A new energy hybrid power generation device for ships

By designing a device consisting of a rotating plate, connecting rod, transmission rod, and buffer components, the problem of time-consuming and labor-intensive disassembly of solar panels in new energy hybrid ships has been solved, achieving time-saving and labor-saving disassembly and replacement, and extending service life.

CN119891895BActive Publication Date: 2025-10-31JIANGSU ZHONGZHI MARINE & OFFSHORE CO LTD
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Patent Information

Application Number
CN202411979601.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2025-10-31
Estimated Expiration
2044-12-31

AI Technical Summary

Technical Problem

The replacement of solar panels on existing new energy hybrid ships is time-consuming and labor-intensive, requiring workers to climb to a set height and use tools to disassemble them, which affects the disassembly efficiency.

Method used

A device comprising a rotating plate, a connecting rod, a transmission rod, a pushing component, and a buffer component was designed. The pushing component and the lifting cylinder enable the solar panel to be disassembled without climbing, the buffer component reduces collision losses, and the ball bearings reduce friction and wear.

Benefits of technology

It enables time-saving and labor-saving disassembly and replacement of solar panels, improves disassembly efficiency, and extends the service life of solar panels and connecting rods.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a power generation device for new energy hybrid ships, including a solar panel located on a support frame. A rotating plate and a connecting rod are mounted on the solar panel. The rotating plate is located at the bottom of the solar panel and connected to it. The end of the connecting rod is connected to the side wall of the rotating plate. A transmission rod, a rotating component, and a pushing component are mounted on the support frame. The transmission rod and the connecting rod are coaxially arranged and slidably connected to the support frame. A transmission groove is coaxially formed at the end of the transmission rod near the connecting rod. The side wall of the transmission groove is slidably connected to the side wall of the connecting rod. A transmission component is disposed within the transmission groove. This invention has a simple structure and reasonable design. When the solar panel is damaged, the operator adjusts the pushing component, disengaging the transmission groove on the transmission rod from the connecting rod on the solar panel. This eliminates the need for the operator to climb to a set driving height and use screwdrivers or other tools to disassemble the solar panel, facilitating disassembly and replacement, saving workload, and improving disassembly and replacement efficiency.
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Description

Technical Field

[0001] This invention relates to the technical field of power generation devices, specifically a power generation device for new energy hybrid ships. Background Technology

[0002] New energy hybrid power ships are marine propulsion systems that combine traditional fuel engines with new energy sources such as batteries, electric motors, solar energy, and wind energy. By using multiple energy sources, hybrid power ships can optimize energy efficiency, reduce fuel consumption, lower emissions, and improve the ship's economy and environmental performance under different operating conditions.

[0003] The shortcomings of existing technology:

[0004] The aforementioned new energy hybrid ships typically use solar power. When using solar power, solar panels located on support frames are often needed to absorb sunlight. After long-term use, the solar panels are prone to damage. However, the solar panels are fixed to the support frames with bolts. When workers disassemble and replace the solar panels, they need to climb to a set height and use tools such as screwdrivers to disassemble and replace the solar panels. This process is time-consuming and labor-intensive, affecting the efficiency of disassembly and replacement. Summary of the Invention

[0005] The purpose of this invention is to provide a power generation device for new energy hybrid ships to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a power generation device for a new energy hybrid ship, comprising a solar panel located on a support frame, a rotating plate and a connecting rod disposed on the solar panel, the rotating plate being located at the bottom of the solar panel and connected to the solar panel, the end of the connecting rod being connected to the side wall of the rotating plate, a transmission rod, a rotating component and a pushing component disposed on the support frame, the transmission rod and the connecting rod being coaxially disposed and slidably connected to the support frame, a transmission groove being coaxially formed at one end of the transmission rod near the connecting rod, the side wall of the transmission groove being slidably connected to the side wall of the connecting rod, a transmission component disposed within the transmission groove, the transmission component being connected to the connecting rod and used to drive the connecting rod to rotate with the transmission rod, the rotating component being connected to the transmission rod and used to drive the transmission rod to rotate, and the pushing component comprising:

[0007] A push rod is located at the end of the transmission rod away from the connecting rod, and the push rod is coaxially connected to the transmission rod;

[0008] A push plate, which is located at the end of the push rod away from the transmission rod and is connected to the push rod;

[0009] A push cylinder is located on a support frame, the cylinder body of the push cylinder is connected to the support frame, and the piston rod of the push cylinder abuts against the side wall of the push plate.

