Cell energy cabin with overheating protection device
By employing a bimetallic thermostat assembly and an internal chamber structure in the cell energy chamber, the heat conduction path is shortened, solving the problem of slow response speed in existing technologies and achieving the effects of rapid protection and convenient disassembly.
Patent Information
- Application Number
- CN202511401084.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-28
- Publication Date
- 2026-01-02
AI Technical Summary
Existing cell energy chamber overheat protection devices have long heat conduction paths, slow response speeds, and cannot trigger protection in a timely manner; furthermore, they are difficult to disassemble.
It adopts a bimetallic thermostat assembly and an internal chamber structure. The heat conduction path is shortened by spiral mounting on the internal threaded chamber and spiral groove. The bimetallic thermostat assembly is screw-fastened and fixed by rotating the chamber. The bimetallic thermostat assembly replaces the thermal fuse, shortens the heat conduction path, has a fast response speed, and triggers protection in time.
It achieves rapid overheat protection, triggering protection measures in a timely manner, simplifying the disassembly and replacement process of the device, and improving safety and ease of use.
Smart Images

Figure CN121242874A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of cell energy cabin, and specifically relates to a cell energy cabin with an overheating protection device. BACKGROUND
[0002] The cell energy cabin improves the use safety through the overheating protection device. The overheating protection device is an important safety guarantee component of the cell energy cabin. The overheating protection device can monitor the temperature change in the cabin all the time. When the temperature of the cell energy cabin exceeds the set safety threshold, the protection mechanism such as power-off is automatically triggered to prevent the cell energy cabin from being damaged due to overheating and to avoid causing burns to the user, for example, the orange light K80 third-generation whole-body internal heat energy cabin is equipped with an intelligent temperature control system. The user can adjust three temperature levels. The overheating power-off protection device provided by the equipment can ensure the safety of the user.
[0003] The existing cell energy cabin, such as a device using a temperature fuse technology, has a long heat conduction path and a slow response speed. The protection cannot be triggered in time when the temperature of the device rises sharply. The overheating protection device is installed near the heating assembly of the cell energy cabin. It is difficult to check, disassemble and replace the device later. SUMMARY
[0004] The purpose of the present application is to provide a cell energy cabin with an overheating protection device to solve the problems in the background.
[0005] To achieve the above purpose, the present application provides the following technical scheme:
[0006] A cell energy cabin with an overheating protection device comprises a cell energy cabin, a shell, a platform and a cabin assembly component. The shell is arranged at the sliding position of the cell energy cabin. The platform is installed on the inner side of the cell energy cabin. The cell energy cabin and the shell are arranged at the movable position of the cabin assembly component. The cell energy cabin with an overheating protection device further comprises,
[0007] A screw assembly is installed on the cell energy cabin.
[0008] An internal component is arranged on the cell energy cabin.
[0009] The rear end of the shell is fixedly installed with a fixed disc. The operation position of the shell is provided with a control panel. The support position of the bottom end of the shell is fixedly provided with a base. The mounting position of the platform is provided with a buckle plate.
[0010] The cell energy cabin with an overheating protection device as described above: the cell energy cabin is screw-mounted on the fixed disc through the shell.
[0011] The cell energy cabin with an overheating protection device as described above: the platform is installed on the cell energy cabin and the base through the buckle plate.
[0012] The cell energy cabin with overheating protection device as described above: the screw assembly includes an internal cabin connected at the rear end of the cell energy cabin, and a bimetallic strip temperature controller group is installed on both sides of the internal cabin through threads, and a rotating cylinder cabin is arranged at the connection of the internal cabin.
[0013] The cell energy cabin with overheating protection device as described above: the screw assembly further includes an internal threaded cabin fixedly connected to the fixed disc, and a spiral groove is formed in the internal threaded cabin, and the rotating cylinder cabin is screw-mounted in the internal threaded cabin.
[0014] The cell energy cabin with overheating protection device as described above: the internal assembly includes a temperature control cabin fixedly installed in the inside of the shell, and movable steel balls are installed in the inside of the temperature control cabin, and a thermistor group is arranged on both sides of the outside of the temperature control cabin.
[0015] The cell energy cabin with overheating protection device as described above: the movable steel balls and the thermistor group are installed in the inside of the shell through the temperature control cabin.
[0016] Compared with the prior art, the beneficial effects of the present application are: the bimetallic strip temperature controller group and the internal cabin can be screw-mounted on the internal threaded cabin and the spiral groove through the rotating cylinder cabin, the cell energy cabin and the internal cabin are screw-fastened and fixed through the internal threaded cabin and the spiral groove, the bimetallic strip temperature controller group replaces the device of temperature fuse technology, the bimetallic strip temperature controller group is distributed and installed through the internal cabin, the heat conduction path is shortened, the response speed is fast, the protection can be triggered in time when the temperature rises sharply, the bimetallic strip temperature controller group is installed near the heating assembly of the cell energy cabin, the bimetallic strip temperature controller group and the internal cabin can be screw-mounted on the internal threaded cabin and the spiral groove through the rotating cylinder cabin, which is convenient for later inspection, disassembly and replacement.
