Track system for dragging type wave making equipment

The magnetic drive track system solves the problems of high noise and vibration in drag-type wave generators, achieving a low-noise and low-vibration wave generation effect and improving the visitor experience.

CN223974942UActive Publication Date: 2026-03-06CHENGDU TAILONG RECREATION IND CO LTD
View PDF 0 Cites 0 Cited by

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

Technical Problem

Existing towed wave generators generate significant noise and vibration during operation, impacting the environment and visitor experience.

Method used

The magnetically driven track system uses a combination of load-bearing tracks, induction tracks, and power supply tracks to drive the wave generator with a magnetic motor, reducing noise and vibration.

Benefits of technology

It achieves low-noise and low-vibration wave generation, enhances the visitor experience, and provides a stable structural foundation to support the normal movement of the wave generator.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223974942U_ABST
    Figure CN223974942U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of water recreation facilities, in particular to a track system for dragging type wave making equipment, which comprises a plurality of support frames arranged at intervals and provided with first connecting ends and second connecting ends, and mounting gaps are formed between the first connecting ends and the second connecting ends; the first supporting foundation is configured on a pool bank foundation; the second supporting foundation is connected to the supporting frame, and an avoiding gap is formed between the second supporting foundation and the first supporting foundation; the bearing track is mounted on the first supporting foundation and the second supporting foundation; the sensing track is installed on the first supporting foundation and / or the second supporting foundation, and the sensing track is lower than the bearing track; and the power supply track is connected with the magnetic engine to realize power supply. The mounting bracket can be conveniently mounted, the mounting bracket can interact with the magnetic engine on the mounting bracket to form driving force, the movement stability of the mounting bracket can be ensured, and a structural foundation is provided for normal movement of the wave pushing plate.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of water park facilities technology, specifically to a track system for a towable wave generator. Background Technology

[0002] Towed wave generators are devices used to create waves in a pool for surfing. They generate waves by moving a wave generator board. Existing towed wave generators typically use gear and rack or hydraulic transmission to move the wave generator board. These systems generate relatively high noise and vibration during operation, which can have a certain impact on the surrounding environment and reduce the enjoyment of visitors. Utility Model Content

[0003] This application provides a track system for a towable wave generator, which arranges load-bearing tracks, induction tracks, and power supply tracks in a reasonable manner to form a magnetic drive with the mounting bracket to drive the wave generator plate to generate waves.

[0004] This application is achieved through the following technical solution:

[0005] A track system for a towed wave generator includes:

[0006] Multiple spaced support frames, each support frame having a first connecting end and a second connecting end, the first connecting end being used to connect to the pool bank foundation of the wave pool, the second connecting end being used to connect to the bottom of the wave pool, and an installation gap being formed between the first connecting end and the second connecting end.

[0007] The first supporting foundation is configured on the pool bank foundation;

[0008] The second support base is connected to the support frame and forms a clearance gap with the first support base;

[0009] The load-bearing rail is installed on the first support base and the second support base to engage with the mounting bracket in a transmission manner;

[0010] An induction track is installed on the first support base and / or the second support base to drive the mounting bracket to move on the load-bearing track by means of an electromagnetic motor acting on the mounting bracket through magnetic reaction force, wherein the induction track is lower than the load-bearing track.

[0011] A power supply rail is used to connect the magnetic motor to provide power.

[0012] The track system for a towable wave generator provided in this application, through the setting of the load-bearing track, can support and guide the mounting bracket, and can suspend the mounting bracket so that the mounting bracket and the induction track maintain a certain gap. Through the setting of the induction track, it can cooperate with the magnetic motor on the mounting bracket to generate driving force, and then continuously supply power to the magnetic motor on the mounting bracket through the power supply track, so that the mounting bracket can move along the length of the load-bearing guide rail on the load-bearing track, thereby driving the wave generator to move and generate waves.

[0013] The track system for towable wave generators provided in this application facilitates the installation of mounting brackets, thereby enabling wave generation through magnetically driven wave generator movement and providing a stable structural foundation for the normal movement of the wave generator.

