Display device for training apparatus and training apparatus

By setting detection and triggering elements on fitness equipment, and automatically switching training modes by rotating the display screen, the cumbersome training mode switching problem in existing technologies is solved, achieving convenient interface switching and improving user experience.

CN223995366UActive Publication Date: 2026-03-17GUANGZHOU YUANDONG SMART SPORTS TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-03
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Current fitness equipment requires manual operation when switching training modes, which is cumbersome and affects training efficiency.

Method used

A display device for training equipment is provided, which automatically switches training modes by setting a detection element on the mounting bracket and a trigger element on the display screen, thereby realizing non-contact interface switching by rotating the display screen.

Benefits of technology

The process of switching training modes has been simplified, improving ease of operation and user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of fitness equipment, and discloses a display device for training equipment and the training equipment, the display device comprises a mounting bracket, a display screen and a detection module, the display screen can rotate to a first position and a second position relative to the mounting bracket, and the detection module is used for detecting the position of the display screen; when the detection module detects that the display screen rotates to a first position, the display screen displays a first interface (such as a display interface corresponding to a running training mode), and when the detection module detects that the display screen rotates to a second position, the display screen is switched to a second interface (such as a display interface corresponding to a strength training mode). Thus, when a user needs to switch different training modes, the first interface and the second interface can be switched only by rotating the display screen, convenience and rapidness are achieved, and operation convenience is improved.
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Description

Technical Field

[0001] This utility model relates to the field of fitness equipment technology, and in particular to a display device for training equipment and a training equipment. Background Technology

[0002] In recent years, with the development of intelligent fitness equipment, more and more fitness equipment is not only equipped with displays, but also integrates multiple training modes, such as running training mode and strength training mode. These intelligent fitness devices can provide a personalized training experience based on the user's exercise needs. When using different training modes, users need to switch the display to the corresponding display control mode. For example, when performing running training, the display needs to be switched to the strength training control interface, and when performing strength training, the display needs to be switched back to the running training control mode.

[0003] However, current fitness equipment either lacks a training mode switching function, or requires users to switch training modes by clicking on a touchscreen menu or pressing physical buttons, which is cumbersome and affects training efficiency. Utility Model Content

[0004] The present invention aims to provide a display device and training equipment for training equipment, so as to solve the technical problem that users need to switch training modes by clicking on the touch screen menu or pressing physical buttons in the prior art, which is a cumbersome operation process.

[0005] The present invention addresses its technical problem by providing the following technical solution: a display device for training equipment, comprising:

[0006] Mounting bracket, on which a first detection element is provided;

[0007] The display screen is rotatable relative to the mounting bracket to a first position and a second position;

[0008] The detection module is used to detect the position of the display screen. When the detection module detects that the display screen has rotated to a first position, the display screen displays a first interface; when the detection module detects that the display screen has rotated to a second position, the display screen displays a second interface.

[0009] In this embodiment, when the detection module detects that the display screen has rotated to the first position, the display screen shows the first interface (such as the display interface corresponding to the running training mode). When the detection module detects that the display screen has rotated to the second position, the display screen switches to the second interface (such as the display interface corresponding to the strength training mode). Thus, when the user needs to switch between different training modes, they only need to rotate the display screen to switch between the first and second interfaces, which is convenient, quick, and improves operational ease of use. 。

[0010] In some embodiments, the detection module includes a first detection element and a second detection element, the first detection element being disposed on the mounting bracket and the second detection element being disposed on the display screen, wherein one of the first detection element and the second detection element is a sensing element and the other is a triggering element;

[0011] When the display screen is rotated to the first position, the sensing element fails to detect the triggering element, and the display screen displays the first interface;

[0012] When the display screen is rotated to the second position, the sensing element can sense the triggering element, and the display screen displays the second interface.

[0013] In this embodiment, when the display screen is rotated to the first position, the distance between the sensing element and the triggering element is relatively far, and the sensing element does not detect the triggering element. At this time, the display screen displays the first interface (such as the display interface corresponding to the running training mode). As the display screen rotates from the first position to the second position, the distance between the sensing element and the triggering element gradually decreases. When the display screen is in the second position, the distance between the sensing element and the triggering element is relatively close, and the sensing element can detect the triggering element and switch the display screen to the second interface (such as the display interface corresponding to the strength training mode). Thus, when the user needs the display screen to display the first interface, they only need to rotate the display screen to the first position; when the user needs the display screen to display the second interface, they only need to rotate the display screen to the second position. The interface switching process is quick and convenient, improving operational convenience.

