Multi-point diffuse oxygen supply system

CN224787339UActive Publication Date: 2026-09-22TIBET VENTURE CAPITAL GAS TECH CO LTD
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Patent Information

Application Number
CN202522125449.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-09
Publication Date
2026-09-22
Estimated Expiration
2035-10-09

AI Technical Summary

Technical Problem

[0003]本实用新型为了解决现有的弥散供氧系统氧浓度无法单独控制各房间氧浓度的缺点,提出一种多点位弥散供氧系统,可单独控制各房间氧浓度

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Abstract

The utility model discloses a kind of multi-point position dispersion oxygen supply systems, including gas source, control terminal, regulating valve, multiple diffusers and multiple sensing components, multiple diffusers are connected with gas source by separate regulating valve, sensing component includes socket part and sensing part, socket part includes socket main body, and wireless charger is set on socket main body, sensing part includes shell, and battery, controller, oxygen concentration probe and coil are installed on shell, shell is adsorbed on socket main body, coil corresponds with the position of wireless charger, coil is connected with battery, oxygen concentration probe sends oxygen concentration signal to control terminal by controller, control terminal is connected with regulating valve signal, and regulating valve opening is controlled according to oxygen concentration signal.The utility model proposes a kind of multi-point position dispersion oxygen supply systems, and each room oxygen concentration can be controlled separately.
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Description

Technical Field

[0001] This utility model relates to the field of oxygen supply system technology, and in particular to a multi-point diffusion oxygen supply system. Background Technology

[0002] Diffused oxygen supply systems are widely used in oxygen-deficient areas such as high-altitude regions, effectively increasing indoor oxygen concentration and improving indoor comfort. However, existing diffused oxygen supply systems often only provide unified control of indoor oxygen concentration, failing to allow for individual control of oxygen concentration in multiple rooms. This lack of flexibility in oxygen concentration control can easily lead to oxygen waste. Utility Model Content

[0003] To address the shortcomings of existing diffused oxygen supply systems that cannot individually control the oxygen concentration in each room, this invention proposes a multi-point diffused oxygen supply system that allows for individual control of the oxygen concentration in each room.

[0004] To achieve the above objectives, the present invention adopts the following technical solution: A multi-point diffusion oxygen supply system includes a gas source, a control terminal, a regulating valve, multiple diffusers, and multiple sensing components. Each diffuser is connected to the gas source through a separate regulating valve. The sensing components include a socket part and a sensing part. The socket part includes a socket body and a wireless charger mounted on the socket body. The sensing part includes a housing and a battery, a controller, an oxygen concentration probe, and a coil mounted on the housing. The housing is attached to the socket body. The coil is positioned corresponding to the wireless charger and is connected to the battery. The oxygen concentration probe sends an oxygen concentration signal to the control terminal through the controller. The control terminal is connected to the regulating valve and controls the opening degree of the regulating valve according to the oxygen concentration signal.

[0005] With the above settings, firstly, it is possible to control the oxygen concentration in multiple rooms individually, improving the flexibility of oxygen supply and reducing oxygen waste. Secondly, the sensing components adopt a split structure, and the sensing part can be attached to different sockets. On the one hand, this facilitates the upgrading of the sensing part, and on the other hand, it is convenient to move the sensing part to other locations in the room to detect the oxygen concentration, further improving the flexibility of oxygen supply.

[0006] Furthermore, the socket section also includes a chip disposed on the socket body, which stores room information, and the sensing section also includes a reader capable of reading the information in the chip, which is installed in the housing.

[0007] With the above setup, after the sensor is attached to the socket, it can automatically locate itself based on the information in the chip, making it convenient to use the sensor in other rooms.

[0008] Furthermore, the chip can be configured as an NFC tag or an RFID tag.

[0009] Furthermore, the socket also includes a clamping mechanism, which includes a clamping plate, a guide rod, and a spring. Clamping plates are provided on both the left and right sides of the socket body. A guide rod is fixedly connected to the inside of the clamping plate. The guide rod is slidably connected to the socket body. The spring is sleeved on the guide rod. One end of the spring is connected to the socket body, and the other end is connected to the clamping plate.

[0010] The above settings improve the stability of the sensor unit on the socket. In addition, the phone can be held in place by the clamping mechanism, and the phone can be charged using the wireless charger on the socket.

[0011] Furthermore, a rubber pad is provided on the inside of the clamp.

[0012] The above settings prevent the clamps from damaging the sensor.

[0013] Furthermore, the sensing components also include a temperature sensor and a humidity sensor, which are connected to the controller respectively.

[0014] With the above setup, the sensing components can detect more room data and, in conjunction with oxygen concentration, control the air quality in the room, thereby further improving indoor comfort.

[0015] Furthermore, the control terminal is equipped with a touch screen.

[0016] The above settings facilitate the operation of the control terminal. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of a diffusion oxygen supply system as an example.

[0018] Figure 2 This is a schematic diagram of the sensing component in an embodiment.

