Power system for dragging type wave making equipment
The magnetic drive system solves the problems of noise and vibration in drag-type wave generators, achieving more stable and quieter wave production and enhancing the visitor experience.
Patent Information
- Application Number
- CN202423302761.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2034-12-31
AI Technical Summary
Existing towed wave generators use gear racks or hydraulic transmission to move the wave plates, resulting in significant noise and vibration, which negatively impacts the visitor experience.
Using a magnetic drive method, the magnetic force between the magnetic motor and the magnetic track drives the mounting bracket to move on the fixed facility, thereby driving the wave generator and reducing noise and vibration.
It reduces noise and vibration during wave generation, improves wave quality and stability, and enhances the visitor experience.
Smart Images

Figure CN223805903U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of water amusement facilities, in particular to a power system for a towed wave-making device. BACKGROUND
[0002] The towed wave-making device is a device for making waves in a pool, which makes waves by driving the wave-making plate to move. In the existing towed wave-making device, gear and rack or hydraulic transmission is usually used to drive the wave-making plate to move, which has relatively large noise and vibration during wave making, causing certain impact on the surrounding environment and reducing the experience of tourists to a certain extent. CONTENT OF THE UTILITY MODEL
[0003] The present application provides a power system for a towed wave-making device, which drives the wave-making plate to move by using magnetic drive, reduces the generation of noise and vibration, and solves the problem of relatively large noise and vibration in the existing towed wave-making device.
[0004] The present application is achieved by the following technical solutions:
[0005] A power system for a towed wave-making device for providing forward power to a wave-making plate, comprising:
[0006] A mounting bracket for connecting the wave-making plate, the mounting bracket is also used for slidingly connecting a fixed facility;
[0007] A magnetic motor connected with the mounting bracket;
[0008] A magnetic track, the length direction of the magnetic track is parallel to the preset movement direction of the wave-making plate, the magnetic motor and the magnetic track are arranged opposite and spaced apart to make the mounting bracket move along the preset movement direction on the fixed facility under the action of magnetic force;
[0009] A power supply connected with the magnetic motor.
[0010] The power system for the towed wave-making device provided by the present application, after the magnetic track is laid, the power supply supplies electric energy to the magnetic motor, so that the magnetic force is generated between the magnetic motor and the magnetic track, the mounting bracket can move along the preset movement direction of the wave-making plate on the fixed facility under the action of magnetic force, thereby driving the wave-making plate to move to make waves. Since the magnetic motor does not contact the magnetic track, the noise generated during wave making is greatly reduced, and the vibration generated on the mounting bracket is also reduced, the movement track of the wave-making plate is more stable, thereby the quality of the waves can be improved.
[0011] In some optional embodiments, the number of the magnetic force tracks is at least two, wherein each of the magnetic force tracks is arranged opposite to the magnetic force engine.
[0012] In some optional embodiments, the magnetic force track is arranged opposite to at least two magnetic force engines.
[0013] In some optional embodiments, the magnetic force track comprises a plurality of induction plates arranged along the length direction of the magnetic force track, and the magnetic force engine is arranged opposite to one of the induction plates.
[0014] In some optional embodiments, there is a spacing between two adjacent induction plates.
[0015] In some optional embodiments, the other surface of the induction plate is provided with a reinforcing layer, and / or the side surface of the induction plate is provided with a reinforcing layer.
[0016] In some optional embodiments, the power supply is configured as a power track, wherein the current collector on the power track is electrically connected to the magnetic force engine.
[0017] In some optional embodiments, the magnetic force engine is configured with a cooling structure for circulating a cooling medium to the magnetic force engine.
[0018] In some optional embodiments, the magnetic force track is provided with a connecting frame for connecting to a fixed facility, and the cross-sectional shape of the connecting frame is C-shaped.
[0019] In some optional embodiments, a traction motor is further included, and the traction motor is connected to the mounting bracket to drive the mounting bracket to move along the length direction of the magnetic force track on the fixed facility.
