Double-plate skiing motion simulation device

By designing a skiing simulation device with a linkage rod and an elastic reset mechanism, the problems of insufficient structural stability and safety of existing devices have been solved. This device enables simulated training of independent and synchronized swinging movements of both feet, improving the safety and diversity of skiing training.

CN224236027UActive Publication Date: 2026-05-15ZHONGSHAN UNIS TECH
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHONGSHAN UNIS TECH
Filing Date
2025-04-24
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Existing ski simulators have shortcomings in terms of structural connection stability and safety of use. In particular, the pedals are suspended in the air and lack effective support, which makes it easy for users to fall while simulating skiing, and they cannot achieve independent or synchronized swinging movements of both feet.

Method used

A dual-board skiing simulation device was designed, which realizes three states of the pedals through a linkage rod and an elastic reset mechanism: locked positioning, synchronous rotation, and independent rotation. The combination of sliding wheel group and push module improves structural stability and safety. The detachable connection between the linkage rod and the locking mechanism meets the needs of different skiing action simulation.

Benefits of technology

It simulates independent and synchronized swinging movements of both feet, improves the structural stability and safety of ski training, meets the diverse needs of ski movement simulation training, and reduces the risk of falling.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224236027U_ABST
    Figure CN224236027U_ABST
Patent Text Reader

Abstract

The utility model provides a double-plate skiing motion simulation device which comprises a supporting base, a linkage rod and at least two bearing pedals arranged side by side, a locking mechanism is arranged on the supporting base, the bearing pedals are rotatably connected to the supporting base, the linkage rod is rotatably connected with one of the bearing pedals through an elastic reset mechanism, and the linkage rod is connected with the bearing pedals through an elastic reset mechanism. The two bearing pedals are detachably connected with the other bearing pedal and the locking mechanism in a matched mode through the pushing and abutting control mechanism, and a first state, a second state and a third state exist between the two bearing pedals. During skiing simulation training and playing, independent swinging movement and synchronous swinging movement of two feet can be realized, so that more different skiing simulation training and playing requirements of people can be met; the user can conveniently, safely and stably step on the bearing pedal for playing and using or fall off from the bearing pedal when the device is static, the use safety is high, and the interactive playing experience of skiing simulation of people is improved on the whole.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the technical field of amusement equipment devices, and more particularly to a skiing simulator. Background Technology

[0002] Skiing is a popular sport, but due to regional and seasonal limitations, people cannot always enjoy the fun of skiing. For beginners, learning to ski and successfully completing a run on a slope is a significant challenge. Without prior skiing training and familiarity with the sport, going skiing on the slope for the first time can easily lead to injury and poses a considerable risk.

[0003] An outdoor ski training device disclosed in announcement number CN214763234U has two pedal frames, each equipped with a pedal assembly, and a tie rod assembly between the two pedal assemblies. Each pedal connecting plate is connected to the end of the tie rod assembly via a universal joint to maintain the synchronicity of the skiing movements between the two pedal assemblies. However, the shortcomings are that the two pedal assemblies cannot achieve independent rotational movement, resulting in a limited simulation training effect. Furthermore, the bottom of the pedal position is suspended above the ground, creating a significant height difference. When people simulate skiing, they are prone to instability and falls when stepping on or off the pedals. Additionally, since there is no strong structural support on the bottom of the pedal, the pivot connection between the pedal sleeve and the pedal frame needs to withstand a large downward bending force when people stand on the pedal to simulate skiing, resulting in low structural connection stability. Summary of the Invention

[0004] To address the aforementioned technical problems, the purpose of this application is to overcome the above-mentioned technical deficiencies and provide a dual-board skiing simulation device with high structural connection stability and safety of use. It can simulate the independent swinging motion of both feet as well as the synchronous swinging motion of both feet, thus meeting people's needs for more simulated training and play in skiing.

