Mobile device holder
By using a sliding connection between the fixed base and the elastic components, combined with the design of the guide slope and the snap-fit groove, the problem of complex angle adjustment for mobile device holders is solved, enabling quick angle adjustment and fixation, and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN SENKEMU TECH CO LTD
- Filing Date
- 2025-09-15
- Publication Date
- 2026-08-04
AI Technical Summary
Existing mobile device holders are complex to operate when adjusting the angle of the mobile device, requiring complete disassembly and readjustment of the connecting components.
The device uses a sliding connection between the mounting base and the elastic component, combined with the design of the guide slope and the snap-fit groove, to achieve quick snap-fit and snap-unscrew of the mobile device bracket, and the angle can be adjusted by the multi-angle matching mounting base and connecting base.
It simplifies the process of adjusting the angle of mobile devices, improves adjustment speed and user experience, and enables quick fixing and unfixing.
Smart Images

Figure CN224589054U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of mobile device bracket technology, and specifically to a mobile device bracket. Background Technology
[0002] With the rapid development of mobile devices, people are spending significantly more time using them. Sometimes, users need to view the screen without their hands supporting the device, such as when viewing navigation maps while driving or cycling. This has led to the development of mobile device holders. Users can mount their devices to a vehicle or other load-bearing object, securing the device to the holder, thus freeing their hands and eliminating the need for manual support.
[0003] Currently, some mobile device holders securely attach the mobile device to the holder by fixing a connecting component connected to the support object to a connecting component connected to the mobile device. However, if the angle of the mobile device needs to be adjusted, it is often necessary to completely separate the two connecting components, readjust the angle between them, and then reconnect them, making the process of adjusting the mobile device's angle complicated. Utility Model Content
[0004] This application provides a mobile device holder that solves the problem of complicated operation when adjusting the angle of a mobile device holder.
[0005] To address the aforementioned technical problems, this application provides a mobile device bracket, which includes a first connecting component and a second connecting component. The first connecting component includes a fixed seat and an elastic component that are slidably connected. The second connecting component includes a connecting seat, one of which is used to connect to a mobile device end, and the other is used to connect to a carrier end. The connecting seat has a guide slot and a first guide slope located outside the guide slot. The elastic component has a snap-fit portion. When the snap-fit portion snaps into the guide slot, the first connecting component and the second connecting component are axially fixed relative to each other. The inner wall of the guide slot near the first guide slope has a second guide slope. The first guide slope guides the snap-fit portion towards the guide slot in the axial direction, and the second guide slope guides the snap-fit portion away from the guide slot in the axial direction. The first and second guide slopes also guide the elastic component to move radially toward the radial unlocking direction of the elastic component, so that the elastic component generates an elastic restoring force for resetting.
[0006] The fixed seat has a first mating part, and the connecting seat has a second mating part. When the snap-fit part is engaged with the guide snap-fit groove, the first mating part and the second mating part engage and abut along the axial direction so that the fixed seat and the connecting seat are fixed to each other in the circumferential direction in the natural state. The first mating part and the second mating part can engage and abut at multiple angles. When the fixed seat and the connecting seat can rotate relative to each other under the action of external force, the first mating part and the second mating part engage and abut at different angles.
[0007] In one embodiment, the first mating part is a first annular array structure or an arc-shaped array structure, the first annular array structure or arc-shaped array structure includes a plurality of first array units, the first array units are arranged sequentially along the circumference;
[0008] The second mating part is a second annular array structure, which includes multiple second array units arranged sequentially along the circumferential direction; a recess is formed between adjacent second array units, and the first array unit is used to be embedded into the recess along the axial direction, and the recess is used to limit the first array unit in the circumferential direction.
[0009] In one embodiment, the first mating part is an arc-shaped or annular first rack structure, and the second mating part is an annular second rack structure.
[0010] In one embodiment, the first connecting component further includes an unlocking member. The elastic component and the unlocking member are arranged sequentially along the radial unlocking direction. The unlocking member is movable relative to the fixed seat so that the first connecting component has a locked state and an unlocked state. The unlocking member is provided with a clearance portion and a limiting portion. The elastic component has a protrusion portion. In the locked state, the limiting portion abuts against the protrusion portion to limit the protrusion portion in the radial unlocking direction. In the unlocked state, the clearance portion and the protrusion portion are arranged opposite to each other so that the protrusion portion can be inserted into and disengaged from the clearance portion.
[0011] In one embodiment, the mounting base is provided with a mounting groove, the unlocking member is slidably connected to the mounting groove by an elastic body, and the sliding direction of the unlocking member is perpendicular to the radial unlocking direction; one of the unlocking member and the mounting groove has a limiting protrusion and the other has a limiting recess, the limiting protrusion is embedded in the limiting recess to limit the unlocking member.
