Support for automobile production
By designing an "I"-shaped support frame, the swaying problem of existing support frames under vibration and weight was solved, enabling stable operation of the testing equipment and simplifying installation. This allows the equipment to adapt to various installation scenarios and improves installation efficiency and equipment safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-23
- Publication Date
- 2026-03-31
AI Technical Summary
Existing automotive production support frames are prone to shaking and damage when subjected to the weight of testing equipment and vibration environments. Furthermore, their installation is complex, affecting testing accuracy and equipment safety.
Design a support frame with an overall "I" shaped structure, using bolt connections, with the base plate, top plate and vertical plate integrally formed, which has good stability and adjustability, and can adapt to different height and space requirements.
To ensure the stable operation of testing equipment in a vibration environment, improve installation efficiency, reduce installation difficulty, adapt to various installation spaces and load-bearing requirements, and avoid decreased testing accuracy and equipment damage.
Smart Images

Figure CN224065102U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of support frame technology, specifically relating to a support frame for automobile production. Background Technology
[0002] In modern automotive industrial production, product inspection is a key step in ensuring product quality. In the automotive parts inspection process, it is usually necessary to use inspection equipment (such as robotic arms) to inspect the products and sort them according to the inspection results. For example, defective products are sorted out from the assembly line. In order to ensure the installation and stable operation of the inspection equipment, a bracket or other structure is required to install the inspection equipment on the product inspection line.
[0003] Existing mounting support frames often lack sufficient consideration for the actual working environment in their design. When subjected to the weight of the testing equipment and the vibrations during the production process over a long period, they are prone to shaking or even damage. Testing equipment typically has a certain weight, especially on large production lines where the equipment may be quite bulky. Existing support frames may not have sufficient strength and rigidity in their structural design to support this weight, leading to deformation of the support frame during operation. Vibration during the production process is also a significant factor. The operation of mechanical equipment and the conveying of materials generate vibrations, which are transmitted to the support frame through the testing equipment. If the support frame is not stable enough, the vibrations can cause the support frame to resonate, further exacerbating the shaking. This shaking not only affects the normal operation of the testing equipment, leading to a decrease in testing accuracy, but may also cause the testing equipment to collide with the product, damaging the testing equipment or the product itself. The installation steps of existing mounting support frames are complex, involving a large number of parts. During installation, multiple different parts need to be installed sequentially, and the installation position and method of each part have strict requirements. This not only increases the difficulty of operation for installers but also easily leads to installation errors. Utility Model Content
[0004] The purpose of this invention is to provide a bracket for automobile production to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] A bracket for automobile manufacturing, comprising:
[0007] The platform has several legs fixedly installed at its bottom, two sets of conveyor belts at its top, products movably placed at the top of the conveyor belts, a detection block connected to the top of the platform, and several robotic arms installed on the side of the detection block away from the platform.
[0008] A support frame is used to connect the platform and the detection block. The support frame includes a base plate, a top plate is provided on one side of the base plate, and a vertical plate is fixedly connected between the base plate and the top plate. A rectangular hole is opened inside the vertical plate. The base plate, the top plate and the vertical plate are integrally formed. The front of the support frame has an "I" shaped structure.
[0009] Preferably, bolts are movably installed at the four corners of the base plate and top plate through openings, and the bolts are used to connect the platform and the detection block.
[0010] Preferably, the overall width of the support frame is between 20 and 400 mm.
[0011] Preferably, the overall height of the support frame is between 20 and 2000 mm.
[0012] Preferably, the number of rectangular holes is between 1 and 8.
[0013] Preferably, the wall thickness of the rectangular hole is between 1 and 50 mm.
[0014] Compared with the prior art, the beneficial effects of this utility model are:
[0015] (1) The support frame of this utility model has an overall "I" shape structure. The one-piece molded structure makes the support frame very stable. When bearing vertical load, the bottom plate will evenly transfer the force to the vertical plate, and the vertical plate will then transfer the force to the top plate. Due to the symmetry and integrity of the "I" shape structure, the force can be effectively dispersed and balanced during the transmission process, avoiding the problem of local stress concentration. The support frame is installed on the detection line and can stably support the detection equipment, ensuring that the detection equipment can still operate normally in the vibration environment, and there will be no problem of decreased detection accuracy or equipment damage caused by vibration.
