Optical wave house heat exchange system
By introducing a heat exchange fresh air unit and controller into the light wave room to adjust the ratio of fresh air to hot air, and equipping it with sterilization, disinfection and filtration components, the problems of uneven temperature and air pollution in the light wave room are solved, achieving temperature balance and purification effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- FOSHAN HUALIWEI ELECTRONICS CO LTD
- Filing Date
- 2022-04-22
- Publication Date
- 2026-05-08
AI Technical Summary
Existing light wave rooms suffer from uneven temperature distribution due to hot air rising and cold air sinking, resulting in a poor user experience.
It adopts a heat exchange fresh air unit and controller, which adjusts the ratio of fresh air to internal circulating hot air, uses the exhaust heat to preheat the fresh air, and is equipped with sterilization and disinfection components and filter components for air purification.
It achieves temperature balance in the light wave room, saves energy, effectively purifies fresh air, and improves user experience.
Smart Images

Figure CN114811782B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of lightwave room technology, specifically to a lightwave room heat exchange system. Background Technology
[0002] The light wave room originated from the European and American leisure sauna lifestyle. Later, it incorporated Chinese design aesthetics and artificial intelligence systems, becoming a choice for healthy living. Although the light wave room originated from the sauna room, the mechanism and principle are slightly different. The light wave room selects far-infrared rays of 5.6 to 15 microns and uses the principles of warmth, penetration and resonance to make users sweat at low temperature, achieving a sports-like effect.
[0003] The existing light wave rooms have an uneven temperature distribution due to the rising of hot air and the sinking of cold air. Users experience a feeling of heat at the top and coldness at the bottom, which affects the user experience.
[0004] Therefore, it is necessary to develop a lightwave room heat exchange system. Summary of the Invention
[0005] The purpose of this invention is to provide a heat exchange system for a lightwave room, which solves the contradiction between fresh air intake and heat loss. At the same time, it can also solve the problem mentioned in the background art that the temperature inside the existing lightwave room is uneven due to the rising of hot air and the sinking of cold air, which causes users to feel that the upper part is hot and the lower part is cold, thus affecting the user experience.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a light wave room heat exchange system, including a light wave room, a door provided on one side of the light wave room, and one or more sets of heat exchange fresh air units and controllers. The controllers and heat exchange fresh air units are fixedly installed on one side of the light wave room, and the heat exchange fresh air units are electrically connected to the controllers. The input end and output end of the heat exchange fresh air units are respectively fixedly connected to air guide pipes and air supply pipes. The air inlet of the heat exchange fresh air units is fixedly connected to steel ducts, and the bottom end of the steel ducts is fixedly connected to a purification mechanism.
[0007] The purification mechanism includes a purification chamber, with a sterilization chamber and a filtration chamber respectively located in the upper and lower parts. A sterilization and disinfection component is located in the upper part of the purification chamber, with its top and bottom ends fixedly connected to a steel conduit and the filtration chamber, respectively. A filtration component is located inside the filtration chamber. Pin assemblies are located on all four sides of the bottom of the purification chamber. The ends of the four sets of pin assemblies closest to the filtration components are slidably disposed within the filtration components. A positioning component is located within each of the four sets of filtration components, with the output ends of the four sets of positioning components slidably disposed within the purification chamber.
[0008] Preferably, the sterilization and disinfection component includes a transparent tube and ultraviolet lamp beads. The transparent tube is disposed inside the sterilization chamber. The top and bottom ends of the transparent tube are fixedly connected to the bottom end of the steel conduit and the top end of the filter chamber, respectively. The ultraviolet lamp beads are uniformly fixedly installed on the inner wall of the sterilization chamber. Multiple sets of ultraviolet lamp beads are electrically connected to the heat exchange fresh air system.
[0009] Preferably, the filter assembly includes a mounting frame, in which a filter screen is fixedly mounted. An installation component is fixedly mounted on the top surface of the filter screen. A filter screen plate and an activated carbon plate are slidably disposed on the installation component, with the activated carbon plate disposed on the filter screen plate. Eight sets of top rods are evenly fixedly mounted on the four sides of the top surface of the filter screen plate, and the top ends of the eight sets of top rods are slidably attached to the bottom surface of the activated carbon plate.
