Mechanical device for pressure power generation

By designing a pressure power generation device that includes a tough pressure plate and multiple components, the problem of low energy utilization efficiency in different scenarios is solved, and efficient energy conversion and storage are achieved.

CN224266503UActive Publication Date: 2026-05-22NANTONG INST OF TECH
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NANTONG INST OF TECH
Filing Date
2025-05-29
Publication Date
2026-05-22

AI Technical Summary

Technical Problem

Existing pressure power generation devices are unable to fully convert energy at different pressures under different scenarios, resulting in limited energy utilization efficiency and problems such as large energy loss and insufficient force-bearing area.

Method used

A mechanical device was designed, comprising a tough pressure plate, a support cylinder, a support slide column, a pressure plate, a docking anti-slip sleeve, a rectifier energy storage mechanism, a winding drum, an induction coil, a telescopic rod, a return spring, a pressure cylinder, and an arc-shaped magnetic plate. The force-bearing area is changed by adjusting the number of clamps and docking anti-slip sleeves. Current is generated by the relative movement of the arc-shaped magnetic plate and the induction coil and stored through the rectifier energy storage mechanism.

Benefits of technology

It enables the force-bearing area to be changed according to the usage scenario, thereby improving the efficiency of pressure power generation, reducing energy consumption, and ensuring the full conversion and utilization of energy in different scenarios.

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Abstract

The utility model discloses a mechanical device for pressure power generation relates to pressure power generation technical field, including tenacious pressing plate, the lower part of tenacious pressing plate is provided with efficient power generation mechanism, and efficient power generation mechanism includes four support cylinders, and the inside of each support cylinder is slidably connected with support slide column and pressure cylinder respectively, and the top of each support slide column is all fixedly connected with the pressure plate, and the outer surface of each pressure plate is all fixedly connected with the butt joint antiskid sleeve, and the inner wall of each pressure cylinder is all fixedly connected with two arc magnetic boards. It can through tenacious pressing plate, shell, support cylinder, support slide column, pressure plate, butt joint antiskid sleeve, rectifier battery mechanism, winding drum, induction coil, telescopic link, reset spring, pressure cylinder and arc magnetic board, can according to the pressure size that the use site often receives, select in tenacious pressing plate bottom several shell and insert the suitable number of pressure plate and butt joint antiskid sleeve in the shell, and then corresponding number of pressure plate can possibly pass through the pressure that tenacious pressing plate on suffers to give pressure cylinder.
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Description

Technical Field

[0001] This utility model relates to the field of pressure power generation technology, specifically a mechanical device for pressure power generation. Background Technology

[0002] Pressure power generation is the process of converting pressure energy into electrical energy through mechanical devices. The principle is to use pressure to deform or displace an object to drive a generator to generate electricity. It is commonly used in scenarios such as emergency power supply for industrial pipeline pressure monitoring, power generation under vehicles running over roads, energy recovery in building counterweight systems, and wave energy power generation. In these cases, corresponding mechanical devices are designed according to the pressure source and transmission method to efficiently capture pressure energy and generate electricity stably.

[0003] According to the utility model patent application CN221195295U, a pressure power generation device is disclosed. When a vehicle passes the pedal of the pressure power generation device, gravity causes the pedal to drive a pressure cup connected to it to move vertically downwards. The drive cam, constrained by the roller shaft on the pressure cup, rotates clockwise along its axis. A large gear is directly connected to the drive cam and rotates clockwise under its action. The large gear meshes with the small gear and drives the small gear to rotate. Due to the different transmission ratios of the two gears, a speed-increasing effect is achieved. Each gear is connected to a DC generator through upper and lower cover plates, enabling the group of DC generators to generate electricity simultaneously. Finally, the downward pressure leaves the pedal, ending the pressing process, and the return spring... Under its action, the pressure cup moves upward to reset, while simultaneously driving the drive cam to rotate clockwise, thereby enabling the DC generator to generate electricity again. This achieves not only unidirectional pressure-driven power generation but also the ability to generate electricity using rebound force. Furthermore, the differential speed design further increases the power generation efficiency. However, its energy relies on gear transmission, resulting in significant energy loss. It is also prone to gear breakage due to excessive instantaneous pressure, which affects energy transmission efficiency. Moreover, its force-bearing area is relatively limited, lacking an efficient power generation structure that can adjust the force-bearing area according to the application scenario. This makes it difficult to fully convert energy under different pressures in different scenarios, resulting in limited energy utilization efficiency. To address these issues, we provide a mechanical device for pressure power generation. Utility Model Content