[0020] Compared with the prior art, the present application has the following advantages and beneficial effects:
[0021] The power system for the towed wave-making device provided by the present application is configured with a magnetic force track, and the power supply is used to supply electric energy to the magnetic force engine, so that magnetic force is generated between the magnetic force engine and the magnetic force track. The magnetic force enables the mounting bracket to move along the preset movement direction of the wave-making plate on the fixed facility, thereby driving the wave-making plate to move to generate waves. Since the magnetic force engine does not contact the magnetic force track, the noise generated during the wave-making process is greatly reduced, and the vibration generated on the mounting bracket is also reduced. The movement trajectory of the wave-making plate is more stable, thereby improving the quality of the waves. BRIEF DESCRIPTION OF DRAWINGS
[0022] The accompanying drawings, which are included to provide a further understanding of the embodiments of the present application and constitute a part of the present application, do not constitute a limitation to the embodiments of the present application. In the drawings:
[0023] Figure 1 A schematic diagram of the structure of a power system for a towed wave generator provided in an embodiment of this application;
[0024] Figure 2 for Figure 1 A magnified schematic diagram of the partial structure at point A in the middle;
[0025] Figure 3 A schematic diagram of the power system application structure when the number of magnetic tracks and load-bearing tracks provided in the embodiments of this application is multiple;
[0026] Figure 4 for Figure 3 A magnified view of the structure at point B in the middle;
[0027] Figure 5 A top view of the power system when the number of magnetic tracks and load-bearing tracks provided in the embodiments of this application is multiple;
[0028] Figure 6 This is a schematic diagram of a cooling structure provided in an embodiment of this application.
[0029] The attached diagram shows the markings and corresponding component names:
[0030] 1-Mounting bracket, 2-Power supply rail, 3-Magnetic motor, 4-Magnetic rail, 5-Wave plate, 6-Collector, 7-Connecting frame, 8-First support foundation, 9-Second support foundation, 10-Column, 11-Load-bearing rail, 12-Inlet pipe, 13-Outlet pipe, 14-Water pump, 15-Cooler, 16-Induction plate. Detailed Implementation
[0031] 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.
[0032] Please refer to them together. Figures 1-2 This application provides a power system for a towed wave generator, used to provide forward power to a wave generator 5. The power system for the towed wave generator includes a mounting bracket 1, a power supply, a magnetic motor 3, and a magnetic track 4. The mounting bracket 1 is used to connect the wave generator 5 and is also used to slide and connect a fixed facility. The magnetic motor 3 is connected to the mounting bracket 1. The length direction of the magnetic track 4 is parallel to the preset movement direction of the wave generator 5. The magnetic motor 3 and the magnetic track 4 are arranged opposite each other at intervals so that the mounting bracket 1 moves along the preset movement direction of the wave generator 5 on the fixed facility under the action of magnetic force. The power supply is connected to the magnetic motor.
[0033] The power system for the dragging wave making device provided in the embodiment of the application, after the magnetic track 4 is arranged, the power supply supplies electric energy for the magnetic engine 3, so that the magnetic force is generated between the magnetic engine 3 and the magnetic track 4, the magnetic force makes the mounting bracket 1 move along the preset movement direction of the wave making plate 5 on the fixed facility, so as to drive the wave making plate 5 to move to make waves. Since the magnetic engine does not contact the magnetic track 4, the noise generated in the wave making process is greatly reduced, and the vibration generated on the mounting bracket 1 is also reduced, the movement of the wave making plate 5 is more stable, so that the quality of the waves can be improved.
[0034] In the embodiment of the application, the arrangement position of the magnetic track 4 is not particularly required, as long as the length direction thereof is parallel to the preset movement direction of the wave making plate 5, and the magnetic track 4 can generate the magnetic force with the magnetic engine 3. For example, the magnetic track 4 can be arranged on the upper side, the lower side, the left side or the right side of the mounting bracket 1, and can also be arranged by being movably penetrated through the mounting bracket 1. In actual implementation, the magnetic track 4 can be arranged on one side of the mounting bracket 1, and in the working state, the magnetic track 4 is located directly below the mounting bracket 1.
