Smart wearable device, smart wearable device belt structure and adjustment method thereof
By introducing a driving structure of tracks and movable parts into smart wearable devices, combined with conductive components and spacing detection, automatic adjustment of the strap shape is achieved, solving the problem of low strap adjustment efficiency in the existing technology and improving user experience and production efficiency.
Patent Information
- Application Number
- CN202211259528.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-14
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2042-10-14
AI Technical Summary
Most of the existing smart wearable device straps are one-piece structures with a single shape, low adjustment efficiency and poor user experience.
The track and movable part structure is adopted, and the automatic adjustment of the movable part on the track is realized through the cooperation of the driving structure and the control board. The shape of the belt body is automatically adjusted by combining the conductive components and the spacing detection device.
It realizes convenient adjustment of the belt body shape, improves user experience, has high transmission accuracy, convenient power supply, and is suitable for mass production.
Smart Images

Figure CN115590288B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of smart wearable devices, and in particular to a smart wearable device, a smart wearable device belt structure, and an adjustment method thereof. Background Art
[0002] Currently, most straps for smartwatches and other smart wearable devices are integrated, with a single design. Even straps with adjustable shape or structure still require manual adjustment, which is inefficient and provides a poor user experience.
[0003] Therefore, how to provide a watch strap that is easy to adjust in shape and improve the user experience is a technical problem that those skilled in the art currently need to solve. Summary of the Invention
[0004] In view of this, an object of the present invention is to provide a smart wearable device, a smart wearable device belt structure and an adjustment method thereof, so as to facilitate adjustment of the shape of the belt and improve user experience.
[0005] To achieve the above object, the present invention provides the following technical solutions:
[0006] A smart wearable device belt structure, comprising a track and a movable part;
[0007] In the extension direction of the track, the movable member is connected to the track, and a driving structure is provided between the movable member and the track;
[0008] A control board is provided in the movable part, the driving structure is electrically connected to the control board, and the control board can control the operation of the driving structure so that the driving structure drives the movable part to move on the track.
[0009] Preferably, it also includes a conductive component, which includes a conductive belt and a power-taking structure provided in the movable part; part of the structure of the conductive belt extends into the movable part, and another part of the structure is used to extend into the shell of the device body of the smart wearable device; the input end of the power-taking structure is electrically connected to the conductive belt, and the output end is electrically connected to the control board.
[0010] Preferably, the conductive belt is integrally fixed on the track, the input end of the power extraction structure is fitted to be electrically connected to the conductive belt, and the power extraction structure is movable relative to the conductive belt in the extension direction of the track.
[0011] Preferably, the power taking structure is a carbon brush power taking structure, and an elastic member is provided between the carbon brush power taking structure and the movable member, and the elastic member provides elastic force to press the carbon brush power taking structure against the conductive belt.
[0012] Preferably, the driving structure is arranged in the movable part, the track penetrates into the movable part, and the track and the conductive belt are clamped between the driving structure and the power supply structure, and the track and the conductive belt are arranged in sequence along the direction close to the power supply structure.
[0013] Preferably, a backup power supply structure is provided in the movable part, and the control board can switch the electrical connection between the backup power supply structure and the power supply structure.
[0014] Preferably, the driving structure includes a driving motor and a driving gear fixed to the output end of the driving motor, the housing of the driving motor is fixed to the movable part, a track tooth surface is provided on the track, and the driving gear is engaged with the track tooth surface.
[0015] Preferably, a first distance detection device is further included to detect the distance between the shell of the device body of the smart wearable device and the movable part; the first distance detection device in the movable part is electrically connected to the control board.
[0016] Preferably, there are at least two movable parts, and each movable part is arranged in sequence along the extension direction of the track. A second spacing detection device is provided on at least one of the two adjacent movable parts to detect the spacing between the adjacent movable parts; the second spacing detection device in the movable part is electrically connected to the control board.
[0017] Preferably, after the driving structure drives each of the movable members to move to a corresponding set position on the track, the distances between adjacent movable members are not completely the same.