[0004] The purpose of this invention is to overcome the shortcomings of the existing technology and provide a mechanical device for pressure power generation.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a mechanical device for pressure power generation, comprising a tough pressure plate, wherein a high-efficiency power generation mechanism is provided below the tough pressure plate;

[0006] The high-efficiency power generation mechanism includes four support cylinders. Each support cylinder has a support column and a pressure cylinder slidably connected inside. Each support column has a pressure plate fixedly connected to its top. Each pressure plate has a mating anti-slip sleeve fixedly connected to its outer surface. Each pressure cylinder has two arc-shaped magnetic plates fixedly connected to its inner wall. The bottom surface of the tough pressure plate has several identical clips fixedly connected to it. Each support cylinder has a rectifier energy storage mechanism inside. Each support cylinder has a winding drum and a telescopic rod fixedly connected to its inner bottom wall. Each winding drum has an induction coil fixedly connected to its outer surface. Each telescopic rod has a return spring sleeved on its outer surface. Each induction coil is electrically connected to the rectifier energy storage mechanism through a wire.

[0007] Furthermore, the bottom end of each of the supporting sliding columns is fixedly connected to the top end of the pressure cylinder, the outer surface of each of the mating anti-slip sleeves is in contact with the inner wall of the clamping case, the telescopic end of each of the telescopic rods is fixedly connected to the inner top wall of the pressure cylinder, the two ends of each of the return springs are in contact with the inner bottom wall of the supporting cylinder and the inner top wall of the pressure cylinder respectively, and an anti-slip pad is fixedly connected to the upper surface of the tough pressure plate, and the upper surface of the anti-slip pad is provided with several identical anti-slip grooves.

[0008] Furthermore, each of the support cylinders is fixedly connected to a mounting ring on its outer surface, and each mounting ring has several identical mounting holes on its upper surface.

[0009] Furthermore, each of the support cylinders is fixedly connected to a grip anti-slip sleeve, and each of the grip anti-slip sleeves has several identical anti-slip protrusions fixedly connected to its outer surface.

[0010] Furthermore, each of the support cylinders has two wire holes on its outer surface, and each of the support cylinders has a plug plate inside, with the upper surface of each plug plate in contact with the bottom surface of the rectifier energy storage mechanism.

[0011] Furthermore, each of the plugs has two fastening bolts threaded to its inner wall, and the outer surface of each fastening bolt is threaded to the inner wall of the support cylinder.

[0012] Furthermore, each of the pressure cylinders has four limiting sliding pins fixedly connected to its outer surface, and the outer surface of each limiting sliding pin is slidably connected to the inside of the support cylinder.

[0013] Compared with existing technologies, this pressure-generating mechanical device has the following advantages:

[0014] This invention utilizes the coordinated structure of a robust pressure plate, a clamping shell, a support cylinder, a support slide column, a pressure plate, a docking anti-slip sleeve, a rectifier energy storage mechanism, a winding cylinder, an induction coil, a telescopic rod, a return spring, a pressure cylinder, and an arc-shaped magnetic plate. Depending on the frequently encountered pressure at the application site, a suitable number of pressure plates and docking anti-slip sleeves can be inserted into several clamping shells at the bottom of the robust pressure plate. The corresponding number of pressure plates can then transfer the pressure on the robust pressure plate to the pressure cylinder as much as possible. During the up-and-down movement of the arc-shaped magnetic plate relative to the induction coil within the pressure cylinder, the induction coil cuts the magnetic lines of force between the two arc-shaped magnetic plates. The resulting current is rectified and stored by the rectifier energy storage mechanism. This method consumes less energy and effectively changes the pressure-generating efficiency by adjusting the force-bearing area according to the application scenario. It avoids the problem of limited energy utilization efficiency caused by the lack of a high-efficiency power generation structure that can adjust the force-bearing area according to the application scenario, which makes it difficult to fully convert energy under different pressures in different scenarios. Attached Figure Description

[0015] Figure 1 This is a three-dimensional overall structural diagram of the mechanical device for pressure power generation according to this utility model;

[0016] Figure 2 This is a three-dimensional structural diagram of the tough pressure plate of this utility model, viewed from below.

[0017] Figure 3 This is a three-dimensional structural diagram of the support cylinder of this utility model from a bottom view;

[0018] Figure 4 This is a side-view sectional structural diagram of the support cylinder of this utility model;

[0019] Figure 5 This is a cross-sectional three-dimensional structural diagram of the support cylinder of this utility model;

[0020] Figure 6 This is a three-dimensional structural diagram of the pressure plate of this utility model, viewed from below.

[0021] In the diagram: 1. Tough pressure plate; 2. High-efficiency power generation mechanism; 201. Clamping shell; 202. Support cylinder; 203. Support slide column; 204. Pressure plate; 205. Connecting anti-slip sleeve; 206. Rectifying energy storage mechanism; 207. Winding cylinder; 208. Induction coil; 209. Telescopic rod; 210. Return spring; 211. Pressure cylinder; 212. Arc-shaped magnetic plate; 3. Anti-slip pad; 4. Anti-slip groove; 5. Mounting ring; 6. Mounting hole; 7. Hand grip anti-slip sleeve; 8. Anti-slip protrusion; 9. Blocking plate; 10. Wire hole; 11. Fastening bolt; 12. Limiting slide column. Detailed Implementation

[0022] The principles and features of this utility model are described below with reference to the accompanying drawings. The examples given are only for explaining this utility model and are not intended to limit the scope of this utility model.

[0023] This embodiment provides a mechanical device for pressure power generation. The device is used in pressure power generation scenarios and has a high-efficiency power generation structure that can change the force-bearing area according to the usage scenario, thereby making full use of the energy of different pressures under different scenarios and ensuring its energy utilization efficiency.

[0024] Reference Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6 A pressure-generating mechanical device includes a tough pressure plate 1, which is hard and tough, and has good pressure resistance. A high-efficiency power generation mechanism 2 is arranged below the tough pressure plate 1. The high-efficiency power generation mechanism 2 includes four support cylinders 202. Each support cylinder 202 has a support slide column 203 and a pressure cylinder 211 slidably connected inside. The bottom end of each support slide column 203 is fixedly connected to the top end of the pressure cylinder 211. An anti-slip pad 3 is fixedly connected to the upper surface of the tough pressure plate 1. The upper surface of the anti-slip pad 3 has several identical anti-slip grooves 4. By setting the anti-slip grooves 4, the anti-slip property of the upper surface of the anti-slip pad 3 can be increased. By setting the anti-slip pad 3 and the anti-slip grooves 4, the anti-slip property of the upper surface of the tough pressure plate 1 can be increased, thereby allowing objects on it to move normally and increasing the pressure transmission effect.

[0025] Reference Figure 3 , Figure 4 and Figure 6 Each support slide 203 has a pressure plate 204 fixedly connected to its top end. Each pressure plate 204 has a mating anti-slip sleeve 205 fixedly connected to its outer surface. The outer surface of each mating anti-slip sleeve 205 is in contact with the inner wall of the clamp 201. Each support cylinder 202 has an installation ring 5 fixedly connected to its outer surface. Each installation ring 5 has several identical installation holes 6 on its upper surface. By setting the installation holes 6, the installation ring 5 can be fixed at the required installation position of the entire device with the help of external bolts and other fixing structures.