[0014] In some embodiments, the mounting bracket is provided with a first rotating part, and the back of the display screen is provided with a second rotating part. One of the first rotating part and the second rotating part is a rotating shaft, and the other is a bushing. The rotating shaft is inserted into the bushing, and the bushing or the rotating shaft is provided with an arc-shaped groove along its circumferential direction.

[0015] The display device further includes a limiting member, which is connected to the bushing or the rotating shaft. The limiting member is slidably installed in the arc-shaped groove and can slide from the first end of the arc-shaped groove to the second end of the arc-shaped groove.

[0016] When the limiting member slides to the first end, the display screen rotates to the first position; when the limiting member slides to the second end, the display screen rotates to the second position.

[0017] In this embodiment, when the user selects the display screen and it rotates relative to the mounting bracket, the limiting member can slide relative to the arc-shaped groove. When the limiting member slides from the second end of the arc-shaped groove towards the first end, the first end of the arc-shaped groove restricts further sliding of the limiting member towards the first end, at which point the display screen rotates to the first position. When the limiting member slides from the first end of the arc-shaped groove to the second end, the second end of the arc-shaped groove restricts further sliding of the limiting member towards the second end, at which point the display screen rotates to the second position. Thus, through the sliding and limiting cooperation between the arc-shaped groove and the limiting member, effective control of the display screen's rotation angle is achieved, ensuring a smooth switching between the first and second positions.

[0018] In some embodiments, the central angle corresponding to the arcuate groove is 90°.

[0019] In this embodiment, the arc-shaped groove forms a quarter-circle arc structure. This limits the rotation range of the display screen to 90°, facilitating the switching between landscape and portrait modes.

[0020] In some embodiments, the first end of the arcuate groove is located at the lowest point of the outer peripheral surface of the bushing;

[0021] A connecting hole is provided on the outer circumferential surface of the rotating shaft, and the limiting member is fixedly connected to the connecting hole. The axial direction of the connecting hole is collinear with the central axis of the display screen.

[0022] In this embodiment, the first end of the arc-shaped groove is the bottom end of the arc-shaped groove, and the second end of the arc-shaped groove is the top end of the arc-shaped groove. Specifically, with Figure 2 Taking the indicated orientation as an example, the top and bottom ends of the arc-shaped groove are the upper and lower ends of the arc-shaped groove along the vertical direction H, respectively. The first end of the arc-shaped groove is located at the lowest point of the outer circumference of the bushing, and the axial direction of the connecting hole is collinear with the central axis (horizontal or vertical) of the display screen. This ensures that after the display screen is assembled to the first and second positions, it can remain in a horizontal or vertical position. This avoids the display screen being tilted after assembly and also helps to use the display screen's own gravity to assist in positioning, ensuring the stability of the display screen in landscape or portrait mode.

[0023] In some embodiments, the line connecting the first detection element and the rotation center of the first rotating part is a first connection line, and the line connecting the second detection element and the rotation center of the second rotating part is a second connection line;

[0024] When the display screen is rotated to the first position, the included angle between the first connecting line and the second connecting line is 90°, so that the first detection element and the second detection element are staggered.

[0025] When the display screen is rotated to the second position, the angle between the first connecting line and the second connecting line is 0°, so that the first detection element and the second detection element are positioned facing each other.

[0026] In this embodiment, when the display screen is rotated to the first position, the angle between the first and second connecting lines is 90°, and the distance between the first and second detection elements is the greatest, ensuring that the sensing element will not sense the trigger element, and the display screen displays the first interface; when the display screen is rotated to the second position, the angle between the first and second connecting lines is 0°, that is, the first and second detection elements are set directly opposite each other, and the distance between the first and second detection elements is the smallest, ensuring that the sensing element can successfully sense the trigger element, so that the display screen can automatically switch from the first interface to the second interface.

[0027] In some embodiments, the sensing element is a Hall sensor and the triggering element is a magnetic element.