[0018] A method for adjusting the structure of a smart wearable device belt, applied to the above-mentioned smart wearable device belt structure;
[0019] The adjustment method comprises:
[0020] determining whether the position of the movable member on the track is a set position;
[0021] If not, the driving structure is controlled to drive the movable member to move on the track until the movable member moves to the set position.
[0022] A smart wearable device comprises a device body and the above-mentioned smart wearable device belt structure, wherein the shell of the device body and the movable part are sequentially connected to the track.
[0023] The smart wearable device belt structure provided by the present invention includes a track and a movable member. The movable member is connected to the track in the direction in which the track extends, with a drive structure disposed between the movable member and the track. A control board is disposed within the movable member, and the drive structure is electrically connected to the control board. The control board controls the operation of the drive structure, causing the drive structure to drive the movable member along the track. Through control of the control board and the drive structure, the position of the movable member on the track can be automatically adjusted, thereby enabling convenient and efficient adjustment of the belt's shape and improving the user experience. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are merely embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the provided drawings without paying any creative work.
[0025] Figure 1 An exploded view of a portion of the structure of the belt structure according to the present invention;
[0026] Figure 2 This is an exploded view of the first portion of the movable member of the first embodiment of the belt structure provided by the present invention;
[0027] Figure 3 for Figure 2 Assembly drawing;
[0028] Figure 4 for Figure 3 A magnified view of point A;
[0029] Figure 5 This is a positional relationship diagram of the rail of the belt structure of embodiment 1 provided by the present invention installed in front of the housing;
[0030] Figure 6 A partially enlarged view of the track of the first embodiment of the belt structure provided by the present invention;
[0031] Figure 7 This is a schematic diagram of the assembly structure of the track and the conductive belt of the first embodiment of the belt structure provided by the present invention;
[0032] Figure 8 A top view of the assembly structure of the track and the conductive belt of the first embodiment of the belt structure provided by the present invention;
[0033] Figure 9 This is a front view of the assembly structure of the track and the conductive belt of the first embodiment of the belt structure provided by the present invention;
[0034] Figure 10A bottom view of the assembly structure of the track and the conductive belt of the first embodiment of the belt structure provided by the present invention;
[0035] Figure 11 This is a positional relationship diagram of the rail of the belt structure of Example 1 provided by the present invention after being installed on the housing;
[0036] Figure 12 for Figure 11 BB cross-sectional view;
[0037] Figure 13 An exploded view of the second portion of the movable member of the first embodiment of the belt structure provided by the present invention;
[0038] Figure 14 for Figure 13 Assembly drawing;
[0039] Figure 15 for Figure 14 Enlarged view of point D;
[0040] Figure 16 for Figure 15 CC sectional view;
[0041] Figure 17 This is a positional relationship diagram of the movable parts of the first embodiment of the belt structure provided by the present invention before being installed on the track;
[0042] Figure 18 for Figure 17 An assembly drawing in which the first cover is hidden;
[0043] Figure 19 for Figure 18 Enlarged view of point E;
[0044] Figure 20 for Figure 19 FF cross-sectional view;
[0045] Figure 21 A structural diagram of the second cover of the movable member of the first embodiment of the belt structure provided by the present invention;
[0046] Figure 22 A top view of the second cover of the movable member of the first embodiment of the belt structure provided by the present invention;
[0047] Figure 23 This is a structural diagram of the power supply structure of the first embodiment of the belt structure provided by the present invention;
[0048] Figure 24 A top view of the power supply structure of the first embodiment of the belt structure provided by the present invention;
[0049] Figure 25This is a front view of the power supply structure of the first embodiment of the belt structure provided by the present invention;
[0050] Figure 26 This is a schematic diagram of distance detection between the housing and its nearest movable member in the first embodiment of the belt structure provided by the present invention, where L1 is the distance between the movable member and the housing;
[0051] Figure 27 Schematic diagram of distance detection between adjacent movable parts of the belt structure of Example 1 provided by the present invention, where L2 is the distance between the movable parts;
[0052] Figure 28 This is a schematic diagram of a position adjustment process of a movable part under a position adjustment rule in the first embodiment of the belt structure provided by the present invention;
[0053] Figure 29 for Figure 28 A schematic diagram of a movable part after position adjustment under a position adjustment rule;
[0054] Figure 30 This is a schematic diagram of the movable part in the first embodiment of the belt structure provided by the present invention after position adjustment under another position adjustment rule.