[0005] Based on the above technical objectives, this application achieves its objectives through the following technical solutions:

[0006] A skiing simulation device includes: a support base, a linkage rod, and at least two parallel load-bearing pedals. The support base is provided with a locking mechanism. The load-bearing pedals are rotatably connected to the support base. The linkage rod is rotatably connected to one of the load-bearing pedals through an elastic reset mechanism, and is detachably connected to the other load-bearing pedal and the locking mechanism through a push control mechanism. The two load-bearing pedals have a first state, a second state, and a third state.

[0007] In the first state, the linkage rod is connected to the other bearing pedal and the locking mechanism, and the two bearing pedals are locked and positioned.

[0008] In the second state, the linkage rod is detached from the locking mechanism and connected to the other bearing pedal, so that the two bearing pedals can rotate synchronously.

[0009] In the third state, the linkage rod is detached from and connected to the other bearing pedal and the locking mechanism, allowing the two bearing pedals to rotate independently.

[0010] Optionally, the load-bearing pedal includes a load-bearing linkage and a foot pedal panel mounted on the load-bearing linkage. The load-bearing linkage is rotatably connected to the support base at one end away from the foot pedal panel, and the linkage rod is located at one end of the load-bearing linkage.

[0011] Optionally, the load-bearing link includes a first link and a second link, which are positioned and connected relative to each other along the side. The first link is pivotally connected to the support base along the middle, and the foot pedal panel is mounted on the second link.

[0012] Optionally, the foot pedal panel is provided with a set of sliding wheels along the bottom, the set of sliding wheels abuts against the support platform, the support platform is provided with guide grooves, and the set of sliding wheels is slidably connected between the guide grooves.

[0013] Optionally, the first link is provided with a pushing module on the side opposite to the second link, and the pushing module is located between the two load-bearing pedals.

[0014] Optionally, the elastic reset mechanism includes a first positioning shaft and a torsion spring sleeved on the first positioning shaft. One end of the linkage rod is pivotally connected to one of the bearing pedals via the first shaft. One end of the torsion spring abuts against the linkage rod, and the other end abuts against the bearing pedal.

[0015] Optionally, the linkage rod is provided with a first retaining groove and a second retaining groove along its side, the other bearing pedal is provided with a second positioning pivot, and the locking mechanism is provided with a third positioning pivot. The first retaining groove and the second positioning pivot are detachably engaged and locked together, and the second retaining groove and the third positioning pivot are detachably engaged and locked together.

[0016] Optionally, the pushing control mechanism includes a pushing slide rod and a control drive module. The pushing slide rod is rotatably connected to the side of the linkage rod at one end, and the other end is driven to move through the control drive module. The pushing slide rod abuts against another of the bearing pedals or the locking mechanism along its side.

[0017] Optionally, the side of the pusher slide bar is provided with a slide groove, and the second positioning shaft is fitted with a cam along the middle, the cam being slidably connected to the slide groove.

[0018] Optionally, the support base further includes a mounting panel and at least two bearing seats. The locking mechanism is mounted side by side with the two bearing seats on the mounting panel. A support shaft is rotatably protruding from the middle of the bearing seat. The bearing pedal is pivotally connected to the bearing seat through the support shaft. A damping device is provided at the bottom of the bearing seat. One end of the support shaft is connected to the damping device.

[0019] Through the above technical solution, this application can achieve the following beneficial effects:

[0020] (1) The two load-bearing pedals of this application are connected by a linkage rod to realize two different double-board skiing sports simulation play needs. When skiing simulation training and play, the two feet can swing independently and swing synchronously, which can meet people's more different skiing sports simulation training and play needs. The two load-bearing pedals can also be locked and fixed through the linkage rod, so that the user can stably step on the load-bearing pedals for play or get off the load-bearing pedals, thereby improving the safety of play.

[0021] (2) The foot panel is rotatably positioned and connected to the support base through the load-bearing linkage, and is well linked and connected with the linkage rod. At the same time, the load-bearing linkage provides stable load support for the foot panel, thereby improving the structural connection stability of the double-board skiing swing motion.