[0017] The movable steel balls can avoid sliding friction between the bimetallic strip temperature controller group and the internal cabin, prevent friction damage to the thermistor group in the inside of the temperature control cabin, not only facilitate the bimetallic strip temperature controller group and the internal cabin to slide with the movable steel balls, but also improve the sliding force of the bimetallic strip temperature controller group and the internal cabin, facilitate the bimetallic strip temperature controller group and the internal cabin to be screw-disassembled through the internal threaded cabin and the spiral groove, and the bimetallic strip temperature controller group on the internal cabin can be repaired and replaced. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 The present application is a three-dimensional structure schematic diagram;
[0019] Figure 2 The present application is a structure schematic diagram of the screw assembly;
[0020] Figure 3 The present application is a structure schematic diagram of the fixed disc;
[0021] Figure 4 Structure diagram of the built-in component of the present application;
[0022] Figure 5 Structure diagram of the temperature control cabin of the present application.
[0023] In the figure: 1, cell energy cabin; 2, shell; 3, fixed disc; 4, base; 5, control panel; 6, platform; 7, buckle plate; 8, built-in cabin; 9, bimetallic strip temperature controller group; 10, rotating cylinder cabin; 11, helical groove; 12, built-in threaded cabin; 13, movable steel ball; 14, temperature control cabin; 15, thermistor group. DETAILED DESCRIPTION
[0024] Various exemplary embodiments, features, and aspects of the present application will be described in detail below with reference to the accompanying drawings. The same reference numbers in the drawings represent functionally the same or similar elements. Although various aspects of the embodiments are shown in the drawings, the drawings are not necessarily drawn to scale unless specifically indicated.
[0025] The word "exemplary" is used herein to mean "serving as an example, instance, or illustration." Any implementation described herein as "exemplary" is not necessarily to be construed as preferred or advantageous over other implementations.
[0026] In addition, in order to better illustrate the present application, numerous specific details are given in the following specific embodiments. Those skilled in the art should understand that the present application can also be implemented without certain specific details. In some examples, methods, means, elements well known to those skilled in the art are not described in detail, in order to highlight the main idea of the present application.
[0027] Please refer to Figures 1 to 5 , a cell energy cabin with overheat protection device is proposed, which includes cell energy cabin 1, shell 2 and platform 6, and cabin assembly components.
[0028] The sliding part on the cell energy cabin 1 is provided with the shell 2, and the inner side of the cell energy cabin 1 is installed with the platform 6. The movable part on the cabin assembly component is provided with the cell energy cabin 1 and the shell 2, the screw assembly is installed on the cell energy cabin 1, and the built-in component is arranged on the cell energy cabin 1.
[0029] The platform 6 is installed on the inner side of the cell energy cabin 1 and the shell 2, and the user can lie on the platform 6. The cell energy cabin 1 uses far infrared spectrum technology, ion wave technology, and biological resonance technology. The cell energy cabin 1 uses far infrared spectrum technology to release 6-14 micron life light waves, which are absorbed by the human skin and converted into deep heat energy, which can penetrate 3-5 centimeters below the skin and directly act on the cell layer.
[0030] The shell 2 rear end is fixedly installed with a fixed disc 3, the shell 2 operating portion is provided with a control panel 5, the shell 2 bottom end supporting portion is fixedly provided with a base 4, and the platform 6 mounting portion is provided with a buckle plate 7.
[0031] In the embodiment, the user controls the temperature through the control panel 5 on the cell energy cabin 1 and the shell 2, the cell energy cabin 1 and the shell 2 are supported by the base 4, the fixed disc 3 is fixedly installed at the rear end of the shell 2, the cell energy cabin 1 is installed inside the shell 2 and can be screw-fastened on the fixed disc 3, and the platform 6 is installed on the base 4 through the buckle plate 7.
[0032] Preferably, the cell energy cabin 1 is screw-installed on the fixed disc 3 through the shell 2, the cell energy cabin 1 is slidingly installed inside the shell 2, and the cell energy cabin 1 is screw-installed inside the fixed disc 3 and the shell 2 as a whole.
[0033] Preferably, the platform 6 is installed on the cell energy cabin 1 and the base 4 through the buckle plate 7, and when the platform 6 is installed on the base 4 through the buckle plate 7, the platform 6 is installed inside the cell energy cabin 1 and the shell 2, so that the user can lie on the platform 6 for conditioning.
