Multifunctional support frame for remote controller

By designing a multi-functional support bracket for remote controls and utilizing the sliding connection between the connecting components and the support structure, the problems of single function and insufficient stability of traditional brackets are solved. This enables multi-point mounting and improved stability of remote controls, meeting the needs of complex operating environments.

CN223794979UActive Publication Date: 2026-01-13SHENZHEN ALMU INNOVATION TECH CO LTD
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Patent Information

Application Number
CN202423144197.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-18
Publication Date
2026-01-13
Estimated Expiration
2034-12-18

AI Technical Summary

Technical Problem

Traditional drone remote control brackets are limited in function, lack flexibility and versatility, and are particularly unstable in complex operating environments. Furthermore, existing improvement solutions often neglect the overall synergistic effect of the support structure, resulting in uneven stability and load-bearing capacity when the remote controller is mounted at multiple points.

Method used

Design a multi-functional support frame for remote controls. Through the synergistic effect of connecting components and support structure, the remote control can be mounted at multiple points and stabilized. The connecting components and support structure are slidably connected, including rotation and sliding functions, which enhances the overall stability and load-bearing capacity.

Benefits of technology

It enables multi-point mounting and flexible adjustment of the remote control, improves the stability and load-bearing capacity of the remote control, provides a more comfortable and efficient user experience, and adapts to the needs of different usage scenarios.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a multifunctional supporting frame for a remote controller. The multifunctional supporting frame comprises a connecting assembly and a supporting structure. The lower end of the connecting assembly is in contact with the desktop; the supporting structure and the connecting assembly are arranged on the table top side by side and movably connected, the lower end of the connecting assembly slides into the supporting structure in the length direction and is connected in a sliding mode, and when the remote controller is loaded, the supporting structure and the connecting assembly jointly support the remote controller, and through cooperation of the connecting assembly and the supporting structure, multi-point mounting of the remote controller is achieved, and the stability and the bearing capacity of the structure are enhanced; compared with the prior art, the support can achieve multi-point mounting, sliding connection between the connecting assembly and the supporting structure is specially designed, although a traditional rotating assembly is not adopted, the similar adjusting function is achieved, and the support has remarkable advantages different from the existing design that angle adjustment only depends on the rotating assembly, but the supporting performance is neglected.
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Description

Technical Field

[0001] This application relates to the field of unmanned aerial vehicles (UAVs), and more particularly to a multi-functional support for a remote controller. Background Technology

[0002] In the field of drone operation, traditional drone remote control stands are mainly used to support and fix the remote controller, allowing operators to control the drone from the ground or a fixed location. These stands typically employ simple support structures, such as tripods or fixed bases, connected to the remote controller via fixed connections or simple adjustment devices. However, these traditional stands are relatively limited in function, primarily focusing on providing stable support and lacking flexibility and versatility, especially when dealing with complex operating environments or requiring rapid adjustments to the remote controller's position. To address the issue of limited functionality in traditional stands, existing technologies have proposed several improvements aimed at enabling multi-point mounting and more flexible adjustment of the remote controller. One common approach is to add additional mounting points or accessories to the stand, such as extendable support arms or swivel joints, to allow the remote controller to be adjusted in multiple directions. Another approach involves using complex rotating components. While these components enable multi-angle rotation of the remote controller, their primary design goal is to provide viewing angle adjustment rather than serving as the main support structure. For example, existing stand rotating components are often used for rotation rather than support, focusing more on changes in the remote controller's viewing angle than on improving overall stability and load-bearing capacity. While existing technologies have improved the flexibility and functionality of drone remote control mounts to some extent, they still have significant shortcomings in achieving multi-point mounting. Specifically, these solutions often focus only on increasing the number of rotation or mounting points, neglecting the overall synergistic effect of the support structure. Traditional rotating components can enable the remote controller to rotate, but due to insufficient support capacity, they are prone to instability and uneven weight distribution when the remote controller is mounted on multiple mounting points. Furthermore, existing technologies are often complex in design and implementation, increasing manufacturing costs and difficulty of use, which hinders widespread adoption and application. Utility Model Content

[0003] In view of this, it is necessary to provide a multi-functional support bracket for remote controls that can be mounted at multiple points to solve the above problems.

[0004] Embodiments of this application provide a multi-functional remote control support stand, comprising:

[0005] The connecting component is rotatably connected to the remote control at its upper end and abuts against the desktop at its lower end.

[0006] A support structure is arranged in parallel with the connecting component. The support structure is placed on the desktop and is movably connected to the connecting component. The lower end of the connecting component extends into the support structure along its length and is slidably connected to the support structure.

