Sensing plate track of dragging type wave making equipment
By setting up support components and ventilation channels between the induction plate track and the mounting surface, and using blowers and exhaust devices to cool down, the deformation problem caused by thermal expansion and contraction of the induction plate track was solved, the consistency of the distance between the induction plate and the magnetic motor was achieved, and the stable drive of the wave pusher was ensured.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2026-03-06
AI Technical Summary
The existing induction plate track is prone to deformation due to thermal expansion and contraction during operation, which affects the unstable driving force output of the wave pusher.
By setting up support components between the induction plate track and the mounting surface, and forming a ventilation channel within the track, airflow is maintained using blowers and exhaust devices to reduce the temperature of the induction plate. At the same time, the support components maintain the stability and levelness of the track, ensuring that the distance between the magnetic motor and the induction plate is consistent.
This effectively reduces the thermal expansion and contraction caused by excessively high induction plate temperature, ensuring the continuous output of the magnetic motor, ensuring that the driving force of the wave pusher plate meets expectations, and improving the stability of the induction plate track and the magnetic motor.
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Figure CN223974943U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of wave-making equipment technology, specifically to a sensor plate track for a drag-type wave-making device. Background Technology
[0002] A towed wave generator is a device used to create waves in a pool for surfing. In a towed wave generator, a magnetic motor is mounted on a guide rail via a mounting bracket, and a wave-pushing plate is connected to the mounting bracket. An induction plate is used as a sensor; when the magnetic motor interacts with the induction plate, it generates thrust, which in turn pushes the mounting bracket along the guide rail via rollers, allowing the wave-pushing plate to move in a preset direction.
[0003] The long-distance laying of induction plates forms an induction plate track. During operation, thermal expansion and contraction can cause deformation of the long-distance track, thus affecting the driving of the wave pusher. Utility Model Content
[0004] This invention addresses the technical problem that existing induction plate tracks are prone to deformation due to thermal expansion and contraction during operation, thus affecting the drive of the wave-pushing plate. The aim is to provide an induction plate track for a towable wave-generating device that continuously cools the induction plate, preventing overheating and affecting the output of the magnetic motor. It also reduces deformation of long-distance tracks caused by thermal expansion and contraction. Furthermore, the horizontal installation of the induction plate track ensures stability, maintaining a consistent distance between it and the magnetic motor, guaranteeing continuous and nearly uniform output from the magnetic motor, and ensuring the driving force on the wave-pushing plate meets expectations.
[0005] This utility model is achieved through the following technical solution:
[0006] A sensor plate track for a draggable wave generator includes multiple sensor plates and support components;
[0007] Multiple sensor panels are laid out along a preset direction to form a sensor panel track body, and the bottom of the sensor panel track body is fixed to the mounting surface by a support member;
[0008] A ventilation channel is formed between the induction plate track body and the mounting surface. A blower is provided at one end of the ventilation channel and an exhaust device is provided at the other end.
[0009] Furthermore, a support member is provided at the bottom of the induction plate track body along the length direction.
[0010] Furthermore, the support includes a first screw and a first connecting frame. The bottom end of the first screw is embedded in the mounting surface, and the upper end of the first screw is engaged with one end of the connecting frame through a first nut. The other end of the first connecting frame is connected to the bottom of the induction plate track body.
[0011] Furthermore, the first connecting frame is a C-shaped connecting frame.
[0012] Furthermore, a boss extends upward along the first screw on the mounting surface, and the area between adjacent bosses constitutes the ventilation channel.
[0013] Furthermore, the area between the bosses is also filled with coolant.
[0014] Furthermore, the support includes a lifting leg and a second connecting frame. The bottom of the lifting leg is fixed to the mounting surface, the upper end of the lifting leg is connected to one end of the second connecting frame, and the other end of the second connecting frame is connected to the bottom of the induction plate track body.
[0015] Furthermore, the lifting outrigger includes a second screw, a second nut, a sleeve, and a flat panel. The bottom of the sleeve is fixed to the mounting surface, and the upper end of the sleeve is provided with a second nut. The second screw is threadedly connected to the second nut, and the top of the second screw is connected to the flat panel. The flat panel is connected to the second connecting frame, and the induction plate track body is placed on the second connecting frame.
[0016] Furthermore, the lifting outriggers employ a hydraulic lifting device or a pneumatic lifting device.
[0017] Furthermore, it also includes a height detection device for detecting the height of the top surface of the induction plate track body.
