Selfie stick clamping structure for riding
Through the coordination of the tooth-shaped rotary positioning structure and elastic parts, the problem of cumbersome operation of the self-pick rod clamping structure during riding is solved, and the self-pick rod is quickly adjusted and fixed, simplifying the operation process.
Patent Information
- Application Number
- CN202422190207.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-06
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-09-06
AI Technical Summary
The existing selfie stick clamping structure requires the removal of fasteners to adjust the clamping position during riding. The operation is complicated and the tools are required to be carried, resulting in inconvenience.
The first rotary connector and the second rotary connector are connected by a tooth-shaped rotary positioning structure, and the knob screw sleeve and the elastic member are used to achieve rapid rotational positioning. The ring gear is disengaged and rotated to a preset position and locked after being locked, so as to achieve rapid adjustment of the self-portrait rod.
There is no need to disassemble parts and carry tools, and the combination of the knob screw sleeve and elastic parts can achieve quick adjustment and fixation of the self-portrait rod, making it easy to operate.
Smart Images

Figure CN223153187U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of selfie sticks, in particular to a clamping structure of a selfie stick for cycling. Background Art
[0002] As a photography auxiliary tool, one of the core functions of a selfie stick is to stably fix a mobile phone, so as to realize remote control and shooting of the mobile phone. During a cycling journey, one end of the support rod of the selfie stick is usually fixed to the mobile phone, and the other end is fixed to the handlebar of the bicycle. The angle adjustment of the selfie stick is generally achieved by changing the clamping angle of the selfie stick. However, for the common clamping structures of selfie sticks on the market, if the position of the selfie stick needs to be adjusted and the clamping angle is changed, the fastening piece needs to be disassembled first, the clamping position of the selfie stick is adjusted and then fixed back. This is very troublesome, time-consuming and requires carrying disassembly and installation tools with you, and the operation is inconvenient. Content of the Utility Model
[0003] In view of this, a clamping structure of a selfie stick for cycling that can achieve rapid rotation positioning and is convenient to operate is provided.
[0004] A clamping structure of a selfie stick for cycling, which is fixed on the handlebar and used to clamp the selfie stick, includes a first rotating connector, a second rotating connector, a first locking member, a second locking member, an elastic member and a knob nut. The first rotating connector and the first locking member are connected to form a first clamping position, the second rotating connector and the second locking member are connected to form a second clamping position. The first rotating connector and the second rotating connector are rotationally connected and positioned through a toothed rotation positioning structure. The toothed rotation positioning structure has a first tooth ring and a second tooth ring. The first rotating connector is provided with the first tooth ring, and the second rotating connector is provided with the second tooth ring. The first rotating connector is elastically connected to the second rotating connector through the knob nut and the elastic member. The elastic member is assembled in the knob nut so that when the knob nut is loosened, the first rotating connector can be separated from the second rotating connector under the elastic action and rotate relatively, so as to drive the first clamping position to rotate relative to the second clamping position.
[0005] Further, the second tooth ring is located between the first tooth ring and the knob nut. One end of the elastic member abuts against the first tooth ring, and the other end abuts against the second tooth ring or the knob nut. The knob nut is used to lock the first tooth ring and the second tooth ring after rotation positioning.
[0006] Furthermore, when the knob nut is locked, the elastic member is in a compressed state. When the knob nut is loosened, under the elastic reset action of the elastic member, the first tooth ring and the second tooth ring are loosened to have a moving gap, and the first tooth ring can rotate relative to the second tooth ring.
[0007] Furthermore, the first gear ring and the second gear ring are concentric, have the same diameter, the same number of teeth, and equal tooth pitches, and can mesh with each other. When the knob screw sleeve is locked, the tooth tip of the first gear ring can be stuck at the tooth bottom between the two tooth tips of the second gear ring to achieve positioning.
[0008] Further, both the first rotating connector and the second rotating connector are semi-circular or partially arc-shaped, and the first locking member and the second locking member respectively have the other half arc that fits with the semi-circular arc to form the first clamping position and the second clamping position.
[0009] Furthermore, the self-timer rod clamping structure for cycling further includes a first anti-slip sleeve and a second anti-slip sleeve. The first anti-slip sleeve is located within the first clamping position for clamping the self-timer rod, and the second anti-slip sleeve is located within the second clamping position for fixing to the vehicle handlebar.
[0010] Furthermore, the first rotating connector and the first locking member, and the second rotating connector and the second locking member are both connected by fasteners to adjust the sizes of the first clamping position and the second clamping position to fit the first anti-slip sleeve and the second anti-slip sleeve.