[0014] In some alternative embodiments, a plurality of load-bearing rails arranged in parallel at intervals are installed on the first support base.

[0015] In some alternative embodiments, a plurality of load-bearing rails arranged in parallel at intervals are installed on the second support base.

[0016] In some alternative embodiments, the power supply rail is connected to the support frame, and in the working state, the power supply rail is located above the mounting bracket.

[0017] In some alternative embodiments, the first support foundation is configured to extend inward from the poolside foundation of the wave pool.

[0018] In some optional embodiments, in the working state, the load-bearing surface is perpendicular to the guide surface.

[0019] In some alternative embodiments, a plurality of induction tracks arranged in parallel at intervals are mounted on the first support base.

[0020] In some alternative embodiments, a plurality of induction tracks arranged in parallel at intervals are mounted on the second support base.

[0021] In some alternative embodiments, the support frame includes a first column, a second column, and a support beam;

[0022] One end of the first column serves as the first connecting end to connect to the foundation of the pool bank;

[0023] One end of the second column serves as the second connecting end to connect to the bottom of the pool;

[0024] The two ends of the supporting beam are respectively connected to the other ends of the first column and the second column;

[0025] The power supply rail is connected to the support beam.

[0026] In some alternative embodiments, a tie rod is connected between adjacent first or second columns.

[0027] In some alternative embodiments, a guide rail is also included for mounting on the bottom of the pool and for connecting the mounting bracket.

[0028] Compared with the prior art, this application has the following advantages and beneficial effects:

[0029] 1. The track system for a towable wave generator provided in this application, through the setting of the load-bearing track, can support and guide the mounting bracket, and can suspend the mounting bracket so that the mounting bracket and the induction track maintain a certain gap. Through the setting of the induction track, it can cooperate with the magnetic motor on the mounting bracket to generate driving force, and then continuously supply power to the magnetic motor on the mounting bracket through the power supply track, so that the mounting bracket can move along the length of the load-bearing guide rail on the load-bearing track, thereby driving the wave generator to move and generate waves.

[0030] 2. The track system for towable wave generators provided in this application facilitates the installation of mounting brackets, thereby enabling wave generation by magnetically driving the wave generator plate to move, and providing a stable structural foundation for the normal movement of the wave generator plate. Attached Figure Description

[0031] The accompanying drawings, which are included to provide a further understanding of the embodiments of this application and form part of this application, do not constitute a limitation on the embodiments of this application. In the drawings:

[0032] Figure 1 A schematic diagram of the track system for a towed wave generator provided in this application embodiment during use;

[0033] Figure 2 This is a schematic diagram of the cross-sectional structure of the track system for a towed wave generator provided in an embodiment of this application;

[0034] Figure 3 for Figure 2 Enlarged structural diagram at point A;

[0035] Figure 4 This is a schematic diagram of the cross-sectional structure of the load-bearing track provided in an embodiment of this application;

[0036] Figure 5 A schematic diagram of the cross-sectional structure of a track system for a towed wave generator provided in this application embodiment;

[0037] Figure 6 for Figure 5 A magnified structural diagram at point B in the middle.

[0038] The attached diagram shows the markings and corresponding component names:

[0039] 1-Supporting frame, 2-Pool bank foundation, 3-Pool edge foundation, 4-First support foundation, 5-Second support foundation, 6-Load-bearing track, 61-Load-bearing part, 62-Connecting part, 63-Installation part, 7-Induction track, 8-Mounting bracket, 9-Magnetic motor, 10-Load-bearing wheel, 11-Wave generator, 12-Power supply track, 13-Connecting frame, 14-Load-bearing wheel, 15-Guide wheel. Detailed Implementation

[0040] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the embodiments and accompanying drawings. The illustrative embodiments and descriptions of this application are only for explaining this application and are not intended to limit this application.

[0041] like Figures 1-6 As shown in the figure, this application provides a track system for a towable wave generator. The track system for the towable wave generator includes a support frame 1, a first support base 4, a second support base 5, a load-bearing track 6, an induction track 7, and a power supply track 12.