[0018] Compared with the prior art, this utility model has the following advantages and beneficial effects:
[0019] 1. This utility model uses a support component to create a predetermined distance between the induction plate and the mounting surface, forming a ventilation channel to remove the heat generated by the induction plate. By setting a blower at one end of the induction plate track body and an exhaust device at the other end, airflow continuously flows within the ventilation channel, continuously cooling the induction plate. This reduces the phenomenon of the induction plate overheating affecting the output of the magnetic motor, and reduces the deformation of the long-distance track caused by thermal expansion and contraction. As a result, the distance between the induction plate track body and the magnetic motor remains basically consistent or within a predetermined deviation range, ensuring that the magnetic motor can have a continuous and almost consistent output, and that the driving force on the wave pusher plate meets expectations.
[0020] 2. This utility model, through the relative arrangement of support members, can ensure stable support for the induction plate, giving the long-distance induction plate track body good stability and avoiding bending deformation due to its own weight during long-distance laying. At the same time, it can adjust the height of the induction plate to ensure that the induction plate is placed horizontally, so that the distance between the induction plate track body and the magnetic motor is basically consistent or within a reasonable deviation range, ensuring that the magnetic motor can have a continuous and almost consistent output, so that the driving force on the wave pusher plate meets expectations. Attached Figure Description
[0021] The accompanying drawings, which are included to provide a further understanding of the embodiments of the present invention and form part of this application, do not constitute a limitation thereof. In the drawings:
[0022] Figure 1 This is a schematic diagram of the overall installation of this utility model in a wave-making device;
[0023] Figure 2 for Figure 1 Enlarged view of part A in the middle;
[0024] Figure 3 This is a schematic diagram of the support structure in Example 2;
[0025] Figure 4 for Figure 3 Enlarged view of part B in the middle;
[0026] Figure 5 This is a schematic diagram of the support structure in Example 3;
[0027] Figure 6 for Figure 5 Enlarged view of section C;
[0028] Figure 7 This is a three-dimensional structural diagram of the support member in Example 3.
[0029] The attached diagram shows the markings and corresponding component names:
[0030] 1-Pool body, 2-First mounting surface, 3-Second mounting surface, 4-Support component, 41-First connecting frame, 42-First screw, 43-First nut, 44-Boss, 45-Second connecting frame, 46-Flat plate, 47-Second screw, 48-Second nut, 49-Sleeve, 5-Induction plate track body, 6-Mounting bracket, 7-Guide rail, 8-Wave pusher plate. Detailed Implementation
[0031] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the embodiments and accompanying drawings. The illustrative embodiments and descriptions of this utility model are only used to explain this utility model and are not intended to limit this utility model.
[0032] In the following description, numerous specific details are set forth in order to provide a thorough understanding of the present invention. However, it will be apparent to those skilled in the art that these specific details are not necessary to implement the present invention. In other embodiments, well-known structures, circuits, materials, or methods are not specifically described in order to avoid obscuring the present invention.
[0033] In the description of this utility model, the indicated orientation or positional relationship is based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship that the product of this application is usually placed in when in use, or the orientation or positional relationship that is commonly understood by those skilled in the art. It is only for the convenience of describing this application and simplifying the description, and is not intended to indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation of this application.
[0034] Meanwhile, the terms "set up," "assemble," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0035] Example 1
[0036] This embodiment provides an induction plate track for a towable wave generator. In the towable wave generator, the mounting bracket 6 is used to mount the magnetic motor of the wave generator, and the mounting bracket 6 moves on the guide rail 7 of the wave generator through rollers. The induction plate track acts as a sensing element. When the magnetic motor interacts with the induction plate, the magnetic motor generates thrust, thereby pushing the mounting bracket 6 to move along the guide rail 7 through the rollers. The pusher plate 8 is connected to the mounting bracket 6, so that the pusher plate 8 can move in a preset direction.
[0037] like Figures 1-7 As shown, the induction plate track includes multiple induction plates and support members 4;
[0038] Multiple induction plates are laid out along a preset direction to form an induction plate track body 5. The bottom of the induction plate track body 5 is fixed to the mounting surface by a support member 4, including but not limited to the mounting surface fixed above the pool body 1.
[0039] The support member 4 creates a preset distance between the bottom of the sensor plate track body 5 and the mounting surface, thereby forming a ventilation channel between the sensor plate track body 5 and the mounting surface. A blower (not shown) is provided at one end of the ventilation channel, and an exhaust device (not shown) is provided at the other end.