[0012] In one embodiment, the snap-fit portion has a third guide slope and a fourth guide slope; the third guide slope is disposed close to the second connecting component relative to the fourth guide slope; when the snap-fit portion is located outside the guide snap-fit groove, the first guide slope can abut against the third guide slope, and when the snap-fit portion is located inside the guide snap-fit groove, the second guide slope abuts against the fourth guide slope.
[0013] In one embodiment, the fixing seat has a protrusion, the connecting seat has a groove, the protrusion is for insertion into the groove, at least a portion of the elastic component is disposed on the protrusion, and the guide snap groove is recessed on the side wall of the groove.
[0014] In one embodiment, the elastic component includes a slider and an elastic element. The fixed base has a groove, the slider is slidably connected to the groove, and both ends of the elastic element abut against the inner wall of the slider and the inner wall of the groove, respectively. The inner wall of the groove and the slider have a sliding protrusion and a sliding recess, respectively. The sliding protrusion is embedded in the sliding recess to limit the slider.
[0015] In one embodiment, the surface of the slider facing the second connecting component is exposed to the mounting base.
[0016] In one embodiment, there are two elastic components, the radial unlocking directions of the elastic components are opposite, the unlocking member is located between the two elastic components, and the unlocking member is provided with a clearance part and a limiting part at both ends facing the two elastic components.
[0017] The mobile device bracket of this application uses a snap-fit part to engage with a guide snap-fit groove, allowing the first connecting component and the second connecting component to be axially fixed relative to each other in their natural state. The mobile device end can be indirectly fixed to the carrier end through the mobile device bracket. Furthermore, through the guiding engagement of the snap-fit part, the first guide slope, and the second guide slope, as well as the elastic restoring force of the elastic component, the snap-fit part and the guide snap-fit groove can be quickly snapped together and quickly released under external force. By providing a first mating part and a second mating part, when the snap-fit part and the guide snap-fit groove are engaged, the first mating part and the second mating part can engage and abut along the axial direction, so that the fixed seat and the connecting seat are fixed to each other in the circumferential direction in their natural state, preventing rotation between them. Moreover, since the fixed seat and the connecting seat can rotate relative to each other under external force, the first mating part and the second mating part engage and abut at different angles, thus adjusting the relative angle of the first connecting component and the second connecting component, thereby adjusting the angle of the mobile device. After adjusting the rotation, the first mating part and the second mating part can also be locked relative to each other again in the circumferential direction in their natural state. When adjusting the angle of a mobile device, the mobile device holder of this application does not require the first and second connecting components to be completely separated before adjusting the angle between them. The angle can be adjusted by directly rotating the first and second connecting components when the locking part is engaged with the guide locking slot. Furthermore, after adjusting the angle, the first and second connecting components can be locked in their natural state, which greatly simplifies the steps of adjusting the angle of the mobile device, increases the speed of adjusting the angle of the mobile device, and enhances the user experience. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of a mobile device holder provided in an embodiment of this application;
[0019] Figure 2 This is a schematic diagram of the structure of a first connecting component provided in an embodiment of this application;
[0020] Figure 3 This is a schematic diagram of the structure of a second connecting component provided in an embodiment of this application;
[0021] Figure 4 A cross-sectional view of a second connecting component provided in an embodiment of this application;
[0022] Figure 5 This is a schematic diagram of the structure of a slider provided in an embodiment of this application;
[0023] Figure 6 This is a schematic diagram of the structure of a mobile device bracket provided in an embodiment of this application when the latching part and the guide latching groove are latched together;
[0024] Figure 7 This is a schematic diagram of the structure of a mobile device bracket provided in an embodiment of this application during the snap-fit process between the snap-fit part and the guide snap-fit groove;
[0025] Figure 8 This is a schematic diagram of the structure of the first connecting component provided in an embodiment of this application during the snap-fit process;
[0026] Figure 9 An exploded view of a mobile device holder provided in an embodiment of this application;
[0027] Figure 10 A schematic diagram of the structure of a portion of the first connecting component in a locked state according to an embodiment of this application;
[0028] Figure 11 A schematic diagram of the structure of some components of the first connection component in the unlocked state according to an embodiment of this application;
[0029] Figure 12 This is a schematic diagram of the structure of an unlocking component provided in one embodiment of this application;
[0030] Figure 13 This is a schematic diagram of a portion of the structure of a fixing seat provided in an embodiment of this application.
[0031] Reference numerals: First connecting component 10, fixing seat 11, universal ball head 111, mounting groove 112, limiting protrusion 1121, sliding groove 113, sliding protrusion 1131, protrusion 114, first mating part 115, elastic component 12, snap-fit part 121, third guide slope 1211, fourth guide slope 1212, protrusion 123, sliding member 124, sliding recess 1241, sliding part 1242, connecting part 1243, unlocking member 13, clearance part 131, limiting part 132, limiting recess 133, second connecting component 20, connecting seat 21, guide snap-fit groove 211, second guide slope 2111, first guide slope 212, second mating part 213, groove 214, hook 22. Detailed Implementation
[0032] The present application will now be described in further detail with reference to the accompanying drawings and specific embodiments. Similar elements in different embodiments are referred to by related similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of the present application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to the present application are not shown or described in the specification. This is to avoid obscuring the core parts of the present application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.