[0011] Furthermore, during the rotation process, the first clamping position rotates, the second clamping position remains stationary, and the first clamping position and the second clamping position always maintain a skew orthogonal shape so that the self-timer rod is perpendicular to the vehicle handlebar.
[0012] Further, both the first gear ring and the second gear ring have internal grooves. One end of the elastic member abuts against the internal groove of the first gear ring, and the other end abuts against the internal groove of the second gear ring. The internal groove of the first gear ring or the internal groove of the second gear ring is provided with a thread for cooperation with the knob screw sleeve, or the other end away from the knob screw sleeve is cooperated with the knob screw sleeve through a bolt.
[0013] Furthermore, both the first anti-slip sleeve and the second anti-slip sleeve are soft rubber anti-slip sleeves.
[0014] Compared with the prior art, the present utility model has at least the following beneficial effects:
[0015] The first rotating connector of the self-timer stick clamping structure for cycling is elastically connected to the second rotating connector through a knob sleeve and an elastic member. After loosening the knob sleeve, under the elastic force of the elastic member, the first gear ring disengages from the second gear ring. At this time, the first clamping position can rotate relative to the second clamping position. When the self-timer stick clamped by the first clamping position rotates to a preset position, lock the knob sleeve. At this time, the first gear ring and the second gear ring engage and do not move, and the position of the self-timer stick is fixed at the preset position. Compared with the traditional self-timer stick clamping structure, there is no need to disassemble parts, no need to carry assembly and disassembly tools with you. Just loosen and lock the knob sleeve, and under the action of the elastic force and the tooth-shaped rotation positioning structure, the adjustment and fastening of the self-timer stick clamping structure can be realized, and the operation is convenient. Brief Description of the Drawings
[0016] Figure 1 is a three-dimensional schematic diagram of a self-timer stick clamping structure for cycling according to an embodiment of the present invention.
[0017] Figure 2 is an exploded schematic diagram of a self-timer stick clamping structure for cycling according to an embodiment of the present invention.
[0018] Figure 3 is an exploded schematic diagram of a self-timer stick clamping structure for cycling from another angle according to an embodiment of the present invention.
[0019] In the figure,
[0020] 1. First rotating connector; 11. First gear ring; 2. Second rotating connector; 21. Second gear ring; 3. First locking member; 4. Second locking member; 5. Elastic member; 6. Knob sleeve; 61. Torsion part; 7. First clamping position; 71. First anti-slip sleeve; 8. Second clamping position; 81. Second anti-slip sleeve. Detailed Description of the Embodiment
[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments; based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present invention.
[0022] Please refer to Figures 1 to 3, showing a self-timer rod clamping structure provided by an embodiment of the present utility model, which is fixed to a handlebar and used to clamp a self-timer rod. It includes a first rotating connector 1, a second rotating connector 2, a first locking member 3, a second locking member 4, an elastic member 5 and a knob sleeve 6. The first rotating connector 1 and the first locking member 3 are connected to form a first clamping position 7, and the second rotating connector 2 and the second locking member 4 are connected to form a second clamping position 8. The first rotating connector 1 and the second rotating connector 2 are rotationally connected and positioned through a toothed rotation positioning structure. The toothed rotation positioning structure has a first toothed ring 11 and a second toothed ring 21. The first rotating connector 1 is provided with the first toothed ring 11, and the second rotating connector 2 is provided with the second toothed ring 21. The first rotating connector 1 is elastically connected to the second rotating connector 2 through the knob sleeve 6 and the elastic member 5. When the elastic member 5 is assembled in the knob sleeve 6 and the knob sleeve 6 is loosened, the first rotating connector 1 can be separated from the second rotating connector 2 under the elastic action and can rotate relatively, so as to drive the first clamping position 7 to rotate relative to the second clamping position 8.
[0023] Specifically, the second toothed ring 21 is located between the first toothed ring 11 and the knob sleeve 6. One end of the elastic member 5 abuts against the first toothed ring 11, and the other end abuts against the second toothed ring 21 or the knob sleeve 6. The knob sleeve 6 is used to lock the first toothed ring 11 and the second toothed ring 21 after rotational positioning.
[0024] More specifically, when the knob sleeve 6 is locked, the elastic member 5 is in a compressed state. When the knob sleeve 6 is loosened, under the elastic reset action of the elastic member 5, a movable gap appears after the first toothed ring 11 and the second toothed ring 21 are loosened, and the first toothed ring 11 can rotate relative to the second toothed ring 21.