[0010] Preferably, the installation assembly includes limiting rods, and there are four sets of limiting rods. The four sets of limiting rods are respectively fixedly installed on the four corners of the top surface of the filter screen. The filter screen plate and the activated carbon plate are slidably sleeved on the four sets of limiting rods. A support plate is fixedly installed in the middle of each of the four sets of limiting rods. Nuts are threaded to the threads on the top surface of each of the four sets of top rods.
[0011] Preferably, the top surfaces of the four sets of support plates are slidably attached to the bottom surfaces of the filter screen plate, and the bottom surfaces of the four sets of nuts are slidably attached to the top surfaces of the activated carbon plate.
[0012] Preferably, the side of the mounting frame is provided with an annular groove, and the four sets of pin assemblies are slidably disposed in the annular groove at one end near the mounting frame.
[0013] Preferably, the latch assembly includes a slider, which is slidably disposed in the middle of one side of the bottom of the purification box. A limit pin is fixedly installed on the center of the side of the slider near the mounting frame, and a pull rod is fixedly connected to the center of the side of the slider away from the limit pin.
[0014] Preferably, the end of the pull rod away from the slider is located outside the purification box, and the end of the limiting pin near the mounting frame is slidably disposed in the annular groove.
[0015] Preferably, the bottom of the purification box is provided with sliding grooves on all four sides, the slider is slidably disposed in the sliding grooves, and the side of the slider is slidably attached to the inner wall of the sliding groove. The slider is provided with a positioning component, and four sets of positioning slots are evenly and symmetrically arranged above and below the sliding grooves, and all four sets of positioning slots are disposed in the purification box. The top and bottom of the positioning component are respectively slidably disposed in the positioning slots disposed at the same position.
[0016] Preferably, the positioning component includes a spring and steel balls. The spring is slidably disposed in the center of the slider, and the steel balls are symmetrically and movably embedded in the top and bottom ends of the slider. The ends of the two sets of steel balls away from the slider are slidably disposed in positioning grooves provided at the same position. The two ends of the spring are in contact with the two sets of steel balls respectively, and the spring is in a compressed state.
[0017] Compared with existing technologies, the beneficial effects of this invention are as follows: By setting up a heat exchange fresh air unit, users can freely adjust the ratio of fresh air and internal circulating hot air through the controller, thereby solving the problem of the contradiction between fresh air entry and heat loss, as well as the problem of the upper part of the light wave room being hot and the lower part being cold, thus achieving temperature balance in the light wave room; when fresh air enters the light wave room, it can be preheated by the exhaust heat, thereby saving energy consumption; in addition, by setting up sterilization and disinfection components and filter components, the fresh air is purified, preventing external air from entering the light wave room and polluting the gas inside the light wave room, resulting in good purification effect, and the filter components are easy to disassemble and assemble, greatly facilitating people to replace the filter components. Attached Figure Description
[0018] Figure 1 This is a front view of the light wave room of the present invention;
[0019] Figure 2 This is a structural diagram of the optical wave chamber of the present invention;
[0020] Figure 3 This is a structural diagram of the purification mechanism of the present invention;
[0021] Figure 4 For the present invention Figure 3 Enlarged view of region A in the middle;
[0022] Figure 5 For the present invention Figure 3 Enlarged view of region B in the middle;
[0023] Figure 6 This is a perspective view of the slider of the present invention.
