Supporting bipod capable of being adjusted in multiple dimensions
By using a multi-dimensional adjustable tripod, combined with the swing design of the repeater and support legs, the problem of low adjustment freedom and insufficient stability of existing tripods is solved, enabling flexible angle and height adjustments and improving shooting stability and ease of operation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-06
- Publication Date
- 2026-03-03
AI Technical Summary
Existing bipods have low adjustment freedom, complex structure, and insufficient stability, which affects the photographer's flexibility and shooting results in different shooting environments.
A multi-dimensional adjustable support bipod was designed. By swinging the repeater seat up and down and the outrigger seats back and forth, combined with the first and second gear adjustment structures, the height and angle can be flexibly adjusted, thus enhancing stability.
It improves the adjustability and stability of the tripod, adapts to various shooting environments and terrains, and ensures the safety and ease of operation of the equipment.
Smart Images

Figure CN223965200U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of photographic equipment technology, and in particular to a multi-dimensional adjustable support tripod. Background Technology
[0002] As an important piece of photographic equipment, the tripod is widely used in various shooting situations, especially in supine and kneeling positions, providing photographers with stable support and thus improving image sharpness and quality. However, existing tripods have some significant shortcomings in design and structure, affecting their performance in practical use.
[0003] First, conventional bipods offer limited adjustment freedom, typically allowing only adjustments within a limited range of height and angle. This design restricts the photographer's flexibility in different shooting environments, especially when quick adjustments to shooting angle or height are needed, failing to meet the photographer's immediate needs. For example, when shooting natural landscapes or dynamic scenes, rapidly changing shooting positions and angles is crucial for capturing the best shot, and the adjustment methods of traditional bipods often appear cumbersome and inefficient.
[0004] Secondly, existing bipod adjustment mechanisms are typically quite complex, involving the interplay of multiple components. This not only makes bipod assembly and adjustment time-consuming and labor-intensive but also increases the overall failure rate. In outdoor environments, the complex adjustment mechanism may experience a decline in performance due to dust or moisture, thus affecting the shooting process.
[0005] Furthermore, many traditional bipods suffer from instability, especially when used on uneven ground, where they are prone to tilting or slipping, leading to accidental drops and damage to the camera. To ensure a successful shot, photographers have to spend extra time finding a level shooting location, increasing the difficulty and inconvenience of the shoot.
[0006] Therefore, it is necessary to further improve and perfect the existing technology to overcome these shortcomings, and this utility model is made based on this situation. Utility Model Content
[0007] The purpose of this invention is to overcome the shortcomings of the existing technology and provide a highly flexible and conveniently adjustable multi-dimensional adjustable support tripod.
[0008] This utility model is achieved through the following technical solution:
[0009] To solve the above-mentioned technical problems, this utility model provides a multi-dimensional adjustable support tripod, including a support base, a gimbal on the top of the support base, and repeater bases that can swing up and down respectively movably connected to the left and right sides of the support base. Support legs that can swing back and forth are movably connected to the repeater bases, and support leg assemblies are provided on the support leg bases. A first-level adjustment structure is provided between the repeater base and the support base, and a second-level adjustment structure is provided between the support leg bases and the repeater base.
[0010] To further address the technical problems addressed by this utility model, a multi-dimensional adjustable support bipod is provided. The first gear adjustment structure includes a wing plate disposed on the side of the support base. The upper end of the relay base is rotatably connected to the upper part of the wing plate. The lower part of the wing plate is provided with multiple gear holes, the sides of which are interconnected. A first locking pin is slidably connected to the relay base. The first locking pin includes a first button, a first connecting rod connected to the first button, and a first wedge-shaped portion disposed at the other end of the first connecting rod that can be sequentially inserted into and locked in the corresponding gear holes. The diameter of the first wedge-shaped portion gradually increases towards its free end. A first elastic reset member is provided between the first button and the relay base to elastically press the first button outwards, thereby locking the first wedge-shaped portion in the gear hole.
[0011] To further address the technical problems to be solved by this utility model, this utility model provides a multi-dimensional adjustable support bipod in which the sides of each stop hole are interconnected to form an arc-shaped channel for the movement of the first connecting rod.
[0012] To further address the technical problems to be solved by this utility model, this utility model provides a multi-dimensional adjustable support bracket in which the diameter of the stop hole is greater than the width of the arc-shaped channel.
[0013] In order to further solve the technical problem to be solved by this utility model, this utility model provides a multi-dimensional adjustable support bipod in which the wing plate is arranged in the left-right direction and the stop hole is a through hole in the front-back direction.
