Fuel gas multi-dimensional data collector, pressure regulating cabinet and pressure regulating well
By using rechargeable batteries and solar panels in the data collectors of the gas pressure regulating cabinet and the pressure regulating well, the problem of data collector not working during the power outage is solved, and the continuous and normal operation of the data collector is achieved, ensuring the safe and stable supply of the gas system.
Patent Information
- Application Number
- CN202422339749.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-25
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-09-25
AI Technical Summary
The data collectors in existing gas pressure regulating cabinets and pressure regulating wells cannot work properly when the main power is outage, resulting in the inability to monitor the equipment status in real time.
Rechargeable batteries are used as backup power supply, and solar energy is converted into electrical energy through solar panels and stored in the battery to ensure that the data collector can still work normally during a power outage in the mains.
It realizes that the data collector can continue to work normally in the event of a power outage in the city, ensuring the safe and stable supply of the gas system.
Smart Images

Figure CN223049860U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of gas equipment, in particular to a gas multi-dimensional data collector, a pressure regulating cabinet and a pressure regulating well. Background Technique
[0002] Both the gas pressure regulating cabinet and the pressure regulating well are important devices used in the gas system to ensure that the gas pressure is within a safe and stable range. The gas pressure regulating cabinet is mainly used to regulate and stabilize the gas pressure to ensure that the gas can be delivered to the user end at an appropriate pressure. The pressure regulating well is used to regulate the gas pressure in the underground gas pipeline to ensure that the gas is within a safe range before entering the user pipeline. Both of these devices are indispensable components in the gas system, which helps to ensure the safe and stable supply of gas and meet the needs of different users.
[0003] A data collector is installed in the pressure regulating cabinet or the pressure regulating well. The relevant working conditions in the pressure regulating cabinet or the pressure regulating well are monitored in real time through the data collector. When an abnormality occurs, the sensor device of the data collector sends the detected data to the control unit. The control unit processes the received information and then transmits it to the communication module, which reports it to the server through the communication module. The staff can remotely access the server to know the working status of the pressure regulating cabinet or the pressure regulating well.
[0004] Currently, the data collector mainly works with mains power supply. The mains power line enters the pressure regulating cabinet or the pressure regulating well, and the data collector is connected to the mains power line through an electric wire to realize the power supply to the data collector.
[0005] However, when a mains power outage occurs, the data collector will also stop working, thus stopping the real-time monitoring of the situation in the pressure regulating cabinet or the pressure regulating well. Therefore, adopting a power supply method for the data collector that is not affected by the mains power outage is the key to solving the above problems. Content of the Utility Model
[0006] The utility model aims to provide a gas multi-dimensional data collector, a pressure regulating cabinet and a pressure regulating well to improve the multi-dimensional data collector and change its power supply method so that it will not be affected by the mains power outage.
[0007] To achieve the above object, the utility model adopts the following technical scheme: A gas multi-dimensional data collector, including a housing, a circuit board is arranged in the housing, a battery pack is arranged in the housing, the battery pack includes a battery compartment, a battery and a battery cover, the battery is located in the battery compartment, the battery cover is detachably connected to the battery compartment, and the battery is a rechargeable battery.
[0008] The principle and advantages of this solution are as follows: The battery is installed in the battery compartment, and the battery compartment and the battery cover are used to wrap and protect the battery. Before installing the battery into the housing, the battery is first installed in the battery compartment and the battery cover is covered, thus realizing the assembly of the battery pack. Then, by installing the battery pack into the housing, the battery is installed in the housing. The battery in this solution is a rechargeable battery. When installing the gas multi-dimensional data collector into the pressure regulating cabinet or the pressure regulating well, the power source outside the battery (such as mains electricity or other power sources) supplies power to the gas multi-dimensional data collector, and the gas multi-dimensional data collector works normally. At the same time, the power source outside the battery charges the battery, and the battery can be used as a backup power source for the gas multi-dimensional data collector. Even if the mains electricity is cut off, the battery can still supply power to the gas multi-dimensional data collector, so that the gas multi-dimensional data collector will not stop working. In this way, the power outage of the mains electricity will not affect the normal operation of the gas multi-dimensional data collector, thus ensuring the continuous normal operation of the gas multi-dimensional data collector.
[0009] To achieve the above object, the present utility model adopts the following technical solution: A pressure regulating cabinet, comprising a cabinet body and the above-mentioned gas multi-dimensional data collector; a solar panel is provided on the cabinet body, and the solar panel is electrically connected to the battery.
[0010] To achieve the above object, the present utility model adopts the following technical solution: A pressure regulating well, comprising a well body and the above-mentioned gas multi-dimensional data collector; a solar panel is provided on the well body, and the solar panel is electrically connected to the battery.
