Water environment ecological restoration device
By using a single power source motor assembly to drive multiple mechanisms, the high cost and poor diffusion effect of existing water environment ecological restoration devices have been solved. This has enabled efficient delivery and uniform diffusion of the restoration agent, reduced equipment costs, and increased the diffusion range.
Patent Information
- Application Number
- CN202410148853.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Priority Date
- 2023-05-29
- Filing Date
- 2024-02-01
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2044-02-01
AI Technical Summary
Existing water environment ecological restoration devices require two sets of power components, which are costly and have poor diffusion effects of the restoration agent, making it difficult to guarantee the sealed preservation and full diffusion of the water restoration agent.
The motor assembly using a single power source drives multiple mechanisms, including an auger, a conical disc, and a paddle, through a vertical shaft to achieve the dispensing, sealing, and diffusion of the repair agent. The lifting of the conical disc and the rotation of the auger ensure the directional delivery and uniform diffusion of the repair agent.
This method enables efficient application and diffusion of the repair agent, ensuring its quality, reducing equipment costs, and improving the diffusion range and effectiveness.
Smart Images

Figure CN117815967B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of water environment ecological restoration technology, and in particular to a water environment ecological restoration device. Background Technology
[0002] In some urban rivers or ponds, due to poor water flow and slow velocity, it is easy for the water to become eutrophic. It is necessary to add remediation agents in a timely manner to restore the water environment and ensure that it is in a relatively healthy state.
[0003] When carrying out aquatic ecological restoration, existing aquatic ecological restoration devices not only require a power component for dispensing the restoration agent, but also a power component for agitating the water after the restoration agent is added to ensure the diffusion effect of the restoration agent. The cost of these two sets of equipment is high, and the diffusion effect of the restoration agent is poor and the diffusion range is small when the power component agitates the water.
[0004] To address the aforementioned technical problems, a water environment ecological restoration device, as disclosed in Chinese Patent Publication No. CN114348654B, utilizes a periodic fixed-discharge mechanism. With the combined action of a magnetic dispensing component and a magnetic upward-moving component, a single motor can dispensing the restoration agent. A deflector moves the water at the bottom of the frustum-shaped hole, accelerating the diffusion efficiency of the restoration agent. The magnetic upward-moving component creates negative pressure on the water, causing the restoration agent in the dispensing cylinder to shake and become more evenly distributed. When the restoration agent falls into the water, the continuously swinging float agitates the water surface, further increasing the diffusion efficiency of the fallen restoration agent. The outer cylinder effectively blocks floating debris on the water surface, preventing the aforementioned phenomena. Furthermore, the hollow design of the outer cylinder allows for the overall... This device is more stable and prevents tipping. When the lever rotates, it can drive multiple driven plates to move, causing the rotating ring to rotate on the inner cylinder. When the driven plates rotate, when they fall between any two adjacent driven plates, the driven plates will drive the repair agent to rotate around the outer cylinder, allowing the repair agent to reach a larger area. This not only increases the diffusion efficiency of the repair agent but also increases the repair area. By gradually decreasing the height of the upper surface of the negative pressure plate from the center to the outer edge, the floating plate, which has not stopped swinging after the negative pressure plate returns to its position, can cause the water surface to shake, allowing the repair agent remaining on the surface of the negative pressure plate to fall off more quickly. Furthermore, due to the presence of the truncated cone rod, the water will impact the truncated cone rod when it comes into contact with it. The water rebounding from the impact can cause the repair agent on the upper surface of the negative pressure plate to fall off more quickly, preventing repair agent residue.
[0005] The above technical solution can effectively deliver the water remediation agent and facilitate its diffusion. However, it is not conducive to ensuring the sealed preservation of the water remediation agent, and its poor diffusion effect is not conducive to full diffusion. Therefore, it needs to be improved. Summary of the Invention
[0006] The purpose of this invention is to address the shortcomings of existing technologies by proposing a water environment ecological restoration device.