[0026] Reference Figure 2 , Figure 3 , Figure 4 and Figure 6Each pressure cylinder 211 has two arc-shaped magnetic plates 212 fixedly connected to its inner wall. The two arc-shaped magnetic plates 212 have different magnetic polarities and good parallel magnetic field lines between them, which is conducive to power generation in conjunction with other wire structures. Several identical clips 201 are fixedly connected to the bottom surface of the tough pressure plate 1. Each support cylinder 202 has a hand grip anti-slip sleeve 7 fixedly connected to its outer surface. Several identical anti-slip protrusions 8 are fixedly connected to the outer surface of each hand grip anti-slip sleeve 7. By setting the anti-slip protrusions 8, the anti-slip properties of the outer surface of the hand grip anti-slip sleeve 7 can be increased together. By setting the hand grip anti-slip sleeve 7 and the anti-slip protrusions 8, the anti-slip properties of the outer surface of the support cylinder 202 can be increased together.

[0027] Reference Figure 4 , Figure 5 and Figure 6 Each support cylinder 202 is equipped with a rectifier and energy storage mechanism 206. The rectifier and energy storage mechanism 206 is a mature existing technology structure, which includes a circuit structure with rectification function and an energy storage structure with energy storage function. The appropriate model can be selected according to actual use. It is mainly used for illustration here. The inner bottom wall of each support cylinder 202 is fixedly connected to a winding cylinder 207 and a telescopic rod 209. The telescopic end of each telescopic rod 209 is fixedly connected to the inner top wall of the pressure cylinder 211. Two wire holes 10 are opened on the outer surface of each support cylinder 202. A blocking plate 9 is snapped into the inside of each support cylinder 202. The upper surface of each blocking plate 9 is in contact with the bottom surface of the rectifier and energy storage mechanism 206. By setting the blocking plate 9, the rectifier and energy storage mechanism 206 can be blocked in the support cylinder 202. By setting the wire holes 10, it is convenient for the rectifier and energy storage mechanism 206 to be electrically connected to the external power receiving mechanism through the wire.

[0028] Reference Figure 3 , Figure 4 and Figure 5 Each winding cylinder 207 has an induction coil 208 fixedly connected to its outer surface, and each telescopic rod 209 has a return spring 210 sleeved on its outer surface. The two ends of each return spring 210 are in contact with the inner bottom wall of the support cylinder 202 and the inner top wall of the pressure cylinder 211, respectively. Each blocking plate 9 has two fastening bolts 11 threadedly connected to its inner wall. The outer surface of each fastening bolt 11 is threadedly connected to the inner wall of the support cylinder 202. By setting the fastening bolts 11, the support cylinder 202 and the blocking plate 9 can be locked, thereby preventing the rectifier energy storage mechanism 206 from falling out of the support cylinder 202.

[0029] Reference Figure 4 and Figure 6Each induction coil 208 is electrically connected to the rectifier and energy storage mechanism 206 via a wire. Four limiting slide pins 12 are fixedly connected to the outer surface of each pressure cylinder 211. The outer surface of each limiting slide pin 12 is slidably connected to the inside of the support cylinder 202. By setting the limiting slide pins 12, the pressure cylinder 211 can slide vertically and directionally inside the support cylinder 202, thereby increasing the directional and stable vertical sliding of the pressure cylinder 211 inside the support cylinder 202.