[0033] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments, and the operational steps involved in each embodiment can also be rearranged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for clearly describing a particular embodiment and do not imply that they represent the necessary components and / or order.
[0034] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).
[0035] The terms "parallel" and "perpendicular," etc., are specific to the current technological level, not absolute mathematical definitions. Slight deviations are permissible; approximations of parallelism or perpendicularity are acceptable. For example, "A and B are parallel" means that A and B are parallel or approximately parallel, with the angle between A and B ranging from 0° to 10°. Similarly, "A and B are perpendicular" means that A and B are perpendicular or approximately perpendicular, with the angle between A and B ranging from 80° to 100°. The directional terms used in the embodiments of this application, such as "upper," "inner," "outer," and "side," are merely for reference to the accompanying drawings. Therefore, the directional terms used are for better and clearer explanation and understanding of the embodiments of this application, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of this application.
[0036] This application provides a mobile device holder for securing a mobile device to a carrier. The mobile device can be a mobile phone, tablet, e-reader, or other electronic mobile device. Specifically, in one embodiment, the mobile device holder is used to secure a mobile phone to a vehicle body. That is, in this embodiment, the mobile device holder is applied in a vehicle environment. It should be understood that the technical solution of this application is also applicable to mobile device holders in other scenarios such as cycling, desktop placement, etc.
[0037] Please see Figure 1-3 The mobile device support includes a first connecting component 10 and a second connecting component 20. The first connecting component 10 includes a slidingly connected fixed base 11 and an elastic component 12; the second connecting component 20 includes a connecting base 21, one of which, the fixed base 11 and the connecting base 21, is used to connect to the mobile device end, and the other is used to connect to the carrier end.
[0038] The connections described above can be direct or indirect. For example, in one embodiment, the first connecting component 10 is indirectly connected to the mobile device, while the first connecting component 10 is used to directly connect to the mobile device mounting bracket, which is used to mount the mobile device. The connection method between the first connecting component 10 and the mobile device mounting bracket is not limited. In one embodiment, the mounting base 11 has a universal ball head 111, which is used to connect with the ball joint groove of the mobile device mounting bracket. In another embodiment, the mounting base 11 has a first threaded portion, which is used to connect with a second threaded portion of the mobile device mounting bracket. In some embodiments, the second connecting component 20 includes a hook 22 connected to the connecting base 21, which can be hooked onto the air vent of the vehicle body to mount the mobile device on the vehicle body.
[0039] like Figure 2-5As shown, the connector 21 has a guide slot 211 and a first guide ramp 212 located outside the guide slot 211, and the elastic component 12 has a snap-fit portion 121. The snap-fit portion 121 is used to snap into the guide slot 211. For example, in... Figure 6 In the middle, the snap-fit part 121 and the guide snap-fit groove 211 are in a snap-fit state. When the snap-fit part 121 and the guide snap-fit groove 211 are snap-fitted, and in the natural state, the first connecting component 10 and the second connecting component 20 are relatively fixed in the axial direction. The natural state described in this application is the state when no external force is applied to the mobile device bracket, for example, the state when the user does not apply force to the mobile device bracket with their hand.
[0040] from Figure 6 As can be seen, the guide slot 211 has a side opening, and the locking part 121 extends into the guide slot 211 through the side opening. The two opposite slot walls of the guide slot 211 along the axial direction respectively abut against the two opposite outer walls of the locking part 121 along the axial direction. Thus, in the natural state, the guide slot 211 limits the locking part 121 in the axial direction, so that the first connecting component 10 and the second connecting component 20 will not separate in the axial direction.
[0041] In the initial state, that is, when the first connecting component 10 and the second connecting component 20 are completely separated, as follows: Figure 2 As shown, the elastic component 12 currently has no elastic restoring force. However, when an external force causes the first connecting component 10 and the second connecting component 20 to approach each other axially, the locking portion 121 abuts against the first guide slope 212. The first guide slope 212 axially guides the locking portion 121 towards the guide locking groove 211. Specifically, the first guide slope 212 can guide the locking portion 121 to move towards the side opening of the guide locking groove 211. The first guide slope 212 also radially guides the elastic component 12 to move towards the radial unlocking direction of the elastic component 12, so that the elastic component 12 generates an elastic restoring force for resetting. Figure 7 and Figure 8 As shown, Figure 7 and Figure 8 When the engaging part 121 is guided by the first guide slope 212 under the action of external force, and is momentarily located at the side opening of the guide engaging groove 211, the elastic component 12 has an elastic restoring force. Since the first guide slope 212 has separated from the engaging part 121, the engaging part 121 can move in the opposite direction of the radial unlocking direction under the action of the elastic restoring force. Figure 6 As shown, the snap-fit part 121 eventually snaps into the guide snap-fit groove 211 under the action of elastic restoring force. At this time, the applied external force can be removed, that is, in the natural state, the first connecting component 10 and the second connecting component 20 are relatively fixed in the axial direction.