[0010] Preferably, the rotating component includes:

[0011] A rotating shaft is coaxially arranged with the transmission rod and connected to the support frame. A rotating groove is coaxially formed at one end of the rotating shaft near the transmission rod. The side wall of the rotating groove is slidably connected to the side wall of the transmission rod. An abutment is provided in the rotating groove. The abutment is connected to the transmission rod and is used to abut against the transmission rod.

[0012] Driven wheel, the driven wheel is sleeved on the rotating shaft and coaxially connected to the rotating shaft, the driven wheel is connected to the side wall of the support frame;

[0013] The driving wheel is located on one side of the driven wheel and is meshed with the driven wheel. The driving wheel is connected to the side wall of the support frame.

[0014] A rotating motor is located on and connected to a support frame, and the output shaft of the rotating motor is coaxially connected to the drive wheel.

[0015] Preferably, the abutting member includes an abutting spring, which is located in the rotating groove and sleeved on the push rod. One end of the abutting spring is connected to the side wall of the rotating groove, and the other end of the abutting spring is connected to the end of the transmission rod.

[0016] Preferably, a connecting groove is horizontally formed on the side wall of the connecting rod, and the transmitting component includes a transmitting block. One side of the transmitting block is connected to the side wall of the transmitting groove, and the other side of the transmitting block extends into the connecting groove and is slidably connected to the side wall of the connecting groove.

[0017] Preferably, the support frame is provided with a support plate and a guide plate. The support plate is horizontally arranged and located at the bottom of the rotating plate. The side wall of the support plate is slidably connected to the support frame. There are two guide plates, which are located on both sides of the support plate. Each guide plate is inclined. The side wall of each guide plate is connected to the side wall of the support plate. The top of the guide plate is used to contact the rotating plate.

[0018] Preferably, the support plate is provided with a connecting plate, a horizontal plate, and a buffer. The connecting plate is located at the bottom of the rotating plate and is used to contact the rotating plate. The bottom of the connecting plate contacts the top of the support plate. A horizontal groove is horizontally opened on the side wall of the connecting plate. There are two horizontal grooves. A connecting spring is provided in each horizontal groove. One end of the connecting spring is connected to the side wall of the horizontal groove. There are two horizontal plates, and the two horizontal plates are respectively located on both sides of the connecting plate. One end of each horizontal plate extends into the horizontal groove and is connected to the connecting spring. The other end of each horizontal plate is slidably connected to the top of the support plate. The buffer is located on the connecting plate and is used to contact the rotating plate.

[0019] Preferably, each of the horizontal plates has a vertical groove at its top, and the buffer includes:

[0020] A buffer plate is located at the top of the horizontal plate, and the side wall of the buffer plate is slidably connected to the side wall of the support frame.

[0021] There are two buffer rods, and the two buffer rods correspond one-to-one with the two vertical grooves. Each buffer rod is located at the bottom of the buffer plate. One end of each buffer rod is connected to the bottom of the buffer plate, and the other end of each buffer rod extends into the vertical groove and is slidably connected to the side wall of the vertical groove.

[0022] There are two buffer springs, and each buffer spring corresponds to one of the two buffer rods. Each buffer spring is located in a vertical groove. One end of each buffer spring is connected to the bottom of the buffer rod, and the other end of each buffer spring is connected to the bottom wall of the vertical groove.

[0023] Preferably, the bottom of the support plate is horizontally provided with a support groove, and the bottom of the support plate is provided with a lifting cylinder, a lifting rod and a lifting block. The lifting cylinder is located on the support frame, the cylinder body of the lifting cylinder is connected to the support frame, the piston rod of the lifting cylinder is coaxially connected to the lifting rod, the lifting rod is vertically arranged, the top of the lifting rod is connected to the bottom of the lifting block, and the lifting block is located in the support groove and is slidably connected to the side wall of the support groove.

[0024] Preferably, the top of the buffer plate is provided with a flexible layer.

[0025] Preferably, a ball bearing is provided on the side wall of the transmission groove, with one side of the ball bearing connected to the side wall of the transmission groove and the other side of the ball bearing used to contact the end of the connecting rod.