[0028] In this embodiment, the sensing element and the triggering element are configured as a Hall sensor and a magnetic element, respectively. The switching of the display interface can be realized through non-contact sensing between the Hall sensor and the magnetic element. No physical contact is required, which can avoid mechanical wear and improve reliability.

[0029] In some embodiments, the first detection element is a sensing element, and the second detection element is a triggering element.

[0030] In this embodiment, by placing the sensing element on the mounting bracket, the position of the sensing element remains unchanged during the rotation of the display screen, making it less prone to signal interference caused by the movement or vibration of the display screen, thereby improving stability and anti-interference during use.

[0031] In some embodiments, the bushing is interference-fitted with the rotating shaft, and the inner circumferential surface of the bushing abuts against the outer circumferential surface of the rotating shaft.

[0032] In this embodiment, by configuring the bushing and the rotating shaft with an interference fit, a large frictional resistance can be generated between the bushing and the rotating shaft, ensuring that the display screen will not easily loosen after rotating to the first position and the second position, thus ensuring structural stability.

[0033] In some embodiments, the detection module includes a position sensor disposed on the display screen. The position of the display screen is determined as a first position or a second position by combining the magnitude or change of the parameter value of the position sensor. Based on the position of the display screen, a first interface or a second interface is displayed.

[0034] The position sensor can be a displacement sensor or an angle sensor, etc. When the position sensor is a displacement sensor, and the displacement sensor is set inside the display screen, so that when the display screen is in the first position and the second position, there is a significant difference in the height parameter or other parameters of the displacement sensor, or the difference exceeds a certain threshold, it can be determined that the position of the display screen has changed. The controller receives the change in parameters and then realizes the switching of the display interface.

[0035] To address its technical problems, this utility model also provides a training device, which includes the display device described in any of the above embodiments; and

[0036] A frame on which a strength training component is mounted, and a display device is mounted on the frame;

[0037] A running board, on which a running platform is provided;

[0038] When the display screen is rotated to the first position, the display screen displays the first interface corresponding to the running training mode;

[0039] When the display screen is rotated to the second position, the display screen shows the second interface corresponding to the strength training mode.

[0040] In this embodiment, when switching to running training mode, the user simply rotates the display screen to the first position, at which point the screen displays the corresponding first interface. When switching to strength training mode, the user simply rotates the display screen to the second position, at which point the screen displays the corresponding second interface, making the operation simple and convenient. Attached Figure Description

[0041] One or more embodiments are illustrated by way of example with reference numerals in the accompanying drawings. These illustrations do not constitute a limitation on the embodiments. Elements with the same reference numerals in the drawings are denoted as similar elements. Unless otherwise stated, the figures in the drawings are not to be limited by scale.

[0042] Figure 1 This is an exploded view of the display device in one embodiment of the present invention;

[0043] Figure 2 This is a partial three-dimensional structural diagram of the mounting bracket in an embodiment of this utility model;

[0044] Figure 3 This is a three-dimensional structural diagram of the display screen in an embodiment of this utility model;

[0045] Figure 4 This is a three-dimensional structural diagram of the display device in the first position in an embodiment of this utility model;

[0046] Figure 5 This is a three-dimensional structural diagram of the display device in the second position in an embodiment of this utility model;

[0047] Figure 6 This is a three-dimensional structural diagram of the training device when it is switched to the first training mode (the display screen is in landscape mode) in an embodiment of this utility model.

[0048] Figure 7 This is a three-dimensional structural diagram of the training device when it switches to the second training mode (the display screen is in portrait mode) in an embodiment of this utility model.

[0049] Explanation of reference numerals in the attached figures:

[0050] 100. Training equipment; 10. Display device; 11. Mounting bracket; 110. First detection element; 111. First rotating part; 1110. Arc groove; 1111. First end; 1112. Second end; 12. Display screen; 120. Second detection element; 121. Second rotating part; 1210. Connecting hole; 122. Mounting plate; 13. Limiting component; 14. Detection module; 20. Frame; 31. Strength training component; 30. Pedal; 31. Treadmill; S1. First connection; S2. Second connection. Detailed Implementation

[0051] To facilitate understanding of this utility model, a more detailed description is provided below with reference to the accompanying drawings and specific embodiments. It should be noted that when an element is described as "connected" to another element, it can be directly on the other element, or one or more intermediate elements may exist between them. The terms "upper," "lower," "left," "right," "upper end," "lower end," "top," and "bottom," etc., used in this specification, indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model 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 of this utility model. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0052] Unless otherwise defined, all technical and scientific terms used in this specification have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of the invention.