[0007] To achieve the above objectives, the present invention adopts the following technical solution:
[0008] A water environment ecological restoration device includes a float assembly. An installation pipe is fixed to the upper middle portion of the float assembly. A remediation agent carrier box is fixed to the upper end of the installation pipe assembly. A power mechanism is installed within the float assembly, the installation pipe assembly, and the remediation agent carrier box. The power mechanism includes a vertical shaft and an auger. A circular pipe extends through one side of the lower end of the remediation agent carrier box. The lower end of the auger extends into the circular pipe. A support shaft is slidably mounted on the lower end of the auger. A conical disc is rotatably sleeved on the support shaft. The support shaft is provided with two arc-shaped end gears at its lower end. The two arc-shaped end gears mesh with each other. The upper arc-shaped end gear is fixed to the lower end of the round tube. The lower end of the support shaft is fixed to the middle of the arc-shaped end gear located at the lower end. A resistance spring is provided through the support shaft. The two ends of the upper end of the resistance spring are fixed to the lower end of the conical disc and the top of the round tube, respectively. Multiple discharge ports are provided at equal intervals around the lower end of the round tube. The conical disc is located at the upper end of the discharge ports.
[0009] The vertical shaft is provided with a transmission mechanism, the transmission mechanism is provided with a disc, the disc is rotatably sleeved on the mounting pipe, a conical cylinder is fixed on the disc, the conical cylinder is rotatably sleeved on the mounting pipe, and multiple vertical plates are fixed at equal intervals around the conical cylinder, with the lower ends and upper ends of the multiple vertical plates being fixedly connected.
[0010] The vertical shaft component is equipped with a linkage mechanism, the linkage mechanism is equipped with multiple propeller components, the float component is fixed with a floating disc component, and the linkage mechanism and the floating disc component are connected.
[0011] Compared with the prior art, the present invention, through the function of the motor assembly and the vertical shaft, can fully realize the operation of a single power source to provide power for the operation of multiple mechanisms, effectively realize the dispensing and diffusion of the repair agent, better mix the repair agent with the water, and realize the dispensing and sealing of the repair agent through the lifting and lowering of the conical disc, thus fully ensuring the quality of the repair agent when no repair agent is dispensed.
[0012] Preferably, the upper ends of the installation pipe are fixed to the upper end of the float and the lower end of the repair agent carrier box by welding, respectively.
[0013] Furthermore, ensuring a secure connection effectively guarantees the airtightness of the connection and prevents leakage.
[0014] Preferably, the power mechanism includes a motor assembly installed at the bottom center of the float component, the output shaft end of the motor assembly is fixed to the lower end of the vertical shaft component, a sleeve component is fixed at the bottom center of the repair agent carrier box, the vertical shaft component passes through the installation pipe and the sleeve component and is rotatably connected to the top of the repair agent carrier box, the upper end of the auger component is rotatably connected to the top side of the repair agent carrier box, and a first synchronous belt drive assembly is installed between the vertical shaft component and the auger component.
[0015] Furthermore, the motor assembly can drive the vertical shaft to rotate, so that the vertical shaft can drive the auger to rotate through the first synchronous belt drive assembly, thereby enabling the repair agent to be delivered in a directional manner.
[0016] Preferably, the first synchronous belt drive assembly consists of a first synchronous belt and two first synchronous pulleys. The two first synchronous pulleys are respectively fixedly mounted on the vertical shaft and the auger. The first synchronous belt is sleeved on the two first synchronous pulleys. Both the first synchronous belt and the two first synchronous pulleys adopt a toothed structure.
[0017] Furthermore, the toothed structure ensures the robustness of component connections, thereby achieving stable component transmission.
[0018] Preferably, the lower end of the conical disc is flush with the top of the discharge port, and the bottom of the discharge port is inclined.
[0019] Furthermore, when the component is not in operation, the lower end of the conical disc can be flush with the top of the discharge port. When in operation, the conical disc can be raised and lowered to facilitate the discharge port and allow the repair agent to be output.
