Long-distance pipeline conveying pressure remote control device
By adopting a liftable telescopic rod structure and a rotatable protective baffle in the long-distance pipeline pressure remote control device, the problems of pressure sensor height adjustment and device protection are solved, and more efficient pressure monitoring and long-term stable operation of the device are achieved.
Patent Information
- Application Number
- CN202422184018.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-06
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2034-09-06
AI Technical Summary
The existing remote control device for long-distance pipeline conveying pressure is difficult to adjust the height of the pressure sensor, and the display screen, buttons and indicator lights in the device are easily damaged and it is difficult to effectively protect.
A long-distance pipeline pressure remote control device is designed, and the pressure sensor height is adjusted using a liftable telescopic rod structure, and a rotatable protective baffle is installed on the housing to cover the display screen, buttons and indicator lights to prevent damage and accidental collision.
It realizes flexible adjustment of the height of the pressure sensor, adapts to pipes of different depths, and effectively protects the display, buttons and indicator lights through protective baffles, extending the service life of the device.
Smart Images

Figure CN223004833U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of pipeline transportation, and particularly relates to a long-distance pipeline transportation pressure remote control device. Background Art
[0002] A pipeline is a device connected by pipes, pipe connectors, valves, etc. for transporting gases, liquids or fluids with solid particles. Pipeline transportation is the long-distance transportation of liquids or gases through a pipeline system. When transporting bulk liquid chemical products such as methanol, glacial acetic acid, neopentyl glycol, ethyl acetate, n-butyl acetate, vinyl acetate, acetic anhydride, low-temperature ethylene, ethanol, propanol, fuel oil, heavy aromatics, acetic anhydride, ammonium sulfate, etc., a long-distance pipeline transportation pressure remote control device is required.
[0003] For this reason, the patent specification with the publication number CN214623381U discloses a natural gas remote control device, which relates to the technical field of natural gas. It includes a remote control device box body and a natural gas pipeline; a control panel is provided on the upper surface of the remote control device box body, and a buzzer, a time display screen, a timer display screen, buttons, an air inlet, and an intelligent monitoring display screen are provided on the control panel. An antenna is provided on one side of the remote control device box body, and a valve and multiple sensors are provided inside the remote control device box body. The timer and the time sensor are respectively connected to the timer display screen and the time display screen. The valve is provided with an intake pipeline and an outlet pipeline, and a pin shaft is provided between the intake pipeline and the outlet pipeline, and electromagnetic coils are provided on both sides of the pin shaft. The utility model provides a natural gas remote control device. A variety of intelligent detection sensors connected to the air inlet hole, such as an air quality sensor, are provided inside the control panel, and the detection results are displayed on the intelligent monitoring display screen, enabling people to pay more attention to air quality and improve the quality of life.
[0004] The current long-distance pipeline transportation pressure remote control devices can basically meet people's usage requirements, but there are still some problems, which are specifically described as follows:
[0005] 1. The problem that it is difficult to adjust the height of the pressure sensor in the long-distance pipeline transportation pressure remote control device. The pressure sensor is difficult to adapt to different situations. Due to the different thicknesses of the pipelines, the pressure sensor is difficult to detect pipelines at different depths.
[0006] 2. The problem that it is difficult to protect the display screen, etc. in the long-distance pipeline transportation pressure remote control device. Due to the complex usage conditions of the device, the display screen, buttons, and indicator lights are prone to damage, and the buttons may be accidentally touched. Utility Model Content
[0007] The purpose of the present utility model is to provide a long-distance pipeline transportation pressure remote control device to solve the defects that the existing long-distance pipeline transportation pressure remote control device is difficult to adjust the height of the pressure sensor and difficult to protect the display screen and the like.
[0008] To solve the above technical problems, the present utility model provides the following technical solutions: A long-distance pipeline transportation pressure remote control device includes a housing;
[0009] A protective structure is installed at one end of the housing. A wireless information transceiver module is installed at the top end of one end of the housing, and a display screen is installed at one end of the housing;
[0010] A button is installed at one end of the housing. An installation block is installed at the bottom end of the housing. A first telescopic rod is installed at the bottom end of the installation block. The bottom end of the first telescopic rod is movably connected to a second telescopic rod, and a pressure sensor is installed at the bottom end of the second telescopic rod;
[0011] A lifting mechanism is installed on one side of the first telescopic rod. The lifting mechanism includes a housing, a gear, a servo motor, a toothed card, and a rotating shaft. The housing is installed on one side of the first telescopic rod.
