Hot spring swimming pool machine
By introducing hot spring generators and minerals into hot spring pool machines, the problem of single functions of the existing hot spring pool machines has been solved, and water quality improvement and user health improvement have been achieved.
Patent Information
- Application Number
- CN202421795921.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-26
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2034-07-26
AI Technical Summary
The existing hot spring swimming pool machine has a single function and can only heat the pool water, which cannot improve the water quality.
A hot spring swimming pool machine is designed. In addition to having heat exchange function, it also includes a hot spring generator. By filling the hot spring generator with minerals, introducing water flow to react with minerals, releasing beneficial mineral elements, and thus improving the quality of the swimming pool water.
It realizes the discharge of minerals while heating the pool water, improves the water quality, making the water quality in the swimming pool better and more suitable for users.
Smart Images

Figure CN222935278U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of pool equipment, in particular to a hot spring pool machine. Background Art
[0002] A hot spring pool machine is a device that combines a hot spring and a swimming pool. It provides two entertainment methods of soaking in the hot spring and swimming to meet the needs of different users. The existing hot spring pool machines generally can only heat the pool water, and the functions are relatively single. Content of the Utility Model
[0003] In order to overcome at least one of the above-mentioned defects of the prior art, the utility model provides a hot spring pool machine, which can discharge minerals into the water while heating the pool water to improve the water quality.
[0004] The technical solution adopted by the utility model to solve its problems is as follows:
[0005] A hot spring pool machine, comprising:
[0006] A housing, which has an installation cavity;
[0007] A heat exchange assembly, the heat exchange assembly includes a heat exchange element, the heat exchange element has a first flow channel and a second flow channel, the second flow channel has a first interface and a second interface, the first interface is used to introduce water flow, and the first flow channel exchanges heat with the second flow channel; the second interface is connected with a water pipe, and the water pipe is in communication with the outside;
[0008] A hot spring generator, which has a third flow channel inside, and the third flow channel is filled with minerals; the third flow channel has a water inlet and a water outlet, the water inlet is used to introduce water flow to the minerals, and the water outlet is communicated with the water pipe and is used to export the water flow into the water pipe.
[0009] Further, the hot spring generator includes a first filter element and a second filter element. The first filter element is located at the bottom of the second filter element. The first filter element has a first diversion cavity, and the second filter element has a second diversion cavity. The first diversion cavity is communicated with the second diversion cavity, so that the hot spring generator forms the third flow channel; the water inlet is formed at the water inlet end of the first diversion cavity, and the water outlet is formed at the water outlet end of the second diversion cavity;
[0010] At least one of the first diversion cavity and the second diversion cavity is filled with minerals and a filter element, and the filter element is used to filter the water flow.
[0011] Further, the hot spring generator further includes a connecting seat. A plurality of first filters are provided, and the plurality of first filters are respectively connected to the bottom of the connecting seat. The second filter is located at the top of the connecting seat. A third diversion cavity is formed in the connecting seat. The first diversion cavity is in communication with the third diversion cavity, and the third diversion cavity is communicated with the second diversion cavity through a connecting pipe. The water inlet is formed at the water inlet end of the third diversion cavity, and the water outlet is formed at the water outlet end of the second diversion cavity.
[0012] Further, the second filter is a magnetic filter. Minerals and a filter net are filled in the first diversion cavity. The filter net forms the filter core. The filter net extends and winds along the end wall of the diversion cavity to form a filling cavity for filling minerals. A sealing member is further provided in the first diversion cavity, and the sealing member seals the filling cavity.
[0013] Further, the sealing member is filter cotton.
[0014] Further, a connecting head is provided at the bottom of the connecting seat. A first connecting portion is provided on the connecting head. The first filter is provided with a second connecting portion. The second connecting portion is located at the top end of the first diversion cavity and is detachably connected to the first connecting portion. After the first connecting portion and the second connecting portion are connected, the connecting head extends into the first diversion cavity and abuts against the sealing member. The connecting head has a diversion channel, so that after the connecting head extends into the first diversion cavity, the first diversion cavity is in communication with the third diversion cavity.