[0035] In the embodiment of the application, the mounting bracket 1 needs to have a certain structural strength as a bearing component, and at the same time, the mounting bracket 1 needs to be driven in the working state. Therefore, the mounting bracket 1 needs to consider the structural strength and the weight, so as to be suitable for connecting the large-specification wave making plate 5 and reducing the load of the magnetic engine 3. In some optional embodiments, the mounting bracket 1 can be constructed as a frame structure. The overall shape of the mounting bracket 1 can not be limited. Since the mounting bracket 1 will slide on the fixed facility, in order to ensure the stability of the mounting bracket 1 in the sliding process, the overall shape of the mounting bracket 1 can be a regular shape, such as a cuboid shape, a square shape, a prism shape and the like. By setting the mounting bracket 1 as a frame structure, the mounting bracket 1 has good structural strength to ensure that it has good bearing capacity, and at the same time, the self-weight is relatively small, and the load formed by the magnetic engine 3 is relatively low. Of course, the surface of the mounting bracket 1 can also be provided with a decorative part, such as a skin, a shutter and the like, which will not increase the load too much, is relatively beautiful, and can reduce the influence of sunlight on the mounting bracket 1 to a certain extent.
[0036] In the embodiments of the present application, the power supply can be configured as a power supply track 2 to avoid the mounting bracket 1 from bearing additional load, the power supply track 2 can be arranged above the mounting bracket 1, or arranged on both sides or below the mounting bracket 1, or arranged to move through the mounting bracket 1, the current collector 6 on the power supply track 2 is electrically connected with the magnetic force engine 3, the length of the power supply track 2 is greater than the single side stroke of the wave board 5, the current collector 6 can slide on the power supply track 2 under the driving of the mounting bracket 1, so that the magnetic force engine 3 can continuously obtain electric energy from the power supply track 2 in the process of the movement of the mounting bracket 1. The specific connection mode of the current collector 6 and the power supply track 2 is prior art, which will not be described here. In other embodiments, the power supply can also be configured as a battery connected to the mounting bracket 1.
[0037] In the embodiments of the present application, in the working state, the power supply track 2 is located above the mounting bracket 1, the magnetic force track 4 is located below the mounting bracket 1, and the mounting bracket 1 is arranged in the air through the fixing facility, wherein the magnetic force track 4 can be installed on the fixing facility, the magnetic force track 4 has a gap with the mounting bracket 1, and the magnetic force engine 3 on the mounting bracket 1 is located in the gap to form a front-to-back arrangement with the magnetic force track 4, and the space below the mounting bracket 1 serves as the movement space of the wave board 5.
[0038] In the embodiments of the present application, the fixing facility can be a building platform, a steel structure platform or a combination of the above two. For example, in some optional embodiments, referring to Figure 1 or Figure 3 , the fixing facility includes a first support base 8 and a second support base 9, the first support base 8 is obtained by horizontally extending into the wave pool through the wave pool wall, and the second support base 9 is arranged in the air in the wave pool through the column 10, the first support base 8 and the second support base 9 of the present embodiment are equal in height and have a horizontal spacing, the mounting bracket 1 is slidably connected with the first support base 8 and the second support base 9 respectively, and the connecting structure on the wave board 5 is connected with the mounting bracket 1 through the gap between the first support base 8 and the second support base 9. In other embodiments, the first support base 8 and the second support base 9 can also be arranged with different heights, in this application environment, the installation heights of the magnetic force tracks 4 can be adjusted to make the top surfaces of the magnetic force tracks 4 flush, or the installation heights of the magnetic force tracks 4 are the same, and the installation positions of the magnetic force engines 3 on the mounting bracket 1 are adjusted to make the gaps between the magnetic force engines 3 and the magnetic force tracks 4 consistent; that is, in actual implementation, the installation heights of the magnetic force tracks 4 or the installation positions of the magnetic force engines 3 on the mounting bracket 1 can be adaptively designed according to the topographic characteristics.