[0012] During use, first, soft pads are installed on both sides of the housing. The soft pads can be made of rubber material. The housing and the protective plate are connected through the soft pads. The protective plate can protect the housing and prevent the housing from being damaged. The pressure sensor at the bottom end of the second telescopic rod can enter the pipeline. The pressure sensor can sense the pressure inside the pipeline and send the information to the background through the wireless information transceiver module, which is convenient for monitoring and remotely controlling the pressure of the pipeline.
[0013] Furthermore, anti-collision structures are installed on both sides of the housing. The anti-collision structures include soft pads, protective plates, and anti-slip patterns. The soft pads are installed on both sides of the housing. A protective plate is installed on one side of the soft pads. The soft pads can be made of rubber material. The housing and the protective plate are connected through the soft pads. The protective plate can protect the housing.
[0014] Furthermore, anti-slip patterns are provided on one side of the protective plate. The protective plates are symmetrically distributed about the central axis of the housing. The anti-slip patterns can enhance the friction of the protective plate.
[0015] Furthermore, indicator lights are installed at one end of the housing. The indicator lights are arranged at equal intervals at one end of the housing. When the indicator lights work, they can indicate the working condition of the device.
[0016] Further, a chute is provided inside the first telescopic rod, and a slider is provided at the top end of the second telescopic rod. The first telescopic rod and the second telescopic rod form a sliding structure, and the second telescopic rod can slide inside the first telescopic rod.
[0017] Further, a gear is provided inside the housing. A rotating shaft is installed at the middle position of the gear. The engaging teeth are provided on one side of the second telescopic rod. When the servo motor operates, it can drive the gear to rotate, and the gear meshes with the engaging teeth on one side of the second telescopic rod.
[0018] Further, the engaging teeth are arranged at equal intervals, and the engaging teeth mesh with the gear. The rotation of the gear can drive the engaging teeth to move up and down.
[0019] Further, the protection structure includes a fixing plate, a rotating shaft, a connecting rod, and a baffle. The fixing plate is installed at one end of the outer shell. A rotating shaft is installed inside the fixing plate. A connecting rod is installed at the bottom end of the rotating shaft. A baffle is installed at the bottom end of the connecting rod. The rotation of the rotating shaft will drive the baffle to rotate through the connecting rod. The rotation of the baffle can cover the surfaces of the button, the display screen, and the indicator light. The baffle can protect the button, the display screen, and the indicator light.
[0020] Further, a clamping block is provided at the bottom end of the baffle, and a clamping groove is provided at one end of the outer shell. The baffle and the outer shell form a clamping structure, and the clamping structure is convenient for disassembly.
[0021] The long-distance pipeline transportation pressure remote control device provided by the present utility model has the following advantages: By installing a housing on one side of the first telescopic rod, the gear inside the housing can rotate along the rotating shaft. When the servo motor operates, it can drive the gear to rotate. The gear meshes with the engaging teeth on one side of the second telescopic rod. The second telescopic rod and the first telescopic rod form a sliding structure. The rotation of the gear can drive the second telescopic rod to move up and down. The up and down movement of the second telescopic rod can adjust the height of the pressure sensor at the bottom end, so that the pressure sensor can adapt to different situations, thereby achieving the purpose of facilitating the adjustment of the height of the pressure sensor of the long-distance pipeline transportation pressure remote control device.
[0022] By installing a fixing plate at one end of the outer shell, the rotating shaft inside the fixing plate can rotate. The rotation of the rotating shaft will drive the baffle to rotate through the connecting rod. The rotation of the baffle can cover the surfaces of the button, the display screen, and the indicator light. The baffle can protect the button, the display screen, and the indicator light, prevent the display screen from being damaged, and also prevent the button from being accidentally touched. When the button needs to be used, rotate the baffle so that the baffle no longer covers the surface of the button, and then the button can be used, thereby achieving the purpose of facilitating the protection of the button of the long-distance pipeline transportation pressure remote control device. Description of the Drawings
[0023] Figure 1 is the three-dimensional structure diagram of the present utility model;
[0024] Figure 2 is the front view sectional structure diagram of the present utility model;
[0025] Figure 3 is of the present utility model Figure 2 partial sectional enlarged structure diagram at position A in;
[0026] Figure 4 is the partial three-dimensional structure diagram of the protection structure of the present utility model;
[0027] Figure 5 is the front view partial sectional structure diagram of the lifting mechanism of the present utility model.