[0053] Currently, most multi-functional fitness equipment on the market still relies on manual operation by the user when switching training modes. This includes using the touchscreen menu or pressing physical buttons to change the displayed interface. While this method fulfills basic functional requirements, it is cumbersome, reduces training efficiency, and negatively impacts the user experience.

[0054] To address the aforementioned problems in the prior art, this utility model provides a display device and training equipment, including a mounting bracket and a display screen rotatably mounted on the mounting bracket. A first detection element is disposed on the mounting bracket, and a second detection element is disposed on the back of the display screen. The first and second detection elements can serve as sensing and triggering elements for each other. The display screen can rotate relative to the mounting bracket to a first position and a second position. When the display screen rotates to the first position, the distance between the sensing and triggering elements is relatively large, and the sensing element does not detect the triggering element. At this time, the display screen displays a first interface (such as the display interface corresponding to the running training mode). As the display screen rotates from the first position to the second position, the distance between the sensing and triggering elements gradually decreases. When the display screen is in the second position, the distance between the sensing and triggering elements is relatively small, and the sensing element can detect the triggering element and switch the display screen to the second interface (such as the display interface corresponding to the strength training mode). Thus, when the user needs to switch between different training modes, they only need to rotate the display screen to switch between the first and second interfaces, which is convenient, quick, and improves operational ease.

[0055] The following will be combined with the appendix Figures 1 to 7 The display device 10 and training equipment 100 provided in the embodiments of this utility model will be described in detail.

[0056] Please see Figures 1 to 5 This utility model provides a display device 10, including a mounting bracket 11, a display screen 12 and a detection module 14. The detection module 14 is used to detect the position of the display screen 12. When the detection module 14 detects that the display screen 12 has rotated to a first position, the display screen 12 displays a first interface. When the detection module 14 detects that the display screen 12 has rotated to a second position, the display screen 12 displays a second interface.

[0057] like Figures 1-5As shown, the display device 10 includes a mounting bracket 11 and a display screen 12. The mounting bracket 11 supports and carries the display screen 12. The display screen 12 is rotatably mounted on the mounting bracket 11, so that the display screen 12 can rotate relative to the mounting bracket 11 to a first position and a second position.

[0058] When the user needs the display screen 12 to display the first interface, they only need to rotate the display screen 12 to the first position. At this time, the detection module 14 can detect that the display screen 12 is in the first position and then display the first interface. When the user needs the display screen 12 to display the second interface, they only need to rotate the display screen 12 to the second position. At this time, the detection module 14 can detect that the display screen 12 is in the second position and then display the second interface. In this way, simply rotating the display screen 12 can quickly switch between the first and second interfaces, which is convenient, fast, and improves the ease of operation.

[0059] In some embodiments, the detection module 14 can be a position sensor, which is set on the display screen 12. By combining the magnitude of the parameter value or the amount of parameter change of the position sensor, the position of the display screen 12 is determined to be a first position or a second position. Based on the position of the display screen 12, a first interface or a second interface is displayed.

[0060] Optionally, the position sensor is a displacement sensor, which can be installed inside the display screen 12. The displacement sensor can monitor changes in the position of the display screen 12, and automatically switch the display interface when the position change exceeds a preset threshold. Specifically, when the display screen 12 is in the first position, the display screen displays the first interface. When the display screen 12 rotates from the first position to the second position, the displacement sensor detects that the position change of the display screen exceeds the preset threshold, thereby switching to the second interface.

[0061] In other embodiments, the position sensor can be an angle sensor, and the switching of the display interface is achieved by using the changes in the parameters of the angle sensor. The principle is basically the same as that of the displacement sensor, and will not be described in detail here.

[0062] Optionally, the display device 10 also includes a controller (not shown). The controller can communicate with the detection module 14 via wired or wireless means. The detection module 14 detects the position information of the display screen 12 in real time and sends it to the controller. Thus, the controller can control the display screen 12 to switch the display interface according to the position information of the display screen 12.