[0015] Further, a thread is provided on the outer periphery of the connecting head. The thread forms the first connecting portion. The second connecting portion is a thread groove, and the thread groove is in spiral fit with the thread.
[0016] Further, the heat exchange assembly further includes an evaporator and a compressor. The heat exchange member is a titanium condenser. One end of the compressor is in communication with one end of the first flow channel and is used for introducing a heat exchange medium into the first flow channel. The other end of the first flow channel is in communication with one end of the evaporator and is used for discharging the heat exchange medium. The other end of the evaporator is in communication with the other end of the compressor.
[0017] Further, a blower is further included. The blower is located on one side of the evaporator and is used for guiding the air flow in the installation cavity to be discharged.
[0018] Further, a partition plate is provided in the installation cavity. The partition plate divides the installation cavity into a first chamber and a second chamber. The evaporator and the blower are located in the first chamber, and the heat exchange member, the compressor and the hot spring generator are located in the second chamber.
[0019] In summary, the hot spring swimming pool machine provided by the utility model has the following technical effects: during specific use, water is introduced into the heat exchanger and the hot spring generator, the heat exchanger heats the water and then guides it into the water pipe, and at the same time, the water introduced into the hot spring generator reacts with the minerals when flowing through it, so that the water guided out from the hot spring generator carries beneficial mineral elements, and since the water outlet of the hot spring generator is also connected to the water pipe, the water carrying the mineral elements is discharged into the water pipe and mixed with the heated water in the water pipe, and the mixed water is finally discharged into the swimming pool, so that the water in the swimming pool carries the mineral elements, so as to improve the water quality of the swimming pool, which is beneficial to the health of users. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a schematic diagram of the structure of the utility model;
[0021] Figure 2 It is a schematic diagram of the structural connection of the utility model;
[0022] Figure 3 This is a schematic diagram of the structure of the hot spring generator in the utility model;
[0023] Figure 4 It is a structural schematic diagram of the heat exchanger in the utility model;
[0024] The meanings of the reference numerals are as follows:
[0025] 10. Shell; 11. First chamber; 12. Second chamber; 13. Partition plate; 20. Heat exchange element; 21. First interface; 22. Second interface; 23. Water pipe; 30. Hot spring generator; 31. First filter element; 32. Second filter element; 321. Water outlet; 33. Connecting seat; 331. Water inlet; 40. Evaporator; 50. Compressor; 60. Fan. DETAILED DESCRIPTION
[0026] For better understanding and implementation, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention.
[0027] In the description of the present invention, it should be noted that the terms "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside" and "outside" etc. indicating directions or positional relationships are based on the directions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction, and therefore cannot be understood as a limitation on the present invention.
[0028] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art of the present invention. The terms used herein in the specification of the present invention are only for the purpose of describing specific embodiments and are not intended to limit the present invention.
[0029] See also Figures 1 to 4 The utility model discloses a hot spring swimming pool machine, including a shell 10, a heat exchange component and a hot spring generator 30. The shell 10 has an installation cavity, and the heat exchange component and the hot spring generator 30 are both installed in the installation cavity. The specific heat exchange component includes a heat exchange element 20, and the heat exchange element 20 has a first flow channel and a second flow channel. The second flow channel has a first interface 21 and a second interface 22. The first interface 21 is used to introduce water flow. The first flow channel exchanges heat with the second flow channel. The second interface 22 is connected to a water pipe 23 to conduct the water pipe 23 to the outside. The hot spring generator 30 has a third flow channel, and the third flow channel is filled with minerals. The third flow channel has a water inlet 331 and a water outlet 321. The water inlet 331 is used to introduce water flow to the minerals, and the water outlet 321 is connected to the water pipe 23 and is used to export water flow to the water pipe 23.