[0020] Preferably, an opening is provided on one side of the upper end of the repair agent carrier box, and a sealing plate is installed on one side of the upper end of the repair agent carrier box, with the sealing plate corresponding to the opening.
[0021] Furthermore, it facilitates the addition of repair agents while effectively sealing the surface to prevent excessive contact with the outside environment and to prevent the repair agents from getting damp.
[0022] Preferably, the transmission mechanism includes a first gear fixed on a vertical shaft, the first gear being located inside a mounting tube, a through opening on one side of the mounting tube, a second gear being rotatably sleeved inside the through opening, the second gear meshing with the first gear, an internal gear ring being fixed to the lower end of the disc, the mounting tube being sleeved inside the internal gear ring, and the internal gear ring meshing with the second gear.
[0023] Furthermore, the gear and gear ring components enable the disc to rotate, allowing the repair agent falling onto it to be thrown out through the rotation of the disc, thus facilitating the application of the repair agent.
[0024] Preferably, the linkage mechanism includes a conical gear disc fixedly mounted on a vertical shaft. Multiple linkage rod shafts are rotatably sleeved at equal intervals around the lower end of the mounting tube. A conical gear is fixed to one end of each linkage rod shaft located within the mounting tube, and the conical gear meshes with the conical gear disc. Multiple synchronous shafts are rotatably sleeved at equal intervals at the lower end of the float, arranged in a circle around the vertical shaft. A propeller is fixed to the end of each synchronous shaft away from the float. Multiple transmission ports are equally spaced on the float. Multiple linkage rod shafts are located at the upper ends of the multiple transmission ports, and multiple synchronous shafts are located at the lower ends of the multiple transmission ports. A second synchronous belt drive assembly is mounted on the linkage rod shafts and synchronous shafts located at the upper and lower ends of the same transmission port. Multiple second synchronous belt drive assemblies are respectively installed through the multiple transmission ports.
[0025] Furthermore, the conical gear disc enables the conical gear to drive the linkage shaft to rotate, which in turn enables the paddle to rotate and the water to flow, thus allowing the repair agent to diffuse more effectively in the water.
[0026] Preferably, the upper end of the floating disk component is tapered.
[0027] Furthermore, this prevents water from remaining on the floating roof components.
[0028] The beneficial effects of this invention are:
[0029] 1. The motor assembly enables the vertical shaft to rotate, and the vertical shaft can drive the first synchronous belt drive assembly, the first gear assembly, and the bevel gear disc assembly to rotate, so as to provide power for the operation of multiple mechanisms through the operation of a single power source;
[0030] 2. The first synchronous belt drive assembly enables the auger to rotate, and the support shaft to rotate with the auger. The two arc-shaped end gears cause the lower arc-shaped end gear to descend, which in turn causes the conical disc to descend with the support shaft. The auger facilitates the output of the repair agent through the round pipe and the discharge port. The conical disc can effectively close and descend to expose the discharge port, facilitating the output of the repair agent.