[0019] Figure 3 This is a schematic diagram of the socket portion in an embodiment. Detailed Implementation

[0020] The technical solution of this utility model will be further described in detail below through embodiments and in conjunction with the accompanying drawings.

[0021] like Figures 1 to 3A multi-point diffusion oxygen supply system includes a gas source (not shown in the figure), a control terminal, a regulating valve 3, multiple diffusers 4, and multiple sensing components. Each diffuser 4 is connected to the gas source through a separate regulating valve 3. The sensing components include a socket part 5 and a sensing part 6. The socket part 5 includes a socket body 51 and a wireless charger 52 mounted on the socket body 51. The sensing part 6 includes a housing 61 and a battery 62, a controller 63, an oxygen concentration probe 64, and a coil 65 mounted on the housing 61. The housing 61 is attached to the socket body 51. The coil 65 corresponds to the wireless charger 52 and is connected to the battery 62. The oxygen concentration probe 64 sends an oxygen concentration signal to the control terminal through the controller 63. The control terminal is signal-connected to the regulating valve 3 and controls the opening degree of the regulating valve 3 according to the oxygen concentration signal.

[0022] With the above settings, firstly, it is possible to control the oxygen concentration in multiple rooms individually, thereby improving the flexibility of oxygen supply and reducing oxygen waste. Secondly, the sensing components adopt a split structure, and the sensing part 6 can be attached to different socket parts 5. This facilitates the upgrading of the sensing part 6 and also makes it convenient to move the sensing part 6 to other locations in the room to detect the oxygen concentration, further improving the flexibility of oxygen supply.

[0023] Specifically, the gas source in this application can be a centralized oxygen supply tank or an oxygen generator. At least one diffuser 4 and at least one sensing component are installed in the room requiring oxygen supply. Each diffuser 4 is connected to the gas source via a regulating valve 3. The sensing component adopts a split structure, specifically including a socket part 5 and a sensing part 6. The socket body 51 has prongs and can be inserted into a wall socket in the room, energizing the wireless charger 52. The housing 61 is magnetically attached to the socket body 51. Under the principle of electromagnetic induction, the coil 65 charges the battery 62, ensuring the battery 62 is fully charged. The battery 62 is built into the housing 61, providing power to the controller. The controller 63 is powered by a wireless connection to a control terminal via Bluetooth or Wi-Fi. An oxygen concentration probe 64 monitors the room's oxygen concentration in real time. The oxygen concentration signal is wirelessly transmitted to the control terminal via the controller 63. The control terminal analyzes the received oxygen concentration signal to determine the room's oxygen concentration. If the oxygen concentration is lower than a set value, the control terminal wirelessly controls the regulating valve 3 to increase its opening, increasing the oxygen output of the diffuser 4. If the oxygen concentration is higher than the set value, the control terminal wirelessly controls the regulating valve 3 to decrease its opening, decreasing the oxygen output of the diffuser 4. Ultimately, this allows the room's oxygen concentration to fluctuate within a certain range. This application can control the oxygen concentration in each room as needed, such as increasing the oxygen concentration in the oxygen therapy room while keeping the oxygen concentration in ordinary rooms lower, thus rationally allocating oxygen and conserving oxygen resources. Furthermore, the sensor 6 can be removed from the socket 5 and placed separately in other locations in the room, such as on a table or beside the bed, to control the oxygen concentration in different areas of the room. In this case, the battery 62 powers the sensor 6. When the sensor 6 is returned to the socket 5, the socket 5 can recharge the battery 62 in the sensor 6. If the sensor unit 6 needs to be upgraded or repaired in the future, the sensor unit 6 can be replaced directly without replacing the socket unit 5, which saves costs and improves the convenience of subsequent maintenance and upgrades.

[0024] As one implementation, the socket unit 5 also includes a chip 53 disposed on the socket body 51, which stores room information, and the sensing unit 6 also includes a reader 66 capable of reading the information in the chip 53, which is installed in the housing 61.

[0025] With the above settings, after the sensor 6 is attached to the socket 5, it can automatically locate itself according to the information in the chip 53, making it convenient for the sensor 6 to be used in other rooms.

[0026] Room information is pre-bound to the chip 53 of the socket section 5. The sensor section 6 is equipped with a reader 66. After the sensor section 6 is attached to the socket section 5, the reader 66 automatically reads the room information in the chip 53. For example, when the sensor section 6 is attached to the socket section 5 in the first room, the sensor section 6 reads the room information of the chip 53 on the socket section 5 and sends the room information of the "first room" to the control terminal through the controller 63. The control terminal controls the opening of the regulating valve 3 of the first room according to the oxygen concentration information, so that the oxygen concentration of the first room fluctuates up and down the set value of the first room. When the sensor section 6 of the first room is attached to the socket section 5 of the second room, the sensor section 6 reads the room information of the chip 53 on the socket section 5 and sends the room information of the "second room" to the control terminal through the controller 63. The control terminal controls the opening of the regulating valve 3 of the second room according to the oxygen concentration information, so that the oxygen concentration of the second room fluctuates up and down the set value of the second room. The control terminal of this application automatically controls the opening of the corresponding regulating valve 3 according to the position of the sensor section 6, so as to control the oxygen concentration of the corresponding room.