[0063] In some embodiments, the detection module 14 includes a first detection element 110 and a second detection element 120. The first detection element 110 is disposed on the mounting bracket 11, and the second detection element 120 is disposed on the back of the display screen 12. One of the first detection element 110 and the second detection element 120 is a sensing element, and the other is a triggering element. When the display screen 12 is rotated to a first position, the sensing element fails to sense the triggering element, and the display screen 12 displays a first interface. When the display screen 12 is rotated to a second position, the sensing element can sense the triggering element, and the display screen 12 displays a second interface.

[0064] The mounting bracket 11 and the back of the display screen 12 are respectively provided with a first detection element 110 and a second detection element 120. The first detection element 110 and the second detection element 120 can be used as sensing elements and triggering elements for each other. When the display screen 12 rotates to the first position (see... Figure 4 When the distance between the sensing element and the triggering element is relatively far, the sensing element does not detect the triggering element. At this time, the display screen 12 displays the first interface (such as the display interface corresponding to the running training mode). As the display screen 12 rotates from the first position to the second position, the distance between the sensing element and the triggering element gradually decreases. When the display screen 12 is in the second position (see...), the distance between the sensing element and the triggering element gradually decreases. Figure 5 When the sensing element and the triggering element are close together, the sensing element can detect the triggering element and switch the display screen 12 to the second interface (such as the display interface corresponding to the strength training mode).

[0065] In some embodiments, the mounting bracket 11 is provided with a first rotating part 111, and the back of the display screen 12 is provided with a second rotating part 121. One of the first rotating part 111 and the second rotating part 121 is a rotating shaft, and the other is a bushing. The rotating shaft is inserted into the bushing, and the bushing has an arc-shaped groove 1110 along its circumferential direction. The display device 10 also includes a limiting member 13, which is slidably installed in the arc-shaped groove 1110 and fixedly connected to the rotating shaft. The limiting member 13 can slide from the first end 1111 of the arc-shaped groove 1110 to the second end 1112 of the arc-shaped groove 1110. When the limiting member 13 slides to the first end 1111, the display screen 12 rotates to the first position. When the limiting member 13 slides to the second end 1112, the display screen 12 rotates to the second position.

[0066] The mounting bracket 11 and the display screen 12 are respectively provided with a first rotating part 111 and a second rotating part 121. The first rotating part 111 and the second rotating part 121 are a rotating shaft and a bushing, respectively. For example, in the figure, the first rotating part 111 can be a bushing and the second rotating part 121 can be a rotating shaft. The bushing has an arc-shaped groove 1110 in its circumferential direction. During assembly, the rotating shaft is first inserted into the bushing, and then the limiting member 13 is inserted into the arc-shaped groove 1110 and fixedly connected to the rotating shaft, so that the display screen 12 can be assembled on the mounting bracket 11.

[0067] After assembly, when the user selects the display screen 12 and it rotates relative to the mounting bracket 11, the limiting member 13 can slide relative to the arc-shaped groove 1110. When the limiting member 13 slides from the second end 1112 of the arc-shaped groove 1110 towards the first end 1111, the first end 1111 of the arc-shaped groove 1110 restricts the limiting member 13 from sliding further towards the first end 1111 of the arc-shaped groove 1110, at which point the display screen 12 rotates to the first position. When the limiting member 13 slides from the first end 1111 of the arc-shaped groove 1110 to the second end 1112 of the arc-shaped groove 1110, the second end 1112 of the arc-shaped groove 1110 restricts the limiting member 13 from sliding further towards the second end 1112 of the arc-shaped groove 1110, at which point the display screen 12 rotates to the second position. In this way, the sliding limit cooperation between the arc groove 1110 and the limiting member 13 achieves effective control of the rotation angle of the display screen 12, ensuring that the display screen 12 can smoothly switch between the first position and the second position.

[0068] In other embodiments, an arc groove 1110 may be provided on the rotating shaft, and a limiting member 13 may be connected inside the bushing. This can also enable the limiting member 13 to slide within the arc groove 1110, thereby achieving effective control over the rotation angle of the display screen 12.

[0069] Optionally, the limiting component 13 can be a limiting pin, a limiting bolt, etc.

[0070] In some embodiments, a mounting plate 122 is also provided on the back of the display screen 12. The mounting plate 122 can be fixed to the back plate of the display screen 12 by means of screws or the like. The second rotating part 121 is provided on the mounting plate 122 to enhance the overall structural strength of the display screen 12.