[0055] Reference numerals:
[0056] Housing 1, housing opening 11;
[0057] Track 2, track tooth surface 21, track groove 22, stopper 23;
[0058] Movable member 3, first cover 31, second cover 32, cover opening 33, mounting frame 34, positioning column 35, detection hole 36;
[0059] Control board 4, screw 41;
[0060] Power supply structure 5, carbon brush roller 51, carbon brush bracket 52, conductive wire 53;
[0061] Elastic member 6;
[0062] Driving structure 7, driving motor 71, driving gear 72;
[0063] Conductive tape 8;
[0064] First spacing detection device 9;
[0065] The second distance detection device 10 . DETAILED DESCRIPTION
[0066] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0067] The core of the present invention is to provide a smart wearable device, a smart wearable device belt structure and an adjustment method thereof, which facilitates the adjustment of the belt shape and improves the user experience.
[0068] In the specific embodiment of the smart wearable device belt structure provided by the present invention, please refer to Figures 1 to 30 , including a track 2 and a movable part 3. The smart wearable device can be specifically a wrist-worn device.
[0069] like Figure 1 As shown, the movable part 3 includes a first cover shell 31 and a second cover shell 32 that is buckled into the first cover shell 31. An installation cavity for the movable part 3 is formed between the first cover shell 31 and the second cover shell 32. The structure or component is arranged in the movable part 3 specifically refers to being arranged in the installation cavity of the movable part 3.
[0070] The movable member 3 is connected to the track 2 along its extension direction. The track 2 may be a soft structure to adapt to the shape of the wrist during wear. Of course, in other embodiments, the track 2 may also be a rigid structure, but its length may be shorter, with only a section located near the housing 1. The end of the track 2 away from the housing 1 is connected to a soft strap to adapt to the shape of the wrist.
[0071] When applied to smart wearable devices, the housing 1 of the device body is also connected to the track 2. For the connection between the housing 1 and the track 2, as shown in FIG. Figure 1 As shown, the track 2 part of the structure extends into the interior of the housing 1 through the housing opening 11 on the housing 1. Preferably, as Figure 1 and Figure 20 As shown, a stopper 23 is provided on the track 2, and the stopper 23 is located inside the housing 2. The stopper 23 abuts against the inner wall of the housing 1, and can also be engaged with the inner wall of the housing 1 to prevent the track 2 from falling out of the housing 1. During assembly, Figure 5 As shown, the end of the track 2 without the stopper 23 can be passed from the inside of the housing 1 through the housing opening 11 on the housing 1 and out of the housing 1 until the stopper 23 abuts against the inner wall of the housing 1, and the track 2 is installed in place. Of course, in other embodiments, the housing 1 and the track 2 can also be fixedly connected using screws, adhesive, or other structures.
[0072] Regarding the connection between movable member 1 and track 2, movable member 1 can move on track 2. Specifically, a drive structure 7 is disposed between the two, achieving a transmission connection between the two. A control board 4 is disposed within movable member 3, and drive structure 7 is electrically connected to control board 4. Control board 4 controls the operation of drive structure 7, causing it to drive movable member 3 to move on track 2.
[0073] In this embodiment, through the control of the control board 4 and the driving of the driving structure 7, as shown in FIG. Figures 28 to 30 As shown, the position of the movable part 3 on the track 2 can be automatically adjusted, thereby achieving convenient and efficient adjustment of the belt body shape and improving user experience.