[0022] (3) The first link and the second link can better meet the modular disassembly and installation requirements of the load-bearing link, making it convenient for safe replacement, maintenance and management. At the same time, the first link and the second link are fixedly connected along the side. The first link is pivotally connected to the support base along the middle. The foot panel is installed on the end of the second link away from the first link, which can better simulate the swing motion amplitude of skiing.

[0023] (4) The sliding wheel group provides good swing support for the foot pedal panel and the entire load-bearing pedal, improving the structural connection stability; the sliding wheel group and the guide groove realize the guiding effect of the swing action.

[0024] (5) The push-off module can prevent the swinging collision between the two foot pedal panels and improve the safety of the swinging movement of the foot pedal panels.

[0025] (6) When the linkage rod, the load-bearing pedal, and the locking mechanism are in the initial state (i.e., the first state), they are locked and fixed together, so that people can step on the foot panel or get off the foot panel stably and safely. When swinging simulation is required, the linkage rod can be disassembled and connected to one of the load-bearing pedals and the locking mechanism through the drive push control mechanism, so that the two load-bearing pedals can swing independently or swing synchronously, which can meet people's needs for more action simulation training and play in skiing. Attached Figure Description

[0026] Figure 1 This is a schematic diagram of the structural connections of the skiing simulation device in a specific embodiment of this application;

[0027] Figure 2 This is a schematic diagram of the top surface of the skiing simulation device in a specific embodiment of this application;

[0028] Figure 3 This is a schematic diagram of the bottom surface of the skiing simulation device in a specific embodiment of this application;

[0029] Figure 4 This is an exploded view of the structure of the skiing simulation device in a specific embodiment of this application;

[0030] Figure 5 This is a schematic diagram of the structural connections in the first state of a specific embodiment of this application;

[0031] Figure 6 This is a schematic diagram of the structural connection in the second state of a specific embodiment of this application;

[0032] Figure 7 This is a schematic diagram of the structural connection in the third state of a specific embodiment of this application;

[0033] Figure 8 This is a schematic diagram of the linkage rod in a specific embodiment of this application;

[0034] Figure 9 This is a schematic diagram showing the connection between the pusher slide and the control drive module in a specific embodiment of this application;

[0035] Figure 10 This is a schematic diagram of the support base in a specific embodiment of this application.

[0036] Reference numerals: 10. Support platform; 11. Support base; 12. Linkage rod; 13. Bearing pedal; 14. Locking mechanism; 15. Elastic reset mechanism; 16. Push control mechanism; 131. Bearing link; 132. Foot pedal panel; 133. Sliding wheel group; 134. Baffle; 1311. First link; 1312. Second link; 1313. Push module; 150. First positioning pivot; 151. Torsion spring; 121. First holding groove; 1 22. Second holding groove; 123. Clearance channel; 130. Second positioning shaft; 140. Third positioning shaft; 161. Pushing slide rod; 162. Control drive module; 1611. Slide groove; 1301. Cam; 1621. Drive motor; 1622. Linkage panel; 1623. Drive linkage; 1624. Sensing device; 110. Mounting panel; 111. Bearing seat; 112. Support shaft; 113. Damping device; 141. Fixed seat. Detailed Implementation

[0037] The present invention will be further described in detail below with reference to the accompanying drawings, so that those skilled in the art can better understand and implement the present invention. However, the embodiments described are not intended to limit the present invention.

[0038] Referring to Figures 1-10, this application provides a skiing simulator, mounted on a support platform 10, including a support base 11, a linkage rod 12, and at least two parallel and spaced-apart load-bearing pedals 13. The support base 11 is mounted at the front of the support platform 10 and has a locking mechanism 14. The two load-bearing pedals 13 are rotatably connected to the support base 11 at one end, and the locking mechanism 14 is arranged on one side of each pedal. The linkage rod 12 has an elastic reset mechanism 15 and a push control mechanism 16. The linkage rod 12 is rotatably connected to one load-bearing pedal 13 at one end via the elastic reset mechanism, and detachably engaged with the other load-bearing pedal 13 and the locking mechanism 14 at one side via the push control mechanism 16. The two load-bearing pedals 13 can be in a first state, a second state, and a third state.