[0024] In the diagram: 1-Light wave chamber, 2-Door, 3-Controller, 4-Heat exchange fresh air unit, 5-Air duct, 6-Air supply pipe, 7-Steel duct, 8-Purification box, 9-Sterilization chamber, 10-Filter chamber, 11-Transparent tube, 12-UV lamp beads, 13-Activated carbon plate, 14-Filter screen plate, 15-Top rod, 16-Limiting rod, 17-Mounting frame, 18-Filter screen, 19-Support plate, 20-Nut, 21-Annular groove, 22-Limiting pin, 23-Slider, 24-Steel ball, 25-Spring, 26-Positioning groove, 27-Slide groove, 28-Pull rod. Detailed Implementation
[0025] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0026] This invention provides the following technical solution: a lightwave room heat exchange system, which effectively solves the contradiction between fresh air intake and heat loss in the lightwave room 1, as well as the problem of upper-level heating and lower-level cooling within the lightwave room 1, achieving temperature balance in the lightwave room 1. When fresh air enters the lightwave room 1, it is preheated by the exhaust heat, saving energy. The sterilization and filtration components purify the fresh air, preventing external air from entering and contaminating the air inside the lightwave room 1. The purification effect is good, and the filtration components are easy to install and remove, greatly facilitating filter replacement. Furthermore, this application adds a controller 3, a heat exchange fresh air unit 4, an air duct 5, an air supply pipe 6, a steel duct 7, a purification box 8, a sterilization chamber 9, a filtration chamber 10, sterilization and disinfection components, a filtration component, a pin assembly, and a positioning assembly. Please refer to [link to relevant documentation]. Figure 1-6 The system includes a light wave room 1, with a door 2 on one side. It also includes a heat exchange fresh air unit 4 and a controller 3. The controller 3 is fixedly installed on one side of the light wave room 1. Preferably, two sets of heat exchange fresh air units 4 are symmetrically fixedly installed on both sides of the light wave room 1, and both sets are electrically connected to the controller 3. The input and output ends of the two sets of heat exchange fresh air units 4 are respectively fixedly connected to air guide pipes 5 and air supply pipes 6. The air inlet of the heat exchange fresh air unit 4 is fixedly connected to a steel duct 7, and the bottom end of the steel duct 7 is fixedly connected to... The purification mechanism includes a purification chamber 8. The upper and lower parts of the purification chamber 8 are respectively provided with a sterilization chamber 9 and a filtration chamber 10. The upper part of the purification chamber 8 is provided with a sterilization and disinfection component, and the top and bottom ends of the sterilization and disinfection component are fixedly connected to the steel conduit 7 and the filtration chamber 10, respectively. The filtration chamber 10 is provided with a filtration component. The bottom of the purification chamber 8 is provided with four sets of pin components. The ends of the four sets of pin components near the filtration components are slidably installed in the filtration components. The four sets of filtration components are provided with positioning components. The output ends of the four sets of positioning components are slidably installed in the purification chamber 8.
[0027] The sterilization and disinfection component includes a transparent tube 11 and ultraviolet lamp beads 12. The transparent tube 11 is set inside the sterilization chamber 9. The top and bottom ends of the transparent tube 11 are fixedly connected to the bottom end of the steel conduit 7 and the top end of the filter chamber 10, respectively. The ultraviolet lamp beads 12 are evenly fixedly installed on the inner wall of the sterilization chamber 9. Multiple sets of ultraviolet lamp beads 12 are electrically connected to the heat exchange fresh air unit 4. When the heat exchange fresh air unit 4 is working, the ultraviolet lamp beads 12 can be turned on, and the ultraviolet lamp beads 12 emit ultraviolet light to sterilize and disinfect the air.
[0028] The filter assembly includes a mounting frame 17, within which a filter screen 18 is fixedly installed. The filter screen 18 is used to filter large particulate impurities in the air. An installation component is fixedly installed on the top surface of the filter screen 18. A filter plate 14 and an activated carbon plate 13 are slidably mounted on the installation component. The filter plate 14 is preferably a HEPA filter plate, and the activated carbon plate 13 is disposed on the filter plate 14. Eight sets of top rods 15 are evenly fixedly installed on the four sides of the top surface of the filter plate 14, and the tops of the eight sets of top rods 15 are slidably attached to the bottom surface of the activated carbon plate 13, supporting the activated carbon plate 13. The installation component includes four sets of limiting rods 16, which are fixedly installed on the four corners of the top surface of the filter screen 18. The filter screen 14 and activated carbon plate 13 are slidably fitted together. Four sets of limiting rods 16 are used to install the filter screen 14 and activated carbon plate 13. A support plate 19 is fixedly installed in the middle of each of the four sets of limiting rods 16. Nuts 20 are threadedly connected to the top surfaces of the four sets of top rods 15. The nuts 20 limit the activated carbon plate 13 in the vertical direction. The top surfaces of the four sets of support plates 19 are slidably attached to the bottom surfaces of the filter screen 14. The support plates 19 are used to limit the filter screen 14. The bottom surfaces of the four sets of nuts 20 are slidably attached to the top surfaces of the activated carbon plate 13. An annular groove 21 is provided on the side of the mounting frame 17. The four sets of pin assemblies are slidably set in the annular groove 21 near one end of the mounting frame 17. The pin assemblies are used to install the mounting frame 17 in the purification box 8.