[0011] Thus, the solar panel on the pressure regulating cabinet or the pressure regulating well converts solar energy into electrical energy to supply power to the gas multi-dimensional data collector, and at the same time, the converted electrical energy is stored in the battery. In this way, the gas multi-dimensional data collector does not need to rely on mains electricity supply, and there is no need to worry about the impact of mains power outage on the multi-dimensional data collector.
[0012] Preferably, as an improvement, a handle is connected to the battery cover. After the multi-dimensional data collector has been used for several years, the life of the battery will decline and the battery needs to be replaced. When replacing, the housing is opened, and by pulling the handle, it is convenient to take out the battery pack from the housing, solving the problem that the battery pack is not easy to take out.
[0013] Preferably, as an improvement, a bracket is provided inside the housing, and the battery pack is located on the bracket. The bracket is provided to accommodate and support the battery pack, and has a fixing effect on the battery pack, avoiding the battery pack from shaking in the housing and colliding with other parts inside the housing.
[0014] Preferably, as an improvement, the bracket includes a bottom, sides and a support portion. The sides are connected between the bottom and the support portion. The two ends of the sides are perpendicular to the bottom and the support portion respectively. The support portion, the sides and the bottom are connected into a "Z" shape. The bottom is attached to the inner wall of one side of the housing, the support portion is attached to the inner wall of the other side of the housing, and the battery pack and the circuit board are located on both sides of the sides.
[0015] Thus, the battery pack and the circuit board are respectively located on both sides of the sides. The sides isolate the battery pack and the circuit board from each other, and the battery pack and the circuit board will not interfere with and collide with each other, thereby preventing the battery pack from colliding with the circuit board and damaging the electronic components on the circuit board.
[0016] Preferably, as an improvement, the number of the support portions and the sides is at least two. The two sides are parallel and opposite to each other. The space between the two sides is for placing the battery pack. The two support portions are respectively connected to the ends of the two sides, and the ends of the two support portions are respectively abutted against the inner wall of the housing.
[0017] Thus, when the bracket is placed in the housing, by abutting the ends of the support portions against the inner wall of the housing, and the support portion and the bottom are respectively attached to the inner wall of the housing, the self-fixation of the bracket is realized. The bracket will not shake in the housing, and the bracket does not need to be fixed separately when placed in the housing, and the operation is simple and convenient.
[0018] In addition, with the bracket structure of this solution, the battery is located in the middle of the housing, and the electronic components such as the circuit board are located at both ends of the housing. In this way, the layout of the battery, the circuit board and other electronic components is reasonable. The battery is set in the middle. On the one hand, there will be a larger space in the housing to accommodate a larger battery, and a battery with a larger storage capacity can be placed in the housing. On the other hand, the battery accounts for a large proportion of the weight of the entire multi-dimensional data collector. The battery is set in the middle, making the weight distribution of the entire multi-dimensional data collector uniform.
[0019] Preferably, as an improvement, the number of the circuit boards is two, and the two circuit boards are respectively located outside the two sides. With the bracket of the present application, at least two circuit boards can be installed in the housing, and neither of these two circuit boards will interfere with the battery.
[0020] Preferably, as an improvement, the housing includes an upper cover, a lower cover and a main housing. The main housing includes four side plates, and the four side plates enclose a square. The upper cover and the lower cover are respectively connected to both sides of the main housing. Thus, the housing is assembled by the upper cover, the lower cover and the main housing. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 This is the front view of the present gas multi-dimensional data collector.
[0022] Figure 2 is Figure 1 right view.
[0023] Figure 3 Left view sectional view of body 1.
[0024] Figure 4 Structural schematic diagram of the bracket. Specific implementation manner
[0025] The following is a further detailed description through specific implementation manners:
[0026] The reference numerals in the accompanying drawings of the specification include: screw 1, upper cover 2, main housing 3, lower cover 4, antenna 9, displacement switch 13, liquid level switch 14, pressure sensor probe 15, battery 28, battery compartment 29, bracket 30, battery cover 31, handle 32, circuit board 33, side portion 301, support portion 302, bottom portion 303.
[0027] Embodiment 1
[0028] Basically as shown in the appendix Figures 1-4 This embodiment discloses a gas multi-dimensional data collector, including a housing. The housing in this embodiment includes an upper cover 2, a lower cover 4 and a main housing 3. The main housing 3 is a square structure surrounded by four side plates. The upper cover 2 and the lower cover 4 are respectively connected to both sides of the main housing 3 to block the openings on both sides of the main housing 3. The connection manner of the upper cover 2 and the lower cover 4 to the main housing 3 can specifically be connection by screws 1 or snap connection. The connection manner of the four side plates surrounding the square in this embodiment can be welding, integral molding or snap assembly. Or, there is no fixed connection between the four side plates. The four side plates are fixedly installed on the upper cover 2 or the lower cover 4, and the ends of the four side plates are only in a state of abutting against each other.