[0071] In some embodiments, the central angle of the arc groove 1110 is 90°, so that the arc groove 1110 forms a quarter-circle arc structure. In other words, the arc groove 1110 limits the rotation range of the display screen 12 to 90°, avoids excessive rotation, and facilitates the switching between landscape and portrait modes of the display screen 12.

[0072] For example, when the limiting member 13 is located at the first end 1111 of the arc groove 1110, the display screen 12 can be in landscape mode (corresponding to the first position). When the limiting member 13 slides from the first end 1111 of the arc groove 1110 to the second end 1112 of the arc groove 1110, the display screen 12 rotates 90° relative to the mounting bracket 11, and the display screen 12 is in portrait mode (corresponding to the second position).

[0073] It is understood that in other embodiments, the display screen 12 may be in portrait mode when it is in the first position, and in landscape mode when it is in the second position.

[0074] In some embodiments, the first end 1111 of the arc groove 1110 is located at the lowest point of the outer peripheral surface of the bushing, and a connecting hole 1210 is provided on the outer peripheral surface of the rotating shaft. The limiting member 13 is fixedly connected to the connecting hole 1210, and the axial direction of the connecting hole 1210 is collinear with the central axis of the display screen 12.

[0075] like Figure 3 As shown, the connecting hole 1210 can be a threaded hole, and the limiting member 13 can be a bolt. The fixed fit between the rotating shaft and the limiting member 13 is achieved through the threaded connection between the limiting member 13 and the connecting hole 1210.

[0076] The central axis of the display screen 12 can be either the horizontal central axis or the vertical central axis. That is, the axial direction of the connecting hole 1210 can be collinear with the horizontal central axis of the display screen 12, or the axial direction of the connecting hole 1210 can be collinear with the vertical central axis of the display screen 12. Specifically, the horizontal central axis of the display screen 12 is a straight line passing through the center of the display screen 12 and extending along the length of the display screen 12, while the vertical central axis of the display screen 12 is a straight line passing through the center of the display screen 12 and extending along the width of the display screen 12.

[0077] The first end 1111 of the arc-shaped groove 1110 is the bottom end of the arc-shaped groove 1110, and the second end 1112 of the arc-shaped groove 1110 is the top end of the arc-shaped groove 1110. Specifically, with Figure 2 Taking the orientation shown as an example, the top and bottom ends of the arc-shaped groove 1110 are the upper and lower ends of the arc-shaped groove 1110 along the vertical direction H, respectively. The first end 1111 of the arc-shaped groove 1110 is located at the lowest point of the outer circumferential surface of the bushing, and the axial direction of the connecting hole 1210 is collinear with the central axis (horizontal or vertical) of the display screen 12. This allows the display screen 12 to remain horizontal or vertical after being assembled to the first and second positions. This avoids the display screen 12 being tilted after assembly and also helps to use the weight of the display screen 12 to assist in positioning, ensuring the assembly stability of the display screen 12 in landscape or portrait mode.

[0078] In some embodiments, the line connecting the rotation centers of the first detection element 110 and the first rotating part 111 is the first connecting line S1 (see...). Figure 2 The line connecting the rotation centers of the second detection element 120 and the second rotating part 121 is the second connecting line S2 (see...). Figure 3When the display screen 12 is rotated to the first position, the angle between the first connection S1 and the second connection S2 is 90°, so that the first detection element 110 and the second detection element 120 are staggered; when the display screen 12 is rotated to the second position, the angle between the first connection S1 and the second connection S2 is 0°, so that the first detection element 110 and the second detection element 120 are facing each other.

[0079] Optionally, the first detection element 110 can be disposed directly above the first rotating part 111, and the second detection element 120 can be disposed on the left side of the display screen 12. Figure 3 (View angle) When the display screen 12 rotates to the first position, the angle between the first connection S1 and the second connection S2 is 90°, and the distance between the first detection element 110 and the second detection element 120 is the farthest, ensuring that the sensing element will not sense the trigger element, and the display screen 12 displays the first interface; when the display screen 12 rotates to the second position, the angle between the first connection S1 and the second connection S2 is 0°, that is, the first detection element 110 and the second detection element 120 are set directly opposite each other, and the distance between the first detection element 110 and the second detection element 120 is the shortest, ensuring that the sensing element can successfully sense the trigger element, so that the display screen 12 can automatically switch from the first interface to the second interface.