[0025] In some specific embodiments, the elastic member 5 is preferably a compression spring. One end of the compression spring abuts against the inner groove of the first toothed ring 11, and the other end abuts against the inner groove of the second toothed ring 21. When the knob sleeve 6 is locked, the compression spring is in a compressed state. When the knob sleeve 6 is loosened, under the action of elastic reset, the compression spring squeezes the inner groove of the first toothed ring 11 and the inner groove of the second toothed ring 21, so that the first toothed ring 11 and the second toothed ring 21 move away from each other, thereby separating the originally engaged first toothed ring 11 and the second toothed ring 21. The inner groove of the first toothed ring 11 or the inner groove of the second toothed ring 21 is provided with a thread to cooperate with the knob sleeve 6, or the other end away from the knob sleeve 6 is cooperated with the knob sleeve 6 through a bolt.
[0026] More specifically, the first gear ring 11 and the second gear ring 21 are concentric, have the same diameter, the same number of teeth, and equal tooth pitches, and can mesh with each other. When the knob screw sleeve 6 is locked, the tooth tip of the first gear ring 11 can be stuck at the tooth bottom between the two tooth tips of the second gear ring 21 to achieve positioning.
[0027] Specifically, the first rotating connector 1 and the second rotating connector 2 are both semi-circular or partially arc-shaped, and the first locking member 3 and the second locking member 4 respectively have the other semi-circular shape that fits around the semi-circular shape to form the first clamping position 7 and the second clamping position 8. More specifically, the first clamping position 7 and the second clamping position 8 respectively refer to the cylindrical hole positions formed by the semi-circular shape of the first rotating connector 1 and the semi-circular shape of the first locking member 3, and the semi-circular shape of the second rotating connector 2 and the semi-circular shape of the second locking member 4, which are respectively used to install the first anti-slip sleeve 71 and the second anti-slip sleeve 81.
[0028] More specifically, the self-timer rod clamping structure for cycling further includes a first anti-slip sleeve 71 and a second anti-slip sleeve 81. The first anti-slip sleeve 71 is located within the first clamping position 7 for clamping the self-timer rod, and the second anti-slip sleeve 8 is located within the second clamping position 81 for fixing to the vehicle handlebar.
[0029] More specifically, the first rotating connector 1 and the first locking member 3, and the second rotating connector 2 and the second locking member 4 are respectively connected by fasteners to adjust the sizes of the first clamping position 7 and the second clamping position 8 to fit the first anti-slip sleeve 71 and the second anti-slip sleeve 81.
[0030] More specifically, during the rotation process, the first clamping position 7 rotates, the second clamping position 8 remains stationary, and the first clamping position 7 and the second clamping position 8 always maintain a skew orthogonal shape so that the self-timer rod is perpendicular to the vehicle handlebar. For example, the axis of the second clamping position 8 is parallel to the axis of the knob screw sleeve 6, while the axis of the first clamping position 7 is skew orthogonal to the axis of the knob screw sleeve 6. The first clamping position 7 and the second clamping position 8 are respectively located on both sides of the axis of the knob screw sleeve 6. When the mobile phone is transferred to a clamping position through a bracket, through this structure method of positive staggered positions and relative rotation at the same time, the user can rotate and adjust the elevation angle of the mobile phone or the mobile phone bracket relative to the face relative to his own perspective.
[0031] Specifically, both the first gear ring 11 and the second gear ring 21 have internal grooves, and one end of the elastic member 5 abuts against the internal groove of the first gear ring 11, and the other end abuts against the internal groove of the second gear ring 21.
[0032] More specifically, the knob screw sleeve 6 includes a torsion part 61 for locking or loosening the knob screw sleeve 6, and at least one finger joint can be placed on the torsion part 61 to facilitate torsion.
[0033] More specifically, both the first anti-slip sleeve 71 and the second anti-slip sleeve 81 are soft rubber anti-slip sleeves.
[0034] In summary, the first rotating connector 1 of this self-timer rod clamping structure for cycling is elastically connected to the second rotating connector 2 through the knob screw sleeve 6 and the elastic member 5. After loosening the knob screw sleeve 6, under the elastic force of the elastic member 5, the first gear ring 11 is disengaged from the second gear ring 21. At this time, the first clamping position 7 can rotate relative to the second clamping position 8. When the self-timer rod clamped by the first clamping position 7 rotates to a preset position, the knob screw sleeve 6 is locked. At this time, the first gear ring 11 and the second gear ring 21 are engaged and stationary, and the position of the self-timer rod is fixed at the preset position. Compared with the traditional self-timer rod clamping structure, there is no need to disassemble parts and no need to carry assembly and disassembly tools with you. Just loosen and lock the knob screw sleeve 6, and under the action of the elastic force and the tooth-shaped rotation positioning structure, the adjustment and fastening of the self-timer rod clamping structure can be realized, and the operation is convenient.