[0029] A circuit board 33 is provided inside the housing. The circuit board 33 is used to connect and support electronic components so that electrical signals can be transmitted between the electronic components.
[0030] A battery pack is provided inside the housing in this embodiment. The battery pack includes a battery compartment 29, a battery 28 and a battery cover 31. The battery compartment 29 is a box-shaped structure with an opening. The spatial shape of the battery compartment 29 matches the shape of the battery 28. The battery 28 is located in the battery compartment 29. The battery cover 31 is detachably connected (the detachable connection manner can specifically be connection by screws or connection by snap connection, etc.) to the opening of the battery compartment 29. The battery 28 in this embodiment is a rechargeable battery. A handle 32 is connected to the outer side wall of the battery cover 31.
[0031] In this embodiment, when assembling the gas multi-dimensional data collector, first assemble the main housing 3 and the lower cover 4 together, without installing the upper cover 2. Then place the battery pack in the housing, cover the upper cover 2, and fix the upper cover 2 on the main housing 3.
[0032] In order to improve the stability of the battery pack in the shell, in this embodiment, some limiting structures can be set in the shell to limit the battery pack and prevent the battery pack from shaking in the shell.
[0033] The battery 28 in this solution is a rechargeable battery, such as a lead-acid battery or a lithium battery. When the gas multi-dimensional data collector is installed in a pressure regulating cabinet or a pressure regulating well, the power supply outside the battery (such as the mains) supplies power to the gas multi-dimensional data collector, and the gas multi-dimensional data collector works normally. At the same time, the mains charges the battery. The battery 28 can be used as a backup power supply for a gas multi-dimensional data collector. Even if the mains power is cut off, the battery can still supply power to the gas multi-dimensional data collector, and the normal operation of the gas multi-dimensional data collector will not be affected, thereby ensuring the continued normal operation of the gas multi-dimensional data collector.
[0034] In addition, in other embodiments, the gas multi-dimensional data collector can also be powered by solar energy. Specifically, a solar panel is provided on the pressure regulating cabinet or the pressure regulating well, and the solar panel is electrically connected to the battery. Thus, the solar panel converts light energy into electrical energy and stores the electrical energy in the battery. The battery supplies power for the operation of the gas multi-dimensional data collector. The operation of the gas multi-dimensional data collector does not need to rely on the mains electricity, thus avoiding the impact of the mains power outage.
[0035] The gas multi-dimensional data collector in this embodiment is equipped with a displacement switch 13, an antenna 9, a liquid level switch 14, a pressure sensor probe 15 and other components, which are used to detect relevant data and transmit signals through the antenna 9. The displacement switch 13, the antenna 9, the liquid level switch 14, the pressure sensor probe 15 and other components do not belong to the improvements of this application and will not be described in detail here.
[0036] Example 2
[0037] This embodiment is further limited on the basis of the embodiment 1, a bracket 30 is provided in the housing, and the battery pack is located on the bracket 30. Figure 4As shown in the figure, the bracket 30 in this embodiment includes a bottom 303, side portions 301, and a support portion 302. In this embodiment, the number of side portions 301 is two, and the number of support portions 302 is two. The support portion 302, the side portion 301, and the bottom 303 are connected by welding or integrally formed. The two side portions 301 are opposite and parallel to each other, and the ends of the two side portions 301 and the two ends of the bottom 303 are respectively connected. The support portion 302 and the bottom 303 are parallel to each other, and the ends of the two support portions 302 are respectively connected to the other ends of the two side portions 301. Thus, in this embodiment, the side portion 301 is connected between the bottom 303 and the support portion 302, and the two ends of the side portion 301 are respectively perpendicular to the bottom 303 and the support portion 302. One support portion 302, one side portion 301, and the bottom 303 in this embodiment are connected to form a "Z" shape. Since there are two support portions 302 and two side portions 301, the bracket 30 in this embodiment can be regarded as two connected "Z" shapes. The lengths of the two support portions 302 can be equal or unequal.
[0038] Combined with Figure 3 As shown in the figure, the bracket 30 is placed in the housing. The bottom 303 is in contact with the inner wall of the lower cover 4 of the housing, and the ends of the two support portions 302 of the bracket 30 are respectively in contact with the two ends of the main housing 3 (the upper end and the lower end respectively in Figure 3 ). The space between the two side portions 301 is a space for placing the battery pack, and the space between the two side portions 301 is adapted to the volume of the battery pack. The two circuit boards 33 are located outside the two side portions 301, and the circuit boards 33 are located in the space surrounded by the support portion 302, the side portion 301, and the inner wall of the main housing 3. The support portion 302 is in contact with the inner wall of the other side of the housing, and the battery pack and the circuit boards 33 are located on both sides of the side portion 301. The circuit board 33 in this embodiment can be installed on the inner wall of the main housing 3 or on the side wall of the support portion 302. The fixed installation method of the circuit board 33 can be realized by fixing with screws, bonding, or snap-fitting, etc. After the battery pack and the bracket 30 are installed in place in this embodiment, the upper cover 2 is covered and fixed, and the side wall of the support portion 302 is in contact with the inner wall of the upper cover 2.