[0007] When the remote controller is mounted on the connecting component, the connecting component and the supporting structure together support the remote controller.

[0008] In at least one embodiment of this application, the connecting component includes a connector located at the upper end of the connecting component and a waist structure located at the lower end of the connecting component. The connector is rotatably connected to the waist structure, and the contact end between the connector and the waist structure is provided with a rotating shaft. The connector rotates around the rotating shaft to drive the remote control to rotate.

[0009] The length direction of the waist structure is referred to as the first direction. In the first direction, the waist structure extends into the support structure and is slidably connected to the support structure.

[0010] One end of the waist structure is slidably connected to the connector, and the other end abuts against the tabletop.

[0011] In at least one embodiment of this application, the orientation of the connector and the waist structure is referred to as the second direction. When viewed along the second direction, the support structure is a T-shaped structure, and the T-shaped structure has a sliding groove extending through its length direction at the free end facing the waist structure. One end of the waist structure extends into the sliding groove to form a sliding end. The sliding groove and the sliding end are slidably connected to drive the remote control to slide along the first direction.

[0012] In at least one embodiment of this application, when viewed along the second direction, the T-shaped structure has a finite groove;

[0013] In the first direction, the limiting block abuts against the limiting groove to prevent the waist structure from slipping off the limiting groove.

[0014] In at least one embodiment of this application, when viewed along the first direction, the connector has a fixing groove group extending through the first direction, and the remote controller is fixed in the fixing groove group.

[0015] In at least one embodiment of this application, when viewed along the second direction, the connector has an auxiliary groove extending through the second direction, and the remote control includes a grip portion that contacts the finger surface and a palm grip portion that contacts the palm surface. The palm grip portion is fixed to the fixed groove group, and the grip portion is fixed to the auxiliary groove.

[0016] In at least one embodiment of this application, when viewed along the first direction, the connector has a first fixing hole, and the fixing hole is arranged adjacent to the fixing groove group, and the fixing hole is threadedly connected to the grip portion.

[0017] In at least one embodiment of this application, a second fixing hole is provided at one end of the T-shaped structure away from the sliding end, and the fixing hole connects to the other two free ends so that the T-shaped structure can be externally connected to the bracket.

[0018] In at least one embodiment of this application, the connector is coated with an anti-slip layer.

[0019] In at least one embodiment of this application, the connector is made of stainless steel.

[0020] The aforementioned multi-functional remote control support bracket, through the synergistic design of the connecting components and the support structure, not only achieves multi-point mounting of the remote control but also ensures the stability and load-bearing capacity of the overall structure—a significant advantage not found in existing technologies. The bracket in this application enables multi-point mounting, simultaneously incorporating both connecting and rotating components. Specifically, it should be noted that in this application, the connecting components and the support structure are slidably connected. While not a traditional "rotating component," it possesses similar adjustment capabilities, unlike existing bracket designs that rely solely on rotating components for angle adjustment without considering support performance. Attached Figure Description

[0021] Figure 1 This is a front view of a multi-functional support bracket for a remote control.

[0022] Figure 2 This is an axial disassembly diagram of a multi-functional support frame for a remote control.

[0023] Figure 3 This is the main view for the connecting components.

[0024] Explanation of main component symbols

[0025] 1. Connecting component; 3. Support structure; 4. Connector; 5. Waist structure; 6. Rotating shaft; 7. Sliding groove; 8. Limiting groove; 9. Fixing groove group; 10. Auxiliary groove; 11. First fixing hole; 12. Second fixing hole; 13. Limiting block; 14. Sliding end; 100. A multi-functional support frame for a remote control. Detailed Implementation

[0026] The embodiments of this application will now be described with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.

[0027] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or may also have an intervening component. When a component is considered to be "placed" on another component, it can be directly placed on the other component or may also have an intervening component. The terms "top," "bottom," "upper," "lower," "left," "right," "front," "back," and similar expressions used in this article are for illustrative purposes only.

[0028] Embodiments of this application provide a multi-functional remote control support holder 100, comprising:

[0029] The connecting component is rotatably connected to the remote control at its upper end and abuts against the desktop at its lower end.

[0030] A support structure is arranged in parallel with the connecting component. The support structure is placed on the desktop and is movably connected to the connecting component. The lower end of the connecting component extends into the support structure along its length and is slidably connected to the support structure.

[0031] When the remote controller is mounted on the connecting component, the connecting component and the supporting structure together support the remote controller.