[0042] There are multiple support frames 1, which are arranged at intervals along the preset movement direction of the wave plate 11. The multiple support frames 1 can be arranged at equal or unequal intervals. Each support frame 1 has a first connecting end and a second connecting end. The first connecting end is used to connect to the pool bank foundation 2 of the wave pool, that is, there is a certain distance between the first connecting end and the edge of the wave pool. The second connecting end is used to connect to the bottom of the wave pool. An installation gap is formed between the first connecting end and the second connecting end. This installation gap is used to install the mounting bracket 8 and other facilities or components that are matched with the mounting bracket 8.

[0043] The first supporting foundation 4 is configured on the pool bank foundation 2. The first supporting foundation 4 can be a structure independent of the pool bank foundation 2, connected to the pool bank foundation 2. Alternatively, the pool bank foundation 2 can be used as the first supporting foundation 4, with a portion of the pool bank foundation 2 designated as the first supporting foundation 4. For example, in some embodiments, the first supporting foundation 4 extends horizontally a certain distance from the pool edge foundation 3 into the pool, indicating that the first supporting foundation 4 can be connected to the pool bank foundation 2 using an integral molding process.

[0044] The second support base 5 is connected to the support frame 1 and forms a clearance gap with the first support base 4, which means that the second support base 5 is located in the wave pool. In the working state, the second support base 5 and the first support base 4 can be arranged at the same height or form a certain height difference. After the mounting bracket 8 is installed, the connection structure between the mounting bracket 8 and the wave plate 11 is located in the clearance gap. When the mounting bracket 8 moves, the connection structure moves synchronously in the clearance gap.

[0045] The load-bearing rails 6 are installed on the first support base 4 and the second support base 5 to engage with the mounting bracket 8. This means that the load-bearing rails 6 on the first support base 4 and the second support base 5 respectively support the mounting bracket 8. When the mounting bracket 8 engages with the load-bearing rails 6, the mounting bracket 8 can slide along the length of the load-bearing rails 6. In the working state, when the first support base 4 and the second support base 5 are at the same height, the load-bearing rails 6 on them are also at the same height. When there is a height difference between the first support base 4 and the second support base 5, the load-bearing rails 6 on them also have a certain height difference. In other words, the height difference between the first support base 4 and the second support base 5 is compensated by setting load-bearing rails 6 at different heights, ultimately ensuring that the tops of the load-bearing rails 6 on the first support base 4 and the second support base 5 are at the same height. In other embodiments, the height difference between the first support base 4 and the second support base 5 can also be compensated by adjusting the installation position of the load-bearing wheels 10 on the mounting bracket 8. This means that in the working state, the heights of the various load-bearing wheels 10 on the mounting bracket 8 can be inconsistent. When the mounting bracket 8 has a different shape, such as when the load-bearing wheels 10 have significant height differences, the corresponding support foundation can be constructed accordingly. For example, if there is a one-meter height difference between the installation positions of the two load-bearing wheels, or other height differences, it is not necessary to compensate for the height difference. Instead, the first support foundation 4 and the second support foundation 5 with a one-meter height difference can be constructed directly during the construction of the support foundation. These can all be flexibly designed and constructed according to the structure to ensure that the track system can support the mounting bracket.

[0046] The induction track 7 is installed on the first support base 4 and / or the second support base 5. The electromagnetic motor on the mounting bracket 8, driven by magnetic reaction force, moves the mounting bracket 8 along the load-bearing track 6. The induction track 7 is lower than the load-bearing track 6. The induction track 7 can be located between or to one side of the load-bearing track 6. The length direction of the induction track 7 is parallel to the length direction of the load-bearing track 6. When the mounting bracket 8 is engaged with the load-bearing track 6, the magnetic motor 9 on the mounting bracket 8 corresponds to the position of the induction track 7 and maintains a preset distance from it. A single magnetic track includes multiple induction plates arranged along the length direction of the magnetic track. The magnetic motor 9 is positioned opposite one of the induction plates. By setting multiple induction plates, the length of the magnetic track can be easily controlled by increasing or decreasing the number of induction plates, thus facilitating the installation of a magnetic track of a certain length. In actual implementation, there is a gap between adjacent induction plates, so that replacing / maintaining one induction plate does not affect the installation structure or accuracy of adjacent induction plates.