[0039] In the solution of this embodiment, the bottom 303 of the bracket 30 is in contact with the lower cover 4, the support portion 302 is in contact with the inner wall of the upper cover 2, and the end of the support portion 302 is in contact with the inner wall of the main housing 3, thereby realizing the self-limiting fixation of the bracket 30. The bracket 30 shakes inside the housing, and the battery pack is located in the space between the two side portions 301. The bracket 30 realizes the fixed limitation of the battery pack. The side portion 301 in this embodiment separates the circuit board 33 and the battery pack, and the battery pack and the circuit board 33 will not interfere or collide. At the same time, the battery pack is located in the middle of this multi-dimensional data collector, the battery pack is centered, the position is set reasonably, and the weight distribution of the multi-dimensional data collector is uniform.
[0040] Embodiment 3
[0041] The bracket 30 in this embodiment is different from the bracket 30 in Embodiment 2. The bracket 30 in this embodiment has only one side portion 301, one support portion 302 and one bottom portion 303. The side portion 301, the support portion 302 and the bottom portion 303 are connected in a "Z" shape. The bracket 30 is placed in the housing, and the bottom portion 303 and the support portion 302 are respectively in contact with the inner wall of the lower cover 4 and the inner wall of the upper cover 2. The end portions of the support portion 302 and the bottom portion 303 respectively abut against both ends ( Figure 3 the upper and lower ends in
[0042] the inner wall of the main housing 3). The battery pack and the circuit board 33 are respectively installed on both sides of the side portion 301. The above are only the embodiments of the present invention. Well-known specific technical solutions and / or common knowledge such as characteristics are not described in detail here. It should be noted that for those skilled in the art, without departing from the technical solution of the present invention, several deformations and improvements can still be made, and these should also be regarded as the protection scope of the present invention, and these will not affect the implementation effect of the present invention and the practicality of the patent. The protection scope required by this application should be based on the content of its claims, and the specific implementation manners and the like recorded in the specification can be used to interpret the content of the claims.
Claims
1. A gas multi-dimensional data collector, comprising a housing, a circuit board is arranged in the housing, and is characterized in that: A battery pack is arranged in the shell, and the battery pack includes a battery compartment, a battery and a battery cover. The battery is located in the battery compartment, and the battery cover is detachably connected to the battery compartment. The battery is a rechargeable battery.
2. The gas multi-dimensional data collector according to claim 1, characterized in that: The battery cover is connected with a handle.
3. The gas multi-dimensional data collector according to claim 1, characterized in that: A bracket is arranged in the shell, and the battery pack is located on the bracket.
4. The gas multi-dimensional data collector according to claim 3 is characterized in that: The bracket includes a bottom, a side and a supporting part, the side is connected between the bottom and the supporting part, the two ends of the side are respectively perpendicular to the bottom and the supporting part, and the supporting part, the side and the bottom are connected to form a "Z" shape; the bottom is in contact with the inner wall of one side of the shell, the supporting part is in contact with the inner wall of the other side of the shell, and the battery pack and the circuit board are located on both sides of the side.
5. The gas multi-dimensional data collector according to claim 4, characterized in that: The number of the supporting parts and the side parts is at least two, the two side parts are parallel and opposite, and there is a space for placing the battery pack between the two side parts. The two supporting parts are respectively connected to the two side end parts, and the ends of the two supporting parts are respectively against the inner wall of the shell.
6. The gas multi-dimensional data collector according to claim 5, characterized in that: The number of the circuit boards is two, and the two circuit boards are respectively located at the outer sides of the two side parts.
7. The gas multi-dimensional data collector according to claim 6, characterized in that: The shell comprises an upper cover, a lower cover and a main shell, the main shell comprises four side plates, the four side plates form a square, and the upper cover and the lower cover are respectively connected to two sides of the main shell.
8. The gas multi-dimensional data collector according to claim 7, characterized in that: The support part is in contact with the inner wall of the upper cover, the bottom part is in contact with the inner wall of the lower cover, and the ends of the two support parts are respectively against the inner wall of the main shell.
9. Voltage regulating cabinet, characterized in that: It comprises a cabinet and a gas multi-dimensional data collector as described in any one of claims 1 to 8; the cabinet is provided with a solar panel, which is electrically connected to a battery.
10. A surge well, characterized in that: It comprises a well body and a gas multi-dimensional data collector as described in any one of claims 1 to 8; a solar panel is arranged on the well body, and the solar panel is electrically connected to a battery.