[0026] Compared with the prior art, the beneficial effects of the present invention are:

[0027] 1. This new energy hybrid power generation device for ships uses a connecting rod on the solar panel and a transmission rod and a pushing component on the support frame. When the solar panel is damaged, the staff can adjust the pushing component to move the transmission rod away from the solar panel until the connecting rod is disengaged from the transmission groove. This makes it convenient for staff to disassemble and replace the solar panel and the rotating plate. There is no need for staff to climb to a set height and use screwdrivers or other tools to disassemble and replace the solar panel, which saves the staff's workload, time and effort, and improves the efficiency of disassembly and replacement.

[0028] 2. The new energy hybrid power generation device for ships is equipped with a support plate, a buffer and a flexible layer. When the solar panel and the rotating plate are separated from the support frame, they are buffered by the buffer spring and the flexible layer on the buffer plate, which reduces the damage caused by the collision of the rotating plate and extends the service life of the rotating plate.

[0029] 3. This new energy hybrid power generation device for ships converts the sliding friction between the transmission groove and the end of the connecting rod into rolling friction by using balls on the transmission groove, thereby reducing the friction between the end of the connecting rod and the transmission groove, reducing the wear of the connecting rod and extending its service life. Attached Figure Description

[0030] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0031] Figure 2 This is a partial structural diagram of the present invention, mainly showing the pushing component;

[0032] Figure 3 This is an exploded view of part of the structure of the present invention, mainly showing the rotating groove;

[0033] Figure 4 This is an exploded view of part of the structure of the present invention, mainly showing the transmission channel;

[0034] Figure 5 This is an exploded view of part of the structure of the present invention, mainly showing the flexible layer;

[0035] Figure 6 This is a partial structural schematic diagram of the present invention, mainly showing the support groove;

[0036] Figure 7 This is an exploded view of a portion of the structure of the present invention, mainly showing the buffer component.

[0037] In the diagram: 1. Support frame; 11. Solar panel; 12. Rotating plate; 13. Connecting rod; 14. Connecting groove; 15. Transmission rod; 16. Transmission groove; 17. Ball bearing; 18. Transmission block; 2. Pushing component; 21. Pushing cylinder; 22. Pushing plate; 23. Pushing rod; 3. Rotating component; 31. Rotating motor; 32. Driving wheel; 33. Driven wheel; 34. Rotating shaft; 41. Rotating groove; 42. Abutment spring; 5. Support plate; 51. Support groove; 52. Guide plate; 53. Connecting plate; 54. Horizontal groove; 55. Horizontal plate; 56. Connecting spring; 57. Vertical groove; 6. Buffer component; 61. Buffer plate; 62. Buffer rod; 63. Buffer spring; 7. Flexible layer; 81. Lifting cylinder; 82. Lifting rod; 83. Lifting block. Detailed Implementation

[0038] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0039] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "top," "bottom," "inner," "outer," "clockwise," and "counterclockwise," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.

[0040] In the description of this patent, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "setting" should be interpreted broadly. For example, they can refer to a fixed connection or setting, a detachable connection or setting, or an integrated connection or setting. Those skilled in the art can understand the specific meaning of the above terms in this patent according to the specific circumstances.

[0041] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this invention, "a number" means two or more, unless otherwise explicitly specified.

[0042] Please see Figure 1-7As shown, the present invention provides a technical solution for a power generation device for a new energy hybrid ship: a power generation device for a new energy hybrid ship includes a solar panel 11 located on a support frame 1, a rotating plate 12 and a connecting rod 13 installed on the solar panel 11, the rotating plate 12 being located at the bottom of the solar panel 11 and fixedly connected to the solar panel 11, and two horizontally arranged connecting rods 13, the end of each connecting rod 13 being fixedly connected to the side wall of the rotating plate 12, and a horizontally arranged connecting groove 14 being provided on the side wall of the connecting rod 13.