[0027] As one implementation method, chip 53 is configured as an NFC tag or an RFID tag.

[0028] As one implementation, the socket part 5 also includes a clamping mechanism 54, which includes a clamping plate 541, a guide rod 542 and a spring 543. The socket body 51 is provided with clamping plates 541 on both the left and right sides. The guide rod 542 is fixedly connected to the inner side of the clamping plate 541. The guide rod 542 is slidably connected to the socket body 51. The spring 543 is sleeved on the guide rod 542. One end of the spring 543 is connected to the socket body 51 and the other end is connected to the clamping plate 541.

[0029] With the above settings, the stability of the sensor 6 on the socket 5 is improved. In addition, the mobile phone can be held by the clamping mechanism 54 and the mobile phone can be charged by the wireless charger 52 of the socket 5.

[0030] Specifically, clamping plates 541 are set on the left and right sides of the socket body 51. Guide rods 542 are fixedly connected to the inner side of clamping plates 541. Guide rods 542 extend left and right. Slide grooves adapted to guide rods 542 are set on the left and right sides of the socket body 51. The ends of guide rods 542 are slidably connected in the slide grooves, so that the two clamping plates 541 can open and close stably. The spring 543 is specifically a tension spring. When the two clamping plates 541 are opened, the spring 543 is in a stretched state. After the mobile phone or sensor 6 is placed between the two clamping plates 541, the spring 543 contracts, and the clamping plates 541 clamp the mobile phone or sensor 6 to prevent the mobile phone or sensor 6 from falling.

[0031] As one implementation method, a rubber pad 544 is provided on the inner side of the clamping plate 541.

[0032] The above-mentioned arrangement prevents the clamping plate 541 from damaging the sensor unit 6.

[0033] In one implementation, the sensing component also includes a temperature sensor and a humidity sensor, which are connected to the controller 63 respectively.

[0034] With the above setup, the sensing components can detect more room data and, in conjunction with oxygen concentration, control the air quality in the room, thereby further improving indoor comfort.

[0035] The control terminal of this application can integrate dehumidifier and air conditioner control functions. The temperature sensor detects the air temperature, and the humidity sensor detects the air humidity. The temperature signal and humidity signal are transmitted to the control terminal through the controller. When the humidity is higher or lower than the set value, the control terminal automatically controls the power of the dehumidifier and air conditioner to keep the humidity and temperature of the room at the set value, thereby improving indoor comfort.

[0036] As one implementation method, a touch screen is installed on the control terminal.

[0037] The above settings facilitate the operation of the control terminal.

[0038] The control terminal can display information such as real-time oxygen concentration and oxygen concentration setpoint for each room via a touch screen. Users can also change the oxygen concentration setpoint and switch the gas supply on or off by clicking on the touch screen.

[0039] It should be understood that those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of the appended claims.

Claims

1. A multi-point diffused oxygen supply system, characterized in that, The system includes a gas source, a control terminal, a regulating valve, multiple diffusers, and multiple sensing components. Each diffuser is connected to the gas source via a separate regulating valve. Each sensing component includes a socket and a sensing unit. The socket includes a socket body and a wireless charger mounted on the socket body. The sensing unit includes a housing and a battery, a controller, an oxygen concentration probe, and a coil mounted on the housing. The housing is attached to the socket body. The coil corresponds to the wireless charger and is connected to the battery. The oxygen concentration probe sends an oxygen concentration signal to the control terminal via the controller. The control terminal is connected to the regulating valve and controls the opening of the regulating valve based on the oxygen concentration signal.

2. The multi-point diffused oxygen supply system according to claim 1, characterized in that, The socket section also includes a chip disposed on the socket body, the chip storing room information, and the sensing section also includes a reader capable of reading the information in the chip, the reader being installed in the housing.

3. The multi-point diffused oxygen supply system according to claim 2, characterized in that, The chip is configured as an NFC tag or an RFID tag.

4. A multi-point diffused oxygen supply system according to claim 2, characterized in that, The socket also includes a clamping mechanism, which includes a clamping plate, a guide rod, and a spring. The socket body has clamping plates on both the left and right sides. A guide rod is fixedly connected to the inner side of the clamping plate. The guide rod is slidably connected to the socket body. The spring is sleeved on the guide rod. One end of the spring is connected to the socket body, and the other end is connected to the clamping plate.

5. A multi-point diffused oxygen supply system according to claim 4, characterized in that, A rubber pad is provided on the inner side of the clamping plate.

6. A multi-point diffused oxygen supply system according to claim 1, characterized in that, The sensing component also includes a temperature sensor and a humidity sensor, which are respectively connected to the controller.

7. A multi-point diffused oxygen supply system according to claim 1, characterized in that, The control terminal is equipped with a touch screen.