[0030] On the basis of the above structure, during assembly, the external water channel (such as a water tank or a water tower, etc.) is respectively led out from the first interface 21 of the first flow channel and the water inlet 331 of the third flow channel, so that water can be respectively introduced into the first flow channel and the third flow channel. Since the second flow channel is used for heat exchange with the first flow channel, a heat exchange medium (such as hot oil or hot gas, etc.) is introduced into the second flow channel, so that the room temperature water introduced into the first flow channel is heated after heat exchange, and then discharged into the water pipe 23 through the second interface 22;
[0031] At the same time, because the third flow channel is filled with minerals, when water flows to the minerals, it reacts with the minerals. At this time, the beneficial mineral elements released by the minerals are integrated into the water flow and taken away, so the water discharged through the water outlet 321 can carry the beneficial mineral elements. Since the water outlet 321 and the water pipe 23 are also connected, the water discharged from the water outlet 321 into the water pipe 23 can be mixed with the heated water, so that the heated water carries the mineral elements. Finally, after being discharged into the swimming pool through the water pipe 23, the water in the swimming pool is warm water and carries the mineral elements, so as to improve the water quality in the swimming pool, and the user can be healthier when swimming or bathing.
[0032] Specifically, during assembly, the water pipe 23 can be a three-way pipe, so that it can be connected to the second interface 22, the water outlet 321 and the water inlet pipe 23 of the swimming pool at the same time, so that the water carrying mineral elements and the heated water discharged from the hot spring generator 30 can be simultaneously introduced into the water pipe 23 and mixed before being discharged into the swimming pool;
[0033] In addition, since the water discharged from the hot spring generator 30 is at room temperature, to prevent the temperature of the water in the water pipe 23 from becoming too low after being mixed with the water discharged from the hot spring generator 30 and failing to achieve the hot spring effect, a flow meter is further provided at the water outlet 321 of the hot spring generator 30 in this embodiment. The flow meter can control the water flow rate of the water discharged through the water outlet 321, preventing the water volume discharged from the water outlet 321 from being too large and mixing with the heated water in the water pipe 23, which may cause the temperature of the water in the water pipe 23 to be too low and affect the user experience.
[0034] More specifically, the heat exchange element 20 in this embodiment can be selected from a heat exchange sleeve, a fixed tube sheet type, a titanium condenser, or a floating head heat exchanger, etc. When using a heat exchange sleeve, the flow channels inside the two sleeves are respectively formed as the first flow channel and the second flow channel; when using a fixed tube sheet heat exchanger or a floating head heat exchanger, the first flow channel can be formed between the housing 10 and the heat exchange plate or heat exchange fins, and the second flow channel can be formed by mechanical cutting inside the heat exchange plate or by arranging heat exchange tubes inside the plate, etc., so that two flow channels are formed inside; in addition, in addition to heating the water in the first flow channel by introducing a heat exchange medium into the second flow channel in the above manner, a resistance wire or a heating wire can also be directly placed in the second flow channel to heat the pipe wall of the first flow channel, so as to achieve the effect of heat exchange of the water body in the first flow channel, which can be specifically set according to actual needs.
[0035] When assembling the hot spring generator 30, a housing 10, a box body, a tank, etc. made of corrosion-resistant metal materials can be selected. By integrally forming a flow channel or a cavity inside it, and then putting a mineral package (such as ore or crystal, etc.) inside, beneficial mineral elements or trace elements can be released into the water after the water reacts with it after being introduced.
[0036] It should be noted that a water pump is also included in this embodiment to make the water in each flow channel circulate.