[0016] (2) The support frame of this utility model adopts a bolt connection method. This connection method is simple and reliable, and is easy to install and disassemble. During the installation process, it is only necessary to align the bottom plate and top plate of the bracket with the corresponding equipment, and then use bolts to fix them together. The bolt connection has high connection strength and can ensure a firm connection between the bracket and the equipment. Compared with traditional welding, riveting and other connection methods, the bolt connection does not require special equipment and professional skills. Installers only need simple training to master the installation method. This not only reduces the installation difficulty, but also improves the installation efficiency.
[0017] (3) The height of the support frame of this utility model can be adjusted between 20-2000 mm. This height adjustability allows it to flexibly solve the problem of spatial height difference on lathes, production lines and other manufacturing equipment. In actual production, different equipment and production lines may have different height requirements. The testing equipment needs to be in a suitable position with the product being tested in order to carry out effective testing. By using the support frame of this utility model, the height of the support can be adjusted according to the actual height requirements, so that the testing equipment can be on the same horizontal line as the product being tested, ensuring the smooth progress of the testing work. The width of the overall support is between 20-400 mm, and the wall thickness can be adjusted between 1-50 mm. This adaptability of the size range allows the support frame of this utility model to adapt to different installation spaces and load-bearing requirements. On some production lines with limited space, a smaller size support can be selected for installation to save space, while in some situations where the load-bearing capacity requirement is high, a support with a larger wall thickness can be selected to meet the load-bearing requirements. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0019] Figure 2 This is a schematic diagram of the support frame structure of this utility model;
[0020] Figure 3 This is a front view structural diagram of the support frame of this utility model.
[0021] In the diagram: 1. Platform; 11. Support leg; 12. Conveyor belt; 13. Product; 14. Inspection block; 15. Robotic arm; 2. Support frame; 21. Base plate; 22. Top plate; 23. Vertical plate; 24. Rectangular hole; 25. Bolt. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0023] Example 1:
[0024] Please see Figure 1 - Figure 3 As shown, a bracket for automobile manufacturing includes:
[0025] Platform 1, with several legs 11 fixedly installed at the bottom of platform 1, two sets of conveyor belts 12 at the top of platform 1, with products 13 movably placed at the top of conveyor belts 12, and a detection block 14 connected to the top of platform 1, with several robotic arms 15 on the side of detection block 14 away from platform 1.
[0026] Support frame 2 is used to connect platform 1 and detection block 14. Support frame 2 includes base plate 21, top plate 22 is provided on one side of base plate 21, and vertical plate 23 is fixedly connected between base plate 21 and top plate 22. Rectangular hole 24 is opened inside vertical plate 23. Base plate 21, top plate 22 and vertical plate 23 are integrally formed. The front of support frame 2 has an "I" shaped structure.
[0027] Specifically, bolts 25 are movably installed at the four corners of the base plate 21 and the top plate 22 through openings. The bolts 25 are used to connect the platform 1 and the detection block 14. The overall width of the support frame 2 is 150mm, the overall height of the support frame 2 is 158mm, and there are two rectangular holes 24 with a wall thickness of 10mm.
[0028] As can be seen from the above, qualified and defective products 13 are placed on the two sets of conveyor belts 12 respectively. The robotic arm 15 is equipped with a 3D camera or vision sensor to capture the three-dimensional image information of the target product 13. It can obtain the shape, size, color and other features of the product 13 in real time to determine whether the product 13 is qualified (this part is the prior art and will not be described in detail here). The robotic arm 15 identifies the product 13 on one of the conveyor belts 12. If it is a defective product, the product 13 will be clamped out and placed on the other set of conveyor belts 12 to achieve identification and sorting.