[0040] The bottom of the induction plate track body 5 is provided with a support member 4 along its length. The support member 4 is distributed at the bottom of the induction plate track body 5, which effectively supports the induction plate track body 5 and prevents the induction plate from bending and deforming due to its own weight when laid over a long distance.
[0041] In this embodiment, two sets of induction plate tracks are installed in the wave-making device, distributed on both sides of the channel where the rotating shaft of the wave-making device is located, and situated in the area between the two guide rails 7. The extending direction of the induction plate track body 5 is consistent with the extending direction of the guide rails 7. Figure 1-2 As shown, the pool body 1 has two mounting surfaces above it. One set of sensor plate tracks is set on the first mounting surface 2, and the other set of sensor plate tracks is set on the second mounting surface 3.
[0042] The thermal expansion and contraction of the induction plate during operation mainly alters the distance between the induction plate and the magnetic motor. A closer distance results in greater magnetic force; however, large differences in distance due to thermal expansion and contraction significantly affect the driving force, causing a large discrepancy between the driving force and the expected force on the wave-pushing plate, which is detrimental to its movement at the preset speed. Therefore, this invention uses a support member 4 to create a predetermined distance between the induction plate and the mounting surface, forming a ventilation channel. This ventilation channel removes heat from the track area and the heat generated by the induction plate. By installing a blower at one end of the induction plate track body 5 and an exhaust device at the other end, continuous airflow is maintained within the ventilation channel, continuously cooling the induction plate and preventing excessive thermal expansion and contraction. This ensures that the distance between the induction plate track body 5 and the magnetic motor remains consistent or within a reasonable deviation range, guaranteeing a continuous and nearly consistent output from the magnetic motor and ensuring that the driving force on the wave-pushing plate meets expectations.
[0043] Example 2
[0044] This embodiment provides an implementation method for the support member 4 based on embodiment 1.
[0045] like Figure 3-4 As shown, the support member 4 includes a first screw 42 and a first connecting frame 41. The bottom end of the first screw 42 is embedded in the mounting surface and a section of its top protrudes. The upper end of the first screw 42 engages with one end of the connecting frame via a first nut 43, and the height of the connecting frame can be adjusted by increasing or decreasing the number of shims. The other end of the first connecting frame 41 is connected to the bottom of the induction plate track body 5. The induction plate can be an integral component combining an aluminum plate and a steel plate.
[0046] In this embodiment, the support member 4 is set up to ensure stable support for the induction plate, so that the long-distance induction plate track body 5 has good stability and avoids bending deformation due to its own weight during long-distance laying. At the same time, the induction plate can be placed horizontally by adjusting the shims, so that the distance between the induction plate track body 5 and the magnetic motor is consistent, so that the magnetic motor generates stable thrust, thereby ensuring the stable movement of the mounting bracket 6.
[0047] The first connecting frame 41 is preferably a C-shaped connecting frame. The C-shaped connecting frames are back to back. The C-shaped connecting frames can be made of C-shaped profiles according to the dimensions. Since the upper and lower connection positions of the C-shaped connecting frames are determined and the height is constant, they can form a horizontal support for the induction plate track body 5, ensuring the horizontal placement of the induction plate.
[0048] Preferably, a boss 44 extends upward along the first screw 42 on the mounting surface. The boss 44 can be constructed during foundation building, and by controlling the height during pouring, it forms a horizontal support. Thus, the boss 44 forms the first horizontal support, and the C-shaped connecting frame forms the second horizontal support. The support of the boss 44 and the C-shaped connecting frame effectively ensures the horizontal placement of the induction plate, thereby ensuring that the induction plate track body 5 is laid horizontally. Furthermore, the C-shaped profile is always connected along the length of the induction plate, so the induction plate will not bend due to its own weight. This allows for the construction of a long-distance induction track, the length of which can be set according to site conditions. This ensures that the long-distance induction track remains horizontal, resulting in stable magnetic force and not affecting the movement of the mounting bracket 6.
[0049] Alternatively, the area between the bosses 44 can form the ventilation channel mentioned above. This area can also be filled with a certain amount of coolant, such as water, to help cool the sensor plate through evaporation and heat absorption.
[0050] Example 3
[0051] This embodiment provides another implementation of the support member 4 based on embodiment 1.