[0037] Furthermore, the hot spring generator 30 includes a first filter element 31 and a second filter element 32. The first filter element 31 is located at the bottom of the second filter element 32. The first filter element 31 has a first diversion cavity, and the second filter element 32 has a second diversion cavity. The first diversion cavity is communicated with the second diversion cavity, so that the hot spring generator 30 forms a third flow channel. The water inlet 331 is formed at the water inlet end of the first diversion cavity, and the water outlet 321 is formed at the water outlet end of the second diversion cavity. At least one of the first diversion cavity and the second diversion cavity is filled with minerals and a filter core, and the filter core is used to filter the water flow.
[0038] Specifically, since there will be more or less dust or impurities in the minerals, if they are directly put into the housing 10 to react with water, it may cause the water discharged into the swimming pool to carry dust or impurities, affecting the use. Therefore, in this embodiment, the hot spring generator 30 includes a first filter element 31 and a second filter element 32. During assembly, a first diversion cavity and a second diversion cavity are respectively arranged in the first filter element 31 and the second filter element 32. The first diversion cavity and the second diversion cavity are connected through a water pipe 23 or by opening a through hole, so that the two diversion cavities are connected to form the above-mentioned third flow channel. A filter core and minerals are arranged in at least one of the diversion cavities. When minerals are arranged in both the first diversion cavity and the second diversion cavity, filter cores can be arranged in both the first diversion cavity and the second diversion cavity at the same time. During specific assembly, the two filter cores can be respectively arranged at the connection between the first diversion cavity and the second diversion cavity and the water outlet 321 of the second diversion cavity, so that the water entering the first diversion cavity and the second diversion cavity needs to pass through the filter core after reacting with the minerals, so as to filter the water carrying mineral elements through the filter core, making it cleaner after being discharged. And through two layers of minerals, more mineral elements or trace elements carried in the water can be obtained, and the water quality is better;
[0039] Of course, it is also possible to only fill minerals in the first diversion cavity, and then respectively arrange filter cores at the connection end between the first diversion cavity and the second diversion cavity and the water outlet 321 of the second diversion cavity, so that the water flow is introduced into the first diversion cavity to react with the minerals and is filtered layer by layer, making the discharged water cleaner after being purified layer by layer.
[0040] It should be noted that the filter core can be selected from structures such as a filter net or a filter cotton.
[0041] Furthermore, the hot spring generator 30 further includes a connection base 33. There are multiple first filter elements 31, and the multiple first filter elements 31 are respectively connected to the bottom of the connection base 33. The second filter element 32 is located on the top of the connection base 33. A third diversion cavity is provided in the connection base 33. The first diversion cavity is communicated with the third diversion cavity. The third diversion cavity is communicated with the second diversion cavity through a connecting pipe. The water inlet 331 is formed at the water inlet end of the third diversion cavity, and the water outlet 321 is formed at the water outlet end of the second diversion cavity.
[0042] Specifically, when there are multiple first filters 31, the multiple first filters 31 and the second filter 32 can be connected through the connecting seat 33. By arranging a third diversion cavity in the connecting seat 33, connecting the first diversion cavity with the third diversion cavity, and connecting the third diversion cavity with the second diversion cavity through a connecting pipe, the above-mentioned third flow path is formed inside. The water inlet 331 is arranged at the water inlet end of the third diversion cavity, and the water outlet 321 is arranged at the water outlet end of the second diversion cavity. In this way, after the water flows into the third diversion cavity, it can simultaneously flow into multiple first diversion cavities and react with the minerals in the multiple first diversion cavities, enabling the water to fully react with multiple minerals. Thus, the water flowing from the third diversion cavity into the second diversion cavity can carry more mineral elements or trace elements, making the quality of the discharged water better.
[0043] It should be noted that on the basis of the above structure, filter cores and minerals can be arranged in multiple first diversion cavities, second diversion cavities, and third diversion cavities, so that the water flows in the multiple first diversion cavities, second diversion cavities, and third diversion cavities react with the minerals respectively and are filtered and discharged respectively, making the quality of the discharged water better; of course, it can also be that minerals are only arranged in multiple first diversion cavities respectively, and filter cores are arranged in the second diversion cavity and the third diversion cavity to purify the water.