[0074] Further, if Figures 17 to 20 As shown, the smart wearable device's body structure also includes a conductive component, comprising a conductive strip 8 and a power extraction structure 5 disposed within the movable member 3. Conductive strip 8 is specifically a copper strip, with a portion extending into the movable member 3 and a portion extending into the housing 1. The input end of the power extraction structure 5 is electrically connected to the conductive strip 8. Specifically, the power extraction structure 5 is electrically connected to the control board 4 via a conductive wire 53, and the output end of the power extraction structure 5 is electrically connected to the control board 4.
[0075] In smart wearable devices, a main power supply is typically provided within the housing 1. After the track 2 is assembled to the housing 1, the portion of the conductive strip 8 that extends into the housing 1 is electrically connected to the main power supply. This allows the main power supply to power the control board 4 within the movable element 3 via the conductive strip 8 and the power supply structure 5. This can reduce the number of batteries within the movable element 3 and ensure normal operation of the control board 4 even if the separate power supply within the movable element 3 fails.
[0076] Furthermore, the conductive strip 8 is integrally fixed to the track 2, which can unify the assembly between the conductive strip 8, the track 2 and other structural components. Figures 7 to 12 As shown, a track groove 22 is provided on the track 2, and the conductive belt 8 is inserted into the track groove 22. In the extension direction of the track 2, one end of the conductive belt 8 (i.e. Figure 8 The right end of the conductive strip 8 extends out of the track groove 22, as shown in FIG. Figure 11 As shown, the protruding portion is inserted into the housing 1 to serve as a portion electrically connected to the main power supply.
[0077] In addition, the input end of the power extraction structure 5 is in contact with the conductive strip 8 to achieve electrical connection between the input end of the power extraction structure 5 and the conductive strip 8. In the extension direction of the track 2, the power extraction structure 5 can move relative to the conductive strip 8. Therefore, when the power extraction structure 5 moves with the movable part 3, the power extraction structure 5 and the conductive strip 8 are in contact with each other, so that the power extraction structure 5 can maintain electrical transmission with the conductive strip 8 without interfering with the movement of the movable part 3.
[0078] Further, if Figure 14 and Figure 20 As shown, the power supply structure 5 is a carbon brush power supply structure. An elastic member 6, specifically a compression spring, is disposed between the carbon brush power supply structure and the movable member 3. The elastic member 6 provides a spring force to press the carbon brush power supply structure against the conductive strip 8, ensuring a tight fit between the two and thus ensuring effective conduction.
[0079] Wherein, optionally, Figure 16 and Figure 20 As shown, a positioning post 35 is provided on the inner wall of the movable member 3. One end of the elastic member 6 is sleeved on the positioning post 35, while the other end presses against the carbon brush power supply structure. Furthermore, a mounting frame 34 can be provided in the movable member 3, and the power supply structure 5 is disposed within the mounting frame 34. The mounting frame 34 restricts the carbon brush power supply structure from moving only in the direction of the elastic force of the elastic member 6.
[0080] Preferably, the carbon brush power supply structure includes a carbon brush holder 52 and a carbon brush roller 51, the carbon brush roller 51 is rotatably connected to one end of the carbon brush holder 52, and the elastic member 6 is against the other end of the carbon brush holder 52. Figure 20 As shown, when the movable member 3 moves relative to the track 2 along the extension direction of the track 2, that is, when the movable member 3 moves left and right in the direction shown, the carbon brush roller 51 rolls on the conductive belt 8, which can reduce friction damage between the carbon brush power supply structure and the conductive belt 8. The carbon brush roller 51 can be conductive, allowing it to conduct electricity directly to the control board 4, or at least a portion of the structure of the carbon brush holder 52 can also be configured to be conductive, so that the carbon brush roller 51 conducts electricity to the control board 4 through the conductive portion of the carbon brush holder 52. Of course, in other embodiments, the carbon brush power supply structure can also be configured as simply a carbon brush rod that slidably cooperates with the conductive belt 8.
[0081] Wherein, optionally, Figure 21 and Figure 22 As shown, three power extraction structures 5 are sequentially arranged along the extension direction of the track 2 to ensure the contact area between the conductive strip 8 and the power extraction structure 5 .
