Plasma ignition device for offshore oil production platform
By designing a structure that is easy to maintain and shock-absorbing device for offshore oil production platforms, the problem of difficulty in maintaining and vibration impact in harsh environments is solved, and the stability and service life of the device are improved.
Patent Information
- Application Number
- CN202421942578.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-12
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-08-12
AI Technical Summary
When used in harsh marine environments, it is difficult to conduct effective inspection and maintenance, and long-term vibration will affect service life.
A plasma ignition device including a bottom assembly, a connecting assembly and a top assembly is designed to facilitate maintenance and maintenance by installing a sleeve and an escalator on the side of the main body box; a shock absorbing spring and a damper are provided on the outer surface wall of the plasma generator to reduce the impact of vibration; and the stability and waterproof performance of the device are improved through pillars and fixed blocks.
It realizes convenient maintenance of the device and reduces the impact of vibration on internal parts, extends service life, and improves the stability and waterproof performance of the device in marine environments.
Smart Images

Figure CN222992944U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of offshore oil production platforms, in particular to a plasma ignition device for an offshore oil production platform. Background Art
[0002] The plasma ignition device used in offshore oil production platforms is an ignition system specially designed to work in harsh offshore environments. This device is mainly used to ignite fuels in burners or flare systems to ensure the safe treatment of waste gases and other combustible substances.
[0003] However, in the prior art, when the existing ignition device is used at sea, a certain waterproof distance needs to be maintained. Since it is inconvenient to detect and repair the ignition device at sea, at the same time, the ignition device will generate vibrations during use, which will affect its service life over time. Summary of the Utility Model
[0004] The purpose of the utility model is to solve the problems existing in the above-mentioned prior art, and to propose a plasma ignition device for an offshore oil production platform.
[0005] To achieve the above purpose, the utility model adopts the following technical scheme: A plasma ignition device for an offshore oil production platform, including a bottom component, a connection component and a top component; the bottom component includes a bottom plate, two sets of struts are installed at the bottom of the bottom plate, two sets of fixing blocks are installed at the bottoms of the two sets of struts, and a plurality of fixing holes are opened on one side of the two sets of fixing blocks; the connection component includes a main body box, a plurality of sleeve blocks are installed on one side of the main body box, two ladders are arranged inside the plurality of sleeve blocks, and two sliding grooves are opened on one side of the main body box; the top component includes a plasma generator, two sealing flanges are arranged on the outer surface wall of the plasma generator, two electrodes are arranged inside the two sealing flanges, a plurality of shock-absorbing springs are arranged on the outer surface wall of the plasma generator, and a plurality of dampers are arranged on the outer surface walls of the plurality of shock-absorbing springs.
[0006] Preferably, the two sets of struts are fixedly installed with the bottom plate, and a sealing door is arranged on one side of the two sliding grooves.
[0007] Preferably, the two ladders are sleeved and connected with the plurality of sleeve blocks, and the sealing door is slidably connected with the main body box.
[0008] Preferably, a lock hole is arranged on one side of the main body box, and the two sealing flanges are sleeved and connected with the plasma generator.
[0009] Preferably, the two electrodes are fixedly connected with the plasma generator, and two support seats are arranged on the outer surface wall of the plasma generator.
[0010] Preferably, the two support seats are fixedly installed on the main body box, the main body box is fixedly installed with a plurality of dampers, and the main body box is fixedly installed on the bottom plate.
[0011] Compared with the prior art, the advantages and positive effects of the present utility model are as follows:
[0012] 1. In the present utility model, a plurality of sleeve blocks are installed on one side of the main body box for placing two escalators. The two escalators are sleeved and connected with the plurality of sleeve blocks, and can be detachably assembled, which is convenient for the operator to climb through the escalator to maintain and repair the electrical components and plasma generators inside the main body box. Two sliding grooves are opened on one side of the main body box for placing the sealing door. The sealing door is slidably connected with the main body box. A lock hole is provided on one side of the main body box to lock and seal the sealing door to prevent damage to the internal components. Two electrodes are provided on one side of the plasma generator and are fixedly connected through two sealing flanges, which can be disassembled and assembled, and at the same time, the internal sealing performance is maintained.