[0042] In some embodiments, there are two elastic components 12, and the radial unlocking directions of the two elastic components 12 are opposite. It should be noted that the radial unlocking direction of the elastic component 12 can be considered as the direction in which the elastic component 12 disengages from the guide slot 211 in the radial direction. Therefore, when both elastic components 12 are engaged in the guide slot 211, the two elastic components 12 need to disengage from the guide slot 211 in opposite directions. Thus, in the natural state, the engaging portion 121 is not easy to disengage from the guide slot 211 in the radial direction. The guide slot 211 can limit the two different elastic components 12 in opposite radial directions, thereby ensuring that in the natural state, the guide slot 211 limits the elastic component 12 in both the radial and axial directions, but does not limit the elastic component 12 in the circumferential direction.
[0043] like Figure 3 and Figure 4 The guide slot 211 has a second guide slope 2111 near the inner wall of the first guide slope 212. In its natural state, when the engaging part 121 engages with the guide slot 211, the engaging part 121 abuts against the second guide slope 2111. When an external force causes the first connecting assembly 10 and the second connecting assembly 20 to separate axially, the second guide slope 2111 guides the engaging part 121 away from the guide slot 211 in the axial direction, that is, the second guide slope 2111 guides the engaging part 121 to move axially toward the first guide slope 212. The second guide slope 2111 also guides the elastic component 12 to move radially toward the radial unlocking direction of the elastic component 12, so that the elastic component 12 generates an elastic restoring force for resetting. When the elastic component 12 separates from the second guide slope 2111, the first connecting component 10 and the second connecting component 20 separate. The elastic component 12 can be reset under the action of elastic restoring force so that the first connecting component 10 and the second connecting component 20 can be snapped together next time.
[0044] The mobile device bracket of this application, through the snap-fit engagement of the snap-fit part 121 and the guide snap-fit groove 211, allows the first connecting component 10 and the second connecting component 20 to be axially fixed relative to each other in their natural state. The mobile device end can be indirectly fixed to the carrier end through the mobile device bracket. Furthermore, through the guiding engagement of the snap-fit part 121, the first guide slope 212, and the second guide slope 2111, as well as the elastic restoring force of the elastic component 12, the snap-fit part 121 and the guide snap-fit groove 211 can be quickly snapped together and quickly unsnapped under the action of external force. The user only needs to... To quickly connect the first connecting component 10 and the second connecting component 20, the first connecting component 10 and the second connecting component 20 should be brought close together and the snap-fit part 121 should be snapped into the guide snap-fit groove 211 along the first guide slope 212. When it is necessary to separate the first connecting component 10 and the second connecting component 20, the first connecting component 10 should be pulled up relative to the second connecting component 20 in the axial direction, so that the snap-fit part 121 can be removed from the guide snap-fit groove 211 along the second guide slope 2111, thereby separating the first connecting component 10 and the second connecting component 20.
[0045] Therefore, when a user needs to temporarily remove the mobile device and then fix it back to the carrier after use, they only need to pull the mobile device and the first connecting component 10 together relative to the second connecting component 20 to quickly remove the mobile device. After use, the first connecting component 10 can be pressed towards the second connecting component 20 to fix the mobile device back to the carrier. This simplifies the steps of fixing and unfixing the mobile device to the carrier and improves the user experience.
[0046] like Figure 2 and Figure 3 As shown, the fixed seat 11 has a first mating part 115, and the connecting seat 21 has a second mating part 213. When the snap-fit part 121 is engaged with the guide snap-fit groove 211, the first mating part 115 and the second mating part 213 engage and abut along the axial direction, so that the fixed seat 11 and the connecting seat 21 are fixed to each other in the circumferential direction in their natural state. The mating can refer to a protrusion and a recessed fit.
[0047] The first mating part 115 and the second mating part 213 can engage and abut at multiple angles, where "multiple angles" refers to the angles that can be changed by rotation around the axial direction. When the first mating part 115 and the second mating part 213 are engaged, the fixed seat 11 and the connecting seat 21 are fixed to each other in the circumferential direction in their natural state. Since the snap-fit part 121 abuts against the second guide inclined surface 2111 when it snaps into the guide snap-fit groove 211, when the user applies external force, the snap-fit part 121 can have a certain floating space in both the radial and axial directions under the guidance of the second guide inclined surface 2111. Therefore, the fixed seat 11 and the connecting seat 21 can rotate relative to each other under the action of external force, and after they rotate, the first mating part 115 and the second mating part 213 can engage and abut at different angles.