[0039] In the first state, the linkage 12 is connected to the other bearing pedal 13 and the locking structure through the elastic reset mechanism. The two bearing pedals 13 are locked and fixedly positioned on the support base 11, so that the user can safely and stably step on the bearing pedal 13 to play or get off the bearing pedal 13.

[0040] In the second state, the linkage 12 is disassembled and connected to the locking mechanism 14 by pushing the control mechanism 16, and is engaged with another bearing pedal 13. The two bearing pedals 13 rotate synchronously so that the two feet can swing synchronously and parallel.

[0041] In the third state, the linkage 12 is detached from and connected to the other bearing pedal 13 and the locking mechanism 14 by pushing the control mechanism 16. The two bearing pedals 13 can rotate independently, so that the two feet can swing independently.

[0042] Furthermore, the support pedals 13 are arranged in groups of two, and can be set as one or more groups. In this embodiment, it is preferred to set as one group. The support pedal 13 includes a support link 131 and a foot panel 132 mounted on the support link 131. The support link 131 is rotatably connected to the support base 11 at the end away from the foot panel 132.

[0043] Specifically, the supporting link 131 includes a first link 1311 and a second link 1312, wherein the length of the second link 1312 is greater than the length of the first link 1311. The first link 1311 is rotatably pivotally connected to the support base 11 along its middle section. The foot pedal panel 132 is fixedly installed on the top of the second link 1312. One end of the foot pedal panel 132 is flush with the end of the second link 1312 that is relatively away from the first link 1311. The end of the first link 1311 that is relatively away from the foot pedal panel 132 is flush with the second link 1312. The first link 1311 and the second link 1312 are fixedly positioned and connected along their sides by a positioning post and positioning hole structure. The second link 1312 is connected to the side of the first link 1311 that is relatively away from the other supporting pedal 13.

[0044] Specifically, the footrest panel 132 is also provided with a sliding wheel assembly 133 along its bottom. The sliding wheel assembly 133 abuts against the end face of the support platform 10 to support the swinging motion of the bearing pedal 13 and improve the structural connection stability. In this embodiment, the sliding wheel assembly 133 includes four sliding wheels arranged at the bottom of the footrest panel 132. The sliding wheels are arranged on opposite sides of the second link 1312. A baffle 134 is fixedly installed at the end of the second link 1312 that is relatively far away from the first link 1311. The baffle 134 is located on the bottom side of the footrest panel 132 to prevent people from accidentally sticking their feet into the sliding wheels in the waiting position other than the bearing pedal 13, thereby improving the safety of ski simulation training and play.

[0045] Specifically, the first link 1311 is provided with a push module 1313 on the side opposite to the second link 1312. The push module 1313 is located between the two opposite sides of the two supporting pedals 13 to prevent the swinging collision between the two foot panels 132 and improve the safety of the swinging movement in simulated skiing.

[0046] Furthermore, the linkage 12 is provided with an elastic reset mechanism 15 and a push control mechanism 16, and a first retaining groove 121 and a second retaining groove 122 are provided on the side relatively close to the bearing pedal 13 and the locking mechanism 14. A second positioning shaft 130 is correspondingly provided on one end of the bearing pedal 13 relatively close to the middle of the support base 11. Specifically, in this embodiment, the second positioning shaft 130 is positioned and connected to the end of the first connecting rod 1311 of the bearing pedal 13 relatively away from the foot pedal panel 132. A third positioning shaft 140 is correspondingly provided on the locking mechanism 14. The first retaining groove 121... The first locking groove 121 is detachably engaged with the second positioning shaft 130, and the second locking groove 122 is detachably engaged with the third positioning shaft 140. In order to facilitate the synchronous rotation and linkage between the linkage rod 12 and the two bearing pedals 13, the opening of the second locking groove 122 is provided with clearance channels 123 on both sides. In the second state, the first locking groove 121 is engaged with the second positioning shaft 130, and the second locking groove 122 is detachably connected with the third positioning shaft 140. The two bearing pedals 13 achieve synchronous parallel rotation. The second locking groove 122 is movably connected between the clearance channels 123.