[0013] 2. In the present utility model, a plurality of dampers and shock-absorbing springs are arranged on the outer wall of the plasma generator to play a role in shock absorption and buffering of the plasma generator, avoiding the shaking of internal parts caused by long-term vibration during use, which will affect the subsequent work. Since the work is carried out at sea, two groups of struts are provided to support and connect the main body box, raising it to a certain height to avoid seawater erosion of its interior. Two groups of fixing blocks are installed at the bottom of the two groups of struts, and a plurality of fixing holes are opened on one side of the two groups of fixing blocks to fixedly install the entire device to prevent tipping. Description of the Drawings
[0014] Figure 1 Fig. is the overall structural schematic diagram of a plasma ignition device for an offshore oil production platform proposed by the present utility model;
[0015] Figure 2 Fig. is the structural schematic diagram of the bottom assembly of a plasma ignition device for an offshore oil production platform proposed by the present utility model;
[0016] Figure 3 Fig. is the structural schematic diagram of the connection assembly of a plasma ignition device for an offshore oil production platform proposed by the present utility model;
[0017] Figure 4 Fig. is the structural schematic diagram of the top assembly of a plasma ignition device for an offshore oil production platform proposed by the present utility model.
[0018] Legend: 1. Bottom component; 101. Bottom plate; 102. Support pillar; 103. Fixed block; 104. Fixed hole; 2. Connection component; 201. Main body box; 202. Sleeve block; 203. Escalator; 204. Slide groove; 205. Sealed door; 206. Lock hole; 3. Top component; 301. Plasma generator; 302. Sealing flange; 303. Electrode; 304. Support seat; 305. Shock-absorbing spring; 306. Damper. Detailed implementation
[0019] In order to more clearly understand the above-mentioned objects, features and advantages of the present invention, the present invention will be further described below with reference to the drawings and embodiments. It should be noted that, without conflict, the embodiments of the present application and the features in the embodiments can be combined with each other.
[0020] In the following description, many specific details are set forth in order to fully understand the present invention. However, the present invention can also be implemented in other ways different from those described herein. Therefore, the present invention is not limited by the specific embodiments disclosed in the following specification. Embodiment 1
[0021] As Figures 1-4 shown, the present invention provides a plasma ignition device for an offshore oil production platform, including a bottom component 1, a connection component 2 and a top component 3; the bottom component 1 includes a bottom plate 101, two groups of support pillars 102 are installed at the bottom of the bottom plate 101, two groups of fixed blocks 103 are installed at the bottom of the two groups of support pillars 102, and a plurality of fixed holes 104 are opened on one side of the two groups of fixed blocks 103; the connection component 2 includes a main body box 201, a plurality of sleeve blocks 202 are installed on one side of the main body box 201, two escalators 203 are arranged inside the plurality of sleeve blocks 202, and two slide grooves 204 are opened on one side of the main body box 201; the top component 3 includes a plasma generator 301, two sealing flanges 302 are arranged on the outer surface wall of the plasma generator 301, two electrodes 303 are arranged inside the two sealing flanges 302, a plurality of shock-absorbing springs 305 are arranged on the outer surface wall of the plasma generator 301, and a plurality of dampers 306 are arranged on the outer surface wall of the plurality of shock-absorbing springs 305.
[0022] The effect achieved by the entire Embodiment 1 is that two sets of struts 102 are installed at the bottom of the bottom plate 101, two sets of fixing blocks 103 are installed at the bottoms of the two sets of struts 102, multiple fixing holes 104 are opened on one side of the two sets of fixing blocks 103, multiple sleeve blocks 202 are installed on one side of the main body box 201, two escalators 203 are arranged inside the multiple sleeve blocks 202, two sliding grooves 204 are opened on one side of the main body box 201, multiple sleeve blocks 202 are installed on one side of the main body box 201 for placing the two escalators 203, the two escalators 203 are sleeved and connected with the multiple sleeve blocks 202, and can be detachably assembled, which is convenient for the operator to climb through the escalators 203 to maintain and repair the electrical components and the plasma generator 301 inside the main body box 201. Two sliding grooves 204 are opened on one side of the main body box 201 for placing the sealing door 205, the sealing door 205 is slidably connected with the main body box 201, and a lock hole 206 is arranged on one side of the main body box 201 to lock and seal the sealing door 205 to prevent damage to the internal components. Embodiment 2
[0023] As Figures 1-4 shown, the top component 3 includes a plasma generator 301. Two sealing flanges 302 are arranged on the outer surface wall of the plasma generator 301, two electrodes 303 are arranged inside the two sealing flanges 302, multiple shock-absorbing springs 305 are arranged on the outer surface wall of the plasma generator 301, multiple dampers 306 are arranged on the outer surface walls of the multiple shock-absorbing springs 305. The two sets of struts 102 are fixedly installed with the bottom plate 101, the sealing door 205 is arranged on one side of the two sliding grooves 204, the two escalators 203 are sleeved and connected with the multiple sleeve blocks 202, and the sealing door 205 is slidably connected with the main body box 201.