[0031] 3. The first gear component can drive the second gear component to make the internal gear ring component drive the vertical plate component to rotate, and the repair agent falls on the vertical plate component, and is applied through the rotation of the vertical plate component;
[0032] 4. The conical gear plate drives the conical gear, which in turn drives the linkage shaft to rotate through the second synchronous belt transmission assembly, thereby causing the water to flow and allowing the repair agent to spread more effectively. Attached Figure Description
[0033] Figure 1 This is a structural diagram of a water environment ecological restoration device proposed in this invention;
[0034] Figure 2 This is a structural diagram of the disc component and the vertical plate component of a water environment ecological restoration device proposed in this invention;
[0035] Figure 3 This invention provides a water environment ecological restoration device. Figure 1 Enlarged view of point A;
[0036] Figure 4 This invention provides an appendix to a water environment ecological restoration device. Figure 1 Enlarged view of point B;
[0037] Figure 5 This invention provides an appendix to a water environment ecological restoration device. Figure 1 Enlarged view of point C;
[0038] In the diagram: 1 Repair agent carrier box, 2 Sealing plate, 3 Opening, 4 Tubing, 5 Vertical shaft, 6 First synchronous belt drive assembly, 7 Screwdriver, 8 Installation pipe, 9 Linkage rod shaft, 10 Second synchronous belt drive assembly, 11 Floating disc, 12 Paddle blade, 13 Synchronous shaft, 14 Floating cylinder, 15 Motor assembly, 16 Transmission port, 17 Conical cylinder, 18 Disc, 19 Vertical plate, 20 Round tube, 21 Support shaft, 22 Conical disc, 23 Discharge port, 24 Arc-shaped end gear disc, 25 Resistance spring, 26 First gear, 27 Internal gear ring, 28 Second gear, 29 Conical gear disc, 30 Conical gear. Detailed Implementation
[0039] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0040] Reference Figure 1-5A water environment ecological restoration device includes a float 14. An installation pipe 8 is fixed to the middle of the upper end of the float 14. A restoration agent carrier box 1 is fixed to the upper end of the installation pipe 8. The two ends of the upper end of the installation pipe 8 are respectively welded to the upper end of the float 14 and the lower end of the restoration agent carrier box 1. The welding ensures the firmness of the connection between the installation pipe 8 and the float 14 and the restoration agent carrier box 1, and also ensures the sealing of the connection to prevent leakage. This helps protect the internal equipment from corrosion. A power mechanism is installed in the float 14, the installation pipe 8, and the restoration agent carrier box 1. The power mechanism is equipped with a vertical shaft 5 and an auger 7. The operation of the power mechanism enables the vertical shaft 5 and the auger 7 to operate, which facilitates the operation of the corresponding mechanisms and enables the directional delivery of the restoration agent.
[0041] Reference Figure 1 , 3 The power mechanism includes a motor assembly 15 installed at the bottom center of the float 14. The output shaft of the motor assembly 15 is fixed to the lower end of the vertical shaft 5. A sleeve 4 is fixed at the bottom center of the repair agent carrier box 1. The vertical shaft 5 passes through the mounting pipe 8 and the sleeve 4 and is rotatably connected to the top of the repair agent carrier box 1. The upper end of the auger 7 is rotatably connected to the top side of the repair agent carrier box 1. A first synchronous belt drive assembly 6 is installed between the vertical shaft 5 and the auger 7. The motor assembly 15 is easy for operators to operate and can be equipped with corresponding components during production as needed. At the same time, the motor assembly 15 can drive the vertical shaft 5 to rotate, and the sleeve 4 can effectively protect the repair agent. Moreover, the first synchronous belt drive assembly 6 can make the auger 7 rotate, which can make the repair agent transported in a directional manner.
[0042] Reference Figure 1 The first synchronous belt drive assembly 6 consists of a first synchronous belt and two first synchronous pulleys. The two first synchronous pulleys are respectively fixedly mounted on the vertical shaft 5 and the auger 7. The first synchronous belt is sleeved on the two first synchronous pulleys. Both the first synchronous belt and the two first synchronous pulleys adopt a toothed structure. Through the action of the toothed structure, the teeth on the first synchronous belt can fully mesh with the teeth on the first synchronous pulleys, which facilitates stable power transmission.
