A multifunctional integrated sports training cabin based on solar energy
By using a circuit switch in the training cabin to convert solar power into electricity for the cooling or heating system, the problem of resource waste after the battery is fully charged is solved, and diversified storage and efficient utilization of electricity are achieved.
Patent Information
- Application Number
- CN202411393299.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-08
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2044-10-08
AI Technical Summary
The existing training cabins cannot continue to utilize solar energy after the batteries are fully charged, resulting in a waste of resources.
The electric energy generated by the solar device is converted into electric energy for the refrigeration or heating system through a circuit switch, and the refrigeration system is used to make ice or the heating system is used to heat water, so as to store the electric energy into other forms of energy and extend the utilization time of solar energy.
After the battery is fully charged, the electrical energy is stored through the refrigeration or heating system, which extends the utilization time of solar energy, improves resource utilization and the efficiency of users in using cold and hot water.
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Figure CN119083589B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of training cabins, and in particular to a multifunctional integrated sports training cabin based on solar energy. Background Art
[0002] Training cabins are used to provide people with mobile training venues. They usually have a modular design and can be quickly deployed and moved to adapt to different training needs and environments. They are equipped with a variety of training equipment and are easy to move, making them particularly suitable for soldiers who often move outdoors.
[0003] When current training cabins use solar energy to generate electricity, due to the limited capacity of the battery, they cannot continue to use solar energy after the battery is fully charged, resulting in a waste of resources. Summary of the Invention
[0004] In response to the above technical problems, the present invention aims to provide a multifunctional integrated sports training cabin based on solar energy. To solve the above technical problems, the present invention adopts the following technical solutions:
[0005] A solar-powered multifunctional integrated sports training cabin comprises a cabin body, a movable platform movably connected to the cabin body, a storage battery, a solar device and two or more training equipment connected to the cabin body;
[0006] The top wall of the cabin is connected to a cold box, a hot box and a water storage tank. The cold box and the hot box are fixedly connected. The cold box is provided with a cold cavity, which is connected to a refrigeration system. The hot box is provided with a hot cavity, and the bottom wall of the hot cavity is connected to a heating system. The solar device, the refrigeration system and the heating system are electrically connected to the battery respectively.
[0007] The inner wall of the cold chamber is slidably connected to an ice pressing water tray, which is provided with a water cavity. The bottom wall of the water cavity is connected to the bottom wall of the ice pressing water tray through a water outlet, and the top wall of the ice pressing water tray is connected to the top wall of the cold chamber through an elastic member.
[0008] A rotary clamping component is arranged in the cold chamber. An ice making grid is clamped on the rotary clamping component. More than two ice making grids are arranged on the ice making grid.
[0009] Preferably, a sub-cavity and a plate channel are further provided in the cold box, the top wall of the sub-cavity is connected to the side wall of the cold cavity through the cold transfer channel, and the plate channel is connected to the cold transfer channel;
[0010] The rotary clamping assembly comprises a first clamping member, a second clamping member, a second elastic member, a rotating plate, a rotating shaft, a spur gear, a cold transmission device and a heat insulation plate;
[0011] The first clamping member is rotatably connected to one side wall of the cold chamber, the first clamping member clamps the soft ice cube mold, the rotating shaft is rotatably connected to the other side wall of the cold chamber, the rotating plate is fixedly connected to the right end of the rotating shaft, the rotating plate is connected to the second clamping member through the second elastic member, the second clamping member clamps the soft ice cube mold, the left end of the rotating shaft extends into the auxiliary cavity, and the left end of the rotating shaft is fixedly connected to a spur gear;
[0012] The cold transmission device is fixed to the bottom wall of the auxiliary cavity, and a loading cavity is opened on the cold transmission device. The top wall of the loading cavity is connected to the top wall of the cold transmission device through the loading channel. The loading cavity is filled with clean water. The inner wall of the loading channel is slidably connected to a thrust rack, and the thrust rack is meshed with a spur gear. A cold transmission hole is opened on the insulation plate, and the insulation plate is slidably connected to the inner wall of the plate channel. A thermal expansion component is fixed to the inner wall of the hot cavity, and one end of the thermal expansion component is fixed to the insulation plate.
