Intelligent water tank structure for storing air-conditioning water in micro-pressure oxygen-enriched cabin
By designing an intelligent water tank structure in a micro-pressure oxygen-rich cabin and using water level sensors and controllers to achieve automatic monitoring and reminding functions, the problems of unsightly and poorly practical water storage in the existing technology are solved, and the aesthetics and convenience of use of the equipment are improved.
Patent Information
- Application Number
- CN202421528111.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-28
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-06-28
AI Technical Summary
The existing micro-pressure oxygen-rich chambers have problems such as poor aesthetic appearance, poor practicality and frequent manual inspections in air-conditioning water storage.
An intelligent water tank structure is designed, including the cabin, the main unit, the controller, the air conditioner internal unit and the air conditioner external unit. The water storage box is installed on the back of the cabin, with a built-in water level sensor and a drainage valve, which is connected to the controller through the water level sensor to realize automatic monitoring and reminding functions.
The water storage box is hidden, the aesthetics of the micro-pressure oxygen-rich chamber is improved, and the automatic monitoring and reminding function is used to avoid the trouble of manual inspection and make use more convenient.
Smart Images

Figure CN222911930U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of micro-pressure oxygen-rich cabins, and particularly relates to an intelligent water tank structure for storing air-conditioning water in a micro-pressure oxygen-rich cabin. Background Art
[0002] The micro-pressure oxygen-rich cabin is an innovative intelligent oxygen therapy device. By shaping a micro-pressure environment that is harmless to the human body, in this environment, it can assist in the efficient absorption of oxygen and play roles such as body recovery, regulation, and optimization. It can be widely applied in the fields of medical treatment, health care, and body recovery. Based on the product functions and applications, the main structures of the micro-pressure oxygen-rich cabin include: the cabin body and auxiliary equipment, the pressure control system, the oxygen supply and discharge system, and the communication and exchange system of the temperature control air-conditioning system.
[0003] After the existing air-conditioning water in the micro-pressure oxygen-rich cabin comes out, it is directly discharged outside the cabin through a pipe, and an external container is used to store the air-conditioning water. This is neither beautiful nor practical for the cabin body, and someone needs to check whether the water is full frequently, making it very inconvenient to use. Content of the Utility Model
[0004] (1) Technical Problems to be Solved
[0005] Aiming at the deficiencies of the existing technology, the purpose of the utility model is to provide an intelligent water tank structure for storing air-conditioning water in a micro-pressure oxygen-rich cabin. This structure aims to solve the problem that after the existing air-conditioning water in the micro-pressure oxygen-rich cabin comes out, it is directly discharged outside the cabin through a pipe, and an external container is used to store the air-conditioning water. This is neither beautiful nor practical for the cabin body, and someone needs to check whether the water is full frequently, making it very inconvenient to use.
[0006] (2) Technical Solutions
[0007] To solve the above technical problems, the utility model provides such an intelligent water tank structure for storing air-conditioning water in a micro-pressure oxygen-rich cabin. This structure includes a cabin body, a main unit, a controller, an indoor air conditioner, and an outdoor air conditioner. The main unit is installed on the right side of the cabin body, the controller is installed on the main unit, a water storage box is installed on the back of the cabin body, a water level sensor is installed inside the water storage box, a drain valve is installed at the drain outlet of the water storage box and is communicated with the outside of the cabin body, and the water level sensor is electrically connected to the controller;
[0008] The indoor air conditioner is installed inside the cabin body, the outdoor air conditioner is installed inside the main unit, and the condensate water pipe of the indoor air conditioner is communicated with the water inlet of the water storage box.
[0009] Preferably, the cabin body includes an outer shell and an inner shell, a support frame is fixedly connected between the outer shell and the inner shell, and the water storage box is installed inside the support frame.
[0010] Furthermore, the drain valve is mounted on the outer shell, and the inner shell is provided with a through hole corresponding to the condensation water pipe of the air conditioner indoor unit.