[0048] By providing the first mating part 115 and the second mating part 213, when the locking part 121 and the guide locking groove 211 are engaged, the first mating part 115 and the second mating part 213 can engage and abut along the axial direction, so that the fixed seat 11 and the connecting seat 21 are fixed to each other in the circumferential direction in their natural state, preventing rotation between them. Furthermore, since the fixed seat 11 and the connecting seat 21 can rotate relative to each other under external force, the first mating part 115 and the second mating part 213 engage and abut at different angles, thus adjusting the relative angle of the first connecting assembly 10 and the second connecting assembly 20, thereby adjusting the angle of the mobile device. After adjusting the rotation, the first mating part 115 and the second mating part 213 can also be locked relative to each other again in the circumferential direction in their natural state. When adjusting the angle of a mobile device, the mobile device holder of this application does not require the first connecting component 10 and the second connecting component 20 to be completely separated before adjusting the angle between them. The angle can be adjusted by directly rotating the first connecting component 10 and the second connecting component 20 when the locking part 121 is engaged with the guide locking groove 211. After adjusting the angle, the first connecting component 10 and the second connecting component 20 can be locked in their natural state, which greatly simplifies the steps of adjusting the angle of the mobile device, increases the speed of adjusting the angle of the mobile device, and improves the user experience.
[0049] In one embodiment, such as Figure 2 As shown, the first mating part 115 is a first annular array structure or an arc-shaped array structure, which includes multiple first array units arranged sequentially along the circumference; as shown Figure 3As shown, the second mating part 213 is a second annular array structure, which includes multiple second array units arranged sequentially along the circumference. A recess is formed between adjacent second array units. The first array unit is used to embed itself into the recess along the axial direction, and the recess is used to limit the first array unit in the circumferential direction. For example, in one embodiment, the first mating part 115 is an arc-shaped or annular first rack structure, and the second mating part 213 is an annular second rack structure. In its natural state, the first rack structure meshes with the second rack structure.
[0050] Specifically, when the fixed base 11 and the connecting base 21 are rotated relative to each other, each of the first array units of the first mating part 115 will rotate from the recess of the second mating part 213 to the adjacent recess. During the rotation process from one recess to the adjacent recess, the first mating part 115 will first move away from the floating relative to the second mating part 213. At this time, the locking part 121 will simultaneously slide away from the guide locking groove 211 on the second guide inclined surface 2111 of the guide locking groove 211. Under the guidance of the second guide inclined surface 2111, the locking part 121 moves away from the guide locking groove 211 axially and moves towards the radial unlocking direction. The first array unit moves away from the guide slot 211 and generates an elastic restoring force for resetting. After the first array unit completely disengages from the previous recess and rotates to the adjacent recess, under the action of the second guide slope 2111 and the elastic restoring force, the locking part 121 slides along the second guide slope 2111 toward the guide slot 211. That is, the locking part 121 floats axially toward the guide slot 211 and moves radially toward the guide slot 211 in the opposite direction of the radial unlocking direction until the elastic component 12 is reset and the first mating part 115 floats toward the second mating part 213. During rotation, the locking part 121 floats obliquely along the second guide slope 2111 within the guide locking groove 211. The first mating part 115 and the second mating part 213 also float up and down repeatedly during relative rotation. After the user's rotational torque disappears, under the action of the elastic component 12, the locking part 121 will be completely locked into the guide locking groove 211, and the first mating part 115 and the second mating part 213 will also be driven, causing the first array unit to be locked into the deepest part of the recess, thereby fixing the first connecting component 10 and the second connecting component 20 relatively in the circumferential direction in a natural state.
[0051] like Figure 9-11 As shown, in one embodiment, the first connecting assembly 10 further includes an unlocking member 13. The elastic assembly 12 and the unlocking member 13 are sequentially arranged along a radial unlocking direction. The unlocking member 13 is mounted on the fixed base 11 and is movable relative to the fixed base 11 to allow the first connecting assembly 10 to have locked and unlocked states. Specifically, the unlocking member 13 slides relative to the fixed base 11. Figure 10-12 As shown, the unlocking component 13 is provided with a clearance portion 131 and a limiting portion 132, and the elastic component 12 has a protrusion 123.