[0024] The effects achieved by the entire Embodiment 2 are as follows: Two sliding grooves 204 are opened on one side of the main body box 201 for placing the sealing door 205. The sealing door 205 is slidably connected to the main body box 201. A lock hole 206 is provided on one side of the main body box 201 to lock and seal the sealing door 205, preventing damage to the internal components. Two sealing flanges 302 are provided on the outer wall of the plasma generator 301. Two electrodes 303 are provided inside the two sealing flanges 302. Two electrodes 303 are provided on one side of the plasma generator 301. They are fixedly connected through the two sealing flanges 302, can be disassembled and assembled, and at the same time maintain the internal sealing performance. A plurality of dampers 306 and shock-absorbing springs 305 are provided on the outer wall of the plasma generator 301 to play a role in shock absorption and buffering for the plasma generator 301. A plurality of shock-absorbing springs 305 are provided on the outer wall of the plasma generator 301. A plurality of dampers 306 are provided on the outer walls of the plurality of shock-absorbing springs 305. Two groups of struts 102 are fixedly installed on the bottom plate 101. The sealing door 205 is provided on one side of the two sliding grooves 204. Two escalators 203 are sleeved and connected with a plurality of sleeve blocks 202. The sealing door 205 is slidably connected to the main body box 201. Embodiment 3
[0025] As Figures 1-4 shown, a plurality of shock-absorbing springs 305 are provided on the outer wall of the plasma generator 301. A plurality of dampers 306 are provided on the outer walls of the plurality of shock-absorbing springs 305. Two groups of struts 102 are fixedly installed on the bottom plate 101. The sealing door 205 is provided on one side of the two sliding grooves 204. Two escalators 203 are sleeved and connected with a plurality of sleeve blocks 202. The sealing door 205 is slidably connected to the main body box 201. A lock hole 206 is provided on one side of the main body box 201. Two sealing flanges 302 are sleeved and connected with the plasma generator 301. Two electrodes 303 are fixedly connected to the plasma generator 301. Two support seats 304 are provided on the outer wall of the plasma generator 301. The two support seats 304 are fixedly installed on the main body box 201. The main body box 201 is fixedly installed with a plurality of dampers 306. The main body box 201 is fixedly installed on the bottom plate 101.
[0026] The effects achieved by the entire Embodiment 3 are as follows: a sealing door 205 is provided on one side of the two sliding grooves 204, the two escalators 203 are sleeved and connected with a plurality of sleeve blocks 202, the sealing door 205 is slidably connected with the main body box 201, a keyhole 206 is provided on one side of the main body box 201, the two sealing flanges 302 are sleeved and connected with the plasma generator 301, the two electrodes 303 are fixedly connected with the plasma generator 301, two support seats 304 are provided on the outer surface wall of the plasma generator 301, the two support seats 304 are fixedly installed with the main body box 201, the main body box 201 is fixedly installed with a plurality of dampers 306, the main body box 201 is fixedly installed with the bottom plate 101, which avoids the shaking of internal parts caused by long-term vibration during use and will affect the subsequent work. Since the work is carried out at sea, two groups of support columns 102 are provided to support and connect the main body box 201 to a certain height to avoid seawater erosion of its interior. Two groups of fixing blocks 103 are installed at the bottom of the two groups of support columns 102, and a plurality of fixing holes 104 are opened on one side of the two groups of fixing blocks 103 to fixedly install the entire device to avoid tipping over.