[0047] The power supply track 12 can be an existing power supply track, which typically includes a slide rail and a current collector. The current collector slides in conjunction with the slide rail and is used to connect the magnetic motor 9 on the mounting bracket 8. The length direction of the slide rail is parallel to the length direction of the load-bearing track 6, so the current collector can move in the same direction as the mounting bracket 8, thereby enabling the current collector to continuously supply power to the magnetic motor 9. The magnetic force generated between the magnetic motor 9 and the induction track 7 serves as the driving force for the mounting bracket 8, allowing it to move along the length direction of the load-bearing track 6. This, in turn, drives the wave generator 11 to move in a preset direction to generate waves. The power supply track 12 can be arranged in any position, as long as its length direction is parallel to the length direction of the load-bearing track 6. For example, the power supply track 12 can be installed on the support frame 1, or on the first support base 4 or the second support base 5.

[0048] The track system for a towable wave generator provided in this application embodiment, through the setting of the load-bearing track 6, can provide load-bearing and guiding functions for the mounting bracket 8, and can suspend the mounting bracket 8 so that the mounting bracket 8 and the sensing track 7 maintain a certain gap. Through the setting of the sensing track 7, it can cooperate with the magnetic motor 9 on the mounting bracket 8 to generate driving force. With the power supply track 12 continuously supplying power to the magnetic motor 9 on the mounting bracket 8, the mounting bracket 8 can move along the length direction of the load-bearing guide rail on the load-bearing track 6, thereby driving the wave generator 11 to move and realize wave generation.

[0049] The track system for a drag-type wave generator provided in this application embodiment facilitates the installation of the mounting bracket 8, thereby enabling wave generation by magnetically driving the wave generator 11 to move, and providing a stable structural foundation for the normal movement of the wave generator 11.

[0050] In some alternative embodiments, a reinforcing layer is provided on another surface of the sensing plate.

[0051] In this embodiment, the other surface of the induction plate serves as the mounting surface, and in the working state, this surface faces away from the magnetic motor 9. By providing a reinforcing layer on this surface, stress can be dispersed, preventing stress concentration on the induction plate surface, thus protecting the induction plate and preventing damage.

[0052] In some alternative embodiments, a reinforcing layer may also be provided on the side of the sensing plate to further protect it. In practice, the sensing plate may be configured to be formed by laminating aluminum and steel plates.

[0053] In some optional embodiments, the induction track 7 is equipped with a connecting frame 13 for connecting the first support base 4 or the second support base 5. The connecting frame 13 has a C-shaped cross-section. The connecting frame 13 is connected to another plate surface of the induction plate. When a reinforcing layer is provided on this plate surface, the connecting frame 13 can be fixedly connected to the reinforcing layer. The overall shape of the connecting frame 13 is channel steel. Two connecting frames 13 are connected to each induction track 7. The length direction of the connecting frame 13 is parallel to the length direction of the induction track 7. The two connecting frames 13 are arranged in parallel at intervals, and the slots of the two connecting frames 13 are arranged facing away from each other. The setting of the connecting frame 13 facilitates the connection between the induction track 7 and the first support base 4 or the second support base 5. After connection, the induction track 7 can be suspended, so that the induction track 7 can maintain a preset distance from the magnetic motor 9.

[0054] In some optional embodiments, a plurality of parallel and spaced load-bearing rails 6 are installed on the first support base 4. The plurality of load-bearing rails 6 can provide more stable load-bearing and guiding functions for the mounting bracket 8, and can ensure that the mounting bracket 8 has good movement stability.

[0055] In some optional embodiments, a plurality of parallel, spaced-apart load-bearing rails 6 are installed on the second support base 5. The plurality of load-bearing rails 6 can provide more stable load-bearing and guiding functions for the mounting bracket 8, thereby further improving the stability of the movement of the mounting bracket 8.