[0052] like Figure 10 As shown, Figure 10 This is a schematic diagram of the first connecting component 10 in the locked state. In the locked state, the limiting part 132 abuts against the protrusion 123, and the limiting part 132 limits the protrusion 123 in the radial unlocking direction, preventing the protrusion 123 from moving in that direction. Therefore, in the locked state, the engaging part 121 of the elastic component 12 cannot slide along the first guide slope 212 or the second guide slope 2111, preventing the first connecting component 10 and the second connecting component 20 from engaging with each other when separated, and preventing the first connecting component 10 and the second connecting component 20 from disengaging when the engaging part 121 engages with the guide engaging groove 211. Furthermore, in the locked state, since the elastic component 12 cannot move in the radial unlocking direction, the first mating part 115 and the second mating part 213 cannot float in the axial direction under the limit of the guide locking groove 211. Therefore, the first mating part 115 and the second mating part 213 cannot rotate relative to each other. That is, in the locked state, the first connecting component 10 and the second connecting component 20 cannot rotate relative to each other when the locking part 121 is engaged with the guide locking groove 211.
[0053] like Figure 11 As shown, Figure 11 This is a schematic diagram of the first connecting component 10 in the locked state. In the unlocked state, the clearance portion 131 and the protrusion portion 123 are positioned opposite each other, allowing the protrusion portion 123 to engage with and disengage from the clearance portion 131, i.e., the protrusion portion 123 can move in the radial unlocking direction. Therefore, in the unlocked state, the engaging portion 121 of the elastic component 12 can slide along the first guide slope 212 or the second guide slope 2111. That is, as mentioned above, the first connecting component 10 and the second connecting component 20 can engage and disengage, and when engaged, they can rotate relative to each other.
[0054] In this embodiment, by setting the unlocking component 13, the unlocking component 13 can control whether the elastic component 12 can move in the radial unlocking direction, thereby controlling whether the first connecting component 10 and the second connecting component 20 can be engaged and disengaged, and controlling whether they can rotate when engaged. When the first connecting component 10 is in the unlocked state, the first connecting component 10 and the second connecting component 20 cannot be engaged and disengaged, and cannot rotate relative to each other. This makes the relative position of the first connecting component 10 and the second connecting component 20 more stable in the natural state, and less likely to move relative to each other in a bumpy environment, or less likely to be accidentally touched and cause relative movement.
[0055] In some embodiments, the unlocking member 13 and the fixed base 11 are slidably connected by an elastic body. Thus, the unlocking member 13 can slide in one sliding direction under the action of an external force, and the elastic body generates an elastic restoring force. When the external force disappears, the unlocking member 13 can slide back to its original position in the opposite direction under the action of the elastic restoring force of the elastic body.
[0056] In some embodiments, the first connecting component 10 is in a locked state under its natural state. Under the action of an external force, the unlocking member 13 slides in a sliding direction, and the first connecting component 10 changes from the locked state to the unlocked state. After the external force disappears, the unlocking member 13 can return from the unlocked state to the locked state. By using an elastic body connected to the unlocking member 13, it is convenient for the user to allow the unlocking member 13 to automatically reset back to the locked state after unlocking the first connecting component 10. For example, when the user needs to rotate the first connecting component 10 that is engaged with the second connecting component 20, the user needs to first press the unlocking member 13 to unlock the first connecting component 10, rotate the first connecting component 10 while keeping the unlocking member 13 pressed, and release the unlocking member 13 after adjusting the angle. The unlocking member 13 can automatically reset, so that the first connecting component 10 and the second connecting component 20 return to the locked state where they cannot rotate relative to each other.
[0057] In one embodiment, such as Figure 10 and Figure 13 As shown, the fixed base 11 is provided with a mounting groove 112. The unlocking member 13 is slidably connected to the mounting groove 112 via an elastic body (not shown), that is, one end of the elastic body is connected to the unlocking member 13, and the other end is connected to the mounting groove 112. The elastic body is preferably a spring. The sliding direction of the unlocking member 13 is perpendicular to the radial unlocking direction, and the clearance part 131 and the limiting part 132 are arranged sequentially along the sliding direction. Figure 12 and Figure 13 As shown, one of the unlocking member 13 and the mounting groove 112 has a limiting protrusion 1121 and the other has a limiting recess 133. The limiting protrusion 1121 is embedded in the limiting recess 133 to limit the unlocking member 13, making the sliding of the unlocking member 13 more stable.
[0058] In some embodiments, such as Figure 10 and Figure 13 As shown, the elastic component 12 includes a slider 124 and an elastic element (not shown). The elastic element is preferably a spring. The fixed base 11 has a groove 113. The slider 124 is slidably connected to the groove 113. The two ends of the elastic element abut against the inner walls of the slider 124 and the groove 113, respectively. One of the inner walls of the groove 113 and the slider 124 has a sliding protrusion 1131, and the other has a sliding recess 1241. The sliding protrusion 1131 is embedded in the sliding recess 1241 to limit the slider 124, making the sliding of the slider 124 more stable.