[0043] Reference Figure 1 , 3A circular tube 20 is provided through one side of the lower end of the repair agent carrier box 1. The lower end of the auger 7 extends into the circular tube 20, allowing the repair agent to be delivered into the circular tube 20 through the auger 7 and preventing blockage. A support shaft 21 is slidably mounted on the lower end of the auger 7. A conical disc 22 is rotatably sleeved on the support shaft 21. The support shaft 21 is provided through the lower end of the circular tube 20. Two arc-shaped end gear discs 24 are provided at the lower end of the support shaft 21. The two arc-shaped end gear discs 24 mesh with each other, and the action of the arc-shaped end gear discs 24 facilitates mutual contact. At the same time, the action of the resistance spring 25 ensures that the two arc-shaped end gear discs 24 are always in contact. The rotation of the arc-shaped end gear disc 24 at the lower end can also help to prevent blockage. The support shaft 21 drives the conical disc 22 to rise and fall. The upper arc-shaped toothed disc 24 is fixed to the lower end of the round tube 20. The lower end of the support shaft 21 is fixed to the middle of the arc-shaped toothed disc 24. A resistance spring 25 is installed through the support shaft 21. The upper ends of the resistance spring 25 are fixed to the lower end of the conical disc 22 and the top of the round tube 20, respectively. Multiple discharge ports 23 are evenly spaced around the lower end of the round tube 20. The conical disc 22 is located above the discharge ports 23. The rising and falling of the conical disc 22 allows the repair agent to be discharged. When not in use, the conical disc 22 can rise and return to its original position, effectively preventing excessive contact between the repair agent and the outside world and better ensuring the quality of the repair agent.
[0044] Reference Figure 1 , 3 The lower end of the conical disc 22 is flush with the top of the discharge port 23, and the bottom of the discharge port 23 is inclined. This effectively prevents the repair agent from having too much contact with the outside world when the component is not in operation. At the same time, the setting of the discharge port 23 can fully prevent the repair agent from remaining in the round tube 20.
[0045] Reference Figure 1 An opening 3 is provided on one side of the upper end of the repair agent carrier box 1. A sealing plate 2 is installed on one side of the upper end of the repair agent carrier box 1. The sealing plate 2 corresponds to the opening 3. Repair agent can be added through the opening 3, and sealing can be performed through the sealing plate 2 to better prevent the repair agent from having too much contact with the outside world and better protect the quality of the repair agent.
[0046] Reference Figure 1 , 24. A transmission mechanism is provided on the vertical shaft 5, and a disc 18 is provided on the transmission mechanism. The transmission mechanism includes a first gear 26 fixed on the vertical shaft 5, which is located inside the mounting tube 8. A through-hole is opened on one side of the mounting tube 8, and a second gear 28 is rotatably sleeved in the through-hole. The second gear 28 and the first gear 26 mesh. An internal gear ring 27 is fixed to the lower end of the disc 18. The first gear 26 can drive the second gear 28 to rotate by rotating the rod of the vertical shaft 5, and the internal gear ring 27 can drive the disc 18 to rotate. The rotating disc 18 can spray the repair agent that falls on it onto the water body. The installation pipe 8 is fitted inside the internal gear ring 27, which meshes with the second gear 28. The disc 18 rotates and is fitted onto the installation pipe 8. A conical cylinder 17 is fixed on the disc 18 and rotates and is fitted onto the installation pipe 8. Multiple vertical plates 19 are fixed at equal intervals around the conical cylinder 17. The lower ends of the multiple vertical plates 19 are fixedly connected to the upper ends of the disc 18. The connection is made strong by welding, which can better discharge and release the repair agent and spread it on the water surface.