[0011] Furthermore, the water storage box includes a first water tank, a second water tank and a third water tank, the first water tank is connected to the second water tank through two first connecting pipes, the second water tank is connected to the third water tank through two second connecting pipes, the water inlet of the water storage box is opened on the first water tank, and the water outlet of the water storage box is opened on the third water tank.
[0012] Furthermore, the support frame includes a plurality of cross bars and a plurality of vertical bars connected to each other, the vertical bars are located between the first water tank, the second water tank and the third water tank, the vertical bars are provided with installation grooves corresponding to the first connecting pipe and the second connecting pipe, and the cross bars are provided with installation holes corresponding to the condensation water pipes of the air conditioner indoor units.
[0013] Furthermore, a wire outlet hole is provided on the shell, and the wire outlet hole is arranged concentrically with the through hole.
[0014] Furthermore, a water level gauge is installed on the shell, and the water level gauge is used to observe the water level of the third water storage tank.
[0015] Compared with the prior art, the beneficial effects of the present invention are:
[0016] The utility model provides a double-layer structure for the cabin body and installs the water storage box between the outer shell and the inner shell. During installation, the wires and the condensed water pipe of the air-conditioning indoor unit pass through the through hole, and then the wires pass through the outlet hole to be connected with the air-conditioning outdoor unit, the condensed water pipe passes through the outlet hole and then passes through the installation hole on the cross bar to be connected with the first water storage tank. Since the pipeline passes through the cross bar and the vertical bar, vertical bars are provided between the first water storage tank, the second water storage tank and the third water storage tank of the water storage box, which will not reduce the strength of the support frame and can hide the water storage box at the same time, making the entire micro-pressure oxygen-enriched cabin more beautiful.
[0017] When the utility model is in use, conditioned water flows from the pipeline into the first water tank, the second water tank and the third water tank for storage. When the water in the third water tank reaches the position of the water level sensor, the water level sensor sends information to the controller. After processing the information, the controller feeds back the information to the screen to remind the user to drain the water. At the same time, the water level in the third water tank can be observed in real time through the water level gauge on the outer shell, thereby effectively avoiding the embarrassing situation of placing a container next to the cabin to collect water, making the micro-pressure oxygen-enriched cabin an integrated intelligent device, which is very convenient to use. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a three-dimensional structural schematic diagram of the utility model.
[0019] Figure 2 It is a schematic diagram of the rear three-dimensional structure of the present utility model.
[0020] Figure 3 It is a schematic diagram of the rear structure of the opened housing of the present utility model.
[0021] Figure 4 It is a schematic diagram of the rear sectional structure of the present utility model.
[0022] Figure 5 It is the Figure 3 enlarged structure schematic diagram at position A of the present utility model.
[0023] The reference signs in the drawings are: 1, cabin body; 2, main machine; 3, controller; 4, water storage box; 5, water level sensor; 6, drain valve; 7, indoor unit of air conditioner; 8, outdoor unit of air conditioner; 101, housing; 102, inner housing; 103, support frame; 104, through hole; 105, wire outlet hole; 106, water level gauge; 401, first water storage tank; 402, second water storage tank; 403, third water storage tank; 404, first connecting pipe; 405, second connecting pipe; 1031, cross bar; 1032, vertical bar; 1033, installation groove; 1034, installation hole. Specific embodiments
[0024] This specific embodiment is an intelligent water tank structure for storing air-conditioning water in a micro-pressure oxygen-rich cabin. The structural schematic diagram is as Figures 1-5 shown. This structure includes a cabin body 1, a main machine 2 and a controller 3. The main machine 2 is installed on the right side of the cabin body 1, the controller 3 is installed on the main machine 2, a water storage box 4 is installed on the back of the cabin body 1, a water level sensor 5 is installed inside the water storage box 4, and a drain valve 6 is installed at the drain outlet of the water storage box 4 and communicates with the outside of the cabin body 1. The water level sensor 5 is electrically connected to the controller 3. In this way, the water level sensor 5 can intelligently inform the user when to drain water, rather than often requiring manual inspection to see if the container is full of water;
[0025] An indoor unit 7 of an air conditioner and an outdoor unit 8 of an air conditioner. The indoor unit 7 of the air conditioner is installed inside the cabin body 1, the outdoor unit 8 of the air conditioner is installed inside the main machine 2, and the condensate water pipe of the indoor unit 7 of the air conditioner is connected to the water inlet of the water storage box 4.
