A gas gas feed pipe for gas power generation
By introducing a movable controller and gas sensing probe into the gas power generation pipeline, combined with motor drive and modular installation structure, the problems of limited detection range and insufficient stability are solved, enabling real-time leak monitoring and stable connection, thus improving safety and maintenance efficiency.
Patent Information
- Application Number
- CN202522220082.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-21
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-10-21
AI Technical Summary
The detection range of existing gas power generation pipelines is limited, making it difficult to detect hidden leaks. Traditional installation methods are not stable enough in complex terrain, and maintenance operations are complicated and time-consuming.
It adopts a movable controller and gas sensing probe combined with motor drive to achieve all-round dynamic detection, and the installation ring and screw nut structure ensures the stability of the pipeline. The modular design facilitates maintenance.
It enables comprehensive real-time monitoring of long-distance pipelines, quickly locates leaks and reduces the risk of safety accidents, improves pipeline operation stability and maintenance efficiency, and reduces costs.
Smart Images

Figure CN224680563U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of gas power generation technology, and in particular to a gas transmission pipeline for gas power generation. Background Technology
[0002] In the field of gas power generation, long-distance gas transmission pipelines also play a crucial role. These pipelines typically traverse considerable distances, crossing complex and varied terrains and environments. Their safe and stable operation directly impacts the continuity and efficiency of the gas power generation system, and profoundly affects the safety of life and property of surrounding residents and the protection of the ecological environment. However, in practical applications, existing long-distance transmission pipelines face numerous technical challenges. Traditional detection methods have significant limitations. Some pipelines use fixed-location detection devices, which can only monitor specific areas and cannot comprehensively cover all parts of the entire transmission pipeline, resulting in a limited detection range and an inability to detect potential leaks in a timely manner. Especially for some concealed or minor leaks, the sensitivity of traditional detection methods is severely insufficient, easily missing the optimal time for intervention, allowing the leak problem to gradually worsen. This not only wastes valuable gas resources but may also trigger serious safety accidents such as fires and explosions, causing enormous losses to society. On the other hand, due to the long distances and complex terrain of pipelines, ensuring the pipelines are securely fixed in the installation area and preventing displacement or shaking due to external factors (such as geological subsidence and external impacts) is crucial for ensuring safe pipeline operation. Existing installation methods may not provide sufficient stability in complex geological conditions or harsh environments, leading to stress concentration and loosening of connections during long-term operation, thus increasing the risk of leakage. Furthermore, traditional installation structures often lack convenience in pipeline maintenance. Inspection, repair, or replacement of components is difficult and time-consuming, severely impacting maintenance efficiency and increasing costs. Utility Model Content
[0003] To address the aforementioned problems, this utility model proposes a gas delivery pipeline for gas power generation, which more accurately solves the problems mentioned in the background art.
[0004] This utility model is achieved through the following technical solution:
[0005] This utility model proposes a gas delivery pipeline for gas power generation, comprising a pipeline body, a slide rail mounted on the top of the pipeline body, a movable controller mounted on the top of the slide rail, a hollow ring sleeved on the surface of the pipeline body, the hollow ring being movable together with the controller, a gas sensing probe mounted on the surface of the controller, an outlet pipe mounted on the top of the hollow ring, the gas sensing probe being inserted into the outlet pipe for detecting the gas discharged from the outlet pipe, and an alarm mounted on the top of the controller for triggering an alarm after the gas sensing probe detects gas.
[0006] Preferably, a drive unit is provided on the surface of the pipe body on one side of the controller, and the drive unit is used to drive the movement of the controller and the hollow ring.
[0007] Preferably, the drive unit includes a motor mounted on the top of the pipe body, the output end of the motor is equipped with a threaded rod, the surface of the threaded rod is threadedly connected to a threaded seat, the threaded seat is mounted on the top of the hollow ring and connected to the controller.
[0008] Preferably, the bottom of the controller is equipped with a roller for rolling on the inner wall of the slide rail, and the surface of the controller is equipped with a connecting plate, the top of which is connected to a threaded seat.
[0009] Preferably, mounting rings are installed at both ends of the surface of the pipe body, and mounting plates are installed at the bottom of the mounting rings, with the mounting plates fixed to the area to be laid.
[0010] Preferably, the top of the mounting plate is provided with staggered screws for insertion into the laying area, and the top of the mounting plate is provided with nuts that are threadedly connected to the screws.
