Tidal power generation seaborne shared charging station device
By installing sliding mechanisms, including scraper plates, support rods, turbines and other components at the bottom of the tidal power generation device, the problem of difficulty in removing floating objects is solved, effective protection of the bottom of the device is achieved, and the service life of the device is extended.
Patent Information
- Application Number
- CN202510313510.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-17
- Publication Date
- 2025-05-13
AI Technical Summary
It is difficult to remove floating objects at the bottom of existing tidal power generation devices, resulting in accelerated corrosion and shortened device life.
A sliding mechanism is designed, including scraper plates, support rods, turbines, fixing plates, carriages and rotating rods. Through the synergy of these components, effective removal of floating objects is achieved.
Effectively prevent floating objects from adhering to the bottom of the device, reduce corrosion and extend the life of the device.
Smart Images

Figure CN119975682A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of tidal power generation, and in particular to a tidal power generation offshore shared charging station device. Background Art
[0002] The tidal power generation offshore shared charging station device is a facility that uses tidal energy to generate electricity and uses it to provide charging services for offshore ships or other offshore equipment. This device combines the renewability of tidal energy and the convenience of offshore charging, aiming to reduce dependence on fossil fuels and promote the green transformation of the marine industry.
[0003] Tidal power generation offshore shared charging station devices represent an innovative energy solution that can not only effectively utilize marine resources, but also provide sustainable energy support for marine activities. With the advancement of technology and the enhancement of environmental awareness, such devices may be more widely used in the future.
[0004] Tidal power generation shared charging devices usually float on the sea surface and use tidal energy to generate electricity. As time goes by, more floating objects will adhere to the bottom of the power generation device. However, there is no mechanism in the prior art that can easily remove the floating objects at the bottom of the tidal power generation device. As a result, the floating objects adhere to the bottom of the shared charging device for a long time, which will corrode the bottom of the shared charging device, thereby accelerating the damage of the shared charging device and shortening its life. Summary of the invention
[0005] The purpose of the present invention is to provide a tidal power generation offshore shared charging station device, which solves the problem that there is no mechanism in the prior art to facilitate the removal of floating objects at the bottom of the tidal power generation device, so that the floating objects adhere to the bottom of the shared charging device for a long time, which will corrode the bottom of the shared charging device, thereby accelerating the damage of the shared charging device.
[0006] In order to achieve the above-mentioned object of the invention, the technical solution adopted by the present invention is:
[0007] A sliding mechanism is installed on the shared charging device body, and the sliding mechanism includes a scraping plate, a support rod is installed on the scraping plate, and a turbine is installed on the support rod. A fixed plate is installed on one side of the shared charging device body, and a slide is slidably installed on the fixed plate. A first sliding groove matching the slide is drilled on the fixed plate, and a rotating rod is rotatably installed under the slide.
[0008] The installation of the scraper plate facilitates the scraping of floating objects attached to the lower part of the shared charging device body. The installation of the support rod facilitates the support, thereby facilitating the installation of the turbine. The installation of the fixed plate facilitates the support, thereby facilitating the installation of the corresponding mechanism on the fixed plate.
[0009] As an improvement, a worm gear is installed on the rotating rod, and the worm gear is meshed with the turbine. A second slide groove is cut on the fixed plate, and a shock absorber is installed in the second slide groove.
[0010] The rotating installation of the rotating rod facilitates the connection of the vortex rod, thereby extending the function of the vortex rod and driving the rotation of the turbine when the vortex rod rotates. The installation of the shock absorber facilitates the contraction effect, thereby facilitating a more stable installation of the spring.
[0011] As an improvement, the shock absorber outer sleeve is provided with a spring, the fixed plate is provided with a bearing seat, the rotating rod passes through the bearing seat, and the slide is connected to the bearing seat.
[0012] The installation of the spring facilitates the buffering effect, which is beneficial to the bearing seat to buffer the bearing seat when it slides. The installation of the bearing seat facilitates the penetration of the rotating rod, which is convenient for driving the movement of the rotating rod while not affecting the rotation of the rotating rod.
[0013] As an improvement, the bearing seat is slidably installed in the second sliding groove, and sliding plates are respectively installed on the bearing seat and the spring.
[0014] The installation of the sliding plate makes it easy to increase the contact surface between the bearing seat and the spring, so that the bearing seat is more stable when sliding.