[0044] Preferably, in this embodiment, the second filter 32 is a magnetic filter, and the filtering effect is better; while the first diversion cavity is filled with minerals and a filter net. At this time, the filter net forms the above-mentioned filter core. During assembly, the filter net extends and winds along the end wall of the diversion cavity to form a filling cavity, and then the minerals are filled in the filling cavity, and a sealing member is arranged in the first diversion cavity to seal the filling cavity. In this way, when the water flow is introduced from the second diversion cavity into the first diversion cavity, it can penetrate through the filter net into the filling cavity to react with the minerals. Since the minerals are covered by the filter net, the dust or impurities in the minerals are not easily exported from the filling cavity to the outside. Thus, the water flow after reacting with the minerals can be filtered for the first time by the filter net, and then the water flow carrying minerals after filtration is discharged into the second filter 32 through the second diversion cavity for re-filtering and purification, and finally discharged, so that the water flow can react with the minerals in multiple filling cavities and be discharged after passing through multiple layers of filtration, making the quality of the water finally discharged into the water pipe 23 carry more mineral elements and be cleaner, and the water quality is better.
[0045] It should be noted that the plugging member can be a corrosion-resistant material such as a silicone rubber, rubber or metal plug, or a material with a high density such as filter cotton or sponge can be used to block the top of the filling cavity to prevent the minerals in the filling cavity from reacting with water directly without being filtered.
[0046] Preferably, the capping member in this embodiment is a filter cotton. In this way, when water is introduced into the first diversion cavity, it can simultaneously penetrate into the filling cavity through the filter cotton and the filter net to react with the minerals, enabling the water and the minerals to react quickly and ensuring that the water can react with the minerals more fully.
[0047] More specifically, a connecting head is provided at the bottom of the connecting seat 33. The connecting head is provided with a first connecting portion, and the first filter member 31 is provided with a second connecting portion. The second connecting portion is located at the top of the first diversion cavity and is detachably connected to the first connecting portion. Among them, after the first connecting portion and the second connecting portion are connected, the connecting head extends into the first diversion cavity and abuts against the capping member, and the connecting head has a diversion channel, so that after the connecting head extends into the first diversion cavity, the first diversion cavity is communicated with the third diversion cavity.
[0048] Based on this structure, the first connecting portion and the second connecting portion are detachably connected, so that the first filter member 31 and the connecting seat 33 are detachable. Therefore, if it is necessary to replace the minerals in the first filter member 31 in the later stage, only the first connecting portion and the second connecting portion need to be detached, making the later maintenance and replacement more convenient.
[0049] In addition, since the connecting head can abut against the capping member after the first connecting portion and the second connecting portion are connected, after assembly, the capping member can lock the minerals in the filling cavity to prevent them from leaking. At the same time, since there is a diversion channel in the connecting head, when the connecting head locks the capping member, the water in the second diversion cavity can penetrate into the first diversion cavity through the diversion channel to react with the minerals in the filling cavity, making the structure more practical.
[0050] It should be noted that specifically, the first connecting portion can be a structure such as a slot or a bayonet provided on the connecting head, and the second connecting portion can be a structure such as a buckle or a block provided on the inner wall of the first diversion cavity, so that the two can be snap-fitted to achieve detachability. Of course, vice versa can also achieve snap-fitting connection; in addition, a thread groove or a thread can be provided on the outer periphery of the connecting head to form the first connecting portion, and a corresponding thread or thread groove can be provided at the top of the first diversion cavity synchronously, so that the two can be detachably connected by thread connection.
[0051] Preferably, in this embodiment, a thread is provided on the outer periphery of the connecting head to form the first connecting portion, and the second connecting portion is a thread groove formed on the inner wall of the first diversion cavity. The thread groove and the thread are spirally matched so that the first filter member 31 is threadedly connected to the connecting head. Compared with snap-fitting connection, threaded connection usually has higher connection strength and is not easily loosened even under additional loads, and the sealing effect is also better, making the entire structure have a good sealing effect and be more stable and not easily loosened.