[0056] In actual implementation, the spacing between the load-bearing rails 6 on the first support foundation 4 and the load-bearing rails 6 on the second support foundation 5 can be the same or different. Specifically, the arrangement can be reasonably made according to the overall center of gravity position of the mounting bracket 8.

[0057] In some optional embodiments, the load-bearing track 6 includes a load-bearing part 61, a connecting part 62, and a mounting part 63. The load-bearing part 61 and the mounting part 63 form an integral structure through the connecting part 62. The load-bearing part 61, the connecting part 62, and the mounting part 63 all have a length equal to that of the load-bearing track 6. In the working state, the load-bearing part 61, the connecting part 62, and the mounting part 63 are arranged sequentially from top to bottom. The width of the connecting part 62 is smaller than the width of the load-bearing part 61 and also smaller than the width of the mounting part 63. This means that the positions on both sides of the width of the connecting part 62 on the load-bearing track 6 are groove-shaped. The joints between the load-bearing part 61 and the connecting part 62, and between the connecting part 62 and the mounting part 63, are smoothly transitioned to avoid stress concentration during the load-bearing process. The load-bearing track 6 is cracked. The load-bearing track 6 is connected to the first support base 4 or the second support base 5 through the mounting part 63. In the working state, the top surface of the load-bearing part 61 serves as the load-bearing surface, and the side surface of the load-bearing part 61 serves as the guide surface. That is, in the working state, the guide surface is located below the load-bearing surface. The load-bearing surface is used to cooperate with the load-bearing wheel 10 on the mounting bracket 8, and the guide surface is used to cooperate with the guide wheel 15 on the mounting bracket 8. The guide surface and the load-bearing surface form an angle. After the guide surface cooperates with the guide wheel 15 on the mounting bracket 8, the guide surface can limit the guide wheel 15 in the horizontal direction perpendicular to the length of the load-bearing track 6. This can prevent the mounting bracket 8 from sliding left and right when it moves and ensure the stability of the movement of the mounting bracket 8.

[0058] In some optional embodiments, the load-bearing surface is perpendicular to the guide surface, which can prevent the guide wheel 15 from sliding relative to the guide surface in a horizontal direction perpendicular to the length of the load-bearing track 6, so that the guide surface can provide a stable guiding function to the guide wheel 15 on the mounting bracket 8, further ensuring the movement stability of the mounting bracket 8.

[0059] In some alternative embodiments, a plurality of parallel-spaced induction rails 7 are mounted on the first support base 4. The arrangement of the plurality of induction rails 7 can increase the strength of the driving force, thus making it suitable for heavy-duty applications.

[0060] In some alternative embodiments, a plurality of parallel-spaced induction rails 7 are mounted on the second support base 5. The arrangement of multiple induction rails 7 can further increase the strength of the driving force, thus making it suitable for larger heavy-duty applications.

[0061] In some optional embodiments, the support frame 1 includes a first column, a second column, and a support beam; one end of the first column serves as a first connecting end to connect to the pool bank foundation 2; one end of the second column serves as a second connecting end to connect to the pool bottom; both ends of the support beam are connected to the other ends of the first column and the second column, respectively, meaning that the difference between the length of the second column and the length of the first column is the depth of the wave pool, thereby making the other ends of the first column and the second column flush; wherein, the power supply rail 12 is connected to the support beam.

[0062] In some alternative embodiments, a tie rod is connected between adjacent first or second columns.

[0063] In this embodiment of the application, the connection strength between two adjacent support frames 1 can be improved by setting diagonal tie rods, thereby improving the overall load-bearing capacity of the support frame 1.

[0064] In some alternative embodiments, the track system further includes a guide rail for mounting on the bottom of the pool and for connecting the mounting bracket 8.

[0065] In this embodiment, the guide rail, together with the load-bearing rail 6, can provide better guidance for the mounting bracket 8, thereby further ensuring the movement stability of the mounting bracket 8, so that the wave-making plate 11 can move strictly along the preset movement direction and ensure the wave-making quality.