[0043] A transmission rod 15 and a pusher 2 are installed on the side wall of the support frame 1. The transmission rod 15 is located on the side wall of the support frame 1 and is slidably connected to the side wall of the support frame 1. The transmission rod 15 is coaxially arranged with the connecting rod 13. A transmission groove 16 is coaxially opened on one end of the transmission rod 15 near the connecting rod 13. The side wall of the transmission groove 16 is slidably connected to the side wall of the connecting rod 13. A transmission component is installed in the transmission groove 16. The transmission component includes a transmission block 18. The horizontally arranged transmission block 18 is located in the transmission groove 16. One side of the transmission block 18 is fixedly connected to the side wall of the transmission groove 16. The other side of the transmission block 18 extends into the connecting groove 14 and is slidably connected to the side wall of the connecting groove 14. A ball bearing 17 is installed in the transmission groove 16. One side of the ball bearing 17 is rotatably connected to the side wall of the transmission groove 16. The other side of the ball bearing 17 is used to abut against the end of the connecting rod 13, thereby reducing the wear between the connecting rod 13 and the transmission groove 16 and extending the service life of the connecting rod 13.

[0044] A rotating component 3 and a pushing component 2 are mounted on the support frame 1. The rotating component 3 includes a rotating motor 31, a driving wheel 32, a driven wheel 33, and a rotating shaft 34. The rotating motor 31 is located on the support frame 1 and is fixedly connected to the support frame 1. The output shaft of the rotating motor 31 is coaxially fixedly connected to the driving wheel 32. The vertically arranged driving wheel 32 is located on the side wall of the support frame 1 and is rotatably connected to the side wall of the support frame 1. The vertically arranged driven wheel 33 is located on one side of the driving wheel 32 and is meshed with the driving wheel 32. The driven wheel 33 is connected to the support frame. The side wall of the support frame 1 is rotatably connected. The horizontally arranged rotating shaft 34 is coaxially fixedly connected to the driven wheel 33, and the rotating shaft 34 is rotatably connected to the side wall of the support frame 1. A rotating groove 41 is coaxially opened on one end of the rotating shaft 34 near the solar panel 11. The side wall of the rotating groove 41 is slidably connected to the side wall of the transmission rod 15. An abutment is installed in the rotating groove 41. The abutment includes an abutment spring 42. One end of the abutment spring 42 is fixedly connected to the side wall of the rotating groove 41, and the other end of the abutment spring 42 is fixedly connected to the end of the transmission rod 15.

[0045] The pusher 2 includes a pusher cylinder 21, a pusher rod 23, and a pusher plate 22. The pusher cylinder 21 is located on the side wall of the support frame 1. The cylinder body of the pusher cylinder 21 is fixedly connected to the side wall of the support frame 1. The piston rod of the pusher cylinder 21 is fixedly connected to the side wall of the pusher plate 22. The vertically arranged pusher plate 22 is located on one side of the support frame 1. One end of the horizontally arranged pusher rod 23 extends into the rotating groove 41 and is rotatably connected to the end of the transmission rod 15. The other end of the pusher rod 23 is fixedly connected to the side wall of the pusher plate 22.

[0046] When the solar panel 11 is running, the operator starts the rotating motor 31. The output shaft of the rotating motor 31 rotates the driving wheel 32 synchronously. The driven wheel 33 meshes with the driving wheel 32, and the driven wheel 33 rotates synchronously, thereby driving the rotating shaft 34 to rotate synchronously. The rotation of the rotating shaft 34 drives the abutment spring 42 and the transmission rod 15 to rotate synchronously. Through the transmission block 18 and the connecting groove 14, the connecting rod 13 rotates with the transmission rod 15, thereby driving the rotating plate 12 and the solar panel 11 to rotate, thus improving the operating efficiency of the solar panel 11. At the same time, when the solar panel 11 is damaged, the operator starts the push cylinder 21. The piston rod of the push cylinder 21 extends and retracts, causing the push plate 22 to move, thereby causing the push rod 23 to move away from the solar panel 11. This causes the transmission rod 15 to move synchronously, thereby disengaging the connecting rod 13 from the transmission groove 16 on the transmission rod 15. Therefore, the operator does not need to climb to a set height and use screwdrivers or other tools to disassemble and replace the solar panel 11, saving the operator's workload, time and effort, and improving the efficiency of disassembly and replacement.