[0030] Working principle: During use, depending on the pressure frequently encountered at the application site, a suitable number of pressure plates 204 and anti-slip sleeves 205 are inserted into several clips 201 at the bottom of the tough pressure plate 1. The corresponding number of pressure plates 204 can transfer the pressure on the tough pressure plate 1 to the pressure cylinder 211 as much as possible. During the up-and-down movement of the arc-shaped magnetic plate 212 inside the pressure cylinder 211 relative to the induction coil 208, the induction coil 208 cuts the magnetic lines of force between the two arc-shaped magnetic plates 212. The generated current is rectified and stored by the rectifier energy storage mechanism 206. This method consumes less energy and can change the force area according to the application scenario and improve the pressure power generation efficiency. The design of the entire pressure power generation mechanical device effectively solves the problem that the lack of a high-efficiency power generation structure that can change the force area according to the application scenario makes it difficult to fully convert the energy of different pressures under different scenarios, resulting in a relatively limited energy utilization efficiency.

[0031] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. 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. A mechanical device for pressure power generation, comprising a tough pressure plate (1), characterized in that: A high-efficiency power generation mechanism (2) is provided below the tough pressure plate (1). The high-efficiency power generation mechanism (2) includes four support cylinders (202). Each support cylinder (202) has a support slide column (203) and a pressure cylinder (211) slidably connected inside. Each support slide column (203) has a pressure plate (204) fixedly connected to its top. Each pressure plate (204) has a mating anti-slip sleeve (205) fixedly connected to its outer surface. Each pressure cylinder (211) has two arc-shaped magnetic plates (212) fixedly connected to its inner wall. The bottom surface of the tough pressure plate (1) has several phases fixedly connected to it. The same type of casing (201) is provided with a rectifier energy storage mechanism (206) inside each of the support cylinders (202). The inner bottom wall of each support cylinder (202) is fixedly connected with a winding cylinder (207) and a telescopic rod (209). The outer surface of each winding cylinder (207) is fixedly connected with an induction coil (208). The outer surface of each telescopic rod (209) is fitted with a reset spring (210). Each induction coil (208) is electrically connected to the rectifier energy storage mechanism (206) through a wire.

2. The mechanical device for pressure power generation according to claim 1, characterized in that: The bottom end of each of the supporting slides (203) is fixedly connected to the top end of the pressure cylinder (211), the outer surface of each of the docking anti-slip sleeves (205) is in contact with the inner wall of the clamp (201), the telescopic end of each of the telescopic rods (209) is fixedly connected to the inner top wall of the pressure cylinder (211), the two ends of each of the return springs (210) are in contact with the inner bottom wall of the supporting cylinder (202) and the inner top wall of the pressure cylinder (211) respectively, and the upper surface of the tough pressure plate (1) is fixedly connected with an anti-slip pad (3), and the upper surface of the anti-slip pad (3) is provided with several identical anti-slip grooves (4).

3. The mechanical device for pressure power generation according to claim 1, characterized in that: Each of the support cylinders (202) is fixedly connected to an installation ring (5), and each of the installation rings (5) has several identical installation holes (6) on its upper surface.

4. The mechanical device for pressure power generation according to claim 1, characterized in that: Each of the support cylinders (202) is fixedly connected to a hand grip anti-slip sleeve (7), and each of the hand grip anti-slip sleeves (7) is fixedly connected to a number of identical anti-slip protrusions (8) on its outer surface.

5. A mechanical device for pressure power generation according to claim 1, characterized in that: Two wire holes (10) are provided on the outer surface of each of the support cylinders (202), and a plug plate (9) is snapped into the inside of each of the support cylinders (202). The upper surface of each plug plate (9) is in contact with the bottom surface of the rectifier energy storage mechanism (206).

6. A mechanical device for pressure power generation according to claim 5, characterized in that: Each of the plugs (9) has two fastening bolts (11) threaded to its inner wall, and the outer surface of each fastening bolt (11) is threaded to the inner wall of the support cylinder (202).

7. A mechanical device for pressure power generation according to claim 1, characterized in that: Each of the pressure cylinders (211) has four limiting slides (12) fixedly connected to its outer surface, and the outer surface of each limiting slide (12) is slidably connected to the inside of the support cylinder (202).