[0014] In order to further solve the technical problem to be solved by this utility model, the present utility model provides a multi-dimensional adjustable support bracket in which the first wedge-shaped part and the first button are respectively arranged on both sides of the corresponding gear hole.
[0015] To further address the technical problems addressed by this utility model, a multi-dimensional adjustable support bipod is provided. The second gear adjustment structure includes multiple gear slots on a relay seat and a second locking pin slidably connected to a leg seat. The leg seat is rotatably connected to the relay seat. The second locking pin includes a second button, a second connecting rod on the second button, and a lock head at the other end of the second connecting rod. The lock head has a second wedge-shaped portion that can be sequentially inserted into and locked in the corresponding gear slots. A second elastic reset member is provided between the second button and the leg seat to elastically press the second button outwards, causing the second wedge-shaped portion to lock in the corresponding gear slot.
[0016] In order to further solve the technical problems to be solved by this utility model, this utility model provides a multi-dimensional adjustable support bipod in which the lower end of the relay seat is provided with a semi-circular disk, and the lower ends of each of the gear slots are open and spaced apart at the lower edge of the semi-circular disk.
[0017] In order to further solve the technical problem to be solved by this utility model, this utility model provides a multi-dimensional adjustable support bracket in which the stop groove is arranged in the left and right direction and the opening faces the center line of the support seat.
[0018] In order to further solve the technical problem to be solved by this utility model, the present utility model provides a multi-dimensional adjustable support bipod in which the second wedge-shaped part and the second button are respectively arranged on both sides of the semi-circular disk.
[0019] Compared with the prior art, the present invention has the following advantages:
[0020] This utility model features a multi-dimensional adjustment design that combines the vertical swing of the repeater base with the forward and backward swing of the outrigger base, enabling flexible angle and height adjustments through a first- and second-position adjustment structure. This design not only improves the tripod's adjustment freedom, allowing it to adapt to various shooting environments and terrains, but also significantly enhances the stability and safety of the support, thus ensuring that users can conveniently and reliably conduct photography or videography activities. Attached Figure Description
[0021] The specific embodiments of this utility model will be further described in detail below with reference to the accompanying drawings, wherein:
[0022] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;
[0023] Figure 2 This is an exploded view of the present invention;
[0024] Figure 3 This is a three-dimensional structural diagram of the support base;
[0025] Figure 4 This is a cross-sectional view of the first locking pin;
[0026] Figure 5 This is a three-dimensional structural diagram of the repeater.
[0027] Figure 6 This is a cross-sectional view of the second locking pin. Detailed Implementation
[0028] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0029] like Figures 1 to 6 The diagram shows a multi-dimensional adjustable tripod, including a support base 1. A gimbal 2 is mounted on top of the support base 1. The gimbal 2 and the support base 1 are typically connected by a ball bearing and equipped with a ball joint lock. A quick-release plate or camera can be attached to the gimbal 2.
[0030] The unique feature of this bipod is its multi-dimensional adjustability. A repeater seat 3 is movably connected to the left and right sides of the support base 1. A leg seat 4 is movably connected to the repeater seat 3, and a leg assembly 5 is provided on the leg seat 4. The leg assembly 5 is typically telescopically adjustable. A first-position adjustment structure is provided between the repeater seat 3 and the support base 1, and a second-position adjustment structure is provided between the leg seat 4 and the repeater seat 3.
[0031] Specifically, relay seats 3 are movably connected to the left and right sides of the support base 1, and these relay seats 3 can swing up and down. The upper end of the relay seat 3 is connected to the side of the support base 1 through a first-position adjustment structure, allowing the relay seat to stop at multiple height positions, thereby adjusting the unfolding angle of the two sides. Generally speaking, increasing the unfolding angle can improve the overall stability and adapt to the needs of different terrains or environments.
[0032] Meanwhile, the second-position adjustment mechanism between the repeater base 3 and the outrigger base 4 allows the outrigger base 4 to swing back and forth. This design allows users to flexibly adjust the fore-and-aft position of the outrigger according to ground conditions or shooting needs, further enhancing the stability and safety of the support.
[0033] Therefore, this utility model's tripod has multi-dimensional adjustment capabilities, enabling flexibility to meet different shooting environments and user needs. Specifically, its design includes the up-and-down swing function of the side relay seats and a first-position adjustment structure, which allows for adjustment of the left and right opening angle. Users can easily adjust the tripod's unfolding angle according to specific shooting scenarios, making the tripod more adaptable to different terrains and improving the stability of the shooting equipment. Furthermore, the forward-and-backward swing design of the leg seats, combined with the second-position adjustment structure, allows users to adjust the legs forward and backward as needed. This feature further enhances the tripod's flexibility, enabling it to maintain ideal support under various conditions. Whether on uneven ground or slopes, users can quickly adjust the position of the legs with simple operations, ensuring the safety of the equipment.