[0013] Preferably, a circuit switcher is connected to the cold box, a switching gate is movably connected to the circuit switcher, an extension piece is fixed to the circuit switcher, and the extension piece is connected to the switching gate through elastic member 3. Another cold transmission device is also fixed to the inner wall of the cold cavity. The structure of the cold transmission device in the cold cavity is the same as that of the cold transmission device in the auxiliary cavity. The refrigeration system is electrically connected to the battery through the circuit switcher, and the heating system is electrically connected to the battery through the circuit switcher.
[0014] Preferably, a mass block is slidably connected to the inner wall of the auxiliary cavity, and the mass block is fixed to the upper end of the thrust rack in the auxiliary cavity.
[0015] Preferably, a limit block is fixedly connected to the thrust rack.
[0016] Preferably, the cold box is connected to a liquid inlet pipe 1 and a liquid outlet pipe 1, the liquid inlet pipe 1 is connected to a valve 1, and the liquid outlet pipe 1 is connected to a valve 2, the hot box is connected to a liquid inlet pipe 2 and a liquid outlet pipe 2, the liquid inlet pipe 2 is connected to a valve 3, and the liquid outlet pipe 2 is connected to a valve 4, and the liquid inlet pipe 1 and the liquid inlet pipe 2 are both connected to the water storage tank.
[0017] Preferably, an electrical control box is connected to the cabin body.
[0018] Preferably, the cabin body is connected to an electric winch, the electric winch is movably connected to a pull rope, and one end of the pull rope is fixedly connected to the movable platform.
[0019] Preferably, a rain shelter is movably connected to the cabin body.
[0020] Preferably, the soft ice cube mold is made of rubber.
[0021] The present invention has the following beneficial effects:
[0022] The present invention can convert electrical energy into other forms of energy for storage after the battery is fully charged, so that the battery can continue to utilize solar energy. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The present invention is further described with reference to the accompanying drawings. However, the embodiments in the accompanying drawings do not constitute any limitation to the present invention. A person skilled in the art can obtain other drawings based on the following drawings without creative effort.
[0024] Figure 1 This is a front view of a multifunctional integrated sports training cabin based on solar energy according to the present invention;
[0025] Figure 2 This invention Figure 1 A schematic diagram of the structure of the central cabin in one of its working states;
[0026] Figure 3 This invention Figure 1 A schematic diagram of the structure of the central cabin in another working state;
[0027] Figure 4 This invention Figure 1 Schematic diagram of the structure of the intercooler and heat box;
[0028] Figure 5 This invention Figure 4 Enlarged view of point A in the middle;
[0029] Figure 6 This invention Figure 4 Enlarged view of point B in the middle.
[0030] Figures: 1. Cabin; 2. Cold box; 3. Hot box; 4. Movable platform; 5. Canopy; 6. Electric winch; 7. Pull rope; 8. Electrical control box; 9. Solar device; 10. Training equipment; 11. Water storage tank; 12. Cold chamber; 13. Refrigeration system; 14. Ice pressing water tray; 15. Elastic part 1; 16. Water chamber; 17. Water outlet; 18. Clamping part 1; 19. Soft ice cube mold; 20. Ice making tray; 21. Clamping part 2; 22. Elastic part 2; 23. Rotating plate; 24. Rotating shaft; 25. Spur gear; 26. Cold transmission device; 2 7. Loading chamber; 28. Loading channel; 29. Clean water; 30. Thrust rack; 31. Auxiliary chamber; 32. Cooling channel; 33. Plate channel; 34. Insulation plate; 35. Cooling hole; 36. Thermal expansion element; 37. Hot chamber; 38. Circuit switch; 39. Switch gate; 40. Extension piece; 41. Elastic piece three; 42. Heating system; 43. Liquid inlet pipe one; 44. Valve one; 45. Liquid outlet pipe one; 46. Valve two; 47. Liquid inlet pipe two; 48. Valve three; 49. Liquid outlet pipe two; 50. Valve four; 51. Limit block; 52. Mass block. DETAILED DESCRIPTION
[0031] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0032] In the description of the present invention, it should be noted that the terms "vertical," "upper," "lower," and "horizontal," etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate the description of the present invention and simplify the description. They do not indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation, and therefore should not be construed as limitations on the present invention. Furthermore, the terms "first," "second," "third," and "fourth" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0033] It should also be noted that, in the description of the present invention, unless otherwise expressly specified or limited, the terms "disposed," "installed," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integral connections; they may refer to mechanical connections or electrical connections; they may refer to direct connections or connections through an intermediate medium; and they may refer to internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on specific circumstances.