[0028] Explanation of the reference numerals in the figure: 1, outer shell; 2, display screen; 3, indicator light; 4, button; 5, mounting block; 6, first telescopic rod; 7, second telescopic rod; 8, pressure sensor; 9, lifting mechanism; 901, housing; 902, gear; 903, servo motor; 904, engaging teeth; 905, rotating shaft; 10, anti-collision structure; 1001, soft pad; 1002, protection plate; 1003, anti-slip pattern; 11, wireless information transceiver module; 12, protection structure; 1201, fixing plate; 1202, rotating shaft; 1203, connecting rod; 1204, baffle. Specific embodiments
[0029] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0030] Please refer to Figures 1-5 , an embodiment provided by the present utility model: a long-distance pipeline transportation pressure remote control device, including an outer shell 1.
[0031] A protection structure 12 is installed at one end of the outer shell 1. The protection structure 12 includes a fixing plate 1201, a rotating shaft 1202, a connecting rod 1203 and a baffle 1204. The fixing plate 1201 is installed at one end of the outer shell 1. A rotating shaft 1202 is installed inside the fixing plate 1201. A connecting rod 1203 is installed at the bottom end of the rotating shaft 1202. A baffle 1204 is installed at the bottom end of the connecting rod 1203. A clamping block is provided at the bottom end of the baffle 1204, and a clamping groove is provided at one end of the outer shell 1. The baffle 1204 and the outer shell 1 form a clamping structure.
[0032] Refer to the attached Figures 1-2 drawing and the attached Figure 4 As shown, the rotating shaft 1202 inside the fixing plate 1201 can rotate. When the rotating shaft 1202 rotates, it drives the baffle 1204 to rotate through the connecting rod 1203. The rotation of the baffle 1204 can cover the surfaces of the button 4, the display screen 2, and the indicator light 3. The baffle 1204 can protect the button 4, the display screen 2, and the indicator light 3, prevent damage to the display screen 2, and also prevent accidental touch of the button 4. When the button 4 needs to be used, rotate the baffle 1204 so that the baffle 1204 no longer covers the surface of the button 4, and then the button 4 can be used.
[0033] Anti-collision structures 10 are installed on both sides of the housing 1. The anti-collision structures 10 include soft pads 1001, protection plates 1002, and anti-slip patterns 1003. The soft pads 1001 are installed on both sides of the housing 1. A protection plate 1002 is installed on one side of the soft pad 1001. Anti-slip patterns 1003 are provided on one side of the protection plate 1002. The protection plates 1002 are symmetrically distributed about the central axis of the housing 1.
[0034] Refer to the attached Figures 1-3 As shown, soft pads 1001 are installed on both sides of the housing 1. The soft pads 1001 can be made of rubber material. The housing 1 and the protection plate 1002 are connected through the soft pads 1001. The protection plate 1002 can protect the housing 1 from damage. The anti-slip patterns 1003 can enhance the friction of the protection plate 1002. The pressure sensor 8 at the bottom end of the second telescopic rod 7 can enter the pipeline. The pressure sensor 8 can sense the pressure inside the pipeline and send the information to the background through the wireless information transceiver module 11, which is convenient for monitoring and remote control of the pipeline pressure.
[0035] An indicator light 3 is installed at one end of the housing 1. The indicator lights 3 are arranged at equal intervals at one end of the housing 1. A wireless information transceiver module 11 is installed at the top end of one end of the housing 1. A display screen 2 is installed at one end of the housing 1.
[0036] A button 4 is installed at one end of the housing 1. An installation block 5 is installed at the bottom end of the housing 1. A first telescopic rod 6 is installed at the bottom end of the installation block 5. A chute is provided inside the first telescopic rod 6. A slider is provided at the top end of the second telescopic rod 7. The first telescopic rod 6 and the second telescopic rod 7 form a sliding structure.
[0037] The bottom end of the first telescopic rod 6 is movably connected to the second telescopic rod 7, and a pressure sensor 8 is installed at the bottom end of the second telescopic rod 7.