[0032] The aforementioned multi-functional remote control support bracket, through the synergistic design of the connecting components and the support structure, not only achieves multi-point mounting of the remote control but also ensures the stability and load-bearing capacity of the overall structure—a significant advantage not found in existing technologies. The bracket in this application enables multi-point mounting, simultaneously incorporating both connecting and rotating components. Specifically, it should be noted that in this application, the connecting components and the support structure are slidably connected. While not a traditional "rotating component," it possesses similar adjustment capabilities, unlike existing bracket designs that rely solely on rotating components for angle adjustment without considering support performance.

[0033] The following is in conjunction with the appendix Figures 1-3 The following describes some embodiments of this application in detail. Unless otherwise specified, the embodiments and features described below can be combined with each other.

[0034] Embodiments of this application provide a multi-functional remote control support holder 100, comprising:

[0035] Connecting component 1 has its upper end rotatably connected to the remote control, and its lower end abutting against the desktop;

[0036] A support structure 3 is arranged in parallel with the connecting component 1. The support structure 3 is placed on the desktop and is movably connected to the connecting component 1. The lower end of the connecting component 1 extends into the support structure 3 along its length and is slidably connected to the support structure 3.

[0037] When the remote controller is mounted on the connecting component 1, the connecting component 1 and the supporting structure 3 together support the remote controller.

[0038] Specifically, the connecting component 1, as the core of the support frame, is connected to the remote control at its upper end via a precise rotating structure, allowing the remote control to be flexibly adjusted at multiple angles to meet the user's needs in different usage scenarios. Meanwhile, the lower end of the connecting component 1 rests firmly on the table, providing solid support for the entire support frame. The design of the support structure 3 is equally ingenious. It is arranged side-by-side with the connecting component 1 and connected to it via a movable connection. The lower end of the connecting component 1 extends cleverly into the support structure 3 along its length, forming a sliding connection with it. This design allows users to easily slide the remote control along the table for quick position adjustments. This structure not only greatly improves the ease of use of the remote control but also provides a more comfortable and efficient user experience through stable support and flexible sliding design. The side-by-side arrangement and sliding connection of the connecting component 1 and the support structure 3 not only makes the entire support frame structure compact and stable but also allows the remote control to move freely on the table through flexible sliding adjustments, thus meeting the diverse needs of users in different usage scenarios.

[0039] Furthermore, the connecting component 1 includes a connector 4 located at the upper end of the connecting component 1 and a waist structure 5 located at the lower end of the connecting component 1. The connector 4 is rotatably connected to the waist structure 5, and the contact end of the connector 4 and the waist structure 5 is provided with a rotating shaft 6. The connector 4 rotates around the rotating shaft 6 to drive the remote control to rotate.

[0040] The length direction of the waist structure 5 is referred to as the first direction. In the first direction, the waist structure 5 extends into the support structure 3 and is slidably connected to the support structure 3.

[0041] The waist structure 5 is slidably connected to the connector 4 at one end, and rests against the tabletop at the other end. Specifically, the connector 4 and the waist structure 5 are connected by a precise rotating connection structure, and a rotating shaft 6 is cleverly designed, allowing the remote control to rotate flexibly around the rotating shaft 6. The design of the waist structure 5 is equally excellent; one end is slidably connected to the connector 4, while the other end rests firmly against the tabletop, providing additional stability to the entire support frame. More importantly, the waist structure 5 can cleverly extend into the support structure 3 along its length and form a slidable connection with it. This design not only allows the remote control to slide and adjust while rotating, but also enhances the stability and load-bearing capacity of the entire support frame through the stable support of the waist structure 5. The derivation of the characteristic connection and positional relationships further reveals the ingenuity of this design: the rotating and sliding connection between the connector 4 and the waist structure 5 not only enables flexible adjustment of the remote control in multiple directions, but also, through the stable support of the waist structure 5, makes the entire support frame more adaptable to remote controls of different sizes and weights, thereby improving ease of use and stability. Furthermore, the orientation of the connector 4 and the waist structure 5 is referred to as the second direction. When viewed along the second direction, the support structure 3 is a T-shaped structure, and the T-shaped structure has a sliding groove 7 extending through its length at the free end facing the waist structure 5. One end of the waist structure 5 extends into the sliding groove 7 to form a sliding end 14. The sliding groove 7 and the sliding end 14 are slidably connected to drive the remote control to slide along the first direction.