[0011] Compared with the prior art, this utility model provides a gas transmission pipeline for gas power generation, which has the following advantages:
[0012] This gas delivery pipeline for gas power generation uses a drive mechanism, such as a motor or threaded rod, to automatically move a controller and a hollow ring along the pipeline body. Combined with a gas sensing probe, it enables real-time detection of the gas discharged from the outlet pipe, achieving comprehensive and dynamic monitoring of long-distance combustible gas delivery pipelines. This design not only expands the detection range but also quickly locates and triggers alarms when leaks occur, effectively shortening response time, reducing the risk of safety accidents caused by gas leaks, and ensuring production safety.
[0013] This gas transmission pipeline for gas power generation achieves secure fixing of the pipeline to the laying area by installing mounting rings, mounting plates, and matching screws and nuts at both ends of the pipeline body. This effectively prevents displacement or shaking of the pipeline due to external forces such as wind and vibration, thus improving the stability of pipeline operation. At the same time, the modular installation design facilitates subsequent maintenance and repair work, such as replacing damaged parts and adjusting pipeline positions, reducing maintenance costs and time costs, and improving overall operation and maintenance efficiency. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the structure of a gas transmission pipeline for gas power generation proposed in this utility model;
[0015] Figure 2 This is a schematic diagram of the structure of an installation ring for a gas delivery pipeline for gas power generation proposed in this utility model;
[0016] Figure 3 This is a schematic diagram of the structure of the drive unit for the gas delivery pipeline for gas power generation proposed in this utility model.
[0017] In the diagram: 1. Pipe body; 2. Slide rail; 3. Hollow ring; 4. Controller; 41. Roller; 42. Connecting plate; 5. Gas sensing probe; 6. Gas outlet pipe; 7. Alarm; 8. Drive unit; 81. Motor; 82. Threaded rod; 83. Threaded seat; 9. Mounting ring; 91. Mounting plate; 92. Screw; 93. Nut. Detailed Implementation
[0018] To more clearly and completely illustrate the technical solution of this utility model, the following description, in conjunction with the accompanying drawings, will provide further details.
[0019] Example
[0020] like Figures 1-3 As shown in the figure, an embodiment of this utility model discloses a gas delivery pipeline for gas power generation, comprising a pipeline body 1. A slide rail 2 is installed on the top of the pipeline body 1. A movable controller 4 is installed on the top of the slide rail 2. A hollow ring 3 is fitted onto the surface of the pipeline body 1, designed to move along with the controller 4. A gas sensing probe 5 is installed on the surface of the controller 4, which is inserted into the gas outlet pipe 6 at the top of the hollow ring 3 for real-time detection of the gas discharged from the gas outlet pipe 6. Simultaneously, an alarm 7 is also installed on the top of the controller 4. When the gas sensing probe 5 detects combustible gas, the alarm 7 immediately sounds an alarm to alert the operator, thus realizing real-time monitoring and alarm functions for gas leaks in long-distance combustible gas delivery pipelines.
[0021] In this invention, a drive unit 8 is provided on the surface of the pipeline body 1 on one side of the controller 4. The drive unit 8 is used to drive the controller 4 and the hollow ring 3 to move along the slide rail 2, thereby realizing the detection of gas leaks at different positions of the pipeline body 1. The automatic movement of the controller 4 and the hollow ring 3 is realized through the drive unit 8, which improves the detection efficiency and coverage.
[0022] In this invention, the drive unit 8 specifically includes a motor 81 mounted on the top of the pipe body 1. A threaded rod 82 is mounted on the output end of the motor 81, and a threaded seat 83 is threadedly connected to the surface of the threaded rod 82. The threaded seat 83 is mounted on the top of the hollow ring 3 and connected to the controller 4. When the motor 81 starts, the threaded rod 82 rotates, causing the threaded seat 83 to move along the threaded rod 82, thereby moving the controller 4 and the hollow ring 3. Through the cooperation of the motor 81, the threaded rod 82, and the threaded seat 83, the smooth and precise movement of the controller 4 and the hollow ring 3 is achieved.
[0023] In this invention, a roller 41 is mounted on the bottom of the controller 4. The roller 41 rolls along the inner wall of the slide rail 2 to reduce frictional resistance when the controller 4 moves. Simultaneously, a connecting plate 42 is mounted on the surface of the controller 4, and the top of the connecting plate 42 connects to the threaded seat 83 to connect the controller 4 to the drive unit 8. The design of the roller 41 and the connecting plate 42 improves the flexibility and stability of the controller 4's movement.