[0047] A support plate 5 and a guide plate 52 are installed on the support frame 1. The horizontally arranged support plate 5 is located on the support frame 1 and is slidably connected to the support frame 1. A support groove 51 is horizontally opened at the bottom of the support plate 5. The support groove 51 is T-shaped. There are two guide plates 52, which are located on both sides of the support plate 5. The bottom of each inclined guide plate 52 is fixedly connected to the side wall of the support plate 5. A lifting cylinder 81, a lifting rod 82, and a lifting block 83 are installed at the bottom of the support plate 5. The lifting cylinder 81 is located at the bottom of the support frame 1. The cylinder body of the lifting cylinder 81 is fixedly connected to the support frame 1. The piston rod of the lifting cylinder 81 is vertically upward. The piston rod of the lifting cylinder 81 is coaxially fixedly connected to the lifting rod 82. The top of the vertically arranged lifting rod 82 is fixedly connected to the bottom of the lifting block 83. The horizontally arranged lifting block 83 is T-shaped. The top of the lifting block 83 extends into the support groove 51 and is slidably connected to the side wall of the support groove 51.

[0048] A connecting plate 53, a horizontal plate 55, and a buffer 6 are installed on the top of the support plate 5. The horizontally arranged connecting plate 53 is located on top of the support plate 5, and its bottom is in contact with the top of the support plate 5. Horizontal grooves 54 are horizontally formed on both side walls of the connecting plate 53. A connecting spring 56 is installed in each horizontal groove 54. One end of the connecting spring 56 is fixedly connected to the side wall of the horizontal groove 54, and the other end is connected to the side wall of the horizontal plate 55. There are two horizontally arranged horizontal plates 55, and each horizontal plate 55 corresponds one-to-one with one of the two horizontal grooves 54. One end of each horizontal plate 55 extends into the horizontal groove 54 and is slidably connected to the side wall of the horizontal groove 54. The other end of each horizontal plate 55 is used to abut against the side wall of the guide plate 52. A vertical groove 57 is vertically formed on the top of each horizontal plate 55. The buffer component 6 includes a buffer spring 63, a buffer rod 62, and a buffer plate 61. There are two buffer springs 63, and each buffer spring 63 corresponds to one of the two vertical grooves 57. One end of each buffer spring 63 is fixedly connected to the bottom wall of the vertical groove 57, and the other end of the buffer spring 63 is fixedly connected to the bottom of the buffer rod 62. There are two vertically arranged buffer rods 62, and each buffer rod 62 corresponds to one of the two buffer springs 63. The top of the buffer rod 62 abuts against the bottom of the buffer plate 61. The horizontally arranged buffer plate 61 is located at the bottom of the rotating plate 12, and a flexible layer 7 is installed on the top of the buffer plate 61. The flexible layer 7 is made of rubber. One side of the flexible layer 7 is bonded to the top of the buffer plate 61, and the other side of the flexible layer 7 is used to contact the rotating plate 12.

[0049] When the rotating plate 12, solar panel 11, and connecting rod 13 disengage from the transmission rod 15, the operator activates the lifting cylinder 81. The piston rod of the lifting cylinder 81 moves up and down, driving the lifting rod 82 to move up and down, thereby simultaneously raising and lowering the lifting block 83, support plate 5, connecting plate 53, and buffer plate 61 until the buffer plate 61 reaches the set height. This allows the rotating plate 12 and solar panel 11 to be transferred to the flexible layer 7 on the buffer plate 61, where they are collected. Under the elastic potential energy of the buffer spring 63, the rotating plate 12 and solar panel 11 are buffered, reducing collision losses between the rotating plate 12 and the support frame 1, and extending the service life of the rotating plate 12. When the rotating plate 12 and solar panel 11 are transferred to the flexible layer 7, the operator adjusts the lifting cylinder 81 to raise and lower the support plate 5 and buffer plate 61 to the set height. This eliminates the need for the operator to climb to the set height and use screwdrivers or other tools to disassemble and replace the solar panel 11, saving the operator's workload, time, and effort.

[0050] The working principle of this invention is as follows:

[0051] In this embodiment, when the solar panel 11 is running, the operator starts the rotating motor 31. The output shaft of the rotating motor 31 rotates, causing the drive wheel 32 to rotate synchronously. This causes the driven wheel 33 to rotate with the drive wheel 32, which in turn causes the rotating shaft 34 to rotate synchronously. The rotation of the rotating shaft 34 causes the abutment spring 42 and the transmission rod 15 to rotate synchronously. Through the transmission block 18 and the transmission groove 16, the connecting rod 13 rotates with the transmission rod 15, thereby causing the rotating plate 12 and the solar panel 11 to rotate synchronously, thus enabling the solar panel 11 to run.