[0038] A lifting mechanism 9 is installed on one side of the first telescopic rod 6. The lifting mechanism 9 includes a housing 901, a gear 902, a servo motor 903, a toothed segment 904, and a rotating shaft 905. The housing 901 is installed on one side of the first telescopic rod 6. A gear 902 is arranged inside the housing 901. A rotating shaft 905 is installed at the middle position of the gear 902. The toothed segment 904 is arranged on one side of the second telescopic rod 7. The toothed segments 904 are arranged at equal intervals. The toothed segment 904 and the gear 902 are meshed with each other.
[0039] Referring to the appended Figure 2 and the appended Figure 5 As shown, the gear 902 inside the housing 901 can rotate along the rotating shaft 905. When the servo motor 903 operates, it can drive the gear 902 to rotate. The gear 902 and the toothed segments 904 on one side of the second telescopic rod 7 are meshed with each other. The second telescopic rod 7 and the first telescopic rod 6 form a sliding structure. The rotation of the gear 902 can drive the second telescopic rod 7 to move up and down. The up and down movement of the second telescopic rod 7 can adjust the height of the pressure sensor 8 at the bottom, so that the pressure sensor 8 can adapt to different situations.
[0040] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A long-distance pipeline transmission pressure remote control device, comprising a housing (1); Features: A protective structure (12) is installed at one end of the housing (1), a wireless information transceiver module (11) is installed at the top end of one end of the housing (1), and a display screen (2) is installed at one end of the housing (1); A button (4) is installed at one end of the housing (1), a mounting block (5) is installed at the bottom end of the housing (1), a first telescopic rod (6) is installed at the bottom end of the mounting block (5), a second telescopic rod (7) is movably connected to the bottom end of the first telescopic rod (6), and a pressure sensor (8) is installed at the bottom end of the second telescopic rod (7); A lifting mechanism (9) is installed on one side of the first telescopic rod (6), and the lifting mechanism (9) comprises a housing (901), a gear (902), a servo motor (903), a latching tooth (904) and a rotating shaft (905), and the housing (901) is installed on one side of the first telescopic rod (6).
2. A long-distance pipeline transmission pressure remote control device according to claim 1, characterized in that: Anti-collision structures (10) are installed on both sides of the shell (1), and the anti-collision structure (10) comprises a soft pad (1001), a protective plate (1002) and anti-slip grooves (1003). The soft pad (1001) is installed on both sides of the shell (1), and the protective plate (1002) is installed on one side of the soft pad (1001).
3. A long-distance pipeline transmission pressure remote control device according to claim 2, characterized in that: One side of the protective plate (1002) is provided with an anti-slip pattern (1003), and the protective plate (1002) is symmetrically distributed about the central axis of the housing (1).
4. A long-distance pipeline transmission pressure remote control device according to claim 1, characterized in that: Indicator lights (3) are installed at one end of the housing (1), and the indicator lights (3) are arranged at equal intervals at one end of the housing (1).
5. The long-distance pipeline transmission pressure remote control device according to claim 1 is characterized in that: A sliding groove is arranged inside the first telescopic rod (6), a sliding block is arranged at the top end of the second telescopic rod (7), and the first telescopic rod (6) and the second telescopic rod (7) form a sliding structure.
6. A long-distance pipeline transmission pressure remote control device according to claim 1, characterized in that: A gear (902) is arranged inside the housing (901), a rotating shaft (905) is installed at the middle position of the gear (902), and the latching tooth (904) is arranged on one side of the second telescopic rod (7).
7. A long-distance pipeline transmission pressure remote control device according to claim 1, characterized in that: The latch teeth (904) are arranged at equal intervals, and the latch teeth (904) and the gear (902) are meshed with each other.
8. The long-distance pipeline transmission pressure remote control device according to claim 1 is characterized by: The protective structure (12) comprises a fixed plate (1201), a rotating shaft (1202), a connecting rod (1203) and a baffle (1204); the fixed plate (1201) is mounted on one end of the housing (1); the rotating shaft (1202) is mounted on the inner side of the fixed plate (1201); the connecting rod (1203) is mounted on the bottom end of the rotating shaft (1202); and the baffle (1204) is mounted on the bottom end of the connecting rod (1203).
9. A long-distance pipeline transmission pressure remote control device according to claim 8, characterized in that: A clamping block is provided at the bottom end of the baffle (1204), a clamping slot is provided at one end of the housing (1), and the baffle (1204) and the housing (1) form a clamping structure.