[0034] Please refer to Figure 2 and Figure 3 In the embodiment, the screw assembly comprises an inner cabin 8 communicated at the rear end of the cell energy cabin 1, a bimetallic strip temperature controller group 9 screw-installed on both sides of the inner cabin 8, and a rotating cylinder cabin 10 arranged at the communication portion of the inner cabin 8.
[0035] The inner cabin 8 is communicated on the cell energy cabin 1, the cell energy cabin 1 is installed inside the fixed disc 3 and the shell 2 through the inner cabin 8, the bimetallic strip temperature controller group 9 is installed inside the fixed disc 3 and the shell 2 through the inner cabin 8, the bimetallic strip temperature controller group 9 and the inner cabin 8 are screw-installed inside the fixed disc 3 and the shell 2 through the rotating cylinder cabin 10, the cell energy cabin 1 is overheat-protected through the bimetallic strip temperature controller group 9, and when the temperature changes, the bimetallic strip of the bimetallic strip temperature controller group 9 will be bent and deformed, so as to trigger the contact action and realize the on-off control of the circuit.
[0036] Please refer to Figure 2 and Figure 3 In the embodiment, the screw assembly further comprises an inner screw cabin 12 fixedly connected to the fixed disc 3, a screw groove 11 is arranged in the inner screw cabin 12, and the rotating cylinder cabin 10 is screw-installed inside the inner screw cabin 12.
[0037] The inner threaded cabin 12 is fixedly connected to the fixed disc 3, so that the spiral groove 11 is distributed inside the inner threaded cabin 12, the bimetallic strip temperature controller group 9 and the inner cabin 8 are spirally installed on the inner threaded cabin 12 and the spiral groove 11 through the rotating barrel cabin 10, the cell energy cabin 1 and the inner cabin 8 are spirally fixed through the inner threaded cabin 12 and the spiral groove 11, the bimetallic strip temperature controller group 9 replaces the device of the temperature fuse technology, the bimetallic strip temperature controller group 9 is distributed and installed through the inner cabin 8, the heat conduction path is shortened, the response speed is fast, the protection can be triggered in time when the temperature rises sharply, the bimetallic strip temperature controller group 9 is installed near the heating assembly of the cell energy cabin 1, the bimetallic strip temperature controller group 9 and the inner cabin 8 are spirally installed on the inner threaded cabin 12 and the spiral groove 11 through the rotating barrel cabin 10, which is convenient for later inspection, disassembly and replacement.
[0038] Please refer to Figure 4 and Figure 5 In the embodiment, the built-in assembly includes a temperature control cabin 14 fixedly installed inside the shell 2, the temperature control cabin 14 is internally distributed with movable steel balls 13, and the temperature control cabin 14 is externally distributed with thermistor groups 15 on both sides.
[0039] The temperature control cabin 14 is fixedly installed inside the shell 2, so that the movable steel balls 13 are distributed and installed inside the temperature control cabin 14, the bimetallic strip temperature controller group 9 and the inner cabin 8 are slidably attached to the movable steel balls 13 when they are spirally installed on the inner threaded cabin 12 and the spiral groove 11 through the rotating barrel cabin 10, the sliding force of the bimetallic strip temperature controller group 9 and the inner cabin 8 is increased, which is convenient for the bimetallic strip temperature controller group 9 and the inner cabin 8 to be spirally disassembled, and the resistance value of the thermistor group 15 on the temperature control cabin 14 changes significantly with temperature changes, which can be used to detect temperature and convert temperature signals into electrical signals for processing by a control circuit.
[0040] Preferably, the movable steel balls 13 and the thermistor groups 15 are installed inside the shell 2 through the temperature control cabin 14, the movable steel balls 13 can avoid the sliding friction of the bimetallic strip temperature controller group 9 and the inner cabin 8, prevent the friction from damaging the thermistor groups 15 inside the temperature control cabin 14, not only facilitate the bimetallic strip temperature controller group 9 and the inner cabin 8 to slide with the movable steel balls 13, but also improve the sliding force of the bimetallic strip temperature controller group 9 and the inner cabin 8, which is convenient for the bimetallic strip temperature controller group 9 and the inner cabin 8 to be spirally disassembled through the inner threaded cabin 12 and the spiral groove 11, and the bimetallic strip temperature controller group 9 on the inner cabin 8 can be repaired and replaced.