[0039] In the embodiments of the present application, referring to Figure 3 and Figure 4The mounting bracket 1 and the fixed facility can be connected by sliding connection through, for example, a guide rail pulley mechanism, a guide rail sliding block mechanism, a sliding block sliding groove mechanism, etc. For example, in some optional embodiments, the mounting bracket 1 can be connected to the fixed facility by a guide rail pulley mechanism. In actual implementation, load-bearing rails 11 can be arranged on the first support base 8 and the second support base 9, respectively, and load-bearing pulleys adapted to the load-bearing rails 11 are connected to the mounting bracket 1.
[0040] In some optional embodiments, continuing to refer to Figure 3 and Figure 4 , the number of load-bearing rails 11 on the first support base 8 can be configured to be multiple, and the number of load-bearing rails 11 on the second support base 9 can also be configured to be multiple. The number of load-bearing rails 11 on the first support base 8 and the second support base 9 can be the same or different.
[0041] In some optional embodiments, the magnetic force track 4 can be arranged on the first support base 8 or the second support base 9. In other embodiments, referring to Figures 3-5 , the first support base 8 and the second support base 9 are respectively arranged with magnetic force tracks 4, that is, the number of magnetic force tracks 4 is at least two. All the magnetic force tracks 4 are arranged at equal intervals, and the spacing between all the magnetic force tracks 4 and the mounting bracket 1 is equal. Each magnetic force track 4 is respectively opposite to the magnetic force engine 3 arranged thereon, that is, the number of magnetic force engines 3 is not less than the number of magnetic force tracks 4. Each magnetic force track 4 has a corresponding magnetic force engine 3, so that a larger driving force can be formed by the plurality of magnetic force tracks 4 and the plurality of magnetic force engines 3, so that the wave-making equipment has a larger wave-making power / efficiency. At the same time, the plurality of pairs of magnetic force tracks 4 and magnetic force engines 3 are mutual backup driving sources. When one pair of magnetic force engine 3 and / or magnetic force track 4 is abnormal, the normal operation of the wave-making equipment can be ensured by increasing the power of the other magnetic force engine 3.
[0042] When the number of magnetic force tracks 4 is configured to be at least two, a plurality of magnetic force tracks 4 can be arranged on the first support base 8 and the second support base 9, respectively. The number of magnetic force tracks 4 on the first support base 8 and the second support base 9 can be the same or different. In other embodiments, the plurality of magnetic force tracks 4 can be arranged only on the first support base 8 or the second support base 9.
[0043] In some optional embodiments, referring to Figure 5, the magnetic track 4 is arranged opposite to at least two magnetic engines 3. That is, a single magnetic track 4 can correspond to the arrangement of multiple magnetic engines 3, multiple magnetic engines 3 can work simultaneously to provide greater driving force, multiple magnetic engines 3 can also work partially, and multiple magnetic engines 3 can serve as backup driving sources for each other. When one of the magnetic engines 3 malfunctions, the idle magnetic engine 3 can be started to supplement the driving force.
[0044] The magnetic engine 3 has a cooling plate inside, usually with water inlet and outlet, according to the structural characteristics of the magnetic engine, in some optional embodiments, referring to Figure 6 , the magnetic engine 3 can be configured with a cooling structure, which can include a water pump 14, a cooler 15, an inlet pipe 12 and an outlet pipe 13, the inlet pipe 12 and the outlet pipe 13 are connected with the magnetic engine 3 respectively to enable the cooling medium to circulate into the magnetic engine 3 to achieve cooling, the cooling medium is usually configured as cooling water, the water pump 14 is in communication with the inlet pipe 12, the outlet pipe 13 is in communication with the cooler 15, and the cooler 15 is in communication with the water pump 14 to form a cooling circulation loop; through the cooling of the cooler 15 and the circulating pumping of the water pump 14, the heat in the magnetic engine 3 can be quickly taken away, avoiding overheating damage of the magnetic engine 3. When the number of magnetic engines 3 is multiple, a water pump 14 and a cooler 15 can be configured for each magnetic engine 3 separately, or they can be set in groups, such as two or three magnetic engines 3 as a group, and then the water outlets are connected to a main pipe, the main pipe is connected with the cooler 15, and the water pump 14 is connected with the water inlets of a group of magnetic engines 3 through a main pipe to form a cooling circulation. The specific distribution form can be configured with a corresponding number and position of water pumps 14 and coolers 15 according to the number of magnetic engines 3 and their positions installed on the bracket.
