants. Installing a conventional heat exchanger not only requires additional installation space, but also requires a large heat exchange area to meet the requirements. At the same time, the surfaces of the simulated tree and the simulated mountain are more conducive to frosting, and the frosting of the simulated tree and the simulated mountain belongs to freezing heat, while the existing heat exchangers belong to non-phase change heat exchange. The calorific value of freezing heat is higher, and the amount of heat that can be absorbed is also more. Therefore, it is difficult for existing heat exchangers to break through their efficiency limit, or it can also be considered that conventional heat exchangers are not specific for the bathing area and are not suitable for use in the bathing area.
[0026] It should be noted that although the cold circulation pipeline 4 needs to absorb heat from the bath area environment, since the heating capacity of the heat pump unit 2 is the sum of the driving electric energy and the refrigerating capacity, the heat in the bath area is always greater than the cold quantity of the cold circulation pipeline 4. This also determines that the frost layer will not increase infinitely and cause the equipment to stop. That is, under the action of the bath area environmental temperature, frosting will not continuously form a frost layer like in a cold storage system, resulting in an overly thick final frost layer and causing problems such as inability to exchange heat and refrigerate. Thus, it ensures the continuous and stable effects in both refrigeration and heating, achieving the purpose of coexistence of cold and heat in the bath area environment. Moreover, it can also achieve the purpose of adjusting the environmental temperature in the bath area through the cold circulation pipeline 4, that is, imitating the bathing situations at various environmental temperatures according to different seasons or usage requirements. For example, it can be adjusted to the effect of an outdoor hot spring in winter to experience a more natural bathing of "ice and fire in one body". It should be noted that adding coolants with different concentrations into the cold circulation pipeline 4 can achieve the purpose of adjusting the heat exchange effect of the cold circulation pipeline 4, that is, adjusting the environmental temperature in the bath area.
[0027] It also needs to be noted that in order to adapt to the multiple bifurcated branches of the simulation tree 61, the cold water supply pipe and the cold water return pipe on the cold circulation pipe can be set with multiple branches, but ultimately they are all connected to a main cold water supply pipe and a main cold water return pipe.
[0028] The condenser 22 and the evaporator 21 are interconnected, and a compressor is installed in the middle. That is, the internal structure of the heat pump unit 2 is a conventional technology. Therefore, in this application, only the evaporator 21 and the condenser 22 of the heat pump unit 2 are shown, and its internal conventional structure will not be elaborated.
[0029] In summary, the utility model connects the condenser 22 to the constant temperature bubble pool 1 through the heat circulation pipeline 3, which can achieve the purpose of maintaining the constant temperature of the constant temperature bubble pool 1. By connecting the cold circulation pipeline 4 to the evaporator 21, heat exchange between the cold circulation pipeline 4 and the evaporator 21 can be achieved, thereby achieving the purpose of absorbing the heat of the cold medium in the cold circulation pipeline 4 and reducing the temperature of the cold medium. And the cold medium is transported into the simulation landscaping part 6 through the cold circulation pipeline 4 to achieve the purpose of radiative heat exchange with the bath area environment, thereby reducing the environmental temperature of the bath area. At the same time, the heat in the bath area environment can be extracted through the cold medium, and the extracted heat can be used for heating by the heat pump system. Further, the system can create a cold environmental temperature and meet the purpose of maintaining the water temperature in the constant temperature bubble pool 1. And the heat dissipated from the constant temperature bubble pool 1 into the environment can be absorbed and reused, which can further save energy waste. Through radiative heat exchange with the cold circulation pipeline 4, there is no sense of wind, which can avoid the discomfort of blowing on customers. Installing the cold circulation pipe into the simulation landscaping part 6 eliminates the need to install the cold circulation pipeline 4 additionally in the bath area, which can not only save the space in the bath area but also prevent the cold circulation pipeline 4 from being directly exposed in the bath area. Since the environmental temperature in the indoor bath area is always very high and the temperature of the cold medium in the cold circulation pipeline 4 is relatively low, a frost layer will form on the simulation landscaping part 6. When the frost layer and the environmental temperature in the indoor bath area reach a relatively balanced state, the thickness of the frost layer remains stable and there is no defrosting process.
[0030] Although the present utility model has been described with reference to the preferred embodiments, various improvements can be made to it and components therein can be replaced with equivalents without departing from the scope of the present utility model. In particular, as long as there is no structural conflict, the technical features mentioned in each embodiment can be combined in any way. The present utility model is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
[0031] In the description of the present utility model, the terms such as "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc., which indicate directions or positional relationships, are based on the directions or positional relationships shown in the drawings. This is only for the convenience of description and does not indicate or imply that the device or element must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present utility model. In addition, the terms "first", "second", "third" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.
[0032] In addition, it should be noted that in the description of the present utility model, unless otherwise clearly specified and defined, the terms "installed", "connected", and "coupled" shall be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two components. For those skilled in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.
[0033] The term "comprising" or any other similar term is intended to cover non-exclusive inclusion, such that a process, article, or apparatus / device comprising a series of elements includes not only those elements but also other elements not expressly listed, or also elements inherent to those process, article, or apparatus / device.
[0034] So far, the technical solution of the present utility model has been described in conjunction with the preferred embodiments shown in the drawings. However, it is easily understood by those skilled in the art that the protection scope of the present utility model is obviously not limited to these specific embodiments. Without departing from the principle of the present utility model, those skilled in the art can make equivalent changes or substitutions to the relevant technical features, and the technical solutions after these changes or substitutions will all fall within the protection scope of the present utility model.
Claims
1. A simulation landscape heat pump heat exchange system, characterized in that: It includes a constant-temperature soaking pool (1) and a heat pump unit (2). The heat pump unit (2) includes an evaporator (21) and a condenser (22). The constant-temperature soaking pool (1) is communicated with the condenser (22) through a heat circulation pipeline (3). A cold circulation pipeline (4) is communicated with the evaporator (21), and the cold circulation pipeline (4) is arranged in the indoor bathing area. Circulation pumps (5) are installed on both the heat circulation pipeline (3) and the cold circulation pipeline (4). It further includes a simulated landscape component (6). The simulated landscape component (6) is arranged in the indoor bathing area, and the cold circulation pipeline (4) is installed inside the simulated landscape component (6). The simulated landscape component (6) includes a simulated tree (61) and a simulated mountain (62). The cold circulation pipeline (4) is installed inside the trunk of the simulated tree (61). The cold circulation pipeline is further communicated with a cold circulation branch (7), and the cold circulation branch (7) is installed inside the simulated mountain (62).
2. The simulated landscape heat pump heat exchange system according to claim 1, characterized in that: A stop valve (71) is installed on the cold circulation branch (7).