Electric field coupling type multi-well interference simulation experiment table
By using an electric field-coupled rotating wheel and worm gear system, the problem of uneven heat dissipation on the simulation test bench was solved, achieving all-round heat dissipation of the equipment and accuracy of experimental data.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 凌丰
- Filing Date
- 2025-05-22
- Publication Date
- 2026-05-12
AI Technical Summary
The fans in existing simulation test benches can only dissipate heat in a relatively single direction within the equipment, and cannot simultaneously blow air to cool components in different locations inside, leading to high-temperature damage to the equipment.
The design employs an electric field coupling system, in which a motor-driven rotating wheel and belt system enable the fan to move synchronously, covering a wider area for heat dissipation. A motor-driven worm gear system enables the moving plate to drive the rolling column to move synchronously, compacting the sand sample.
It enables simultaneous airflow cooling at different locations inside the experimental platform, preventing damage from high temperatures and improving the accuracy of experimental data.
Smart Images

Figure CN224231557U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of experimental simulation device technology, and in particular to an electric field coupled multi-well interference simulation experimental platform. Background Technology
[0002] A simulation test bench is an experimental device and system that simulates real-world scenarios and processes by constructing physical or mathematical models. It is used to study, analyze, and verify specific phenomena, laws, and technical solutions. The electric field coupling multi-well interference simulation test bench is an experimental device used to simulate and study multi-well interference phenomena in petroleum engineering. It is mainly based on the principle of water and electricity similarity and uses electric field coupling to simulate the seepage process of fluids in the formation.
[0003] Existing simulation test benches utilize natural convection for air cooling, designing the bench with a good ventilation structure to remove heat through natural airflow. However, the slow airflow of natural convection cannot quickly transport heat from concentrated heat sources to distant locations, causing the air temperature near the heat source to rise rapidly, forming localized high-temperature areas. Existing technologies use fans to generate forced airflow, accelerating airflow speed and thus improving heat dissipation efficiency. However, existing fans can only dissipate heat in a relatively single direction within the equipment, failing to simultaneously cool components in different locations, which can lead to high-temperature damage to the equipment. Utility Model Content
[0004] To overcome the above shortcomings, this utility model provides an electric field coupling multi-well interference simulation test bench, which aims to improve the existing technology where the existing fan can only dissipate heat in a relatively single direction inside the equipment, and cannot simultaneously blow air to cool down components in different locations inside, thus causing the equipment to be damaged by high temperature.
[0005] To achieve the above objectives, this utility model adopts the following technical solution: an electric field coupling type multi-well interference simulation experimental platform, comprising a body, wherein heat dissipation mechanisms are installed on both the front and rear sides of the inner wall of the body, the heat dissipation mechanisms are used to blow air to dissipate heat from the internal components of the body, a compaction mechanism is installed in the middle of the top wall of the body, the compaction mechanism is used to compact the sand sample being tested, and guide mechanisms are installed on both the front and rear sides of the inner wall of the body, the guide mechanisms are used for guidance; the heat dissipation mechanism includes a square block, the square block is installed on the front side of the inner wall of the body, a fan is fixedly connected to each adjacent side of the outer wall of the square block, a battery is fixedly connected to each side of the outer wall of the square block away from the outer wall, and a drive assembly is installed on the rear side of the outer wall of the body.
[0006] As a further description of the above technical solution:
[0007] The drive assembly includes a motor, which is mounted on the rear side of the outer wall of the machine body. A fixed long rod is fixedly connected to the output end of the motor. Multiple rotating wheels are fixedly connected at equal intervals to the outer wall of the fixed long rod. A belt is installed on the outer wall of each rotating wheel. Rotating wheels are rotatably connected to the front and rear sides of the lower middle part of the inner wall of the machine body. The rotating wheels are connected to each other by belt drive. The inner wall of the square block is fixedly connected to the outer wall of the belt.
[0008] As a further description of the above technical solution:
[0009] The compaction mechanism includes a rolling column, which is installed in the middle of the top wall of the machine body. A movable plate is fixedly connected to the top of the rolling column, and an actuation component is installed in the middle of the top wall of the machine body.