[0052] When the solar panel 11 is damaged, the staff activates the push cylinder 21. The piston rod of the push cylinder 21 extends and retracts, causing the push plate 22 to move synchronously. This causes the push rod 23 to move away from the solar panel 11, which in turn causes the transmission rod 15 to move away from the solar panel 11. At this time, the abutment spring 42 is compressed, and the transmission rod 15 is disengaged from the connecting rod 13, thereby causing the solar panel 11 and the rotating plate 12 to detach from the support frame 1.

[0053] Simultaneously, the staff activates the lifting cylinder 81. The piston rod of the lifting cylinder 81 extends and retracts, causing the lifting rod 82 to move, thereby causing the lifting block 83, support plate 5, and buffer plate 61 to rise and fall synchronously. This allows the rotating plate 12 and solar panel 11 to detach from the support frame 1 and be transferred to the flexible layer 7 on the buffer plate 61. The elastic potential energy of the buffer spring 63 buffers the rotating plate 12 and solar panel 11. After the solar panel 11 and rotating plate 12 are transferred to the buffer plate 61, the staff activates the lifting cylinder 81 again, causing the buffer plate 61 and support plate 5 to be transferred to the set height. The staff then removes the rotating plate 12 and solar panel 11. This eliminates the need for staff to climb to the set height and use screwdrivers or other tools to disassemble and replace the solar panel 11, saving staff workload, time and effort, and improving disassembly and replacement efficiency.

[0054] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. A power generation device for a new energy hybrid ship, comprising a solar panel (11) located on a support frame (1), characterized in that: The solar panel (11) is provided with a rotating plate (12) and a connecting rod (13). The rotating plate (12) is located at the bottom of the solar panel (11) and connected to the solar panel (11). The end of the connecting rod (13) is connected to the side wall of the rotating plate (12). The support frame (1) is provided with a transmission rod (15), a rotating component (3), and a pushing component (2). The transmission rod (15) and the connecting rod (13) are coaxially arranged and slidably connected to the support frame (1). A transmission groove (16) is coaxially formed at one end of the conveying rod (15) near the connecting rod (13). The side wall of the transmission groove (16) is slidably connected to the side wall of the connecting rod (13). A transmission component is provided in the transmission groove (16). The transmission component is connected to the connecting rod (13) and is used to drive the connecting rod (13) to rotate with the transmission rod (15). The rotating component (3) is connected to the transmission rod (15) and is used to drive the transmission rod (15) to rotate. The pushing component (2) includes: A push rod (23) is located at the end of the transmission rod (15) away from the connecting rod (13), and the push rod (23) is coaxially connected to the transmission rod (15); A push plate (22) is located at the end of the push rod (23) away from the transmission rod (15) and is connected to the push rod (23); A push cylinder (21) is located on a support frame (1). The cylinder body of the push cylinder (21) is connected to the support frame (1). The piston rod of the push cylinder (21) abuts against the side wall of the push plate (22). The rotating component (3) includes: A rotating shaft (34) is coaxially arranged with the transmission rod (15). The rotating shaft (34) is connected to the support frame (1). A rotating groove (41) is coaxially opened at one end of the rotating shaft (34) near the transmission rod (15). The side wall of the rotating groove (41) is slidably connected to the side wall of the transmission rod (15). An abutment is provided in the rotating groove (41). The abutment is connected to the transmission rod (15) and is used to abut against the transmission rod (15). Driven wheel (33), the driven wheel (33) is sleeved on the rotating shaft (34) and coaxially connected with the rotating shaft (34), the driven wheel (33) is connected to the side wall of the support frame (1); The driving wheel (32) is located on one side of the driven wheel (33) and is meshed with the driven wheel (33). The driving wheel (32) is connected to the side wall of the support frame (1). A rotating motor (31) is located on and connected to a support frame (1). The output shaft of the rotating motor (31) is coaxially connected to the drive wheel (32).

2. The power generation device for a new energy hybrid ship according to claim 1, characterized in that: The abutting component includes an abutting spring (42), which is located in the rotating groove (41). The abutting spring (42) is sleeved on the push rod (23). One end of the abutting spring (42) is connected to the side wall of the rotating groove (41), and the other end of the abutting spring (42) is connected to the end of the transmission rod (15).