[0034] like Figures 1-6 As shown, a multifunctional integrated sports training cabin based on solar energy includes a cabin body 1, a movable platform 4 is movably connected to the cabin body 1, a battery, a solar device 9 and two or more training equipment 10 are connected to the cabin body 1, and the training equipment 10 can be one of a pull-up rack, a multifunctional pulling trainer, a ladder, a magnetic resistance puller, a squat trainer, a deadlift trainer, a sit-and-press trainer, and a step trainer. A cold box 2, a hot box 3 and a water storage tank 11 are connected to the top wall of the cabin body 1. The cold box 2 and the hot box 3 are fixedly connected. A cold chamber 12 is defined on the cold box 2, and a refrigeration system 13 is connected to the cold box 2. A hot chamber 37 is defined on the hot box 3, and a heating system 42 is connected to the bottom wall of the hot chamber 37. The solar device 9, the refrigeration system 13 and the heating system 42 are respectively electrically connected to the battery;
[0035] The inner wall of the cold chamber 12 is slidably connected to an ice pressing water tray 14, and a water cavity 16 is opened on the ice pressing water tray 14. The bottom wall of the water cavity 16 is connected to the bottom wall of the ice pressing water tray 14 through a water outlet 17, and the top wall of the ice pressing water tray 14 is connected to the top wall of the cold chamber 12 through an elastic member 15.
[0036] A rotating clamping assembly is provided in the cold chamber 12 . The rotating clamping assembly clamps an ice making tray 20 . The ice making tray 20 has two or more ice making trays 20 .
[0037] The cabin body 1 of the present invention is easy to install and transport. Figure 1 、 3 It can be opened and used as shown, or as Figure 2 As shown, it is stored in a box shape for transportation, and can be transported in a standard 20-inch container. The movable platform 4 can be unfolded as an exercise platform. The equipment cushion laid in the cabin body 1 adopts a PU foam self-skinning mold integrated molding process, which is comfortable and soft and meets the conditions for outdoor use.
[0038] like Figures 1-6 As shown, according to an optional embodiment of the present invention, a sub-cavity 31 and a plate channel 33 are further provided in the cold box 2. The top wall of the sub-cavity 31 is connected to the side wall of the cold cavity 12 through a cold transfer channel 32, and the plate channel 33 is connected to the cold transfer channel 32.
[0039] The rotary clamping assembly comprises a clamping member 18, a clamping member 21, an elastic member 22, a rotating piece 23, a rotating shaft 24, a spur gear 25, a cold transmission device 26 and an insulating plate 34. The clamping member 18 is rotatably connected to one side wall of the cold chamber 12. The clamping member 18 clamps the soft ice cube mold 19. The rotating shaft 24 is rotatably connected to the other side wall of the cold chamber 12. The rotating piece 23 is fixed to the right end of the rotating shaft 24. The rotating piece 23 is connected to the clamping member 21 through the elastic member 22. The clamping member 21 clamps the soft ice cube mold 19. The left end of the rotating shaft 24 extends into the auxiliary cavity 31. The left end of the rotating shaft 24 is fixed to the spur gear 25.
[0040] The cold transmission device 26 is fixed to the bottom wall of the auxiliary cavity 31, and a carrier cavity 27 is opened on the cold transmission device 26. The top wall of the carrier cavity 27 is connected to the top wall of the cold transmission device 26 through the carrier channel 28. The carrier cavity 27 is filled with clean water 29. The inner wall of the carrier channel 28 is slidably connected to the thrust rack 30, and the thrust rack 30 is engaged with the spur gear 25. A cold transfer hole 35 is opened on the insulation plate 34, and the insulation plate 34 is slidably connected to the inner wall of the plate channel 33. The inner wall of the hot cavity 37 is fixed with a thermal expansion member 36, and one end of the thermal expansion member 36 is fixed to the insulation plate 34.
[0041] like Figure 4 、 6As shown, according to an optional embodiment of the present invention, a circuit switcher 38 is connected to the cold box 2, a switching gate 39 is movably connected to the circuit switcher 38, an extension piece 40 is fixed to the circuit switcher 38, and the extension piece 40 is connected to the switching gate 39 through an elastic member 41. Another cold transmission device 26 is also fixed to the inner wall of the cold cavity 12. The structure of the cold transmission device 26 in the cold cavity 12 is the same as that of the cold transmission device 26 in the auxiliary cavity 31. The refrigeration system 13 is electrically connected to the battery through the circuit switcher 38, and the heating system 42 is electrically connected to the battery through the circuit switcher 38.