[0080] In some embodiments, the sensing element is a Hall sensor and the triggering element is a magnetic element, for example, a magnet.

[0081] When the display screen 12 is in the first position, the distance between the Hall sensor and the magnetic element is at its greatest. At this time, the Hall sensor cannot detect the magnetic field generated by the magnetic element, and the display screen 12 shows the first interface. As the display screen 12 rotates from the first position to the second position, the distance between the Hall sensor and the magnetic element gradually decreases, and when the display screen 12 is in the second position, the distance between the Hall sensor and the magnetic element is shortened to its closest point. At this time, the Hall sensor can detect the magnetic field generated by the magnetic element, causing the Hall sensor to be triggered and output a corresponding sensing signal to the controller, which then controls the display screen 12 to switch to the second interface.

[0082] It is understood that in this embodiment, the sensing element and the triggering element are configured as a Hall sensor and a magnetic element, respectively. The switching of the display interface of the display screen 12 can be realized through non-contact sensing between the Hall sensor and the magnetic element. No physical contact is required, which can avoid mechanical wear and improve reliability.

[0083] Alternatively, in other embodiments, the sensing element and the triggering element may also be used to switch the display interface of the display screen 12 by means of contact sensing. For example, in one embodiment, the sensing element may be a mechanical micro switch and the triggering element may be a metal spring.

[0084] In some embodiments, the first detection element 110 is a sensing element, and the second detection element 120 is a triggering element. That is, a sensing element (such as a Hall sensor) is provided on the mounting bracket 11, and a triggering element (such as a magnet) is provided on the back of the display screen 12.

[0085] In this embodiment, by placing the sensing element on the mounting bracket 11, the position of the sensing element remains unchanged during the rotation of the display screen 12, making it less prone to signal interference caused by the movement or vibration of the display screen 12, thereby improving stability and anti-interference during use.

[0086] In some embodiments, the bushing and the rotating shaft are interference-fitted, and the inner circumferential surface of the bushing abuts against the outer circumferential surface of the rotating shaft, so that a large frictional resistance can be generated between the bushing and the rotating shaft, ensuring that the display screen 12 will not easily loosen after rotating to the first position and the second position, thus ensuring structural stability.

[0087] Based on the same utility model concept, please refer to Figure 6 and Figure 7 This utility model embodiment also provides a training device 100, which includes the display device 10 in any of the above embodiments, as well as a frame 20 and a pedal 30. The frame 20 is provided with a strength training component 21, and the pedal 30 is provided with a treadmill 31.

[0088] Optionally, the display device 10 can be mounted on the rack 20.

[0089] It is understood that in some embodiments, the mounting bracket 11 of the display device 10 can be part of the frame 20, that is, the first detection element 110 and the first rotating part 111 are provided on the frame 20 of the training device 100. In other embodiments, the mounting bracket 11 can be installed on the frame 20 of the training device 100 by means of screwing, snap-fitting, welding or other methods.

[0090] The training equipment 100 has a running training mode and a strength training mode. When the display screen 12 is rotated to the first position (landscape mode), the display screen 12 displays the first interface corresponding to the running training mode; when the display screen 12 is rotated to the second position (portrait mode), the display screen 12 displays the second interface corresponding to the strength training mode.

[0091] To switch to running training mode, users simply rotate display screen 12 to the first position, where it will display the corresponding first interface. To switch to strength training mode, users simply rotate display screen 12 to the second position, where it will display the corresponding second interface. The operation is simple and convenient.

[0092] Optionally, the first interface can display running-related data, such as running speed, running time, distance run, calories burned, heart rate monitoring, and remaining time. The second interface can display strength training-related data, such as the name of the currently performed training exercise, the corresponding number of sets and repetitions, the rest time between sets, the weight or resistance level used, and the time required to complete each set.

[0093] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and not to limit it; under the concept of this utility model, the technical features of the above embodiments or different embodiments can also be combined, the steps can be implemented in any order, and there are many other variations of different aspects of this utility model as described above. For the sake of brevity, they are not provided in detail; although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or make equivalent substitutions for some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this utility model.