[0047] Specifically, the elastic reset mechanism includes a first positioning shaft 150 and a torsion spring 151 sleeved on the first positioning shaft 150. The torsion spring 151 has elastic abutment edges extending from opposite ends. The linkage rod 12 is rotatably pivotally connected to one end of one of the bearing pedals 13 that is relatively close to the side of the support base 11 via the first positioning shaft 150. Specifically, in this embodiment, the linkage rod 12 is rotatably pivotally connected to the end of the first connecting rod 1311 of the bearing pedal 13 that is relatively far away from the foot panel 132 via the first positioning shaft 150. One end of the torsion spring 151 abuts against the linkage rod 12, and the other end abuts against the first connecting rod 1311. In the initial state (i.e., the first state), the linkage rod 12 is elastically engaged with the two bearing pedals 13 and the locking mechanism 14 via the torsion spring 151.

[0048] Specifically, the pushing control mechanism 16 includes a pushing slide rod 161 and a control drive module 162. The linkage rod 12 has an opening with a cavity on the side relatively close to the bearing pedal 13. The pushing slide rod 161 is pivotally connected to this cavity at one end, and its other end is drivably and telescopically connected to the side of the linkage rod 12 via the control drive module 162. The pushing slide rod 161 abuts against a second positioning shaft 130 on another bearing pedal 13 or a third positioning shaft 140 on a locking mechanism 14 on the side of the cavity opening of the linkage rod 12. Specifically, in this embodiment, the pushing slide rod 161 abuts against the second positioning shaft 130. The first holding groove 121 can be rotated and swung through the push slide rod 161, which has a slide groove 1611 on its side. The second positioning shaft 130 is rotatably connected to a cam 1301 along its middle. The cam 1301 is slidably connected to the slide groove 1611. The control drive module 162 includes a drive motor 1621 electrically connected to each other. The power output end of the drive motor 1621 is rotatably pivotally connected to a linkage panel 1622. The linkage panel 1622 is transmissively connected to the push slide rod 161 through a drive link 1623. The two opposite ends of the linkage panel 1622 are provided with sensing devices 1624.

[0049] The linkage panel 1622 can rotate between the two sensing devices 1624. When in the first state, the linkage panel 1622 rotates through one of the sensing devices 1624 and pushes against the slide bar 161 to swing and retract to the bottom of the first holding groove 121. The linkage bar 12 is engaged and positioned with another bearing pedal 13 and the locking mechanism 14 through the elastic reset mechanism.

[0050] When in the second state, the linkage panel 1622 rotates through the two sensing devices 1624 to push the slide bar 161 to achieve swing positioning and connection to the middle of the first holding groove 121. The second positioning rotating shaft 130 is engaged with the first holding groove 121. The linkage rod 12 is detached from the locking mechanism 14 and engaged with another bearing pedal 13.

[0051] When in the third state, the linkage panel 1622 rotates through another sensing device 1624 to push the slide bar 161 to achieve swing positioning connection to the opening position of the first holding groove 121. The second positioning shaft 130 is detached from the first holding groove 121, and the linkage rod 12 is detached from the other bearing pedal 13 and the locking mechanism 14.

[0052] Furthermore, the support base 11 also includes a mounting panel 110 and at least two bearing seats 111. The locking mechanism 14 is mounted side by side with the two bearing seats 111 on the mounting panel 110. The support base 11 is fixedly mounted to the support platform 10 through the mounting panel 110. The locking mechanism 14 includes a fixed seat 141 and a third positioning shaft 140 fixedly mounted on the fixed seat 141. The fixed seat 141 is fixedly mounted on one side of the support base 11. A support shaft 112 is rotatably protruding from the middle of the bearing seat 111. The first connecting rod 1311 is rotatably pivotally connected to the bearing seat 111 along the middle through the support shaft 112. A damping device 113 is also provided at the bottom of the bearing seat 111. The end of the support shaft 112 that is relatively away from the first connecting rod 1311 passes through the middle of the bearing seat 111 and is connected to the damping device 113 to improve the gliding experience of simulating skiing.