[0034] First gear adjustment mechanism:
[0035] Furthermore, the first gear adjustment structure includes a wing plate 11 disposed on the side of the support base 1, the main function of which is to provide a stable connection point for the repeater base 3. The upper end of the repeater base 3 is rotatably connected to the upper part of the wing plate 11 via a pivot, so that the repeater base can swing freely up and down when needed, thereby achieving the required adjustment angle.
[0036] Multiple locking holes 111 are designed on the lower part of the wing plate 11. Users can select the appropriate height and angle to lock according to specific needs, so as to adapt to different shooting environments and scenes.
[0037] Meanwhile, a first locking pin 6 is slidably connected to the repeater base 3. The first locking pin 6 includes a first button 61, a first connecting rod 62 connected to the first button 61, and a first wedge-shaped portion 63 located at the other end of the first connecting rod 62. Most importantly, the first wedge-shaped portion 63 can be sequentially inserted into each of the position holes 111 and securely locked in the corresponding holes, ensuring the stability of the repeater base during use.
[0038] The first wedge-shaped portion 63 is preferably a tapered column with a taper of A. The diameter of the first wedge-shaped portion 63 gradually increases towards the free end. This shape ensures that the column can be firmly locked in the selected gear hole 111, avoiding the risk of loosening or falling off due to improper operation during use. In addition, to enhance the reliability of locking, a first elastic reset member 64 (such as a spring) is provided between the first button 61 and the relay seat 3. This elastic member automatically applies pressure outward to ensure that the first wedge-shaped portion 63 is firmly locked in the gear hole 111.
[0039] When the first button 61 is pressed, it overcomes the elastic force of the first elastic reset member 64 (such as a spring) and causes the first wedge-shaped part 63 to gradually disengage from the corresponding gear hole 111, thereby unlocking the relay seat.
[0040] Furthermore, the sides of each gear position hole 111 are interconnected, forming a continuous channel, namely an arc-shaped channel 112, which facilitates the movement of the first connecting rod 62 between the gear position holes 111. This design not only simplifies the adjustment operation but also improves the flexibility and response speed of the entire adjustment structure.
[0041] The diameter of the gear hole 111 is larger than the width of the arc channel 112. This structural configuration ensures that the first link 62 can slide freely in the arc channel 112 and each gear hole 111 without being obstructed during the adjustment process.
[0042] In addition, the wing plate 11 is arranged in the left-right direction, while the gear hole 111 is a through hole in the front-back direction. It is worth noting that the first wedge-shaped part 63 and the first button 61 are respectively arranged on both sides of the corresponding gear hole 111. This arrangement ensures the adjustment of the left-right opening angle.
[0043] In summary, the first-gear adjustment structure not only enables adjustment of the unfolding angle in the left and right directions, but also offers convenient adjustment and a simple structure.
[0044] Second gear adjustment mechanism
[0045] The second gear adjustment structure enables flexible adjustment of the forward and backward swing angle of the support leg assembly 5 to adapt to different usage scenarios. This structure consists of multiple gear slots 31 provided on the relay base 3, which allow the user to quickly lock the desired swing angle.
[0046] Specifically, the second gear adjustment structure also includes a second locking pin 7 slidably connected to the support leg 4. The support leg 4 is connected to the relay seat 3 by a rotatable connection, with the rotation axis in the left-right direction. This structural design ensures that the support leg can swing freely back and forth when needed, increasing the overall flexibility and stability. The second locking pin 7 consists of a second button 71, a second connecting rod 72 provided on the second button 71, and a locking head 73 located at the end of the second connecting rod 72. The locking head 73 has a second wedge-shaped portion 74 that can be inserted into and locked into the corresponding gear slot 31. The second wedge-shaped portion 74 is preferably a semi-conical truncated cone provided on the top of the locking head 73, with a taper of B.
[0047] The shape design of the second wedge-shaped portion 74 ensures stability when inserted into the gear position slot, allowing it to be firmly locked in the selected position. At the same time, a second elastic reset member 75 (e.g., a spring) is provided between the second button 71 and the support leg 4. This elastic member can automatically apply pressure outward, thereby ensuring that the second wedge-shaped portion 74 is firmly locked in the corresponding gear position slot 31, preventing accidental loosening due to vibration or external force during use.