[0059] In some embodiments, such as Figure 2 As shown, the surface of the slider 124 facing the second connecting assembly 20 is exposed on the mounting base 11, that is, one end of the groove 113 facing the second connecting assembly 20 passes through the mounting base 11. Therefore, there is no need to add an additional structure to the mounting base 11 to cover the slider 124, thus reducing the axial dimension of the mobile device bracket, which is beneficial to reducing the weight and size of the mobile device bracket, making it easier for users to carry.
[0060] In some embodiments, such as Figure 10 As shown, the end of the unlocking member 13 away from the elastic body is exposed outside the fixing base 11, that is, the end of the mounting groove 112 away from the elastic body passes through the fixing base 11. The end of the unlocking member 13 away from the elastic body may extend beyond the side surface of the fixing base 11, or the end of the unlocking member 13 away from the elastic body may be flush with the side surface of the fixing base 11, thereby making it easier for the user to press the unlocking member 13 to unlock.
[0061] In one embodiment, such as Figure 10 As shown, there are two slide grooves 113 and two elastic components 12. The two slide grooves 113 are arranged opposite to each other, and the two elastic components 12 are respectively assembled in different slide grooves 113. That is, the two elastic components 12 are arranged opposite to each other, and the radial unlocking directions of the two elastic components 12 are opposite. The mounting groove 112 is located between the two slide grooves 113 so that the unlocking member 13 is located between the two elastic components 12. The unlocking member 13 has a clearance part 131 and a limiting part 132 at both ends facing the two elastic components 12, so that the sliding of the unlocking member 13 can simultaneously unlock and lock the two elastic components 12.
[0062] In one embodiment, such as Figure 5 As shown, the slider 124 of the elastic component 12 includes a sliding part 1242 and a connecting part 1243. The sliding part 1242 is disposed in the slide groove 113 to slide in cooperation with the slide groove 113. The connecting part 1243 is disposed on the side of the sliding part 1242 facing the second connecting component 20, and one end of the connecting part 1243 is connected to the sliding part 1242, and the other end is connected to the snap-fit part 121.
[0063] Specifically, the latching portion 121 has a third guide slope 1211 and a fourth guide slope 1212. The third guide slope 1211 is disposed close to the second connecting assembly 20 relative to the fourth guide slope 1212. When the latching portion 121 is located outside the guide latching groove 211 and moves toward the guide latching groove 211, the first guide slope 212 can abut against the third guide slope 1211. Thus, the first guide slope 212 and the third guide slope 1211 cooperate to guide the latching portion 121 to the side opening of the guide latching groove 211. When the latching portion 121 is located inside the guide latching groove 211, the second guide slope 2111 abuts against the fourth guide slope 1212. Thus, when it is necessary to contact the latch between the latching portion 121 and the guide latching groove 211, the second guide slope 2111 and the fourth guide slope 1212 cooperate to push the latching portion 121 out of the guide latching groove 211. By providing a third guide slope 1211 and a fourth guide slope 1212 on the snap-fit part 121, the first guide slope 212 and the second guide slope 2111 can more easily guide the snap-fit part 121, making the process of the snap-fit part 121 snapping into and out of the guide snap-fit groove 211 smoother.
[0064] In one embodiment, such as Figure 3 and Figure 5 As shown, the radial cross-sectional shapes of the guide slot 211, the first guide slope 212, and the second guide slope 2111 are all annular, while the radial cross-sectional shapes of the third guide slope 1211 and the fourth guide slope 1212 are both arc-shaped. Therefore, the first connecting component 10 and the second connecting component 20 can be engaged at any angle, eliminating the need for the user to align them for engagement, making it more convenient for the user to engage the first connecting component 10 and the second connecting component 20.
[0065] In one embodiment, the fixing seat 11 has a protrusion 114, and the connecting seat 21 has a groove 214. The protrusion 114 is used to insert into the groove 214. At least a portion of the elastic component 12 is disposed on the protrusion 114. A guide slot 211 is recessed in the side wall of the groove 214, and the side wall of the groove 214 is provided with a first guide slope 212. When the protrusion 114 is inserted into the groove 214, the first guide slope 212 abuts against and slides relative to the third guide slope 1211. Therefore, when the first connecting component 10 and the second connecting component 20 approach each other, the protrusion 114 is inserted into the groove 214, and the first guide slope 212 abuts against and slides relative to the third guide slope 1211. This allows the locking part 121 to overcome the elastic restoring force of the elastic component 12 and slide in the radial unlocking direction, so that the protrusion 114 and the groove 214 can fit tightly. When the locking part 121 slides along the first guide slope 212 to the outside of the guide locking groove 211, the abutting force of the first guide slope 212 of the groove 214 on the locking part 121 disappears instantly. The locking part 121 can slide in the opposite direction of the radial unlocking direction under the elastic force of the elastic component 12 to lock into the guide locking groove 211. Thus, the first connecting component 10 and the second connecting component 20 can be quickly assembled. Simply bring the first connecting component 10 and the second connecting component 20 close to each other and insert the protrusion 114 into the groove 214 to lock the mobile device bracket, making user operation easier and more accurate.