[0015] As an improvement, a pair of the sliding plates are matched, a first motor is installed on the slide, the first motor passes through the slide and is connected to the rotating rod, and a first cylinder is installed on the fixed plate, and the first cylinder is connected to the slide.
[0016] The installation of the first motor facilitates the conversion of electrical energy into mechanical energy. Therefore, when the first motor rotates, it is easy to drive the rotating rod to rotate. The installation of the first cylinder facilitates the movement of the slide, thereby facilitating the turbine rod to approach the turbine.
[0017] As an improvement, the scraping mechanism includes a threaded rod, which is installed under the shared charging device body. A sliding rod is installed under the shared charging device body, and sliders are slidably installed on the threaded rod and the sliding rod respectively.
[0018] The installation of the threaded rod facilitates the realization of a rotational movement effect, thereby facilitating the slider thereon to achieve a sliding effect, and thus the slider facilitates the scraper plate to slide, while the installation of the sliding rod facilitates the realization of a supporting effect, making the installation of the scraper plate more stable, and the scraper plate can be more balanced when sliding.
[0019] As an improvement, the scraper plate is arranged between a pair of sliders, and a second motor is installed on one side of the shared charging device body, and the second motor is connected to the threaded rod.
[0020] The installation of the second motor facilitates the conversion of electrical energy into mechanical energy, and thus the installation of the second motor facilitates the rotation of the threaded rod.
[0021] As an improvement, rotating blocks are respectively installed on both sides of the scraping plate, and the rotating blocks are arranged through the sliding block, and a circular groove matching the rotating blocks is bored in the sliding block.
[0022] The installation of the rotating block facilitates the function of connecting the scraper plate and the slider. At the same time, the rotating block is convenient for rotating in the slider through the rotation of the scraper plate.
[0023] As an improvement, a second cylinder is installed in the rotating block, a limiting block is installed at one end of the second cylinder, and the limiting block matches the circular groove.
[0024] The installation of the second cylinder facilitates the control of the limit block, which is convenient for driving the limit block to extend out of the rotating block during extension. The installation of the limit block facilitates the engagement of the slider, thereby ensuring the stability of the rotating block.
[0025] The beneficial effects of the present invention are as follows: by setting up corresponding mechanisms, it is convenient to remove floating objects at the bottom of the tidal power generation device, so that the floating objects will not adhere to the bottom of the shared charging device, causing corrosion to the bottom of the shared charging device, thereby alleviating the problem of damage to the shared charging device. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 This is a main cross-section of a tidal energy power generation offshore shared charging station device of the present invention Figure 1 .
[0027] Figure 2 for Figure 1 Schematic diagram of the structure at point A in the middle.
[0028] Figure 3 This is a main cross-section of a tidal energy power generation offshore shared charging station device of the present invention Figure 2 .
[0029] Figure 4 for Figure 3Schematic diagram of the structure at point B in the middle.
[0030] Figure 5 This is a top view and cross-section of a tidal energy power generation offshore shared charging station device according to the present invention.
[0031] In the figure: 1. Shared charging device body; 2. Sliding mechanism; 201. Scraping plate; 202. Support rod; 203. Turbine; 204. Fixed plate; 205. Slide; 206. Rotating rod; 207. Turbine rod; 208. Shock absorber; 209. Spring; 210. Bearing seat; 211. Sliding plate; 212. First motor; 213. First cylinder; 3. Scraping mechanism; 301. Threaded rod; 302. Sliding rod; 303. Sliding block; 304. Second motor; 305. Rotating block; 306. Second cylinder; 307. Limiting block. DETAILED DESCRIPTION
[0032] In order to make the content of the present invention more clearly understood, the technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. The same parts are represented by the same figure marks. It should be noted that the words "front", "rear", "left", "right", "up" and "down" used in the following description refer to the directions in the drawings, and the words "inside" and "outside" refer to the directions toward or away from the geometric center of a specific component, respectively.
[0033] like Figures 1 to 5 As shown, a sliding mechanism 2 is installed on the shared charging device body 1, and the sliding mechanism 2 includes a scraper plate 201, a support rod 202 is installed on the scraper plate 201, and a turbine 203 is installed on the support rod 202. A fixed plate 204 is installed on one side of the shared charging device body 1, and a slide 205 is slidably installed on the fixed plate 204. A first sliding groove matching the slide 205 is drilled on the fixed plate 204, and a rotating rod 206 is rotatably installed under the slide 205.