[0082] Further, if Figure 20 As shown, the driving structure 7 is arranged in the movable part 3, the track 2 penetrates into the movable part 3, and the track 2 and the conductive belt 8 are clamped between the driving structure 7 and the power taking structure 5, and the track 2 and the conductive belt 8 are arranged in sequence along the direction close to the power taking structure 5.
[0083] When assembling the track 2 to the movable part 3, one end of the track 2 is extended into the movable part 3 from a cover opening 33 on the movable part 3, and the power-taking structure 5 is pressed by external force to overcome the elastic force of the elastic member 6 to avoid the track 2. After the track 2 passes through the power-taking structure 5 and passes through another cover opening 33 on the movable part 3, the external force on the power-taking structure 5 is removed, and the elastic member 6 resets and drives the power-taking structure 5 to press the conductive belt 8 connected to the track 2.
[0084] In this embodiment, after assembly is completed, the conductive belt 8 is directly pressed toward the power taking structure 5 by means of the driving structure 7 to balance the elastic force of the elastic member 6. No other structure is required to press the track 2, which is beneficial to reducing the weight of the equipment.
[0085] Of course, in other embodiments, the connection surface between the conductive belt 8 and the driving structure 7 on the track 2 can be set on the adjacent side of the track 2, or the track 2 can also be slidably connected to the outer surface of the movable part 3 without extending into the interior of the movable part 3.
[0086] Further, if Figure 19 and Figure 20 As shown, a backup power supply structure is provided in the movable member 3, and the control panel 4 can be switched to electrically connect to the backup power supply structure or the power supply structure 5. Preferably, a switching module can be provided in the control panel 4. When the power supply structure 5 is supplying power to the control panel 4, the switching module disconnects the control panel 4 from the backup power supply structure. When the power supply structure 5 is not supplying power to the control panel 4, the switching module connects the control panel 4 to the backup power supply structure, ensuring that the control panel 4 is always powered. In addition, based on the provision of the backup power supply structure, before the movable member 3 is mounted on the track 2, the control panel 4 can be powered by the backup power supply structure, allowing operations such as setting parameters in the control panel 4 to be performed.
[0087] Of course, in other embodiments, the power taking structure 5 may not be provided, but only the backup power supply structure may be used to supply power to the power consuming structure in the movable part 3 .
[0088] Further, if Figure 19 and Figure 20 As shown, the drive structure 7 includes a drive motor 71 and a drive gear 72 fixed to the output end of the drive motor 71. The housing of the drive motor 71 is fixed to the movable member 3. The track 2 is provided with a track tooth surface 21, and the drive gear 72 meshes with the track tooth surface 21. The use of a gear transmission provides high transmission accuracy. Of course, in other embodiments, the drive structure 7 can be directly configured as a linear motor, which is connected between the movable member 3 and the track 2 to drive the movable member 3 to move linearly on the track 2.
[0089] Among them, when assembling, the drive motor 71 can be fixed on the control board 4, specifically by using the SMT process to stick it on the control board 4, and then the control board 4 is fixed on the movable part 3 by screws, specifically fixed on the second cover 32 of the movable part 3.
[0090] Furthermore, the smart wearable device strap structure also includes a first distance detection device 9 for detecting the distance between the housing 1 and the movable member 3. Within the movable member 3, the first distance detection device 9 is electrically connected to the control board 4, specifically via an electrical wire. Specifically, the first distance detection device 9 is disposed within the movable member 3.
[0091] Specifically, the first distance detection device 9 is an infrared distance measuring lamp, which is low in cost and easy to assemble. Figures 2 to 4 As shown, the second cover 32 is provided with a first detection hole 36, and the detection head of the first spacing detection device 9 is inserted into the first detection hole 36. Figure 26 As shown, the detection head of the first distance detection device 9 faces the housing 1 to detect the distance between the movable member 3 and the housing 1. Specifically, the detection can be performed when the track 2 is in a straight state.
[0092] Since the control board 4 can obtain the detection result of the first spacing detection device 9, it can control the operation of the driving structure 7 based on this detection result to automatically adjust the position of the movable part 3, thereby improving the accuracy and efficiency of position adjustment.