3. The power generation device for a new energy hybrid ship according to claim 1, characterized in that: The connecting rod (13) has a horizontally formed connecting groove (14) on its side wall. The transmission component includes a transmission block (18). One side of the transmission block (18) is connected to the side wall of the transmission groove (16), and the other side of the transmission block (18) extends into the connecting groove (14) and is slidably connected to the side wall of the connecting groove (14).

4. The power generation device for a new energy hybrid ship according to claim 1, characterized in that: The support frame (1) is provided with a support plate (5) and a guide plate (52). The support plate (5) is horizontally arranged and located at the bottom of the rotating plate (12). The side wall of the support plate (5) is slidably connected to the support frame (1). There are two guide plates (52), and the two guide plates (52) are located on both sides of the support plate (5). Each guide plate (52) is inclined. The side wall of each guide plate (52) is connected to the side wall of the support plate (5). The top of the guide plate (52) is used to contact the rotating plate (12).

5. A power generation device for a new energy hybrid ship according to claim 4, characterized in that: The support plate (5) is provided with a connecting plate (53), a horizontal plate (55), and a buffer (6). The connecting plate (53) is located at the bottom of the rotating plate (12) and is used to contact the rotating plate (12). The bottom of the connecting plate (53) contacts the top of the support plate (5). A horizontal groove (54) is horizontally opened on the side wall of the connecting plate (53). There are two horizontal grooves (54), and a connecting spring (56) is provided in each horizontal groove (54). One end of (56) is connected to the side wall of the transverse groove (54). There are two transverse plates (55), and the two transverse plates (55) are located on both sides of the connecting plate (53). One end of each transverse plate (55) extends into the transverse groove (54) and is connected to the connecting spring (56). The other end of each transverse plate (55) is slidably connected to the top of the support plate (5). The buffer (6) is located on the connecting plate (53) and is used to contact the rotating plate (12).

6. A power generation device for a new energy hybrid ship according to claim 5, characterized in that: Each of the horizontal plates (55) has a vertical groove (57) vertically formed at its top, and the buffer (6) includes: A buffer plate (61) is located on top of a horizontal plate (55), and the side wall of the buffer plate (61) is slidably connected to the side wall of the support frame (1). There are two buffer rods (62), and the two buffer rods (62) correspond one-to-one with the two vertical grooves (57). Each buffer rod (62) is located at the bottom of the buffer plate (61). One end of each buffer rod (62) is connected to the bottom of the buffer plate (61), and the other end of each buffer rod (62) extends into the vertical groove (57) and is slidably connected to the side wall of the vertical groove (57). There are two buffer springs (63), and the two buffer springs (63) correspond one-to-one with the two buffer rods (62). Each buffer spring (63) is located in the vertical groove (57). One end of each buffer spring (63) is connected to the bottom of the buffer rod (62), and the other end of each buffer spring (63) is connected to the bottom wall of the vertical groove (57).

7. A power generation device for a new energy hybrid ship according to claim 4, characterized in that: The bottom of the support plate (5) is provided with a horizontal support groove (51). The bottom of the support plate (5) is provided with a lifting cylinder (81), a lifting rod (82) and a lifting block (83). The lifting cylinder (81) is located on the support frame (1). The cylinder body of the lifting cylinder (81) is connected to the support frame (1). The piston rod of the lifting cylinder (81) is coaxially connected to the lifting rod (82). The lifting rod (82) is vertically arranged. The top of the lifting rod (82) is connected to the bottom of the lifting block (83). The lifting block (83) is located in the support groove (51) and is slidably connected to the side wall of the support groove (51).

8. A power generation device for a new energy hybrid ship according to claim 6, characterized in that: The top of the buffer plate (61) is provided with a flexible layer (7).

9. A power generation device for a new energy hybrid ship according to claim 1, characterized in that: A ball bearing (17) is provided on the side wall of the transmission groove (16). One side of the ball bearing (17) is connected to the side wall of the transmission groove (16), and the other side of the ball bearing (17) is used to contact the end of the connecting rod (13).

Citation Information

Patent Citations

  • Solar power generation device

    CN116743053A

  • Support for photovoltaic power generation

    CN220732658U