[0035] It should be noted that the present invention is not limited to the above embodiments. According to the creative spirit of the present invention, those skilled in the art can also make other changes, and these changes made according to the creative spirit of the present invention should be included in the scope of protection required by the present invention.
Claims
1. A self-timer rod clamping structure for cycling, which is fixed to the handlebar and used to clamp the self-timer rod, and is characterized in that, The invention comprises a first rotating connector, a second rotating connector, a first locking member, a second locking member, an elastic member and a knob nut. The first rotating connector is connected to the first locking member to form a first clamping position, the second rotating connector is connected to the second locking member to form a second clamping position, the first rotating connector and the second rotating connector are rotationally connected and positioned by a toothed rotating positioning structure, the toothed rotating positioning structure has a first gear ring and a second gear ring, the first rotating connector is provided with the first gear ring, the second rotating connector is provided with the second gear ring, the first rotating connector is elastically connected to the second rotating connector through the knob nut and the elastic member, the elastic member is assembled on the knob nut so that when the knob nut is loosened, the first rotating connector can be disengaged from the second rotating connector under the elastic action and rotate relative to each other, so as to drive the first clamping position to rotate relative to the second clamping position.
2. The clamping structure of a selfie stick for cycling according to claim 1, wherein, The second gear ring is located between the first gear ring and the knob nut, one end of the elastic member abuts against the first gear ring, and the other end abuts against the second gear ring or the knob nut, and the knob nut is used to lock the first gear ring and the second gear ring after rotation and positioning.
3. The clamping structure of the selfie stick for riding according to claim 2, characterized in that, When the knob nut is locked, the elastic member is in a compressed state. When the knob nut is loosened, under the elastic restoring action of the elastic member, the first gear ring and the second gear ring are loosened to form an active gap, and the first gear ring can rotate relative to the second gear ring.
4. The self-timer rod clamping structure for riding according to claim 1, characterized in that The first gear ring and the second gear ring are concentric, have the same diameter, the same number of teeth, and the same tooth pitch, and can mesh with each other. When the knob nut is locked, the tooth tip of the first gear ring can be stuck at the tooth bottom between the two tooth tips of the second gear ring and cannot move, thereby achieving positioning.
5. The self-timer rod clamping structure for cycling according to claim 1, characterized in that, The first rotating connecting member and the second rotating connecting member are both semi-arc-shaped or partially arc-shaped, and the first locking member and the second locking member correspondingly have another half arc-shaped that embraces the semi-arc to form the first clamping position and the second clamping position.
6. The clamping structure of a selfie stick for cycling according to claim 1, characterized in that, The selfie stick clamping structure for cycling also includes a first anti-slip cover and a second anti-slip cover. The first anti-slip cover is located in the first clamping position and is used to clamp the selfie stick. The second anti-slip cover is located in the second clamping position and is used to be fixed to the handlebar.
7. The clamping structure of a selfie stick for cycling according to claim 6, characterized in that, The first rotating connector and the first locking member, as well as the second rotating connector and the second locking member, are connected via fasteners to adjust the sizes of the first clamping position and the second clamping position to fit the first anti-slip sleeve and the second anti-slip sleeve.
8. The clamping structure of a selfie stick for cycling according to claim 6, characterized in that, During the rotation process, the first clamping position rotates and the second clamping position is fixed, and the first clamping position and the second clamping position always maintain an orthogonal state in different planes, so that the selfie stick is perpendicular to the handlebar.
9. The clamping structure of the selfie stick for cycling according to claim 1, characterized in that, Both the first gear ring and the second gear ring have internal grooves. One end of the elastic member abuts against the internal groove of the first gear ring, and the other end abuts against the internal groove of the second gear ring; a thread is provided in the internal groove of the first gear ring or the internal groove of the second gear ring to cooperate with the knob screw sleeve, or the other end away from the knob screw sleeve is cooperated with the knob screw sleeve through a bolt.
10. The clamping structure of a selfie stick for cycling according to claim 6, characterized in that, Both the first anti-slip sleeve and the second anti-slip sleeve are soft rubber anti-slip sleeves.