[0026] As Figure 2 and Figure 3 shown: In this embodiment, the cabin body 1 includes a housing 101 and an inner housing 102. A support frame 103 is fixedly connected between the housing 101 and the inner housing 102. The water storage box 4 is installed inside the support frame 103. Such a setting can hide the water storage box 4 and make the entire micro-pressure oxygen-rich cabin more beautiful.
[0027] As Figure 2 andFigure 3 As shown: In this embodiment, the drain valve 6 is installed on the outer shell 101. A through hole 104 corresponding to the condensate pipe of the air conditioner indoor unit 7 is provided on the inner shell 102. An outlet hole 105 is provided on the outer shell 101, and the outlet hole 105 is concentric with the through hole 104.
[0028] With such a setting, when installing, the wire and the condensate pipe of the air conditioner indoor unit 7 pass through the through hole 104, and then the wire passes through the outlet hole 105 and is connected to the air conditioner outdoor unit 8, making the wiring more convenient.
[0029] As Figure 3 and Figure 5 As shown: In this embodiment, the water storage box 4 includes a first water storage tank 401, a second water storage tank 402, and a third water storage tank 403. The first water storage tank 401 is connected to the second water storage tank 402 through two first connecting pipes 404, and the second water storage tank 402 is connected to the third water storage tank 403 through two second connecting pipes 405. The water inlet of the water storage box 4 is provided on the first water storage tank 401, and the water outlet of the water storage box 4 is provided on the third water storage tank 403.
[0030] With such a setting, the first water storage tank 401, the second water storage tank 402, and the third water storage tank 403 form an integral water storage system. The first connecting pipes 404 and the second connecting pipes 405 connect the water storage tanks to each other and keep the water levels the same.
[0031] As Figure 3 and Figure 5 As shown: In this embodiment, the support frame 103 includes a plurality of cross bars 1031 and a plurality of vertical bars 1032 that are connected to each other. The vertical bars 1032 are located between the first water storage tank 401, the second water storage tank 402, and the third water storage tank 403. Installation grooves 1033 corresponding to the first connecting pipes 404 and the second connecting pipes 405 are provided on the vertical bars 1032, and installation holes 1034 corresponding to the condensate pipe of the air conditioner indoor unit 7 are provided on the cross bars 1031.
[0032] With such a setting, the condensate pipe passes through the outlet hole 105 and then passes through the installation hole 1034 on the cross bar 1031 and is connected to the first water storage tank 401. Since the pipe passes through the cross bar 1031 and the vertical bar 1032, and at this time, the vertical bar 1032 is provided between the first water storage tank 401, the second water storage tank 402, and the third water storage tank 403 of the water storage box 4, the strength of the support frame 103 will not be reduced.
[0033] As Figure 1 and Figure 2 As shown: In this embodiment, a water level gauge 106 is installed on the outer shell 101, and the water level gauge 106 is used to observe the water level of the third water storage tank 403.
[0034] This setting allows for real-time observation of the water volume in the third water storage tank 403 through the built-in water level gauge 106 on the outer shell 101, making the observation more convenient.
[0035] Working principle: The cabin body 1 is set with a double-layer structure, and the water storage box 4 is installed between the outer shell 101 and the inner shell 102. When installing, the wires and condensate pipes of the indoor unit 7 of the air conditioner pass through the through holes 104, and then the wires pass through the wire outlet holes 105 to be connected to the outdoor unit 8 of the air conditioner. The condensate pipes pass through the wire outlet holes 105 and then pass through the installation holes 1034 on the cross bar 1031 and are connected to the first water storage tank 401. Since the pipes pass through the cross bar 1031 and the vertical bar 1032, at this time, there is a vertical bar 1032 between the first water storage tank 401, the second water storage tank 402 and the third water storage tank 403 of the water storage box 4, which will not reduce the strength of the support frame 103, and at the same time can hide the water storage box 4, making the whole micro-pressure oxygen-enriched cabin more beautiful. When in use, the air conditioner water flows into the first water storage tank 401, the second water storage tank 402 and the third water storage tank 403 through the pipes for storage. When the water in the third water storage tank 403 reaches the position of the water level sensor 5, the water level sensor 5 sends the information to the controller 3. After the controller 3 processes the information, it is fed back to the screen to remind the user to drain the water. At the same time, the water volume in the third water storage tank 403 can also be observed in real time through the built-in water level gauge 106 on the outer shell 101.