[0045] In some optional embodiments, referring to Figure 5 , the magnetic track 4 includes a plurality of induction plates 16, the plurality of induction plates 16 are arranged along the length direction of the magnetic track 4, and the magnetic engine 3 is arranged opposite to one of the plate surfaces of the induction plates 16. By setting multiple induction plates 16, the length of the magnetic track 4 can be conveniently controlled by increasing or decreasing the number of induction plates 16, thereby facilitating the layout of a magnetic track 4 with a certain length; in actual implementation, there is a spacing between adjacent two induction plates 16, so that when a single induction plate 16 is maintained / replaced, the installation structure and installation precision of the adjacent induction plate 16 will not be affected.
[0046] In some optional embodiments, a reinforcing layer is arranged on the other plate surface of the induction plate 16.
[0047] In the embodiment, the other plate surface of the induction plate 16 is used as a mounting surface, and in the working state, the plate surface faces away from the magnetic engine 3. By arranging a reinforcing layer on the plate surface, stress can be dispersed to prevent stress concentration on the plate surface of the induction plate 16, and the induction plate 16 can be protected to prevent damage to the induction plate 16.
[0048] In some optional embodiments, a reinforcing layer can also be arranged on the side surface of the induction plate 16 to further protect the induction plate 16. In actual implementation, the induction plate 16 can be configured by stacking an aluminum plate and a steel plate.
[0049] In some optional embodiments, the magnetic track 4 is arranged with a connecting frame 7 for connecting a fixed facility, and the connecting frame 7 has a C-shaped cross section. The connecting frame 7 is connected to the other plate surface of the induction plate 16, and when the reinforcing layer is arranged on the plate surface, the connecting frame 7 can be fixedly connected to the reinforcing layer. The overall shape of the connecting frame 7 is like a channel steel, two connecting frames 7 are arranged on each magnetic track 4, the length direction of the connecting frame 7 is parallel to the length direction of the magnetic track 4, the two connecting frames 7 are arranged in parallel and spaced apart, and the notches of the two connecting frames 7 face away from each other. By arranging the connecting frame 7, the magnetic track 4 can be conveniently connected to the fixed facility, and after connection, the magnetic track 4 can be elevated to maintain a predetermined distance between the magnetic track 4 and the magnetic engine 3.
[0050] In some optional embodiments, the power system can further include a traction motor (not shown in the figure), which is connected to the mounting bracket 1 to drive the mounting bracket 1 to move along the length direction of the magnetic track 4 on the fixed facility. In actual implementation, the traction motor and the mounting bracket 1 can be connected through a transmission mechanism, such as a traction rope, a gear and rack, a synchronous pulley, etc. By arranging the traction motor, the sustainable operation capability of the entire power system can be further increased. For example, when the magnetic track 4 and the magnetic engine 3 fail, the traction motor can replace them to generate waves; when the size of the wave board is large, the traction motor can supplement the power of the magnetic engine 3 to meet the load demand; the traction motor and the magnetic engine 3 can be alternately operated to reduce the usage frequency of the magnetic engine 3 and ensure the sustainable operation of the traction motor and the magnetic engine 3.
[0051] The foregoing description of the exemplary embodiment of the application has been presented for the purposes of illustration and description. It is not intended to be exhaustive or to limit the application to the precise form disclosed. Many modifications and variations are possible in light of this disclosure. It was chosen and described in order to provide the best illustration of the principles of the application and its practical application to thereby enable others skilled in the art to utilize the application in various embodiments and with various modifications as are suited to the particular use contemplated. While the application has been described with reference to specific embodiments thereof, it will be clear to those of ordinary skill in the art that variations and modifications can be affected within the scope of the application. Accordingly, the application is not limited to the specific embodiments described herein, but instead includes all variations and modifications that fall within the scope of the appended claims and their equivalents.