[0029] The pin assembly includes a slider 23, which is slidably disposed in the middle of one side of the bottom of the purification box 8. A limit pin 22 is fixedly installed on the center of the side of the slider 23 near the mounting frame 17. A pull rod 28 is fixedly connected to the center of the side of the slider 23 away from the limit pin 22, which facilitates the movement of the slider 23. The end of the pull rod 28 away from the slider 23 is disposed outside the purification box 8. The end of the limit pin 22 near the mounting frame 17 is slidably disposed in the annular groove 21, which controls the mounting frame 17. The bottom of the purification box 8 is provided with four sliding grooves 27. The slider 23 is slidably disposed in the sliding grooves 27, and the side of the slider 23 is slidably attached to the inner wall of the sliding groove 27. A positioning component is provided in the slider 23. Four sets of positioning grooves 26 are evenly and symmetrically arranged above and below the sliding grooves 27, and all four sets of positioning grooves 26 are disposed in the purification box 8. The top and bottom of the positioning component are respectively slidably disposed in the positioning grooves 26 at the same position.
[0030] The positioning assembly includes a spring 25 and steel balls 24. The spring 25 is slidably disposed in the center of the slider 23, and the steel balls 24 are symmetrically and movably embedded in the top and bottom ends of the slider 23. The steel balls 24 limit the slider 23 to prevent it from sliding easily, thus ensuring good positional stability of the limiting pin 22. The ends of the two sets of steel balls 24 away from the slider 23 are slidably disposed in the positioning grooves 26 provided at the same position. The two ends of the spring 25 are in contact with the two sets of steel balls 24 respectively, and the spring 25 is in a compressed state. The spring 25 is used to reset the steel balls 24.
[0031] Working Principle: During use, the user can start two sets of heat exchange fresh air units 4 through the controller 3. The heat exchange fresh air units 4 activate the ultraviolet lamp beads 12. The hot air in the light wave room 1 enters the heat exchange fresh air unit 4 through the air duct 5 and exchanges heat with the fresh air before being discharged. The external fresh air is first filtered through the filter screen 18 to remove large particulate impurities in the air, and then further filtered through the filter screen plate 14. The filtered air flows upward through the activated carbon plate 13, which can remove odors in the air. After passing through the activated carbon plate 13, the air enters the filter screen plate 14, where the ultraviolet lamp beads 12 emit ultraviolet light to sterilize and disinfect the air. The sterilized and disinfected air enters the heat exchange fresh air unit 4 for heat exchange and then enters the light wave room 1 through the air supply pipe 6. This achieves the purification of fresh air and prevents external air from entering the light wave room 1 and polluting the air inside the light wave room 1, resulting in a good purification effect. Users can freely control the ratio of fresh air and internal circulation hot air through controller 3, so that the temperature in the light wave room 1 is more balanced. The heat exchange fresh air unit 4 solves the problem of hot air at the top and cold air at the bottom in the light wave room 1, achieving temperature balance in the light wave room 1. When fresh air enters the light wave room 1, the exhaust heat is used to preheat the fresh air, saving energy consumption. When it is necessary to replace the filter plate 14 or the activated carbon plate 13, the user can pull the lever 28 to move it away from the purification box 8. During this process, the steel ball 24 slides out from the positioning groove 26, the spring 25 is further compressed, and the end of the limiting pin 22 away from the slider 23 slides out from the annular groove 21. When all four sets of limiting pins 22 slide out from the annular groove 21, the mounting frame 17 can be removed from the purification box 8. Then, the four sets of nuts 20 can be removed from the limiting rod 16, and the activated carbon plate 13 and the filter plate 14 can be removed from the four sets of limiting rods 16. The disassembly and assembly are simple, which greatly facilitates the user in replacing the activated carbon plate 13 and the filter plate 14.