[0052] like Figure 5-7 As shown, the support member 4 includes a lifting leg and a second connecting frame 45. The bottom of the lifting leg is fixed on the mounting surface, the upper end of the lifting leg is connected to one end of the second connecting frame 45, and the other end of the second connecting frame 45 is connected to the bottom of the induction plate track body 5.
[0053] In this embodiment, the sensor panel is placed on the second connecting frame 45. By adjusting the lifting legs, it can be ensured that multiple sensor panels remain horizontal after being laid. The height of the sensor panel can be adjusted by adjusting the lifting legs, so that the track of the laid sensor panel is horizontal.
[0054] The lifting outrigger includes a second screw 47, a second nut 48, a sleeve 49, and a flat panel 46. The bottom of the sleeve 49 is fixed to the mounting surface, and the upper end of the sleeve 49 is provided with the second nut 48. The second screw 47 is threadedly connected to the second nut 48, and the top of the second screw 47 is connected to the flat panel 46. The flat panel 46 is connected to the second connecting frame 45, and the induction plate track body 5 is placed on the second connecting frame 45. Through the cooperation of the second screw 47 and the second nut 48, the height of the flat panel 46 can be adjusted before installing the second connecting frame 45, thereby ensuring the horizontal installation of the second connecting frame 45.
[0055] Preferably, the lifting outrigger can be a hydraulic lifting device or a pneumatic lifting device, and a height detector, such as a laser detector, can be installed to detect the height of the top surface of the induction plate track body 5. When a local change in the height of the induction plate is detected to exceed a preset range, the hydraulic lifting device or the pneumatic lifting device is controlled to work until the induction plate at that position returns to a consistent height. This enables dynamic adjustment of the induction plate height, ensuring that the distance between the induction plate track body 5 and the magnetic motor remains consistent or within a reasonable deviation range, thus guaranteeing that the magnetic motor can have a continuous and almost consistent output.
[0056] Finally, it should be noted that the above specific embodiments are only used to describe the purpose, technical solution, and beneficial effects of this utility model in detail. It should be understood that the above description is only a specific implementation of this utility model and is not intended to limit the protection scope of this utility model. Although this utility model has been described in detail with reference to the foregoing specific embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions or improvements can be made to some or all of the technical features. These modifications, equivalent substitutions, and improvements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this utility model, and they should all be covered within the scope of the claims and specification of this utility model.
Claims
1. A track for a towed wave making apparatus, characterised in that, The support (4) comprises a first screw rod (42) and a first connecting frame (41), the bottom end of the first screw rod (42) is embedded in the mounting surface, the upper end of the first screw rod (42) is matched with one end of the connecting frame through a first nut (43), and the other end of the first connecting frame (41) is connected with the bottom of the induction plate track body (5). The first connecting frame (41) is a C-shaped connecting frame. The mounting surface extends upward along the first screw rod (42) to form a boss (44), and the area between adjacent bosses (44) constitutes the ventilation channel.
2. A tow-in wave generator induction pad track according to claim 1, wherein, The area between adjacent bosses (44) is also filled with cooling liquid.
3. A tow-in wave generator induction pad track according to claim 2, wherein, The support (4) comprises a lifting leg and a second connecting frame (45), the bottom of the lifting leg is fixed on the mounting surface, the upper end of the lifting leg is connected with one end of the second connecting frame (45), and the other end of the second connecting frame (45) is connected with the bottom of the induction plate track body (5).
4. A tow-in wave generator induction pad track according to claim 3, wherein, The lifting leg comprises a second screw rod (47), a second nut (48), a sleeve (49) and a flat plate (46), the bottom of the sleeve (49) is fixed on the mounting surface, the upper end of the sleeve (49) is provided with the second nut (48), the second screw rod (47) is threadedly connected with the second nut (48), the top of the second screw rod (47) is connected with the flat plate (46), the flat plate (46) is connected with the second connecting frame (45), and the induction plate track body (5) is placed on the second connecting frame (45).
5. A tow-in wave generator induction pad track according to claim 3, wherein, The lifting leg adopts a hydraulic lifting device or an air pressure lifting device.
6. A tow-in wave generator induction pad track according to claim 5, wherein, It also comprises a height detection device for detecting the height of the top surface of the induction plate track body (5).
7. A tow-in wave generator induction pad track according to claim 2, wherein, 8. A tow-in wave generator induction pad track according to claim 7, wherein, 9. A tow-in wave generator induction pad track according to claim 7, wherein, 10. A tow-in wave generator induction pad track according to any one of claims 1 to 9, wherein,