[0027] Working principle: Two groups of struts 102 are installed at the bottom of the bottom plate 101. Two groups of fixing blocks 103 are installed at the bottom of the two groups of struts 102. Multiple fixing holes 104 are opened on one side of the two groups of fixing blocks 103. Multiple sleeve blocks 202 are installed on one side of the main body box 201. Two escalators 203 are arranged inside the multiple sleeve blocks 202. Two sliding grooves 204 are opened on one side of the main body box 201. Multiple sleeve blocks 202 are installed on one side of the main body box 201 to place the two escalators 203. The two escalators 203 are sleeved and connected with the multiple sleeve blocks 202, and can be disassembled and assembled movably, which is convenient for the operator to climb through the escalators 203 to maintain and repair the electrical components and the plasma generator 301 inside the main body box 201. Two sliding grooves 204 are opened on one side of the main body box 201 to place the sealing door 205. The sealing door 205 is slidably connected with the main body box 201. A lock hole 206 is arranged on one side of the main body box 201 to lock and seal the sealing door 205 to prevent damage to the internal components. Two sealing flanges 302 are arranged on the outer wall of the plasma generator 301. Two electrodes 303 are arranged inside the two sealing flanges 302. Two electrodes 303 are arranged on one side of the plasma generator 301 and are fixedly connected through the two sealing flanges 302, and can be disassembled and assembled, and at the same time, the internal sealing performance is maintained. Multiple dampers 306 and shock-absorbing springs 305 are arranged on the outer wall of the plasma generator 301 to play a role in shock absorption and buffering for the plasma generator 301. Multiple shock-absorbing springs 305 are arranged on the outer wall of the plasma generator 301, and multiple dampers 306 are arranged on the outer wall of the multiple shock-absorbing springs 305. The two groups of struts 102 are fixedly installed with the bottom plate 101. The sealing door 205 is arranged on one side of the two sliding grooves 204. The two escalators 203 are sleeved and connected with the multiple sleeve blocks 202. The sealing door 205 is slidably connected with the main body box 201. A lock hole 206 is arranged on one side of the main body box 201. The two sealing flanges 302 are sleeved and connected with the plasma generator 301. The two electrodes 303 are fixedly connected with the plasma generator 301. Two support seats 304 are arranged on the outer wall of the plasma generator 301. The two support seats 304 are fixedly installed with the main body box 201. The main body box 201 is fixedly installed with the multiple dampers 306. The main body box 201 is fixedly installed with the bottom plate 101, avoiding the shaking of the internal parts caused by long-term vibration during use, which will affect the subsequent work. Since the work is carried out at sea, two groups of struts 102 are set to support and connect the main body box 201 to a certain height to avoid seawater erosion of its interior. Two groups of fixing blocks 103 are installed at the bottom of the two groups of struts 102. Multiple fixing holes 104 are opened on one side of the two groups of fixing blocks 103 to fixedly install the whole device to avoid tipping over.
[0028] The above are only the preferred embodiments of the present utility model, and are not intended to limit the present utility model in other forms. Any person skilled in the art may use the technical content disclosed above to make changes or modifications into equivalent embodiments with equivalent changes and apply them to other fields. However, any simple modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present utility model without departing from the content of the technical solution of the present utility model still fall within the protection scope of the technical solution of the present utility model.
Claims
1. A plasma ignition device for an offshore oil production platform, characterized in that: It comprises a bottom component (1), a connecting component (2) and a top component (3); The bottom assembly (1) comprises a bottom plate (101), two groups of pillars (102) are installed at the bottom of the bottom plate (101), two groups of fixing blocks (103) are installed at the bottom of the two groups of pillars (102), and a plurality of fixing holes (104) are provided on one side of the two groups of fixing blocks (103); The connection assembly (2) comprises a main box (201), a plurality of sleeve blocks (202) are installed on one side of the main box (201), two escalators (203) are arranged inside the plurality of sleeve blocks (202), and two slide grooves (204) are provided on one side of the main box (201); The top component (3) comprises a plasma generator (301), two sealing flanges (302) are arranged on the outer wall of the plasma generator (301), two electrodes (303) are arranged inside the two sealing flanges (302), a plurality of shock absorbing springs (305) are arranged on the outer wall of the plasma generator (301), and a plurality of dampers (306) are arranged on the outer walls of the plurality of shock absorbing springs (305).
2. The plasma ignition device for an offshore oil production platform according to claim 1, characterized in that: The two groups of pillars (102) are fixedly mounted on the bottom plate (101), and a sealing door (205) is provided on one side of the two slide grooves (204).
3. The plasma ignition device for offshore oil production platform according to claim 2, characterized in that: The two escalators (203) are sleeved and connected to a plurality of sleeve blocks (202), and the sealing door (205) is slidably connected to the main body box (201).
4. The plasma ignition device for an offshore oil production platform according to claim 1, characterized in that: A lock hole (206) is provided on one side of the main box (201), and the two sealing flanges (302) are sleeved and connected to the plasma generator (301).
5. The plasma ignition device for offshore oil production platform according to claim 1, characterized in that: The two electrodes (303) are fixedly connected to the plasma generator (301), and two support seats (304) are provided on the outer wall of the plasma generator (301).
6. The plasma ignition device for offshore oil production platform according to claim 5, characterized in that: The two support seats (304) are fixedly mounted on the main box (201), the main box (201) is fixedly mounted on a plurality of dampers (306), and the main box (201) is fixedly mounted on the bottom plate (101).