[0032] Although the invention has been described above with reference to embodiments, various modifications can be made and components can be replaced with equivalents without departing from the scope of the invention. In particular, features in the embodiments disclosed herein can be combined in any way, provided there is no structural conflict. The lack of an exhaustive description of these combinations in this specification is merely for brevity and resource conservation. Therefore, the invention is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
Claims
1. A light wave heat exchange system, comprising a light wave room (1), wherein a door (2) is provided on one side of the light wave room (1), characterized in that: It also includes one or more sets of heat exchange fresh air units (4) and controllers (3). The controllers (3) and heat exchange fresh air units (4) are fixedly installed on one side of the light wave room (1), and the heat exchange fresh air units (4) are electrically connected to the controllers (3). The input end and output end of the heat exchange fresh air units (4) are respectively fixedly connected to the air guide pipe (5) and the air supply pipe (6). The air inlet of the heat exchange fresh air units (4) is fixedly connected to the steel duct (7). The bottom end of the steel duct (7) is fixedly connected to the purification mechanism. The purification mechanism includes a purification box (8), the upper and lower parts of which are respectively provided with a sterilization chamber (9) and a filter chamber (10). The upper part of the purification box (8) is provided with a sterilization and disinfection component, and the top and bottom ends of the sterilization and disinfection component are respectively fixedly connected to the steel conduit (7) and the filter chamber (10). The filter chamber (10) is provided with a filter component. The bottom of the purification box (8) is provided with four pin components on all four sides. The ends of the four sets of pin components near the filter components are slidably disposed in the filter components. The four sets of filter components are provided with positioning components. The output ends of the four sets of positioning components are slidably disposed in the purification box (8). The filter assembly includes a mounting frame (17), in which a filter screen (18) is fixedly installed. An installation component is fixedly installed on the top surface of the filter screen (18). A filter screen plate (14) and an activated carbon plate (13) are slidably disposed on the installation component, and the activated carbon plate (13) is disposed on the filter screen plate (14). The mounting frame (17) has an annular groove (21) on its side, and the four sets of pin assemblies are slidably disposed in the annular groove (21) at one end near the mounting frame (17). The pin assembly includes a slider (23), which is slidably disposed in the middle of one side of the bottom of the purification box (8). A limit pin (22) is fixedly installed on the center of the side of the slider (23) near the mounting frame (17), and a pull rod (28) is fixedly connected to the center of the side of the slider (23) away from the limit pin (22). The end of the pull rod (28) away from the slider (23) is located outside the purification box (8), and the end of the limiting pin (22) near the mounting frame (17) is slidably located in the annular groove (21); The bottom of the purification box (8) is provided with sliding grooves (27) on all four sides. The slider (23) is slidably disposed in the sliding groove (27), and the side of the slider (23) is slidably attached to the inner wall of the sliding groove (27). The slider (23) is provided with a positioning component. Four sets of positioning grooves (26) are evenly and symmetrically disposed above and below the sliding groove (27), and all four sets of positioning grooves (26) are disposed in the purification box (8). The top and bottom of the positioning component are slidably disposed in the positioning grooves (26) disposed at the same position. The positioning component includes a spring (25) and steel balls (24). The spring (25) is slidably disposed in the center of the slider (23). The steel balls (24) are symmetrically and movably embedded in the top and bottom ends of the slider (23). The ends of the two sets of steel balls (24) away from the slider (23) are slidably disposed in the positioning grooves (26) provided at the same position. The two ends of the spring (25) are in contact with the two sets of steel balls (24) respectively, and the spring (25) is in a compressed state.
2. The optical wave room heat exchange system according to claim 1, characterized in that: The sterilization and disinfection component includes a transparent tube (11) and ultraviolet lamp beads (12). The transparent tube (11) is set inside the sterilization chamber (9). The top and bottom ends of the transparent tube (11) are fixedly connected to the bottom end of the steel conduit (7) and the top end of the filter chamber (10), respectively. The ultraviolet lamp beads (12) are uniformly fixedly installed on the inner wall of the sterilization chamber (9). Multiple sets of ultraviolet lamp beads (12) are electrically connected to the heat exchange fresh air machine (4).
3. The optical wave room heat exchange system according to claim 1, characterized in that: Eight sets of top rods (15) are evenly fixed on the four sides of the top surface of the filter screen plate (14), and the top of each of the eight sets of top rods (15) slides and fits against the bottom surface of the activated carbon plate (13).
4. The optical wave room heat exchange system according to claim 3, characterized in that: The installation assembly includes limiting rods (16), and there are four sets of limiting rods (16). The four sets of limiting rods (16) are fixedly installed on the four corners of the top surface of the filter screen (18). The filter screen plate (14) and the activated carbon plate (13) are slidably sleeved on the four sets of limiting rods (16). The middle of each of the four sets of limiting rods (16) is fixedly installed with a support plate (19). The threads on the top surface of each of the four sets of top rods (15) are threaded with nuts (20).
5. The optical wave room heat exchange system according to claim 4, characterized in that: The top surfaces of the four sets of support plates (19) are all slidably attached to the bottom surfaces of the filter screen plate (14), and the bottom surfaces of the four sets of nuts (20) are all slidably attached to the top surfaces of the activated carbon plate (13).
Citation Information
Patent Citations
Secondary purification device of fresh air system
CN111503803A
Light wave room heat exchange system
CN217109877U