[0047] Reference Figure 1 , 2 The vertical shaft 5 is equipped with a linkage mechanism, which includes multiple blade components 12. The linkage mechanism includes a conical gear disc 29 fixedly mounted on the vertical shaft 5. Multiple linkage rod shafts 9 are rotatably connected at equal intervals around the lower end of the mounting tube 8. A conical gear 30 is fixed to one end of each linkage rod shaft 9 inside the mounting tube 8, and the conical gears 30 mesh with the conical gear disc 29. Multiple synchronous shafts 13 are rotatably connected at equal intervals to the lower end of the float 11. The synchronous shafts 13 are arranged in a circle around the vertical shaft 5. A blade component 12 is fixed to the end of each synchronous shaft 13 away from the float 14. Multiple transmission ports 16 are equally spaced on the float 11, and the multiple linkage rod shafts 9 are located at the upper ends of the multiple transmission ports 16. The multiple synchronous shafts... The components 13 are located at the lower ends of multiple transmission ports 16. The linkage shaft 9 and the synchronous shaft 13 located at the upper and lower ends of the same transmission port 16 are jointly equipped with a second synchronous belt transmission assembly 10. Multiple second synchronous belt transmission assemblies 10 are respectively installed through multiple transmission ports 16. The vertical shaft 5 can drive the conical gear disc 29 to rotate. The rod can drive the conical gear 30 to drive the linkage shaft 9 to rotate. Through the second synchronous belt transmission assembly 10, the synchronous shaft 13 and the blade 12 can rotate, which can make the water flow, better mix with the repair agent, and improve the mixing effect. The float 14 is fixed with a float plate 11. The connection is ensured by welding. The linkage mechanism is connected to the float plate 11. The upper end of the float plate 11 is conical, which can prevent water retention and facilitate water discharge.
[0048] In this invention, during use, the motor assembly 15 enables the vertical shaft 5 to rotate, and the vertical shaft 5 drives the first synchronous belt drive assembly 6, the first gear assembly 26, and the conical gear disc assembly 29 to rotate. The first synchronous belt drive assembly 6 enables the auger assembly 7 to rotate, and the support shaft assembly 21 can rotate with the auger assembly 7. Furthermore, the two arc-shaped end gear discs 24 enable the lower arc-shaped end gear disc 24 to descend, allowing the conical disc assembly 22 to descend with the support shaft assembly 21. The auger assembly 7 facilitates the passage of the repair agent through the round tube 20 and the discharge port 2. 3. Output: The conical disc 22 can be effectively closed and lowered to expose the discharge port 23, facilitating the output of the repair agent. The first gear 26 can drive the second gear 28 to make the internal gear ring 27 drive the vertical plate 19 to rotate, and the repair agent falls on the vertical plate 19. The rotation of the vertical plate 19 enables the agent to be dispensed. The conical gear disc 29 drives the conical gear 30 to make the linkage shaft 9 drive the synchronous shaft 13 and the paddle 12 to rotate through the second synchronous belt transmission assembly 10, which can make the water flow so as to better diffuse the repair agent.
[0049] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A water environment ecological restoration device, comprising a float (14), characterized in that: An installation pipe (8) is fixed to the middle of the upper end of the float (14). A repair agent carrier box (1) is fixed to the upper end of the installation pipe (8). A power mechanism is installed in the float (14), the installation pipe (8), and the repair agent carrier box (1). A vertical shaft (5) and an auger (7) are provided on the power mechanism. A round pipe (20) is provided through one side of the lower end of the repair agent carrier box (1). The lower end of the auger (7) extends into the round pipe (20). A support shaft (21) is slidably installed on the lower end of the auger (7). A conical disc (22) is rotatably sleeved on the support shaft (21). The support shaft (21) is provided through the round pipe (20). At the lower end of the support shaft (21), two arc-shaped end gears (24) are provided at the lower end of the support shaft (21). The two arc-shaped end gears (24) mesh with each other. The arc-shaped end gears (24) at the upper end are fixed at the lower end of the round tube (20). The lower end of the support shaft (21) is fixed in the middle of the arc-shaped end gears (24) at the lower end. A resistance spring (25) is provided through the support shaft (21). The upper ends of the resistance spring (25) are fixed at the lower end of the conical disc (22) and the top of the round tube (20) respectively. Multiple discharge ports (23) are provided at equal intervals around the lower end of the round tube (20). The conical disc (22) is located at the upper end of the discharge port (23). The vertical shaft (5) is provided with a transmission mechanism, and the transmission mechanism is provided with a disc (18). The disc (18) is rotatably sleeved on the mounting pipe (8). A conical cylinder (17) is fixed on the disc (18). The conical cylinder (17) is rotatably sleeved on the mounting pipe (8). Multiple vertical plates (19) are fixed at equal intervals around the conical cylinder (17). The lower ends of the multiple vertical plates (19) are fixedly connected to the upper ends of the disc (18). The vertical shaft (5) is provided with a linkage mechanism, the linkage mechanism is provided with multiple blades (12), the float (14) is fixed with a floating plate (11), and the linkage mechanism and the floating plate (11) are connected. The lower end of the conical disc (22) is flush with the top of the discharge port (23), and the bottom of the discharge port (23) is inclined. The upper end of the floating disc component (11) is tapered.