[0093] Of course, in other embodiments, the first distance detection device 9 may also be an ultrasonic sensor or other distance-measuring device. Furthermore, the first distance detection device 9 may be disposed within the housing 1. Alternatively, the first distance detection device 9 may be a through-beam sensor, with its transmitter and receiver disposed within the housing 1 and movable member 3, respectively.
[0094] Further, if Figures 27 to 30 As shown, there are at least two, for example, four, movable members 3. Each movable member 3 is sequentially arranged along the extension direction of the track 2. By adjusting the positions of different movable members 3, the shaping amount and use effect of the belt body can be further increased.
[0095] Further, if Figure 30 As shown, a second spacing detection device 10 is provided on at least one of two adjacent movable members 3 to detect the spacing between the adjacent movable members 3. Specifically, the detection can be performed when the track 2 is in a straight state. The second spacing detection device 10 in the movable member 3 is electrically connected to the control board 4 in the movable member 3, specifically via wires.
[0096] The second distance detection device 10 is an infrared ranging lamp. In this embodiment, between two adjacent movable members 3, the second distance detection device 10 is disposed in the movable member 3 distal from the housing 1, and is used to detect the distance between the movable member 3 and the other movable member 3. In other words, in this embodiment, the infrared ranging lamp of each movable member 3 always detects the distance to the nearest obstacle on the side of the movable member 3 closest to the housing 1. Furthermore, the arrangement of the second distance detection device 10 in the corresponding movable member 3 can be similar to the arrangement of the first distance detection device 9 in the corresponding movable member 3.
[0097] Since the control board 4 can obtain the detection result of the corresponding second spacing detection device 10, it can control the operation of the corresponding driving structure 7 based on this detection result to automatically adjust the position of the movable part 3, thereby improving the accuracy and efficiency of position adjustment.
[0098] Of course, in other embodiments, the second distance detection device 10 may also be an ultrasonic sensor or other distance measuring device. Alternatively, the second distance detection device 10 may also be a through-beam sensor, with its transmitter and receiver respectively disposed in the two movable parts 3 .
[0099] Furthermore, when multiple movable members 3 are provided, the drive structure 7 drives each movable member 3 to move, thereby adjusting the spacing between adjacent movable members 3 accordingly. Optionally, after the drive structure 7 drives each movable member 3 to a corresponding set position on the track 2, the spacing between adjacent movable members 3 may vary, for example, with some spacing being 1 mm and others being 0.5 mm, to enhance the belt's shape. Of course, the spacing between adjacent movable members 3 may also be identical, for example, with all spacing being 0 or all spacing being 0.2 mm.
[0100] The operating principle of the smart wearable device belt structure in this embodiment includes the following: the movable member 3 is manually inserted into the track 2, and the components within the movable member 3 begin to operate after receiving electrical energy from the conductive strip 8 on the track 2. The control board 4 can pre-set the position adjustment requirements for the movable member 3. After the movable member 3 is assembled on the track 2, the movable member 3 closest to the housing 1 uses the first spacing detection device 9 to detect the spacing between the movable member 3 and the housing 1, and the test result is immediately transmitted to the control board 4 within the movable member 3. Simultaneously, the remaining movable members 3 use the second spacing detection device 10 within the movable member 3 to detect the spacing between the adjacent movable member 3 on the side closest to the housing 1, and the test result is immediately transmitted to the corresponding control board 4. Each control board 4 compares its obtained test result with the set spacing. If the test result is lower or higher than the set spacing, the control board 4 controls the drive motor 71 to operate, driving the movable member 3 on the track 2, adjusting the spacing between adjacent movable members 3 or between the movable member and the housing 1 until each spacing reaches the corresponding set spacing, at which point the drive motor 71 stops operating.