[0048] When unlocking is required, press the second button 71 to disengage the second wedge 74 from the corresponding gear slot 31.
[0049] To further enhance the reliability of this structure, a semi-circular disk 32 is provided at the lower end of the relay base 3. The design of the semi-circular disk provides the basis for the entire gear adjustment. The lower ends of each gear slot 31 are open and are spaced apart at the lower edge of the semi-circular disk 32. It is worth noting that the gear slots 31 are arranged in the left-right direction, and the openings face the centerline of the support base 1. This arrangement allows the user to adjust within an easily accessible range, enabling the support leg assembly 5 to swing back and forth at an upward angle, improving ease of use. Of course, the second wedge-shaped portion 74 and the second button 71 are located on both sides of the semi-circular disk 32, respectively.
[0050] In summary, the second-position adjustment structure provides efficient adjustment capability for the forward and backward swing angle of the outrigger assembly 5, ensuring safety and stability in various shooting environments and providing users with an extremely convenient operating experience.
Claims
1. A multi-dimensional adjustable support tripod, characterized in that: Includes a support base (1), the top of which is provided with a gimbal (2), and the left and right sides of the support base (1) are respectively movably connected to a repeater base (3) that can swing up and down, and the repeater base (3) is movably connected to a support leg base (4) that can swing back and forth, and the support leg base (4) is provided with a support leg assembly (5); a first gear adjustment structure is provided between the repeater base (3) and the support base (1), and a second gear adjustment structure is provided between the support leg base (4) and the repeater base (3).
2. The multi-dimensional adjustable support bipod according to claim 1, characterized in that: The first gear adjustment structure includes a wing plate (11) disposed on the side of the support base (1). The upper end of the relay base (3) is rotatably connected to the upper part of the wing plate (11). The lower part of the wing plate (11) is provided with a plurality of gear holes (111), and the sides of each gear hole (111) are interconnected. A first locking pin (6) is slidably connected to the relay base (3). The first locking pin (6) includes a first button (61) and a first connecting rod (6) connected to the first button (61). 2) and a first wedge-shaped part (63) provided at the other end of the first connecting rod (62) and capable of being inserted into the gear hole (111) and locked in the corresponding gear hole (111), and the diameter of the first wedge-shaped part (63) gradually increases towards its free end, and a first elastic reset member (64) is provided between the first button (61) and the relay seat (3) to elastically press the first button (61) outward so that the first wedge-shaped part (63) is locked in the gear hole (111).
3. The multi-dimensional adjustable support bipod according to claim 2, characterized in that: The sides of each gear hole (111) are interconnected to form an arc-shaped channel (112) for the first connecting rod (62) to move.
4. The multi-dimensional adjustable support bipod according to claim 2, characterized in that: The diameter of the gear hole (111) is greater than the width of the arc-shaped channel (112).
5. A multi-dimensional adjustable support bipod according to claim 2, characterized in that: The wing plate (11) is arranged in the left-right direction, and the stop hole (111) is a through hole in the front-back direction.
6. A multi-dimensional adjustable support bipod according to claim 2, characterized in that: The first wedge-shaped part (63) and the first button (61) are located on both sides of the corresponding gear hole (111).
7. A multi-dimensional adjustable support bipod according to claim 1, characterized in that: The second gear adjustment structure includes multiple gear slots (31) on the relay seat (3) and a second locking pin (7) slidably connected to the support leg seat (4). The support leg seat (4) is rotatably connected to the relay seat (3). The second locking pin (7) includes a second button (71), a second connecting rod (72) on the second button (71), and a lock head (73) at the other end of the second connecting rod (72). The lock head (73) is provided with a second wedge-shaped part (74) that can be inserted into and locked in the corresponding gear slot (31) in sequence. A second elastic reset member (75) is provided between the second button (71) and the support leg seat (4) to elastically press the second button (71) outward so that the second wedge-shaped part (74) is locked in the corresponding gear slot (31).
8. A multi-dimensional adjustable support bipod according to claim 7, characterized in that: The relay base (3) has a semi-circular disk (32) at its lower end, and each of the gear slots (31) is open at its lower end and is spaced apart at the lower edge of the semi-circular disk (32).
9. A multi-dimensional adjustable support bipod according to claim 7 or 8, characterized in that: The gear slot (31) is arranged in the left-right direction and its opening faces the center line of the support base (1).
10. A multi-dimensional adjustable support bipod according to claim 8, characterized in that: The second wedge (74) and the second button (71) are located on both sides of the semi-circular disk (32).