[0052] Further, the heat exchange assembly further includes an evaporator 40 and a compressor 50. The heat exchange member 20 is a titanium condenser. One end of the compressor 50 is communicated with one end of the first flow channel and is used to introduce a heat exchange medium into the first flow channel. The other end of the first flow channel is communicated with one end of the evaporator 40 and is used to export the heat exchange medium. The other end of the evaporator 40 is communicated with the other end of the compressor 50.
[0053] Based on the above structure, when the device is operating, the high-temperature and high-pressure refrigerant in the compressor 50 liquefies after entering the second flow channel of the heat exchange member 20. A large amount of heat needs to be released during its liquefaction process. At this time, heat exchange can be carried out with the water in the first flow channel to heat the water in the first flow channel. After that, since the gaseous refrigerant releases heat and condenses into a liquid refrigerant when entering, specifically, the heat exchange member 20 and the evaporator 40 can be connected through a throttle valve, so that the liquid refrigerant passes through the throttle valve and then is introduced into the evaporator 40. In this way, the liquid refrigerant is throttled, and its pressure and temperature are further reduced. After the low-pressure and low-temperature liquid refrigerant enters the evaporator 40, the vaporized refrigerant is inhaled by the compressor 50 again to start a new round of cycle.
[0054] Specifically, since the heat exchange member is a titanium condenser (such as a titanium serpentine condenser or a shell-and-tube condenser), the first flow channel and the second flow channel are integrally formed inside it, or titanium tubes are arranged to form the first flow channel and the second flow channel. Compared with ordinary metals, titanium has good heat transfer effect and can efficiently transfer the heat in the heat medium to the cold medium, making its overall heat exchange efficiency higher and the water heating faster. In addition, due to the corrosion resistance of titanium, the service life of the titanium condenser is usually longer, reducing the frequency of replacement and maintenance and lowering the long-term operation cost.
[0055] More specifically, since the refrigerant in the evaporator 40 releases a large amount of cold during the gasification process, it may cause moisture in the installation cavity, resulting in the internal equipment being affected by moisture and affecting its use. Therefore, in this embodiment, a fan 60 is also provided. During assembly, the fan 60 is installed on one side of the evaporator 40 to timely discharge the moisture generated during the gasification process of the evaporator 40 out of the installation cavity, preventing the internal equipment from being affected by moisture, and the structure is more practical.
[0056] Preferably, the fan 60 can be a centrifugal fan 60 or an exhaust fan 60, etc.
[0057] In addition, a partition plate 13 is provided in the installation cavity. The partition plate 13 divides the installation cavity into a first chamber 11 and a second chamber 12. The evaporator 40 and the fan 60 are installed in the first chamber 11, while the heat exchange member 20, the compressor 50, and the hot spring generator 30 are located in the second chamber 12. Specifically, the connection end of the evaporator 40 can pass through the partition plate 13 to communicate with the compressor 50 and the heat exchange member 20. In this way, the risk that the moisture generated during the operation of the evaporator 40 enters the second chamber 12 and affects the use of the internal equipment in the second chamber 12 can be reduced.
[0058] The technical means disclosed in the solution of the present utility model are not limited to the technical means disclosed in the above embodiments, but also include technical solutions composed of any combination of the above technical features. It should be noted that for those of ordinary skill in the art in this technical field, without departing from the principle of the present utility model, several improvements and retouches can be made, and these improvements and retouches are also regarded as the protection scope of the present utility model.