[0010] As a further description of the above technical solution:
[0011] The execution component includes a second motor, which is installed in the middle of the top wall of the machine body. A worm gear is fixedly connected to the output end of the second motor. Multiple elongated inner sliding plates are fixedly connected at equal intervals on the top of the machine body. A C-shaped plate is slidably connected inside the elongated inner sliding plate. Multiple square pieces are fixedly connected at equal intervals on the bottom of the C-shaped plate. A bidirectional threaded rod is rotatably connected to the middle of the outer wall of the square pieces. A worm wheel is fixedly connected to the middle of the outer wall of the bidirectional threaded rod. Guide posts are fixedly connected to the front and rear sides of the outer wall of the C-shaped plate.
[0012] As a further description of the above technical solution:
[0013] The guiding mechanism includes a slide plate, which is installed on the front and rear sides of the machine body. A sliding block is slidably connected inside the slide plate, and the outer wall of the sliding block is fixedly connected to the outer wall of the moving plate on one side.
[0014] As a further description of the above technical solution:
[0015] A lighting tube is installed on the top of the machine body, and a ventilation filter is installed on the right side of the outer wall of the machine body.
[0016] As a further description of the above technical solution:
[0017] The outer wall of the machine body is fixedly connected to the support plate at the rear, and the top of the support plate is fixedly connected to the bottom of the motor.
[0018] As a further description of the above technical solution:
[0019] The worm gear meshes with the worm wheel, and the outer wall of the bidirectional threaded rod is threadedly connected to the inside of the moving plate.
[0020] This utility model has the following beneficial effects:
[0021] 1. In this utility model, after the motor is started, it drives the long rod to rotate. The rotating wheel is connected to the rotating wheel inside the machine body through a belt to achieve synchronous rotation. The belt is connected to the inner wall of the square block. The square block moves in a cycle with the belt, driving the fan to move synchronously and run continuously, generating airflow to accelerate air flow. The fan covers a wider area and improves the heat dissipation effect, thereby avoiding the problem that existing fans can only dissipate heat in a relatively single direction inside the equipment and cannot simultaneously blow air to cool down components in different locations inside, which can lead to high temperature damage to the equipment.
[0022] 2. In this utility model, the motor starts, the worm rotates and drives the worm wheel, transmitting motion to the bidirectional threaded rod to rotate synchronously. The rotation of the bidirectional threaded rod causes the moving plate to move in a straight line, which in turn drives the rolling column at the bottom to move synchronously. The rolling column rolls on the surface of the sand sample to compact the sand, thereby providing a standard sample for subsequent testing and improving the accuracy of experimental data. Attached Figure Description
[0023] Figure 1 This is a front view of the electric field coupling multi-well interference simulation experimental platform proposed in this utility model;
[0024] Figure 2 This is a three-dimensional view of the electric field coupling multi-well interference simulation experimental platform proposed in this utility model;
[0025] Figure 3 This is a rear view of the electric field coupling multi-well interference simulation experimental platform proposed in this utility model.
[0026] Figure 4 This is a partial structural breakdown diagram of the electric field coupling multi-well interference simulation experimental platform proposed in this utility model;
[0027] Figure 5 This is a schematic diagram of the compaction mechanism of the electric field coupling type multi-well interference simulation experimental platform proposed in this utility model;
[0028] Figure 6 for Figure 5 A magnified view is shown in section A.