[0066] The specific embodiments described above illustrate the implementation of this application. Those skilled in the art can easily understand other advantages and effects of this application from the content disclosed in this specification. Although the description of this application is presented in conjunction with some embodiments, this does not mean that the features of this application are limited to this embodiment. On the contrary, the purpose of describing the application in conjunction with embodiments is to cover other options or modifications that may be derived based on the claims of this application. To provide a thorough understanding of this application, many specific details are included in the above description. This application may also be implemented without using these details. Furthermore, to avoid confusion or obscuring the focus of this application, some specific details will be omitted in the description. It should be noted that, unless otherwise specified, the embodiments and features in the embodiments of this application can be combined with each other.

[0067] It should be noted that in this specification, similar reference numerals and letters in the above figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures. In the description of this application, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the figures, and are only for the convenience of describing this application 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, and therefore should not be construed as a limitation on this application. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance. In the description of this application, it should be noted that unless otherwise expressly specified and limited, the terms "installed," "connected," and "linked" 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 mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal communication between two elements. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0068] Obviously, those skilled in the art can make various modifications and variations to this application without departing from the spirit and scope of this application. Therefore, if such modifications and variations fall within the scope of the claims of this application and their equivalents, this application also intends to include such modifications and variations.

Claims

1. A track system for a towed wave making apparatus, characterized in that, The utility model relates to a wave pool installation structure, comprising: a plurality of support frames (1) arranged at intervals, the support frame (1) having a first connecting end for connecting a pool bank foundation (2) of a wave pool and a second connecting end for connecting a pool bottom of the wave pool, a mounting gap being formed between the first connecting end and the second connecting end; a first support foundation (4) configured on the pool bank foundation (2); a second support foundation (5) connected to the support frame (1) and forming an avoidance gap with the first support foundation (4); a load-bearing track (6) mounted on the first support foundation (4) and the second support foundation (5) to be in driving cooperation with a mounting bracket (8); an inductive track (7) mounted on the first support foundation (4) and / or the second support foundation (5) to drive the mounting bracket (8) to move on the load-bearing track (6) by magnetic reaction force acting on an electromagnetic motor on the mounting bracket (8), the inductive track (7) being lower than the load-bearing track (6); a power supply track (12) for connecting a magnetic motor (9) to realize power supply.

2. A track system for a towed wave making apparatus according to claim 1, characterized in that The first support foundation (4) is provided with a plurality of load-bearing tracks (6) arranged in parallel at intervals.

3. A track system for a towed wave making apparatus according to claim 1 or 2, characterized in that, The second support foundation (5) is provided with a plurality of load-bearing tracks (6) arranged in parallel at intervals.

4. A track system for a towed wave making apparatus according to claim 1, characterized in that The power supply track (12) is connected to the support frame (1), and in the working state, the power supply track is located above the mounting bracket (8).

5. A track system for a towed wave making apparatus according to claim 1, characterized in that The first support foundation (4) is configured to extend inwardly through a pool edge foundation (3) of the wave pool.

6. A track system for a towed wave making apparatus according to claim 1, characterized in that The first support foundation (4) is provided with a plurality of inductive tracks (7) arranged in parallel at intervals.

7. A track system for a towed wave making apparatus according to claim 1 or 6, characterized in that The second support foundation (5) is provided with a plurality of inductive tracks (7) arranged in parallel at intervals.

8. A track system for a towed wave making apparatus according to claim 1, characterized in that The support frame (1) comprises a first vertical column, a second vertical column, and a support cross beam. One end of the first vertical column serves as the first connecting end to connect the pool bank foundation (2). One end of the second vertical column serves as the second connecting end to connect the pool bottom. The other ends of the first vertical column and the second vertical column are connected to the support cross beam. The power supply track (12) is connected to the support cross beam.

9. A track system for a towed wave making apparatus according to claim 8, characterised in that, A diagonal pull rod is connected between adjacent first vertical columns or adjacent second vertical columns.

10. A track system for a towed wave making apparatus according to claim 1, characterized in that A guide track is further included, which is used to be mounted on the pool bottom and to be connected to the mounting bracket (8).