[0041] From the above, in use, the bimetallic strip temperature controller group 9 and the built-in cabin 8 are installed in the built-in threaded cabin 12 and the spiral groove 11 through the rotating barrel cabin 10 in a spiral manner, the bimetallic strip temperature controller group 9 and the built-in cabin 8 slide with the movable steel ball 13, the sliding force of the bimetallic strip temperature controller group 9 and the built-in cabin 8 is increased, the bimetallic strip temperature controller group 9 and the built-in cabin 8 are conveniently and spirally disassembled, the cell energy cabin 1 uses the far infrared spectrum technology, the ion wave technology and the biological resonance technology, the cell energy cabin 1 uses the far infrared spectrum technology, releases 6-14 micrometer life light waves, is absorbed by the human skin and is converted into deep heat energy, can penetrate to 3-5 centimeters under the skin and directly acts on the cell layer.
[0042] The built-in threaded cabin 12 is fixedly connected to the fixed disc 3, the spiral groove 11 is distributed in the built-in threaded cabin 12, the bimetallic strip temperature controller group 9 and the built-in cabin 8 can be spirally installed in the built-in threaded cabin 12 and the spiral groove 11 through the rotating barrel cabin 10, the cell energy cabin 1 and the built-in cabin 8 are spirally fastened and fixed through the built-in threaded cabin 12 and the spiral groove 11, the bimetallic strip temperature controller group 9 replaces the temperature fuse technology device, the bimetallic strip temperature controller group 9 is distributed and installed through the built-in cabin 8, the heat conduction path length is shortened, the response speed is fast, the movable steel ball 13 can avoid the sliding friction of the bimetallic strip temperature controller group 9 and the built-in cabin 8, prevent the friction damage to the thermistor group 15 in the temperature control cabin 14, not only facilitates the sliding of the bimetallic strip temperature controller group 9 and the built-in cabin 8 with the movable steel ball 13, but also can improve the sliding force of the bimetallic strip temperature controller group 9 and the built-in cabin 8.
[0043] It will be obvious to a person skilled in the art that, without departing from the spirit or essential characteristics of the application, the present application can be implemented in other specific forms. The present examples are therefore to be considered in all respects as illustrative and not restrictive, the scope of the application being indicated by the appended claims rather than by the specification as such. Any reference signs in the claims should not be construed as limiting the scope of the claims.
[0044] In addition, it should be understood that, although the present specification is described in terms of embodiments, not every embodiment contains only one independent technical solution, and the specification is described in this way only for the sake of clarity, and those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that those skilled in the art can understand.
Claims
1. A cell energy chamber with overheat protection device, comprising a cell energy chamber (1), an outer shell (2), a platform (6), and a chamber assembly assembly, wherein the outer shell (2) is provided at a sliding portion on the cell energy chamber (1), the platform (6) is installed inside the cell energy chamber (1), and the cell energy chamber (1) and the outer shell (2) are provided at a movable portion on the chamber assembly assembly, characterized in that: It also includes settings, The spiral assembly is installed on the cell energy chamber (1); Built-in components are mounted on the cell energy chamber (1); The outer shell (2) is fixedly mounted with a fixed plate (3) at its rear end, a control panel (5) is provided at the operation point on the outer shell (2), a base (4) is fixed at the support point at the bottom of the outer shell (2), and a buckle plate (7) is provided at the mounting point on the platform (6).
2. A cell energy chamber with overheat protection device according to claim 1, characterized in that, The cell energy chamber (1) is spirally mounted on the fixed plate (3) via the outer shell (2).
3. A cell energy chamber with overheat protection device according to claim 1, characterized in that, The platform (6) is installed on the cell energy chamber (1) and the base (4) by means of a snap-fit plate (7).
4. A cell energy chamber with overheat protection device according to claim 1, characterized in that, The spiral assembly includes an internal chamber (8) connected to the rear end of the cell energy chamber (1), on which bimetallic thermostat groups (9) are threadedly installed on both sides, and a rotating cylinder chamber (10) is provided at the connection point on the internal chamber (8).
5. A cell energy chamber with overheat protection device according to claim 4, characterized in that, The spiral assembly also includes a built-in threaded compartment (12) fixedly connected to the fixed disk (3), and the built-in threaded compartment (12) has a spiral groove (11) inside.
6. A cell energy chamber with overheat protection device according to claim 5, characterized in that, The rotating chamber (10) is spirally installed inside the built-in threaded chamber (12).
7. A cell energy chamber with overheat protection device according to claim 6, characterized in that, The built-in components include a temperature control chamber (14) that is fixedly installed inside the outer shell (2).
8. A cell energy chamber with overheat protection device according to claim 7, characterized in that, The temperature control chamber (14) is equipped with movable steel balls (13) inside, and the temperature control chamber (14) is equipped with thermistor groups (15) on both sides outside.
9. A cell energy chamber with overheat protection device according to claim 8, characterized in that, The movable steel ball (13) and the thermistor group (15) are installed inside the outer shell (2) through the temperature control chamber (14).