[0029] Legend:
[0030] 1. Body; 2. Heat dissipation mechanism; 201. Square block; 202. Fan; 203. Battery; 204. Drive assembly; 2041. Motor 1; 2042. Support plate; 2043. Fixed long rod; 2044. Rotating wheel 1; 2045. Belt; 2046. Rotating wheel 2; 3. Compaction mechanism; 301. Rolling column; 302. Moving plate; 303. Actuating assembly; 3031. Motor 2; 3032. C-shaped plate; 3033. Guide column; 3034. Long inner sliding groove plate; 3035. Bidirectional threaded rod; 3036. Worm gear; 3037. Worm wheel; 3038. Square piece; 4. Lighting tube; 5. Ventilation filter; 6. Guide mechanism; 601. Sliding groove long plate; 602. Sliding block. Detailed Implementation
[0031] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0032] Reference Figure 3 and Figure 4This utility model provides an embodiment of an electric field coupling type multi-well interference simulation experimental platform, including a body 1. Heat dissipation mechanisms 2 are installed on both the front and rear sides of the inner wall of the body 1, used to dissipate heat from the internal components of the body 1. A compaction mechanism 3 is installed in the middle of the top wall of the body 1, used to compact the sand sample being tested. Guide mechanisms 6 are installed on both the front and rear sides of the interior of the body 1, used for guidance. The heat dissipation mechanism 2 includes a square block 201, installed on the front side of the inner wall of the body 1. Fans 202 are fixedly connected to adjacent sides of the outer wall of the square block 201, and batteries 203 are fixedly connected to the side of the outer wall of the square block 201 away from it. A drive assembly 204 is installed on the rear side of the outer wall of the body 1, including a motor 2041, installed on the rear side of the outer wall of the body 1, with a fixed long rod 2043 fixedly connected to the output end of the motor 2041. Multiple rotating wheels 2044 are fixedly connected at equal intervals to the outer wall of the fixed long rod 2043. By turning on the motor 2041, the fixed long rod 2043 and the rotating wheels 2044 on the outer wall can be driven to rotate synchronously. A belt 2045 is installed on the outer wall of the rotating wheel 2044. Rotating wheels 2046 are rotatably connected to the front and rear sides of the lower middle part of the inner wall of the machine body 1. The rotating wheels 2044 and the rotating wheels 2046 are connected by the belt 2045. The inner wall of the square block 201 is fixedly connected to the outer wall of the belt 2045. The guide mechanism 6 includes a sliding long plate 601. The sliding long plate 601 is installed on the front and rear sides of the inner side of the machine body 1. A sliding block 602 is slidably connected inside the sliding long plate 601. The outer wall of the sliding block 602 is fixedly connected to the outer wall of the moving plate 302. By fixing the sliding block 602 to the outer wall of the moving plate 302, the movement trajectory and direction of the moving plate 302 can be restricted.
[0033] Specifically, after the motor 2041 is started, it drives the fixed rod 2043 at the output end to rotate. Multiple rotating wheels 2044 on the fixed rod 2043 rotate simultaneously. These rotating wheels 2044 are connected to rotating wheels 2046 via a belt 2045, transmitting power to the rotating wheels 2046 in the lower middle part of the inner wall of the machine body 1 to achieve synchronous rotation. Since the inner wall of the square block 201 is fixedly connected to the outer wall of the belt 2045, when the belt 2045 rotates, the square block 201 circulates along the belt 2045's trajectory, driving the fan 202 synchronously. As the machine moves, the fan 202 continues to operate, generating airflow and accelerating the airflow inside the body 1. During the movement, the fan 202 covers a larger area, enhancing the overall heat dissipation effect. The guide mechanism 6 includes a sliding long plate 601, which is installed on the front and rear sides inside the body 1. A sliding block 602 is slidably connected inside the sliding long plate 601. The outer wall of the sliding block 602 is fixedly connected to the outer wall of the moving plate 302 on one side. By fixing the sliding block 602 to the outer wall of the moving plate 302, the movement trajectory and direction of the moving plate 302 can be restricted.
[0034] Reference Figure 2 , Figure 5 and Figure 6 The compaction mechanism 3 includes a rolling column 301, which is installed in the middle of the top wall of the machine body 1. A movable plate 302 is fixedly connected to the top of the rolling column 301. An execution component 303 is installed in the middle of the top wall of the machine body 1. The execution component 303 includes a second motor 3031, which is installed in the middle of the top wall of the machine body 1. A worm gear 3036 is fixedly connected to the output end of the second motor 3031. Multiple elongated inner sliding groove plates 3034 are fixedly connected at equal intervals on the top of the machine body 1. C-shaped plates 3032 are slidably connected inside the elongated inner sliding groove plates 3034. Multiple C-shaped plates 3032 are fixedly connected at equal intervals to the bottom of the C-shaped plates 3032. A square plate 3038 has a bidirectional threaded rod 3035 rotatably connected to the middle of its outer wall. The square plate 3038 supports and fixes the bidirectional threaded rod 3035 for rotation. A worm gear 3037 is fixedly connected to the middle of the outer wall of the bidirectional threaded rod 3035. Guide columns 3033 are fixedly connected to the front and rear sides of the outer wall of the C-shaped plate 3032. A lighting tube 4 is installed on the top of the machine body 1. The lighting tube 4 can play a role in auxiliary lighting in environments with poor lighting. A ventilation filter 5 is installed on the right side of the outer wall of the machine body 1. The ventilation filter 5 can promote the dissipation of heat inside the machine body 1.