[0042] like Figure 4 、 5 As shown, according to an optional embodiment of the present invention, a mass block 52 is slidably connected to the inner wall of the auxiliary cavity 31. The mass block 52 can move the thrust rack 30 downward and reset when the ice cubes on the cooling transmission device 26 in the auxiliary cavity 31 melt into clear water 29, thereby reversing and resetting the soft ice cube mold 19 for subsequent use.
[0043] like Figure 4-6 As shown, according to an optional embodiment of the present invention, a limit block 51 is fixedly connected to the thrust rack 30, and the limit block 51 can prevent the thrust rack 30 from moving downward excessively.
[0044] like Figure 1 、 4 As shown, according to an optional embodiment of the present invention, the cold box 2 is connected to a liquid inlet pipe 1 43 and a liquid outlet pipe 1 45, the liquid inlet pipe 1 43 is connected to a valve 1 44, and the liquid outlet pipe 1 45 is connected to a valve 2 46. The hot box 3 is connected to a liquid inlet pipe 2 47 and a liquid outlet pipe 2 49, the liquid inlet pipe 2 47 is connected to a valve 3 48, and the liquid outlet pipe 2 49 is connected to a valve 4 50. The liquid inlet pipe 1 43 and the liquid inlet pipe 2 47 are both connected to the water storage tank 11. The valve 1 44, valve 2 46, valve 3 48, and valve 4 50 can all be electric valves.
[0045] like Figure 1 As shown, according to an optional embodiment of the present invention, an electrical control box 8 is connected to the cabin body 1, and the electrical control box 8 can control electrical components.
[0046] like Figure 1 、 3 As shown, according to an optional embodiment of the present invention, an electric winch 6 is connected to the cabin body 1, and a pull rope 7 is movably connected to the electric winch 6. One end of the pull rope 7 is fixed to the movable platform 4. The electric winch 6 controls the contraction and release of the pull rope 7, thereby controlling the closing and opening of the movable platform 4.
[0047] like Figure 1According to an optional embodiment of the present invention, a rain shelter 5 is movably connected to the cabin body 1, and the rain shelter 5 can prevent rainwater from drifting into the cabin body 1 during rainy days.
[0048] like Figure 4 、 5 As shown, according to an optional embodiment of the present invention, the soft ice cube mold 19 is made of rubber.
[0049] Implementation process:
[0050] Open valve 1 44 and valve 3 48 to allow the tap water in the water storage tank 11 to enter the hot chamber 37 and the cold chamber 12 , and the tap water falls into the water chamber 16 and passes through the water outlet 17 to fall into all the ice making grids 20 .
[0051] Solar device 9 converts solar energy into electrical energy and stores it in a battery. When the battery is fully charged, electrical control box 8 controls the battery to supply power to refrigeration system 13. Due to the presence of circuit switch 38, the battery is connected to only one of the circuits of refrigeration system 13 and heating system 42. At this time, the battery is connected to the circuit of refrigeration system 13. Refrigeration system 13 cools the cold chamber 12, causing the tap water in ice cubes 20 to freeze. The insulation board 34 provides insulation, preventing cold air from entering the sub-chamber 31. The fresh water 29 in the sub-chamber 31 will not freeze temporarily, preventing the tap water in the ice cubes 20 from dripping.
[0052] In the cold transmission device 26 in the cold chamber 12, the clean water 29 will freeze. After the clean water 29 freezes, its volume will increase, thereby pushing the thrust rack 30 upward. The thrust rack 30 and the bottom wall of the switching gate 39 abut against each other, thereby pushing the switching gate 39 to overcome the elastic force of the elastic member 3 41 and rotate, thereby switching the circuit of the circuit switch 38, connecting the circuit of the battery and the heating system 42, and disconnecting the circuit of the battery and the refrigeration system 13. The heating system 42 heats the tap water in the hot chamber 37, and the thermal expansion member 36 expands due to the heat, thereby pushing the insulation plate 34 to the right, so that The cold transfer hole 35 is connected to the cold transfer channel 32, and cold air enters the sub-chamber 31. Since the sub-chamber 31 has a smaller volume and the cold chamber 12 has a larger volume, the cold amount in the cold chamber 12 is sufficient to freeze the clean water 29 on the cold transmission device 26 in the sub-chamber 31. After the clean water 29 is frozen, it pushes the thrust rack 30 to move upward, and the thrust rack 30 drives the spur gear 25 to rotate, thereby rotating the rotating shaft 24, the rotating plate 23, the elastic member 22, the clamping member 21, the soft ice cube mold 19, and the clamping member 18 to rotate, so that the soft ice cube mold 19 is turned over, and the ice cubes in the ice making tray 20 face downward.