[0053] This specific embodiment is a preferred embodiment of the present utility model, and is not intended to limit the scope of protection of the present utility model. Therefore, all equivalent changes made to the structure, shape and principle of the present utility model should be included within the scope of protection of the present utility model.

Claims

1. A dual-board skiing simulation device, characterized in that, The device includes a support base, a linkage rod, and at least two parallel load-bearing pedals. The support base is provided with a locking mechanism. The load-bearing pedals are rotatably connected to the support base. The linkage rod is rotatably connected to one of the load-bearing pedals through an elastic reset mechanism, and is detachably connected to the other load-bearing pedal and the locking mechanism through a push control mechanism. The two load-bearing pedals have a first state, a second state, and a third state. In the first state, the linkage rod is connected to the other bearing pedal and the locking mechanism, and the two bearing pedals are locked and fixed together. In the second state, the linkage rod is detached from the locking mechanism and connected to the other bearing pedal, so that the two bearing pedals can rotate synchronously. In the third state, the linkage rod is detached from and connected to the other bearing pedal and the locking mechanism, allowing the two bearing pedals to rotate independently.

2. The skiing simulation device according to claim 1, characterized in that, The load-bearing pedal includes a load-bearing linkage and a foot pedal panel mounted on the load-bearing linkage. The load-bearing linkage is rotatably connected to the support base at one end away from the foot pedal panel, and the linkage rod is located at one end of the load-bearing linkage.

3. The skiing simulation device according to claim 2, characterized in that, The load-bearing linkage includes a first linkage and a second linkage, which are positioned and connected relative to each other along the side. The first linkage is pivotally connected to the support base along the middle, and the foot pedal panel is mounted on the second linkage.

4. A skiing simulation device according to claim 2 or 3, characterized in that, The foot pedal panel is provided with a set of sliding wheels along the bottom, and the set of sliding wheels abuts against the support platform.

5. The skiing simulation device according to claim 3, characterized in that, The first link has a push-off module on the side opposite to the second link, and the push-off module is located between the two load-bearing pedals.

6. The skiing simulation device according to claim 1, characterized in that, The elastic reset mechanism includes a first positioning shaft and a torsion spring sleeved on the first positioning shaft. One end of the linkage rod is pivotally connected to one of the bearing pedals via the first shaft. One end of the torsion spring abuts against the linkage rod, and the other end abuts against the bearing pedal.

7. The skiing simulation device according to claim 1, characterized in that, The linkage rod is provided with a first retaining groove and a second retaining groove along its side. The other bearing pedal is provided with a second positioning pivot. The locking mechanism is provided with a third positioning pivot. The first retaining groove and the second positioning pivot are detachably engaged. The second retaining groove and the third positioning pivot are detachably engaged.

8. A skiing simulation device according to claim 1 or 7, characterized in that, The pushing control mechanism includes a pushing slide rod and a control drive module. The pushing slide rod is rotatably connected to the side of the linkage rod at one end, and the other end is movably connected through the control drive module. The pushing slide rod abuts against another bearing pedal or the locking mechanism along its side.

9. A skiing simulation device according to claim 8, characterized in that, The pusher slide bar has a groove on its side, and the second positioning shaft has a cam sleeved along its middle, the cam being slidably connected to the groove.

10. A skiing simulation device according to claim 1, characterized in that, The support base also includes a mounting panel and at least two bearing seats. The locking mechanism is mounted side by side with the two bearing seats on the mounting panel. A support shaft is rotatably protruding from the middle of the bearing seat. The bearing pedal is pivotally connected to the bearing seat through the support shaft. A damping device is provided at the bottom of the bearing seat. One end of the support shaft is connected to the damping device.