Claims

1. A display device (10) for a training machine, characterized in that The display device (10) comprises: a mounting bracket (11); a display screen (12) rotatable relative to the mounting bracket (11) to a first position and a second position; a detection module (14) for detecting the position of the display screen (12), the display screen (12) displaying a first interface when the detection module (14) detects that the display screen (12) is rotated to the first position, and the display screen (12) displaying a second interface when the detection module (14) detects that the display screen (12) is rotated to the second position.

2. The display device (10) for a training machine according to claim 1, characterized in that The detection module (14) comprises a first detection element (110) and a second detection element (120), the first detection element (110) is arranged on the mounting bracket (11), the second detection element (120) is arranged on the display screen (12), one of the first detection element (110) and the second detection element (120) is an induction element, and the other is a triggering element; When the display screen (12) is rotated to the first position, the induction element fails to induce the triggering element, and the display screen (12) displays the first interface; When the display screen (12) is rotated to the second position, the induction element can induce the triggering element, and the display screen (12) displays the second interface.

3. The display device (10) for a training machine according to claim 2, characterized in that The mounting bracket (11) is provided with a first rotating part (111), the back of the display screen (12) is provided with a second rotating part (121), one of the first rotating part (111) and the second rotating part (121) is a rotating shaft, and the other is a shaft sleeve, the rotating shaft is inserted into the shaft sleeve, and an arc-shaped groove (1110) is formed in the circumferential direction of the shaft sleeve or the rotating shaft; The display device (10) further comprises a limiting piece (13) connected to the shaft sleeve or the rotating shaft, the limiting piece (13) is slidingly installed in the arc-shaped groove (1110), and the limiting piece (13) can slide from a first end (1111) of the arc-shaped groove (1110) to a second end (1112) of the arc-shaped groove (1110); When the limiting piece (13) slides to the first end (1111), the display screen (12) is rotated to the first position, and when the limiting piece (13) slides to the second end (1112), the display screen (12) is rotated to the second position.

4. The display device (10) for a training machine according to claim 3, characterized in that The arc-shaped groove (1110) corresponds to a central angle of 90°.

5. The display device (10) for a training machine according to claim 4, characterized in that The first end (1111) of the arc-shaped groove (1110) is located at the lowest point of the outer circumferential surface of the shaft sleeve; A connecting hole (1210) is formed in the outer circumferential surface of the rotating shaft, the limiting piece (13) is fixedly connected with the connecting hole (1210), and the axial direction of the connecting hole (1210) is collinear with the central axis of the display screen (12).

6. The display device (10) for a training machine according to claim 4, characterized in that The connecting line of the first detection element (110) and the rotating center of the first rotating part (111) is a first connecting line, and the connecting line of the second detection element (120) and the rotating center of the second rotating part (121) is a second connecting line. When the display screen (12) rotates to the first position, the included angle between the first connecting line and the second connecting line is 90°, so that the first detection element (110) and the second detection element (120) are arranged staggeredly. When the display screen (12) rotates to the second position, the included angle between the first connecting line and the second connecting line is 0°, so that the first detection element (110) and the second detection element (120) are arranged oppositely.

7. The display device (10) for a training machine according to claim 2, characterized in that The inductive element is a Hall sensor, and the trigger element is a magnetic element.

8. The display device (10) for a training machine according to claim 3, characterized in that The shaft sleeve is in interference fit with the rotating shaft, and the inner circumferential surface of the shaft sleeve is in abutment with the outer circumferential surface of the rotating shaft.

9. The display device (10) for a training machine according to claim 1, characterized in that The detection module (14) comprises a position sensor arranged on the display screen (12), and the position of the display screen is determined to be the first position or the second position in combination with the parameter value or the parameter variation of the position sensor, and a first interface or a second interface is displayed in combination with the position of the display screen.

10. A training apparatus (100), characterized by The display device (10) according to any one of claims 1-9; and A rack (20) provided with a strength training assembly (21), and the display device (10) is arranged on the rack (20); A pedal (30) provided with a running platform (31); When the display screen (12) rotates to the first position, the display screen (12) displays a first interface corresponding to a running training mode; When the display screen (12) rotates to the second position, the display screen (12) displays a second interface corresponding to a strength training mode.