[0101] The smart wearable device belt structure provided in this embodiment has the following beneficial effects:
[0102] 1. The distance between the movable parts 3 and between the movable parts 3 and the housing 1 can be easily set and adjusted: the first spacing detection device 9 and the second spacing detection device 10 will output the corresponding spacing detection to the corresponding control board 4 after completing the corresponding spacing detection. The control board 4 controls the drive motor 71 to rotate to drive the movable part 3 assembly to move on the track 2, thereby achieving the purpose of controlling and adjusting the distance between the components. It is simple and convenient and suitable for mass production.
[0103] 2. The movable part 3 can be powered by the conductive belt 8 of the track 2 and the carbon brush power supply structure, which makes power supply convenient.
[0104] 3. The movable part 3 is adjusted in position on the track 2 through gear transmission, with high transmission accuracy and stable movement.
[0105] In addition to the above-mentioned smart wearable device belt structure, the present invention also provides a method for adjusting the belt structure of a smart wearable device. The method for adjusting the belt structure of a smart wearable device is applied to the above-mentioned smart wearable device belt structure, which can specifically be the smart wearable device belt structure provided in any of the above embodiments. The beneficial effects can be referred to the above embodiments accordingly.
[0106] Specifically, the adjustment method includes:
[0107] S1: Determine whether the position of the movable member 3 on the track 2 is the set position. If not, execute S2. The set position information may be pre-stored in the control board 4.
[0108] S2: Control the driving structure 7 to drive the movable member 3 to move on the track 2 until the movable member 3 moves to the set position.
[0109] Preferably, the judgment of the position of the movable part 3 in S1 is reflected by the distance between the movable part 3 and the adjacent parts: for the movable part 3 closest to the shell 1, the distance between the movable part 3 and the shell 1 is judged; for the remaining movable parts 3, the distance between them and the adjacent movable parts 3 is judged. When all the distances reach the corresponding set distances, the position of each movable part 2 on the track 2 is in the corresponding set position.
[0110] The preset spacing of each control board 4 can be the same. In this case, after the position of the movable member 3 is adjusted, as shown in FIG. Figure 29 As shown, the movable parts 3 are evenly arranged on the track 2; of course, the set spacing corresponding to each control board 4 may not be exactly the same and can be set as needed. In addition, for each control board 4, the size of the set spacing can also be set as needed: when the set spacing of each control board 4 is 0, as shown in FIG. Figure 30As shown, after the position of the movable member 3 is adjusted, the movable member 3 and the housing 1 fit together and are in close contact along the extension direction of the track 2 .
[0111] Of course, in other embodiments, it is also possible to provide specific structures such as protrusions on the track 2 and detect the positional relationship between the movable part 3 and the corresponding specific structure to determine whether the position of the movable part 3 on the track 2 is the set position.
[0112] In addition to the above-mentioned smart wearable device belt structure and its adjustment method, the present invention also provides a smart wearable device, which can be specifically a smart wrist-worn device. The smart wearable device includes the above-mentioned belt structure and also includes a device body. The device body includes a housing 1, such as Figure 26 As shown, the housing 1 and the movable member 3 are sequentially connected to the track 2. For other structures of the smart wearable device, reference may be made to the prior art and will not be described in detail in this application.
[0113] It should be noted that when an element is referred to as being "fixed" to another element, it may be directly attached to the other element or there may be an intermediate element. When an element is referred to as being "connected" to another element, it may be directly connected to the other element or there may be an intermediate element. In addition, in the description of the present invention, unless otherwise specified, "plurality," "plurality," and "plurality of groups" mean two or more.
[0114] Terms such as "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer" indicate positions or locations based on those shown in the accompanying drawings. These terms are intended solely to facilitate and simplify the description of the present invention and are not intended to indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on the present invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the technical features referred to.
[0115] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art of the present invention. The terms used in this specification of the present invention are only for the purpose of describing specific embodiments and are not intended to limit the present invention.
[0116] The various embodiments in this specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the various embodiments can be referenced to each other.
[0117] The above is a detailed introduction to the smart wearable device belt structure and its adjustment method, and the smart wearable device provided by the present invention. This article uses specific examples to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only used to help understand the method of the present invention and its core idea. It should be pointed out that for ordinary technicians in this technical field, without departing from the principles of the present invention, the present invention can also be improved and modified in several ways, and these improvements and modifications also fall within the scope of protection of the claims of the present invention.