2. The water environment ecological restoration device according to claim 1, characterized in that: The upper ends of the installation pipe fitting (8) are respectively fixed to the upper end of the float fitting (14) and the lower end of the repair agent carrier box (1) by welding.
3. The water environment ecological restoration device according to claim 1, characterized in that: The power mechanism includes a motor assembly (15) installed at the bottom center of the float (14), the output shaft end of the motor assembly (15) is fixed to the lower end of the vertical shaft (5), a sleeve (4) is fixed at the bottom center of the repair agent carrier box (1), the vertical shaft (5) passes through the installation pipe (8) and the sleeve (4) and is rotatably connected to the top of the repair agent carrier box (1), the upper end of the auger (7) is rotatably connected to the top side of the repair agent carrier box (1), and a first synchronous belt drive assembly (6) is installed between the vertical shaft (5) and the auger (7).
4. The water environment ecological restoration device according to claim 3, characterized in that: The first synchronous belt drive assembly (6) consists of a first synchronous belt and two first synchronous pulleys. The two first synchronous pulleys are respectively fixedly mounted on the vertical shaft (5) and the auger (7). The first synchronous belt is mounted on the two first synchronous pulleys. Both the first synchronous belt and the two first synchronous pulleys adopt a toothed structure.
5. The water environment ecological restoration device according to claim 1, characterized in that: An opening (3) is provided on one side of the upper end of the repair agent carrier box (1), and a sealing plate (2) is installed on one side of the upper end of the repair agent carrier box (1). The sealing plate (2) and the opening (3) correspond to each other.
6. The water environment ecological restoration device according to claim 1, characterized in that: The transmission mechanism includes a first gear (26) fixed on a vertical shaft (5), the first gear (26) being located inside a mounting tube (8), a through opening being provided on one side of the mounting tube (8), a second gear (28) being rotatably sleeved inside the through opening, the second gear (28) meshing with the first gear (26), an internal gear ring (27) being fixed at the lower end of the disc (18), the mounting tube (8) being sleeved inside the internal gear ring (27), the internal gear ring (27) meshing with the second gear (28).
7. The water environment ecological restoration device according to claim 1, characterized in that: The linkage mechanism includes a conical gear disc (29) fixedly mounted on the vertical shaft (5). Multiple linkage rod shafts (9) are rotatably connected at equal intervals around the lower end of the mounting tube (8). One end of each linkage rod shaft (9) located inside the mounting tube (8) is fixed with a conical gear (30). All conical gears (30) mesh with the conical gear disc (29). Multiple synchronous shafts (13) are rotatably connected at equal intervals around the lower end of the floating disc (11). The synchronous shafts (13) are arranged in a circle around the vertical shaft (5). 3) A blade (12) is fixed at one end away from the pontoon (14). Multiple transmission ports (16) are opened at equal intervals on the pontoon (11). Multiple linkage shafts (9) are located at the upper end of the multiple transmission ports (16), and multiple synchronous shafts (13) are located at the lower end of the multiple transmission ports (16). The linkage shafts (9) and synchronous shafts (13) located at the upper and lower ends of the same transmission port (16) are jointly equipped with a second synchronous belt drive assembly (10). Multiple second synchronous belt drive assemblies (10) are respectively installed through the multiple transmission ports (16).
Citation Information
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