[0053] The electric energy freezes the tap water so that the cold box 2 reserves cold capacity, and the electric energy heats the tap water in the hot box 3 to reserve heat. Through this method, the electric energy is converted into other energy for storage. The solar device 9 can continue to convert solar energy into electric energy and store it in the battery, indirectly increasing the energy storage capacity.
[0054] Opening valve 1 44 allows tap water to enter the water chamber 16. Since the water outlet hole 17 has a small diameter, the water inflow speed of the liquid inlet pipe 1 43 is much greater than the water outflow speed of the water outlet hole 17, thereby increasing the weight of the ice-pressing water tray 14. The ice-pressing water tray 14 overcomes the elastic force of the elastic member 15 and moves downward. The ice-pressing water tray 14 presses down the soft ice cube mold 19. Since the soft ice cube mold 19 is made of soft material and cooperates with the buffering of the elastic member 2 22, the ice-pressing water tray 14 can bend the soft ice cube mold 19. The ice cubes in the ice making tray 20 will fall out of the ice making tray 20 and fall into the cold chamber 12. The ice cubes and tap water combine to turn the tap water into cold water.
[0055] Both the cold box 2 and the hot box 3 have a heat preservation function. When the user needs to use cold water, the valve 2 46 is opened, and the cold water in the cold chamber 12 will flow to the outside through the liquid outlet pipe 1 45 for the user to use.
[0056] After the cold water in the cold chamber 12 is used up, you can open valve 144 to continue adding tap water to the cold chamber 12. The tap water and the ice cubes in the cold chamber 12 combine to quickly turn the tap water into cold water. After the ice cubes are consumed, the cold air in the cold chamber 12 will turn the tap water into cold water, preventing waste of resources.
[0057] When the user needs to use hot water, he opens valve 4 50, and the hot water in the hot chamber 37 flows to the outside through the liquid outlet pipe 2 49 for the user to use.
[0058] After the battery is fully charged, the present invention converts electrical energy into other forms of energy for storage. This allows the battery to continue utilizing solar energy even if the tap water in the cold chamber 12 freezes and the water in the hot chamber 37 becomes hot water. Furthermore, the rotating clamping assembly cooperates with the ice-pressing water tray 14 to separate ice cubes from the ice-making tray 20, and the heating system 42 heats the water. This allows users to immediately access cold and hot water when needed, eliminating the need to wait for extended periods of time for the water to be heated or cooled. This improves solar energy utilization and increases the efficiency of users' use of both cold and hot water.
[0059] The components, modules, mechanisms and devices not described in detail in the present invention are all universal standard parts or components known to those skilled in the art, and their structures and principles can be known to those skilled in the art through technical manuals or conventional experimental methods.
[0060] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit the scope of protection of the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the essence and scope of the technical solutions of the present invention.