Claims
1. A hot spring swimming pool machine, characterized in that: include: A housing having a mounting cavity; A heat exchange component, the heat exchange component comprising a heat exchange element, the heat exchange element having a first flow channel and a second flow channel, the second flow channel having a first interface and a second interface, the first interface is used to introduce water flow, the first flow channel and the second flow channel exchange heat; the second interface is connected to a water pipe, the water pipe is in conduction with the outside; A hot spring generator, wherein the hot spring generator has a third flow channel filled with minerals; the third flow channel has a water inlet and a water outlet, the water inlet is used to introduce water to the minerals, and the water outlet is connected to the water pipe and is used to guide the water into the water pipe.
2. The hot spring swimming pool machine according to claim 1, characterized in that: The hot spring generator comprises a first filter element and a second filter element, the first filter element is located at the bottom of the second filter element, the first filter element has a first flow guide cavity, the second filter element has a second flow guide cavity, the first flow guide cavity is connected with the second flow guide cavity, so that the hot spring generator forms the third flow channel; the water inlet is formed at the water inlet end of the first flow guide cavity, and the water outlet is formed at the water outlet end of the second flow guide cavity; At least one of the first flow guiding cavity and the second flow guiding cavity is filled with minerals and a filter core, and the filter core is used for filtering water flow.
3. The hot spring swimming pool machine according to claim 2, characterized in that: The hot spring generator also includes a connecting seat, a plurality of first filter elements are provided, and the plurality of first filter elements are respectively connected to the bottom of the connecting seat, and the second filter element is located at the top of the connecting seat; a third flow guide cavity is provided in the connecting seat, the first flow guide cavity is communicated with the third flow guide cavity, and the third flow guide cavity is communicated with the second flow guide cavity through a connecting pipe; the water inlet is formed at the water inlet end of the third flow guide cavity, and the water outlet is formed at the water outlet end of the second flow guide cavity.
4. The hot spring swimming pool machine according to claim 3, characterized in that: The second filter element is a magnetic filter; the first flow guide cavity is filled with minerals and a filter screen, the filter screen forms the filter core, the filter screen extends and is wound along the end wall of the flow guide cavity to form a filling cavity, and the filling cavity is used to fill the minerals; a cover element is also provided in the first flow guide cavity, and the cover element covers the filling cavity.
5. The hot spring swimming pool machine according to claim 4, characterized in that: The sealing cover is filter cotton.
6. The hot spring swimming pool machine according to claim 4, characterized in that: A connecting head is provided at the bottom of the connecting seat, a first connecting part is provided on the connecting head, and a second connecting part is provided on the first filter element. The second connecting part is located at the top of the first flow guide cavity and is detachably connected to the first connecting part; after the first connecting part is connected to the second connecting part, the connecting head extends into the first flow guide cavity and presses against the sealing cover; the connecting head has a flow guide channel, so that after the connecting head extends into the first flow guide cavity, the first flow guide cavity and the third flow guide cavity are connected.
7. The hot spring swimming pool machine according to claim 6, characterized in that: The outer periphery of the connecting head is provided with a thread, the thread forms the first connecting portion, the second connecting portion is a thread groove, and the thread groove is spirally matched with the thread.
8. The hot spring swimming pool machine according to claim 1, characterized in that: The heat exchange component also includes an evaporator and a compressor. The heat exchange component is a titanium condenser. One end of the compressor is connected to one end of the first flow channel and is used to introduce heat exchange medium into the first flow channel. The other end of the first flow channel is connected to one end of the evaporator and is used to export the heat exchange medium. The other end of the evaporator is connected to the other end of the compressor.
9. The hot spring swimming pool machine according to claim 8, characterized in that: It also includes a fan, which is located on one side of the evaporator and is used to guide the air flow in the installation cavity to be discharged.
10. The hot spring swimming pool machine according to claim 9, characterized in that: A partition plate is provided in the installation cavity, and the partition plate divides the installation cavity into a first chamber and a second chamber. The evaporator and the fan are located in the first chamber, and the heat exchange element, the compressor and the hot spring generator are located in the second chamber.