[0042] Specifically, the support structure 3 adopts a unique T-shaped structure, with a cleverly designed sliding groove 7 extending along its length at the free end facing the waist structure 5. One end of the waist structure 5 can easily extend into the sliding groove 7, forming a tight sliding connection with it. This design not only allows the remote control to slide smoothly along the length of the T-shaped structure, but also ensures the stability and safety of the remote control through the stable support of the sliding groove 7. The sliding groove 7 of the T-shaped structure and the sliding end 14 of the waist structure form a tight fit, which not only enables the smooth sliding of the remote control, but also ensures the stability of the entire support frame through the stability of the T-shaped structure. This design not only improves the operating efficiency of the remote control, but also makes the support frame more aesthetically pleasing and practical.

[0043] Furthermore, when viewed along the second direction, the T-shaped structure has a limiting groove 8;

[0044] In the first direction, the limiting block 13 abuts against the limiting groove 8 to prevent the waist structure 5 from sliding away from the limiting groove 8.

[0045] Specifically, the T-shaped structure cleverly incorporates a fixing hole at the end furthest from the sliding end 14, connecting to the other two free ends. This allows the T-shaped structure to be easily attached to other supports or devices. More importantly, the T-shaped structure also features a limiting groove 8, where the limiting block 13 on the waist structure 5 can firmly abut against it, preventing the waist structure 5 from slipping off the limiting groove 8 during sliding. This design not only increases the safety of the support frame but also, through the stable support of the limiting groove 8, avoids the risk of the remote control slipping or being damaged during use. The cooperation between the limiting groove 8 and the limiting block 13 restricts the sliding range of the waist structure 5, thus ensuring the stability and safety of the remote control. Simultaneously, the fixing hole design facilitates the connection of the T-shaped structure to other devices, giving the entire support frame greater expandability and practicality.

[0046] Furthermore, when viewed along the first direction, the connector 4 has a fixing groove 9 that extends through the first direction, and the remote control is fixed in the fixing groove 9.

[0047] Specifically, the connector 4 features fixing slots 9 that securely hold the remote control's grip. This design not only firmly secures the remote control to the connector 4, preventing slippage or movement during use, but also allows the connector 4 to accommodate remote controls of different sizes through the flexible adjustment of the fixing slots 9. The tight fit between the fixing slots 9 and the remote control's grip enhances the remote control's stability and allows the connector 4 to be used with a wider variety of remote controls. This design not only improves the support's compatibility but also provides users with a more convenient and efficient user experience.

[0048] Furthermore, viewed along the second direction, the connector 4 has an auxiliary groove 10 extending through the second direction. The remote control includes a grip portion that contacts the fingertips and a palm grip portion that contacts the palm. The palm grip portion is fixed to the fixing groove group 9, and the grip portion is fixed to the auxiliary groove 10. Specifically, the connector 4 has auxiliary grooves 10 that can firmly fix the grip portion of the remote control. This design not only further increases the stability of the remote control but also makes the user more comfortable and convenient to operate through the flexible adjustment of the auxiliary grooves 10. A close fit is formed between the auxiliary grooves 10 and the grip portion of the remote control. This fit not only improves the stability of the remote control but also makes the user more relaxed and enjoyable to operate through the flexible adjustment of the auxiliary grooves 10. This design not only improves the ease of use of the support frame but also brings users a more comfortable and efficient operating experience.

[0049] Furthermore, viewed along the first direction, the connector 4 has a first fixing hole 11, which is adjacent to the fixing groove group 9 and threadedly connected to the grip portion. Specifically, the connector 4 has fixing holes that are adjacent to the fixing groove group 9 and can form a threaded connection with the grip portion of the remote control. This design not only makes the connection between the remote control and the connector 4 more secure and reliable, avoiding the risk of the remote control slipping or being damaged due to loosening during use, but also improves the load-bearing capacity and stability of the entire support frame through the stability of the threaded connection. The fixing hole and the grip portion of the remote control form a tight threaded connection, which not only improves the stability of the remote control, but also ensures the load-bearing capacity and stability of the entire support frame through the strength of the threaded connection. This design is not only suitable for remote controls of different weights, but also makes the support frame more durable and reliable.