[0034] The installation of the scraper plate 201 facilitates the scraping of floating objects attached to the lower part of the shared charging device body 1. The installation of the support rod 202 facilitates the support, thereby facilitating the installation of the turbine 203. The installation of the fixed plate 204 facilitates the support, thereby facilitating the installation of the corresponding mechanism on the fixed plate 204.
[0035] A worm rod 207 is installed on the rotating rod 206, and the worm rod 207 is meshed with the turbine 203. A second sliding groove is cut on the fixed plate 204, and a shock absorber 208 is installed in the second sliding groove.
[0036] The rotating installation of the rotating rod 206 facilitates the connection function of the worm gear 207, thereby extending the function of the worm gear 207 and facilitating the worm gear 207 to drive the rotation of the turbine 203 when rotating. The installation of the shock absorber 208 facilitates the contraction function, thereby facilitating a more stable installation of the spring 209.
[0037] A spring 209 is disposed on the outer sleeve of the shock absorber 208 , a bearing seat 210 is disposed on the fixing plate 204 , the rotating rod 206 penetrates through the bearing seat 210 , and the slide 205 is connected to the bearing seat 210 .
[0038] The installation of the spring 209 facilitates the buffering effect, which is beneficial to the bearing seat 210 for buffering the bearing seat 210 when it slides. The installation of the bearing seat 210 facilitates the penetration of the rotating rod 206, which is convenient for driving the movement of the rotating rod 206 while not affecting the rotation of the rotating rod 206.
[0039] The bearing seat 210 is slidably installed in the second sliding groove, and a sliding plate 211 is installed on the bearing seat 210 and the spring 209 respectively.
[0040] The installation of the sliding plate 211 facilitates increasing the contact surface between the bearing seat 210 and the spring 209, making the bearing seat 210 more stable when sliding.
[0041] A pair of sliding plates 211 are matched, a first motor 212 is installed on the slide 205 , the first motor 212 penetrates the slide 205 and is connected to the rotating rod 206 , and a first cylinder 213 is installed on the fixed plate 204 and is connected to the slide 205 .
[0042] The installation of the first motor 212 facilitates the conversion of electrical energy into mechanical energy. Therefore, when the first motor 212 rotates, it is easy to drive the rotation of the rotating rod 206. The installation of the first cylinder 213 facilitates the movement of the slide 205, thereby facilitating the worm rod 207 to approach the turbine 203.
[0043] like Figure 3 and Figure 4 As shown, the scraping mechanism 3 includes a threaded rod 301, which is installed under the shared charging device body 1. A sliding rod 302 is installed under the shared charging device body 1, and sliders 303 are slidably installed on the threaded rod 301 and the sliding rod 302 respectively.
[0044] The installation of the threaded rod 301 facilitates the realization of a rotational movement effect, thereby facilitating the slider 303 thereon to achieve a sliding effect, so that the slider 303 facilitates the scraper plate 201 to slide, and the installation of the sliding rod 302 facilitates the supporting effect, so that the installation of the scraper plate 201 is relatively stable, and the scraper plate 201 can be relatively balanced when sliding.
[0045] The scraper plate 201 is disposed between a pair of sliders 303 . A second motor 304 is installed on one side of the shared charging device body 1 . The second motor 304 is connected to the threaded rod 301 .
[0046] The installation of the second motor 304 facilitates the conversion of electrical energy into mechanical energy, and thus the installation of the second motor 304 facilitates the rotation of the threaded rod 301 .
[0047] Rotating blocks 305 are respectively installed on both sides of the scraping plate 201 . The rotating blocks 305 are arranged through the sliding block 303 . A circular groove matching the rotating blocks 305 is bored in the sliding block 303 .
[0048] The installation of the rotating block 305 facilitates the function of connecting the scraping plate 201 and the sliding block 303 together. At the same time, the rotating block 305 is convenient to rotate in the sliding block 303 through the rotation of the scraping plate 201.
[0049] A second cylinder 306 is installed in the rotating block 305 , and a limiting block 307 is installed at one end of the second cylinder 306 , and the limiting block 307 matches the circular groove.
[0050] The installation of the second cylinder 306 facilitates the control of the limit block 307, which is convenient for driving the limit block 307 to extend out of the rotating block 305 when extending. The installation of the limit block 307 facilitates the engagement of the slider 303, thereby ensuring the stability of the rotating block 305.