[0029] The support frame 2 is used to install the detection block 14 to ensure stable operation of the detection work. Both the platform 1 and the detection block 14 are provided with corresponding screw holes. Bolts 25 are used to install the support frame 2 between the platform 1 and the detection block 14. The base plate 21 is a key part of the basic connection of the support frame 2. The wider base plate 21 design increases the contact area with the platform 1, thereby improving the friction and connection stability between the support frame 2 and the platform 1. When bearing the weight of the detection block 14, the base plate 21 can evenly transmit the force to the platform 1, avoiding excessive local pressure that could cause deformation or damage to the base plate 21. The top plate 22 is used to install the detection block 14, and the top plate 22 is tightly connected to the detection block 14 by bolts 25. To ensure the stability of the detection block 14 during operation, the top plate 22 reliably supports the equipment when it is subjected to a certain external force, preventing equipment shaking from affecting detection accuracy. The vertical plate 23 is the main load-bearing component of the support frame 2. Two rectangular holes 24 are symmetrically arranged inside the vertical plate 23. This design reduces the overall weight of the support frame 2 while ensuring the structural strength of the vertical plate 23, facilitating installation and handling. Simultaneously, the rectangular holes 24 can serve as channels for cables, pipes, etc., facilitating connections and layouts between equipment. The surface of the vertical plate 23 undergoes special treatment, exhibiting excellent wear resistance and corrosion resistance, enabling it to adapt to various harsh working environments. The surface of the upright plate 23 is smooth and flat, providing an ideal mounting surface for the functional supports and detection blocks 14. Multiple mounting holes are pre-drilled on the upright plate 23, their positions and spacing carefully designed to meet the installation requirements of different types of functional supports and detection blocks 14. In addition to standard rectangular holes 24 and mounting holes, the upright plate 23 can also be equipped with adjustable mounting brackets. These brackets can be bolted to any position on the upright plate 23 and can be finely adjusted horizontally and vertically to accommodate the installation angle and position requirements of different functional supports and detection blocks 14. This adjustability allows the upright plate 23 to flexibly handle various complex actual installations. In terms of application scenarios, the design of the support plate 23 fully considers compatibility with other devices. Its interface and installation method can seamlessly connect with mainstream functional brackets and detection blocks 14 on the market. Whether it is a sensor bracket or camera bracket used in industrial automation production lines, or a detection block 14 used in environmental monitoring, it can be easily installed on the support plate 23 to achieve functional integration and expansion. At the same time, additional expansion modules can be installed on the side of the support plate 23. These expansion modules can be connected to the support plate 23 through standard interfaces to add new functions to the support plate 23, such as wireless communication modules, data processing modules, etc., making the support plate 23 a highly scalable multi-functional support platform.
[0030] When using it, first determine the installation position of the test block 14, then install the base plate 21 of the support frame 2 on the platform 1 at the pre-set position using bolts 25. Use tools such as torque wrenches to tighten the bolts 25 according to the specified torque value to avoid loosening. Then place the test block 14 on the top of multiple support frames 2, and connect the test block 14 to multiple support frames 2 using bolts 25. After tightening the bolts 25, the test can be carried out.
[0031] The accompanying drawings of the embodiments disclosed in this utility model only involve the structures involved in the embodiments disclosed in this utility model. Other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of this utility model can be combined with each other.
[0032] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A support for use in the production of automobiles, characterized in that, include: Platform (1), with several legs (11) fixedly installed at the bottom of the platform (1), two sets of conveyor belts (12) set at the top of the platform (1), products (13) are movably placed at the top of the conveyor belts (12), a detection block (14) is connected to the top of the platform (1), and several robotic arms (15) are set on the side of the detection block (14) away from the platform (1). A support frame (2) is used to connect the platform (1) and the detection block (14). The support frame (2) includes a base plate (21), a top plate (22) is provided on one side of the base plate (21), and a vertical plate (23) is fixedly connected between the base plate (21) and the top plate (22). A rectangular hole (24) is provided inside the vertical plate (23). The base plate (21), the top plate (22) and the vertical plate (23) are integrally formed. The front of the support frame (2) has an "I" shaped structure.
2. The support for automobile production according to claim 1, characterized in that, The bottom plate (21) and top plate (22) are each fitted with bolts (25) through openings at their four corners. The bolts (25) are used to connect the platform (1) and the detection block (14).
3. The support for automobile production according to claim 1, characterized in that, The overall width of the support frame (2) is between 20 and 400 mm.
4. The support for automobile production according to claim 1, characterized in that, The overall height of the support frame (2) is between 20 and 2000 mm.
5. The support according to claim 1, wherein The number of the rectangular holes (24) ranges from 1 to 8.
6. The support for automobile production according to claim 1, characterized in that, The wall thickness of the rectangular hole (24) is between 1 and 50 mm.