Claims
1. A smart wearable device belt structure, characterized in that: It comprises a track (2), a movable part (3) and a conductive component; In the extension direction of the track (2), the movable member (3) is connected to the track (2), and a driving structure (7) is provided between the movable member (3) and the track (2); A control board (4) is provided in the movable member (3), the driving structure (7) is electrically connected to the control board (4), and the control board (4) is capable of controlling the operation of the driving structure (7) so that the driving structure (7) drives the movable member (3) to move on the track (2); The conductive component includes a conductive belt (8) and a power-collecting structure (5) provided in the movable part (3); part of the structure of the conductive belt (8) extends into the movable part (3), and another part of the structure is used to extend into the housing (1) of the device body of the intelligent wearable device; the input end of the power-collecting structure (5) is electrically connected to the conductive belt (8), and the output end is electrically connected to the control board (4); the conductive belt (8) is integrally fixed to the track (2); the input end of the power-collecting structure (5) is fitted to be electrically connected to the conductive belt (8), and in the extension direction of the track (2), the power-collecting structure (5) can move relative to the conductive belt (8), and electrical transmission is maintained between the conductive belt (8) and the power-collecting structure (5).
2. The smart wearable device belt structure according to claim 1, characterized in that: The power supply structure (5) is a carbon brush power supply structure, and an elastic member (6) is provided between the carbon brush power supply structure and the movable member (3). The elastic member (6) provides elastic force to press the carbon brush power supply structure against the conductive belt (8).
3. The smart wearable device belt structure according to claim 1, characterized in that: The driving structure (7) is arranged in the movable part (3), the track (2) penetrates into the movable part (3), and the track (2) and the conductive belt (8) are sandwiched between the driving structure (7) and the power supply structure (5), and the track (2) and the conductive belt (8) are arranged in sequence along a direction close to the power supply structure (5).
4. The smart wearable device belt structure according to claim 1, characterized in that: A backup power supply structure is provided in the movable part (3), and the control panel (4) can switch the electrical connection between the backup power supply structure and the power taking structure (5).
5. The smart wearable device belt structure according to any one of claims 1 to 4, characterized in that: The driving structure (7) comprises a driving motor (71) and a driving gear (72) fixed to the output end of the driving motor (71); the housing of the driving motor (71) is fixed to the movable part (3); a track tooth surface (21) is provided on the track (2); and the driving gear (72) meshes with the track tooth surface (21).
6. The smart wearable device belt structure according to any one of claims 1 to 4, characterized in that: The invention also includes a first distance detection device (9) for detecting the distance between the housing (1) of the device body of the smart wearable device and the movable part (3); the first distance detection device (9) in the movable part (3) is electrically connected to the control board (4).
7. The smart wearable device belt structure according to any one of claims 1 to 4, characterized in that: There are at least two movable parts (3), each of which is arranged in sequence along the extension direction of the track (2), and a second spacing detection device (10) is provided on at least one of the two adjacent movable parts (3) to detect the spacing between the adjacent movable parts (3); the second spacing detection device (10) in the movable part (3) is electrically connected to the control board (4).
8. The smart wearable device belt structure according to claim 7, characterized in that: After the driving structure (7) drives each movable member (3) to move to a corresponding set position on the track (2), the spacing between adjacent movable members (3) is not completely the same.
9. A method for adjusting the structure of a smart wearable device belt, characterized in that: The smart wearable device belt structure as claimed in any one of claims 1 to 8; The adjustment method comprises: Determining whether the position of the movable member (3) on the track (2) is a set position; If not, the driving structure (7) is controlled to drive the movable member (3) to move on the track (2) until the movable member (3) moves to the set position.
10. A smart wearable device, characterized in that: The invention comprises a device body and the smart wearable device belt structure according to any one of claims 1 to 8, wherein the shell (1) of the device body and the movable part (3) are sequentially connected to the track (2).
Citation Information
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