[0035] Specifically, the motor 3031 starts and drives the worm 3036 at the output end to rotate. When the worm 3036 rotates, it meshes with the worm wheel 3037 and transmits the rotational motion to the bidirectional threaded rod 3035, so that the bidirectional threaded rod 3035 rotates synchronously. The rotation of the bidirectional threaded rod 3035 causes the moving plates 302 on both sides of the outer wall to move in opposite or opposite directions. When the moving plates 302 move, they drive the rolling column 301 at the bottom to move synchronously. When the rolling column 301 moves, it rolls on the surface of the sand sample inside the machine body 1 to compact the sand. The top of the machine body 1 is equipped with a lighting tube 4, which can play a role in auxiliary lighting in environments with poor lighting. The right side of the outer wall of the machine body 1 is equipped with a ventilation filter 5, which can promote the dissipation of heat inside the machine body 1.
[0036] Reference Figure 1 , Figure 2 and Figure 3 The outer wall of the machine body 1 is fixedly connected to the support plate 2042. The top of the support plate 2042 is fixedly connected to the bottom of the motor 2041. The support plate 2042 serves to support and fix the motor 2041. The worm 3036 is meshed with the worm wheel 3037. The outer wall of the bidirectional threaded rod 3035 is threadedly connected to the inside of the moving plate 302. Through the meshing of the worm 3036 and the worm wheel 3037, the bidirectional threaded rod 3035 on the outer wall can be driven to rotate.
[0037] Specifically, the rear side of the outer wall of the machine body 1 is fixedly connected to the support plate 2042. The top of the support plate 2042 is fixedly connected to the bottom of the motor 2041. The support plate 2042 serves to support and fix the motor 2041. The worm 3036 is meshed with the worm wheel 3037. The outer wall of the bidirectional threaded rod 3035 is threadedly connected to the inside of the moving plate 302. Through the meshing of the worm 3036 and the worm wheel 3037, the bidirectional threaded rod 3035 on the outer wall can be driven to rotate.
[0038] Working principle: After the motor 2041 is started, it drives the fixed rod 2043 at the output end to rotate. The multiple rotating wheels 2044 on the fixed rod 2043 rotate together. The rotating wheels 2044 are connected to the rotating wheel 2046 through the belt 2045, which transmits power to the rotating wheel 2046 in the lower middle part of the inner wall of the machine body 1 to achieve synchronous rotation. Since the inner wall of the square block 201 is fixedly connected to the outer wall of the belt 2045, when the belt 2045 rotates, the square block 201 moves in a cycle along the movement trajectory of the belt 2045. The square block 201 drives the fan 202 to move synchronously. The fan 202 continuously runs to generate airflow, which accelerates the airflow inside the machine body 1. During the movement, the blowing range of the fan 202 covers a larger area, which enhances the overall heat dissipation effect. This avoids the problem that the existing fan 202 can only dissipate heat in a relatively single direction inside the equipment and cannot achieve synchronous airflow and cooling of components in different positions inside the equipment, which may cause the equipment to be damaged by high temperature.
[0039] The motor 3031 starts and drives the worm 3036 at the output end to rotate. When the worm 3036 rotates, it meshes with the worm wheel 3037 and transmits the rotational motion to the bidirectional threaded rod 3035, so that the bidirectional threaded rod 3035 rotates synchronously. The rotation of the bidirectional threaded rod 3035 causes the moving plates 302 on both sides of the outer wall to move in opposite or opposite directions in a straight line. When the moving plates 302 move, they drive the rolling column 301 at the bottom to move synchronously. When the rolling column 301 moves, it rolls on the surface of the sand sample inside the machine body 1, thereby compacting the sand and providing a standard sample for subsequent testing and improving the accuracy of experimental data.