[0024] In this invention, mounting rings 9 are installed at both ends of the surface of the pipe body 1. A mounting plate 91 is installed at the bottom of the mounting ring 9. The mounting plate 91 is used to fix the pipe body 1 to the area to be laid. Through the design of the mounting rings 9 and the mounting plate 91, the pipe body 1 is stably installed, preventing it from moving or shaking during use.
[0025] In this invention, screws 92 are staggered on the top of the mounting plate 91. The screws 92 are inserted into the laying area to securely connect the mounting plate 91 to the laying area. Simultaneously, a nut 93 is also installed on the top of the mounting plate 91. The nut 93 is threadedly connected to the screws 92 and is used for tightening after the screws 92 are inserted. Through the cooperation of the screws 92 and the nut 93, reliable fixing of the mounting plate 91 to the laying area is achieved, improving the installation stability of the pipe body 1.
[0026] Finally, it should be noted that the basic concepts have been described above. Obviously, for those skilled in the art, the detailed disclosure above is merely illustrative and does not constitute a limitation of this specification. Although not explicitly stated here, those skilled in the art may make various modifications, improvements, and corrections to this specification. Such modifications, improvements, and corrections are suggested in this specification, and therefore, such modifications, improvements, and corrections still fall within the spirit and scope of the exemplary embodiments of this specification. Furthermore, this specification uses specific terms to describe embodiments of this specification. For example, "an embodiment," "one embodiment," and / or "some embodiments" refer to a feature, structure, or characteristic associated with at least one embodiment of this specification. Therefore, it should be emphasized and noted that "an embodiment," "one embodiment," or "an alternative embodiment" mentioned twice or more in different locations in this specification do not necessarily refer to the same embodiment. In addition, certain features, structures, or characteristics in one or more embodiments of this specification can be appropriately combined. Moreover, unless expressly stated in the claims, the order of processing elements and sequences, the use of numbers and letters, or other names described in this specification are not intended to limit the order of the processes and methods of this specification.
[0027] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model 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 make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A gas transmission pipeline for gas power generation, comprising a pipeline body (1), characterized in that, A slide rail (2) is installed on the top of the main body of the pipe (1), and a movable controller (4) is provided on the top of the slide rail (2). A hollow ring (3) is fitted on the surface of the main body of the pipe (1). The hollow ring (3) can move together with the controller (4). A gas sensing probe (5) is installed on the surface of the controller (4). An exhaust pipe (6) is installed on the top of the hollow ring (3). The gas sensing probe (5) is inserted into the exhaust pipe (6) to detect the gas discharged from the exhaust pipe (6). An alarm (7) is installed on the top of the controller (4). The alarm (7) is used to sound an alarm after the gas sensing probe (5) detects gas.
2. The gas transmission pipeline for gas power generation according to claim 1, characterized in that, The surface of the pipe body (1) is provided with a drive unit (8) on one side of the controller (4), and the drive unit (8) is used to drive the controller (4) and the hollow ring (3) to move.
3. The gas transmission pipeline for gas power generation according to claim 2, characterized in that, The drive unit (8) includes a motor (81) mounted on the top of the pipe body (1). The output end of the motor (81) is equipped with a threaded rod (82). The surface of the threaded rod (82) is threadedly connected to a threaded seat (83). The threaded seat (83) is mounted on the top of the hollow ring (3) and connected to the controller (4).
4. The gas transmission pipeline for gas power generation according to claim 3, characterized in that, The bottom of the controller (4) is equipped with a roller (41) for rolling on the inner wall of the slide rail (2). The surface of the controller (4) is equipped with a connecting plate (42), and the top of the connecting plate (42) is connected to the threaded seat (83).
5. The gas transmission pipeline for gas power generation according to claim 1, characterized in that, Mounting rings (9) are installed at both ends of the surface of the pipe body (1), and mounting plates (91) are installed at the bottom of the mounting rings (9). The mounting plates (91) are fixed to the area to be laid.
6. The gas transmission pipeline for gas power generation according to claim 5, characterized in that, The top of the mounting plate (91) is provided with staggered screws (92) for insertion into the laying area, and the top of the mounting plate (91) is provided with nuts (93) which are threadedly connected to the screws (92).