Claims
1. A multifunctional integrated sports training cabin based on solar energy, characterized by: The invention comprises a cabin body (1), a movable platform (4) is movably connected to the cabin body (1), a storage battery, a solar device (9) and two or more training equipment (10) are connected to the cabin body (1), a cold box (2), a hot box (3) and a water storage tank (11) are connected to the top wall of the cabin body (1), the cold box (2) and the hot box (3) are fixedly connected, a cold chamber (12) is provided on the cold box (2), a refrigeration system (13) is connected inside the cold box (2), a hot chamber (37) is provided on the hot box (3), a heating system (42) is connected to the bottom wall of the hot chamber (37), and the solar device (9), the refrigeration system (13) and the heating system (42) are electrically connected to the storage battery respectively; The inner wall of the cold chamber (12) is slidably connected to an ice-pressing water tray (14), a water chamber (16) is provided on the ice-pressing water tray (14), the bottom wall of the water chamber (16) is connected to the bottom wall of the ice-pressing water tray (14) through a water outlet (17), and the top wall of the ice-pressing water tray (14) is connected to the top wall of the cold chamber (12) through an elastic member (15); A rotary clamping assembly is provided in the cold chamber (12), wherein a soft ice cube mold (19) is clamped on the rotary clamping assembly, and two or more ice making grids (20) are provided on the soft ice cube mold (19); The cold box (2) is further provided with a sub-cavity (31) and a plate channel (33); the top wall of the sub-cavity (31) is connected to the side wall of the cold cavity (12) through the cold transfer channel (32); and the plate channel (33) is connected to the cold transfer channel (32); The rotary clamping assembly includes a clamping member 1 (18), a clamping member 2 (21), an elastic member 2 (22), a rotating plate (23), a rotating shaft (24), a spur gear (25), a cold transmission device (26) and an insulating plate (34), wherein the clamping member 1 (18) is rotatably connected to one side wall of the cold chamber (12), and the clamping member 1 (18) clamps the soft ice cube mold (19), and the rotating shaft (24) is rotatably connected to the other side wall of the cold chamber (12), and the rotating plate (23) is fixed to the right end of the rotating shaft (24), and the rotating plate (23) is connected to the clamping member 2 (21) through the elastic member 2 (22), and the clamping member 2 (21) clamps the soft ice cube mold (19), and the left end of the rotating shaft (24) extends into the auxiliary chamber (31), and the left end of the rotating shaft (24) is fixed with a spur gear (25); The cold transmission device (26) is fixed to the bottom wall of the auxiliary cavity (31), and a carrier cavity (27) is provided on the cold transmission device (26). The top wall of the carrier cavity (27) is connected to the top wall of the cold transmission device (26) through a carrier channel (28). The carrier cavity (27) is filled with clean water (29). The inner wall of the carrier channel (28) is slidably connected to a thrust rack (30). The thrust rack (30) is meshed with the spur gear (25). A cold transmission hole (35) is provided on the insulation plate (34). The insulation plate (34) is slidably connected to the inner wall of the plate channel (33). A thermal expansion member (36) is fixed to the inner wall of the hot cavity (37), and one end of the thermal expansion member (36) is fixed to the insulation plate (34). The cold box (2) is connected to a circuit switch (38), a switching gate (39) is movably connected to the circuit switch (38), an extension piece (40) is fixed to the circuit switch (38), and the extension piece (40) is connected to the switching gate (39) through a third elastic member (41). Another cold transmission device (26) is also fixed to the inner wall of the cold chamber (12). The structure of the cold transmission device (26) in the cold chamber (12) is the same as the structure of the cold transmission device (26) in the auxiliary chamber (31). The refrigeration system (13) is electrically connected to the battery through the circuit switch (38), and the heating system (42) is electrically connected to the battery through the circuit switch (38).
2. The solar-powered multifunctional integrated sports training cabin according to claim 1 is characterized in that: A mass block (52) is slidably connected to the inner wall of the auxiliary cavity (31), and the mass block (52) is fixedly connected to the upper end of the thrust rack (30) in the auxiliary cavity (31).
3. The solar-powered multifunctional integrated sports training cabin according to claim 2 is characterized in that: A limiting block (51) is fixedly connected to the thrust rack (30).
4. A solar-powered multifunctional integrated sports training cabin according to any one of claims 1 to 3, characterized in that: The cold box (2) is connected to a liquid inlet pipe (43) and a liquid outlet pipe (45), the liquid inlet pipe (43) is connected to a valve (44), and the liquid outlet pipe (45) is connected to a valve (46). The hot box (3) is connected to a liquid inlet pipe (47) and a liquid outlet pipe (49), the liquid inlet pipe (47) is connected to a valve (48), and the liquid outlet pipe (49) is connected to a valve (50). The liquid inlet pipe (43) and the liquid inlet pipe (47) are both connected to the water storage tank (11).
5. The solar-powered multifunctional integrated sports training cabin according to claim 4 is characterized in that: An electrical control box (8) is connected to the cabin body (1).
6. The solar-powered multifunctional integrated sports training cabin according to claim 5 is characterized in that: The cabin body (1) is connected to an electric winch (6), and a pull rope (7) is movably connected to the electric winch (6), and one end of the pull rope (7) is fixedly connected to the movable platform (4).
7. The solar-powered multifunctional integrated sports training cabin according to claim 6 is characterized in that: A rain shelter (5) is movably connected to the cabin body (1).
8. The solar-powered multifunctional integrated sports training cabin according to claim 7 is characterized in that: The material of the soft ice cube mold (19) is rubber.
Citation Information
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