[0052] It should be noted that in this specification and the appended claims, similar reference numerals and letters indicate similar elements in the various figures, and thus once an element is defined in one figure, it should be understood that further description of such element is omitted in the subsequent figures. In the description of the application, it should be understood that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", and the like, are used to denote orientation and / or position in the drawings in which the application is illustrated, and are not intended to denote relative importance of, or orientation limitations to, the apparatus or elements being described, and thus are not to be construed as limiting the application. Further, the terms "first", "second", and the like, are used merely to describe a variety of elements, and are not intended to denote relative importance of, or orientation limitations to, the apparatus or elements being described. In the description of the application, it should be understood that the terms "mounting", "connected", "connecting" are to be construed broadly in the interest of the most reasonable interpretation of the present application, and for example, can be a fixed connection, or a detachable connection, or an integral connection; can be a mechanical connection, or an electrical connection; can be a direct connection, or an indirect connection via an intermediate medium; can be an internal connection of two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0053] It will be apparent to those skilled in the art that various modifications and variations can be made in the present application without departing from the spirit or scope of the application. Thus, it is intended that the present application cover the modifications and variations of this application provided they come within the scope of the appended claims and their equivalents.
Claims
1. A power system for a towed wave making apparatus for providing forward propulsion to a wave making board (5), characterized in that, The utility model relates to a wave making device, comprising: a mounting bracket (1) for connecting a wave making plate (5), the mounting bracket (1) is also used for slidingly connecting a fixed facility; a magnetic force engine (3) connected with the mounting bracket (1); a magnetic force track (4) whose length direction is parallel with the preset movement direction of the wave making plate (5), the magnetic force engine (3) is arranged opposite and spaced apart from the magnetic force track (4) to make the mounting bracket (1) move along the preset movement direction on the fixed facility under the action of magnetic force; a power supply connected with the magnetic force engine (3).
2. A power system for a towed wave making apparatus according to claim 1, characterised in that, The number of the magnetic force track (4) is at least two, wherein each magnetic force track (4) is arranged opposite with a magnetic force engine (3) respectively.
3. A power system for a towed wave making apparatus according to claim 1 or 2, characterised in that, The magnetic force track (4) is arranged opposite with at least two magnetic force engines (3).
4. A power system for a towed wave making apparatus according to claim 1, characterised in that, The magnetic force track (4) comprises a plurality of induction plates (16) arranged along the length direction of the magnetic force track (4), and the magnetic force engine (3) is arranged opposite with one of the plate surfaces of the induction plates (16).
5. A power system for a towed wave making apparatus according to claim 4, characterised in that, The adjacent two induction plates (16) have a spacing.
6. A power system for a towed wave making apparatus according to claim 4, characterised in that, The other plate surface of the induction plate (16) is provided with a reinforcing layer and / or the side surface of the induction plate (16) is provided with a reinforcing layer.
7. A power system for a towed wave making device according to claim 1, characterized in that The power supply is configured as a power supply track (2), wherein a current collector (6) on the power supply track (2) is electrically connected with the magnetic force engine (3).
8. A power system for a towed wave making apparatus according to claim 1, characterized in that, The magnetic force engine (3) is provided with a cooling structure for circulating cooling medium to the magnetic force engine (3).
9. A power system for a towed wave making device according to claim 1, characterized in that, The magnetic force track (4) is provided with a connecting frame (7) for connecting the fixed facility, and the cross-sectional shape of the connecting frame (7) is C-shaped.
10. A power system for a towed wave making apparatus according to claim 1, characterized in that, Further comprising a traction motor connected with the mounting bracket (1) to drive the mounting bracket (1) to move along the length direction of the magnetic force track (4) on the fixed facility.