[0050] Furthermore, the T-shaped structure has a second fixing hole 12 at the end furthest from the sliding end 14. This fixing hole connects to the other two free ends, allowing the T-shaped structure to be externally attached to a support. Specifically, the T-shaped structure has second fixing holes 12, which connect to the other two free ends, enabling the T-shaped structure to be easily externally attached to other supports or equipment. This design not only increases the expandability of the support frame but also improves the stability and load-bearing capacity of the entire support frame through the stable connection of the fixing holes. The derivation of the characteristic connection and positional relationships further reveals the ingenuity of this design: a tight connection is formed between the fixing holes and the external support or equipment. This connection not only improves the stability of the support frame but also, through the expandability of the external equipment, allows the entire support frame to be applicable to a wider range of application scenarios. This design not only improves the practicality of the support frame but also provides users with a more flexible and efficient user experience.

[0051] Furthermore, the connector 4 is coated with an anti-slip layer.

[0052] Specifically, the anti-slip layer increases the friction between the connector 4 and the remote control, thus preventing the remote control from slipping or being damaged during use. The anti-slip layer and connector 4 form a tight bond, which not only increases the friction between them but also ensures the stability and safety of the entire support frame through the material and performance of the anti-slip layer. This design is suitable not only for remote controls made of different materials but also makes the support frame more durable and reliable.

[0053] Furthermore, the connector 4 is made of stainless steel.

[0054] Specifically, this material possesses excellent properties such as high strength, corrosion resistance, and wear resistance. The stainless steel connector 4 not only boasts superior mechanical properties and chemical stability, enabling it to withstand significant weight and pressure, but its corrosion and wear resistance also ensures the durability and lifespan of the entire support frame. This design not only enhances the load-bearing capacity and stability of the support frame but also makes the entire frame more aesthetically pleasing and durable.

[0055] The above description is merely an embodiment of this application. It should be noted that those skilled in the art can make improvements without departing from the inventive concept of this application, but these improvements all fall within the protection scope of this application.

Claims

1. A multi-functional support stand for a remote control, characterized in that, include: The connecting component is rotatably connected to the remote control at its upper end and abuts against the desktop at its lower end. A support structure is arranged in parallel with the connecting component. The support structure is placed on the desktop and is movably connected to the connecting component. The lower end of the connecting component extends into the support structure along its length and is slidably connected to the support structure. When the remote controller is mounted on the connecting component, the connecting component and the supporting structure together support the remote controller.

2. The multi-functional remote control support frame according to claim 1, characterized in that, The connecting assembly includes a connector located at the upper end of the connecting assembly and a waist structure located at the lower end of the connecting assembly. The connector is rotatably connected to the waist structure, and the contact end between the connector and the waist structure is provided with a rotating shaft. The connector rotates around the rotating shaft to drive the remote control to rotate. The length direction of the waist structure is referred to as the first direction. In the first direction, the waist structure extends into the support structure and is slidably connected to the support structure. One end of the waist structure is slidably connected to the connector, and the other end abuts against the tabletop.

3. The multi-functional support frame for remote controls according to claim 2, characterized in that, The direction in which the connector and the waist structure are positioned is referred to as the second direction. When viewed along the second direction, the support structure is a T-shaped structure, and the T-shaped structure has a sliding groove extending through its length at the free end facing the waist structure. One end of the waist structure extends into the sliding groove to form a sliding end. The sliding groove and the sliding end are slidably connected to drive the remote control to slide along the first direction.

4. The multi-functional remote control support frame according to claim 3, characterized in that, Viewed along the second direction, the T-shaped structure has a limiting groove; In the first direction, the limiting block abuts against the limiting groove to prevent the waist structure from slipping off the limiting groove.

5. The multi-functional remote control support frame according to claim 1, characterized in that, Viewed along the first direction, the connector has a fixing groove group that extends through the first direction, and the remote control is fixed in the fixing groove group.

6. The multi-functional remote control support frame according to claim 5, characterized in that, Viewed along the second direction, the connector has an auxiliary groove extending through the second direction. The remote control includes a grip portion that contacts the finger surface and a palm grip portion that contacts the palm surface. The palm grip portion is fixed to the fixed groove group, and the grip portion is fixed to the auxiliary groove.

7. The multi-functional support frame for remote controls according to claim 6, characterized in that, Viewed along the first direction, the connector has a first fixing hole, and the fixing hole is arranged adjacent to the fixing groove group. The fixing hole is threadedly connected to the grip part.

8. The multi-functional remote control support frame according to claim 4, characterized in that, The T-shaped structure has a second fixing hole at one end away from the sliding end, and the fixing hole connects to the other two free ends so that the T-shaped structure can be externally connected to the bracket.

9. The multi-functional remote control support frame according to claim 1, characterized in that, The connector is coated with an anti-slip layer.

10. The multi-functional support frame for remote controls according to claim 2, characterized in that, The connector is made of stainless steel.