[0040] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present 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 the present utility model should be included within the protection scope of the present utility model.
Claims
1. An electric field-coupled multi-well interference simulation experimental platform, comprising a body (1), characterized in that: The inner wall of the machine body (1) is equipped with a heat dissipation mechanism (2) on both the front and rear sides. The heat dissipation mechanism (2) is used to blow air to dissipate heat from the components inside the machine body (1). A compaction mechanism (3) is installed in the middle of the top wall of the machine body (1). The compaction mechanism (3) is used to compact the sand sample being tested. A guide mechanism (6) is installed on both the front and rear sides of the interior of the machine body (1). The guide mechanism (6) is used for guidance. The heat dissipation mechanism (2) includes a square block (201), which is installed on the front side of the inner wall of the body (1). A fan (202) is fixedly connected to each adjacent side of the outer wall of the square block (201). A battery (203) is fixedly connected to each side of the outer wall of the square block (201) away from the outer wall. A drive assembly (204) is installed on the rear side of the outer wall of the body (1).
2. The electric field coupling multi-well interference simulation experimental platform according to claim 1, characterized in that: The drive assembly (204) includes a motor (2041), which is installed on the rear side of the outer wall of the body (1). The output end of the motor (2041) is fixedly connected to a fixed long rod (2043). Multiple rotating wheels (2044) are fixedly connected at equal intervals on the outer wall of the fixed long rod (2043). A belt (2045) is installed on the outer wall of the rotating wheels (2044). Rotating wheels (2046) are rotatably connected to the front and rear sides of the lower middle part of the inner wall of the body (1). The rotating wheels (2044) and rotating wheels (2046) are connected by a belt (2045). The inner wall of the square block (201) is fixedly connected to the outer wall of the belt (2045).
3. The electric field coupling multi-well interference simulation experimental platform according to claim 1, characterized in that: The compaction mechanism (3) includes a rolling column (301), which is installed in the middle of the top wall of the machine body (1). A moving plate (302) is fixedly connected to the top of the rolling column (301), and an execution component (303) is installed in the middle of the top wall of the machine body (1).
4. The electric field coupling multi-well interference simulation experimental platform according to claim 3, characterized in that: The execution component (303) includes a second motor (3031), which is installed in the middle of the top wall of the body (1). The output end of the second motor (3031) is fixedly connected to a worm gear (3036). Multiple elongated inner sliding plates (3034) are fixedly connected at equal intervals on the top of the body (1). A C-shaped plate (3032) is slidably connected inside the elongated inner sliding plate (3034). Multiple square pieces (3038) are fixedly connected at equal intervals at the bottom of the C-shaped plate (3032). A bidirectional threaded rod (3035) is rotatably connected to the middle of the outer wall of the square piece (3038). A worm wheel (3037) is fixedly connected to the middle of the outer wall of the bidirectional threaded rod (3035). Guide posts (3033) are fixedly connected to the front and rear sides of the outer wall of the C-shaped plate (3032).
5. The electric field coupling multi-well interference simulation experimental platform according to claim 1, characterized in that: The guiding mechanism (6) includes a slide plate (601), which is installed on the front and rear sides of the interior of the machine body (1). A sliding block (602) is slidably connected inside the slide plate (601), and the outer wall of the sliding block (602) is fixedly connected to the outer wall of the moving plate (302) on one side adjacent to it.
6. The electric field coupling multi-well interference simulation experimental platform according to claim 2, characterized in that: A lighting tube (4) is installed on the top of the body (1), and a ventilation filter (5) is installed on the right side of the outer wall of the body (1).
7. The electric field coupling multi-well interference simulation experimental platform according to claim 2, characterized in that: The outer wall of the body (1) is fixedly connected to the support plate (2042), and the top of the support plate (2042) is fixedly connected to the bottom of the motor (2041).
8. The electric field coupling multi-well interference simulation experimental platform according to claim 4, characterized in that: The worm (3036) is meshed with the worm wheel (3037), and the outer wall of the bidirectional threaded rod (3035) is threadedly connected to the inside of the moving plate (302).