[0036] All technical features in this embodiment can be freely combined according to actual needs.
[0037] The above embodiments are the preferred implementation solutions of the present invention. In addition, the present invention can also be implemented in other ways. Any obvious replacement without departing from the concept of the technical solution is within the protection scope of the present invention.
Claims
1. An intelligent water tank structure for storing air-conditioning water in a micro-pressure oxygen-enriched cabin, characterized in that: The structure includes: A cabin (1), a host (2) and a controller (3), wherein the host (2) is mounted on the right side of the cabin (1), and the controller (3) is mounted on the host (2). A water storage box (4) is mounted on the back of the cabin (1), and a water level sensor (5) is mounted inside the water storage box (4). A drainage valve (6) is mounted at the drainage port of the water storage box (4) and is connected to the outside of the cabin (1), and the water level sensor (5) is electrically connected to the controller (3); An air conditioner indoor unit (7) and an air conditioner outdoor unit (8), wherein the air conditioner indoor unit (7) is installed inside the cabin (1), and the air conditioner outdoor unit (8) is installed inside the main unit (2), and the condensation water pipe of the air conditioner indoor unit (7) is connected to the water inlet of the water storage box (4).
2. The intelligent water tank structure for storing air-conditioning water in a micro-pressure oxygen-enriched cabin according to claim 1 is characterized in that: The cabin (1) comprises an outer shell (101) and an inner shell (102), a support frame (103) is fixedly connected between the outer shell (101) and the inner shell (102), and the water storage box (4) is installed inside the support frame (103).
3. The intelligent water tank structure for storing air-conditioning water in a micro-pressure oxygen-enriched cabin according to claim 2 is characterized in that: The drain valve (6) is installed on the outer shell (101), and the inner shell (102) is provided with a through hole (104) corresponding to the condensation water pipe of the air conditioner indoor unit (7).
4. The intelligent water tank structure for storing air-conditioning water in a micro-pressure oxygen-enriched cabin according to claim 2 is characterized in that: The water storage box (4) comprises a first water storage tank (401), a second water storage tank (402) and a third water storage tank (403); the first water storage tank (401) is connected to the second water storage tank (402) via two first connecting pipes (404); the second water storage tank (402) is connected to the third water storage tank (403) via two second connecting pipes (405); the water inlet of the water storage box (4) is opened on the first water storage tank (401); and the water outlet of the water storage box (4) is opened on the third water storage tank (403).
5. The intelligent water tank structure for storing air-conditioning water in a micro-pressure oxygen-enriched cabin according to claim 4 is characterized in that: The support frame (103) comprises a plurality of cross bars (1031) and a plurality of vertical bars (1032) connected to each other, wherein the vertical bars (1032) are located between the first water storage tank (401), the second water storage tank (402) and the third water storage tank (403), and the vertical bars (1032) are provided with mounting grooves (1033) corresponding to the first connecting pipe (404) and the second connecting pipe (405), and the cross bars (1031) are provided with mounting holes (1034) corresponding to the condensation water pipes of the air conditioner indoor unit (7).
6. The intelligent water tank structure for storing air-conditioning water in a micro-pressure oxygen-enriched cabin according to claim 3 is characterized in that: The housing (101) is provided with a wire outlet hole (105), and the wire outlet hole (105) is arranged concentrically with the through hole (104).
7. The intelligent water tank structure for storing air-conditioning water in a micro-pressure oxygen-enriched cabin according to claim 4 is characterized in that: A water level gauge (106) is installed on the housing (101), and the water level gauge (106) is used to observe the water level of the third water storage tank (403).