[0066] The above examples illustrate this application only to aid understanding and are not intended to limit its scope. Those skilled in the art to which this application pertains can make various simple deductions, modifications, or substitutions based on the ideas presented.
Claims
1. A mobile device holder, characterized by, include: A first connecting component, the first connecting component including a slidingly connected fixed base and an elastic component; A second connection component, the second connection component including a connector, wherein one of the fixing base and the connector is used to connect to the mobile device end, and the other is used to connect to the carrier end; The connecting seat has a guide slot and a first guide ramp located outside the guide slot, and the elastic component has a snap-fit portion; when the snap-fit portion snaps into the guide slot, the first connecting component and the second connecting component are axially fixed relative to each other; the guide slot has a second guide ramp near the inner wall of the first guide ramp, the first guide ramp is used to guide the snap-fit portion towards the guide slot in the axial direction, and the second guide ramp is used to guide the snap-fit portion away from the guide slot in the axial direction. The first guide ramp and the second guide ramp also guide the elastic component to move radially toward the radial unlocking direction of the elastic component, so that the elastic component generates an elastic restoring force for reset; The fixed seat has a first mating part, and the connecting seat has a second mating part. When the snap-fit part is engaged with the guide snap-fit groove, the first mating part and the second mating part engage and abut along the axial direction, so that the fixed seat and the connecting seat are fixed to each other in the circumferential direction in their natural state. The first mating part and the second mating part can engage and abut at multiple angles. The fixed seat and the connecting seat can rotate relative to each other under the action of external force, so that the first mating part and the second mating part engage and abut at different angles.
2. The mobile device holder of claim 1, wherein, The first mating part is a first annular array structure or an arc array structure. The first annular array structure or the arc array structure includes a plurality of first array units, which are arranged sequentially along the circumference. The second mating part is a second annular array structure, which includes a plurality of second array units arranged sequentially along the circumferential direction; a recess is formed between adjacent second array units, and the first array unit is used to be embedded in the recess along the axial direction, and the recess is used to limit the first array unit in the circumferential direction.
3. The mobile device holder of claim 1, wherein, The first mating part is an arc-shaped or annular first rack structure, and the second mating part is an annular second rack structure.
4. The mobile device holder of any of claims 1-3, wherein, The first connecting component further includes an unlocking member. The elastic component and the unlocking member are arranged sequentially along the radial unlocking direction. The unlocking member is movable relative to the fixed base to allow the first connecting component to have a locked state and an unlocked state. The unlocking member is provided with a clearance portion and a limiting portion. The elastic component has a protrusion portion. In the locked state, the limiting portion abuts against the protrusion portion to limit the protrusion portion in the radial unlocking direction. In the unlocked state, the clearance portion is arranged opposite to the protrusion portion to allow the protrusion portion to be inserted into and disengaged from the clearance portion.
5. The mobile device holder of claim 4, wherein, The mounting base is provided with a mounting groove, and the unlocking component is slidably connected to the mounting groove through an elastic body, and the sliding direction of the unlocking component is perpendicular to the radial unlocking direction; one of the unlocking component and the mounting groove has a limiting protrusion and the other has a limiting recess, and the limiting protrusion is embedded in the limiting recess to limit the unlocking component.
6. The mobile device holder of any one of claims 1-3, wherein, The snap-fit portion has a third guide slope and a fourth guide slope; the third guide slope is disposed close to the second connecting component relative to the fourth guide slope; when the snap-fit portion is located outside the guide snap-fit groove, the first guide slope can abut against the third guide slope, and when the snap-fit portion is located inside the guide snap-fit groove, the second guide slope abuts against the fourth guide slope.
7. The mobile device holder of any of claims 1-3, wherein, The fixing seat has a protrusion, the connecting seat has a groove, the protrusion is used to insert into the groove, at least a portion of the elastic component is disposed on the protrusion, and the guide snap groove is recessed on the side wall of the groove.
8. The mobile device holder of any one of claims 1-3, wherein, The elastic component includes a slider and an elastic element. The fixed base has a groove. The slider is slidably connected to the groove. Both ends of the elastic element abut against the inner wall of the slider and the inner wall of the groove, respectively. The inner wall of the groove and the slider have a sliding protrusion and a sliding recess, respectively. The sliding protrusion is embedded in the sliding recess to limit the slider.
9. The mobile device holder of claim 8, wherein, The surface of the slider facing the second connecting component is exposed on the mounting base.
10. The mobile device holder of claim 4, wherein, The number of elastic components is two, the radial unlocking directions of the elastic components are opposite, the unlocking member is located between the two elastic components, and the unlocking member is provided with the clearance part and the limiting part at both ends facing the two elastic components.