[0051] During use, the scraper plate 201 is used to remove the attachments under the shared charging device body 1, and the rotation of the first motor 212 can be used to drive the rotation of the rotating rod 206, and at the same time, the extension of the first cylinder 213 can be used to push the movement of the slide 205, and the movement of the slide 205 can easily drive the sliding of the bearing seat 210, so that the bearing seat 210 will drive the sliding plate 211 to push the spring 209 when sliding, so the spring 209 can be buffered, and the stable sliding of the bearing seat 210 can be ensured, and the bearing seat 210 will drive the worm rod 207 to approach the turbine 203. Since the worm rod 207 is in a rotating state, when the worm rod 207 is close to the turbine 203, it will drive the rotation of the turbine 203, so the turbine 2 When the support rod 203 rotates, it will drive the support rod 202, so that the support rod 202 will drive the scraper plate 201 to flip, so that the scraper plate 201 is perpendicular to the lower part of the shared charging device body 1. In order to ensure the stability of the scraper plate 201, when the scraper plate 201 rotates, it will drive the rotating block 305 to rotate in the slider 303, and then the second cylinder 306 is extended to drive the limit block 307 to be stuck in the circular groove of the slider 303, and then the second motor 304 can be used to drive the threaded rod 301 to rotate. Therefore, when the threaded rod 301 rotates, it will drive the slider 303 to slide, so that a pair of sliders 303 will drive the scraper plate 201 to remove the attachments under the shared charging device body 1, thereby effectively preventing the attachments from corroding the bottom of the shared charging device body 1.
[0052] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present invention shall be included in the protection scope of the present invention.
Claims
1. A tidal power generation offshore shared charging station device, characterized in that: include: A shared charging device body (1); A sliding mechanism (2) is installed on the shared charging device body (1), the sliding mechanism (2) includes a scraper plate (201), a support rod (202) is installed on the scraper plate (201), a turbine (203) is installed on the support rod (202), a fixed plate (204) is installed on one side of the shared charging device body (1), a slide (205) is slidably installed on the fixed plate (204), a first slide groove matching the slide (205) is cut on the fixed plate (204), and a rotating rod (206) is rotatably installed under the slide (205). A scraping mechanism (3) is installed on the shared charging device body (1).
2. A tidal energy power generation offshore shared charging station device according to claim 1, characterized in that: A worm rod (207) is installed on the rotating rod (206), and the worm rod (207) is meshed with the turbine (203). A second sliding groove is cut on the fixed plate (204), and a shock absorber (208) is installed in the second sliding groove.
3. A tidal power generation offshore shared charging station device according to claim 2, characterized in that: The shock absorber (208) is provided with a spring (209) on its outer sleeve, the fixed plate (204) is provided with a bearing seat (210), the rotating rod (206) penetrates the bearing seat (210), and the slide (205) is connected to the bearing seat (210).
4. A tidal energy power generation offshore shared charging station device according to claim 3, characterized in that: The bearing seat (210) is slidably mounted in the second sliding groove, and a sliding plate (211) is respectively mounted on the bearing seat (210) and the spring (209).
5. A tidal energy power generation offshore shared charging station device according to claim 4, characterized in that: A pair of sliding plates (211) are matched, a first motor (212) is installed on the slide (205), the first motor (212) passes through the slide (205) and is connected to the rotating rod (206), and a first cylinder (213) is installed on the fixed plate (204), and the first cylinder (213) is connected to the slide (205).
6. A tidal power generation offshore shared charging station device according to claim 1, characterized in that: The scraping mechanism (3) comprises a threaded rod (301), wherein the threaded rod (301) is installed under the shared charging device body (1), a sliding rod (302) is installed under the shared charging device body (1), and a slider (303) is slidably installed on the threaded rod (301) and the sliding rod (302), respectively.
7. A tidal power generation offshore shared charging station device according to claim 6, characterized in that: The scraper plate (201) is arranged between a pair of sliders (303), and a second motor (304) is installed on one side of the shared charging device body (1), and the second motor (304) is connected to the threaded rod (301).
8. A tidal energy power generation offshore shared charging station device according to claim 7, characterized in that: Rotating blocks (305) are respectively installed on both sides of the scraping plate (201), and the rotating blocks (305) are arranged through the sliding block (303). A circular groove matching the rotating blocks (305) is bored in the sliding block (303).
9. A tidal energy power generation offshore shared charging station device according to claim 8, characterized in that: A second cylinder (306) is installed in the rotating block (305), and a limit block (307) is installed at one end of the second cylinder (306), and the limit block (307) matches the circular groove.