Frame assembly and mesh test equipment
By making the frame assembly moveable and equipped with adjustable support arms and optical components, the problem that the frame assembly in the prior art cannot adapt to different test positions is solved, and the adaptability and versatility of multiple positions is achieved.
Patent Information
- Application Number
- CN202421164743.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-24
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2034-05-24
AI Technical Summary
Existing framework components are not compatible with different test locations, resulting in poor versatility.
The frame is movably mounted on the foundation and moves along the length of the foundation by the slide rail and slide seat. The support arm can be swing or telescopic, and the optical components move with it and form optical areas to accommodate different test positions.
The versatility of the frame components is achieved, compatible with different test locations, and adapts to multiple test needs through fill light and shooting.
Smart Images

Figure CN223192673U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of mesh testing equipment, in particular to a frame component and mesh testing equipment. Background Art
[0002] With the development of science and technology, mesh testing equipment is used in industry. Mesh testing equipment is used to measure the maximum force, elongation, stress and deformation of the entire mesh, and to test the rationality of the mesh structure design. The frame assembly is part of the mesh testing equipment.
[0003] In the prior art, the existing frame assembly includes a foundation, a frame, and multiple optical components. The frame is connected to the foundation, and the multiple optical components are respectively arranged on both sides of the frame and connected to the frame. However, the multiple frames cannot be moved, and the multiple optical components are not compatible with different test positions, resulting in poor versatility of the existing frame assembly. Utility Model Content
[0004] The purpose of the present utility model is to provide a frame assembly and mesh testing equipment, wherein the frame is movably installed on a foundation and can move along the length direction of the foundation to facilitate adjustment of the position of the frame relative to the foundation; a support arm is arranged on one side of the frame and connected to the frame; a plurality of optical components are respectively installed on the frame and the support arm, and the plurality of optical components move with the movement of the frame, and the output ends of the plurality of optical components are all facing the bottom of the frame, and optical areas are formed between the plurality of optical components, and the optical areas control the environment below the frame to facilitate fill light or shooting of the test position, thereby being compatible with different test positions and ensuring the versatility of the frame assembly.
[0005] To achieve the above objectives, the present invention provides the following technical solutions:
[0006] A frame assembly is used for a mesh testing device; the frame assembly comprises:
[0007] foundation;
[0008] a frame movably mounted on the foundation and capable of moving along the length of the foundation;
[0009] a support arm, disposed on one side of the frame and connected to the frame;
[0010] A plurality of optical components are respectively mounted on the frame and the support arm. Output ends of the plurality of optical components are all directed downwards toward the frame. An optical area is formed between the plurality of optical components.
[0011] Optionally, a moving component is provided between the frame and the foundation, wherein a fixed end of the moving component is mounted on the foundation, and a moving end is connected to the frame to assist in the movement of the frame.
[0012] Optionally, the moving component includes a slide rail and a slide seat, and the slide rail extends along the length direction of the foundation and is installed on the foundation;
[0013] The sliding seat is movably sleeved on the sliding rail and carries the frame.
[0014] Optionally, the support arm is swingably connected to the frame and carries at least one of the optical components.
[0015] Optionally, a telescopic member is provided between the support arm and the frame, one end of the support arm is hinged to the frame, the fixed end of the telescopic member is connected to the frame, and the telescopic end is connected to the support arm, driving the support arm to swing relative to the frame.
[0016] Optionally, the plurality of optical components are arranged in a circumferential direction below the frame and are respectively mounted on the frame and the support arm.
[0017] Optionally, the frame includes two columns arranged opposite to each other;
[0018] The plurality of optical components include a plurality of lighting lamps, which are respectively mounted on the two columns; the plurality of lighting lamps are arranged obliquely relative to the corresponding columns and face downwards of the frame.
[0019] Optionally, the frame includes a crossbeam; the crossbeam is located between the two columns and connected to the two columns;
[0020] The plurality of optical components include a plurality of optical measuring pieces, and the plurality of optical measuring pieces are respectively mounted on the support arms; the plurality of optical measuring pieces are arranged obliquely relative to the corresponding support arms and face downwardly of the frame;
[0021] An optical area is formed between the plurality of optical measuring components and the plurality of illumination lamps.
[0022] Optionally, the frame is formed by connecting a plurality of tubes, wherein the plurality of tubes respectively form two upright posts and the crossbeam; the crossbeam is located between the two upright posts and connected to the two upright posts;
[0023] A reinforcement structure is formed between at least two of the tubes, and the reinforcement structure is arranged on the beam and / or the column.
[0024] A mesh testing device comprises the frame assembly.
[0025] Compared with the prior art, the beneficial effects of the present invention are:
[0026] The utility model provides a frame assembly and mesh testing equipment, wherein the frame is movably installed on a foundation and can move along the length direction of the foundation to facilitate adjustment of the position of the frame relative to the foundation; a support arm is arranged on one side of the frame and connected to the frame; a plurality of optical components are respectively installed on the frame and the support arm, and the plurality of optical components move with the movement of the frame, and the output ends of the plurality of optical components are all directed toward the bottom of the frame, and optical areas are formed between the plurality of optical components, and the optical areas control the environment below the frame to facilitate fill light or shooting of the test position, thereby being compatible with different test positions and ensuring the versatility of the frame assembly. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] To more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present application. Those skilled in the art can also derive other drawings based on these drawings without inventive effort.
[0028] In order to more completely understand the present application and its beneficial effects, the following description will be given in conjunction with the accompanying drawings. In the following description, the same reference numerals represent the same parts.
[0029] Figure 1 A schematic diagram of a frame assembly according to one embodiment of the present application is shown.
[0030] Figure 2 Shown Figure 1 A partial enlarged view of point A in the middle.
[0031] Figure 3 Shown Figure 1 A partial enlarged view of point B in the middle.
[0032] Figure 4 A schematic diagram showing the connection of frames of a frame assembly according to an embodiment of the present application is shown.
[0033] Figure 5 A schematic diagram showing the connection of a lighting lamp of a frame assembly according to an embodiment of the present application is shown.
[0034] Reference numerals
[0035] 100. Frame assembly;
[0036] 10. Foundation;
[0037] 20. Frame; 21. Column; 22. Beam; 23. Tube;
[0038] 30. Support arm;
[0039] 40. Optical components; 40a. Optical area; 41. Illuminating lamp; 42. Optical measuring element;
[0040] 50. Moving parts; 51. Slide rail; 52. Sliding seat;
[0041] 60. Telescopic parts. DETAILED DESCRIPTION
[0042] The following will be combined with the drawings in the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the embodiments described are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without making creative efforts are within the scope of protection of this application.
[0043] Please refer to the attached Figures 1 to 5 An embodiment of the present application provides a frame assembly 100, which is applied to a mesh testing device. The frame assembly 100 is used to test different positions. The frame assembly 100 includes a foundation 10, a frame 20, a support arm 30 and multiple optical components 40. The frame 20 is arranged on the upper side of the foundation 10, and the support arm 30 is arranged on the peripheral side of the frame 20.
[0044] In the embodiment of the present application, foundation 10 serves as a supporting component of frame assembly 100. Foundation 10 is used to support frame 20, support arm 30, and multiple optical components 40. Optionally, foundation 10 is rectangular. Foundation 10 is a reinforced concrete foundation and, together with frame 20, forms a fixture to facilitate positioning of multiple optical components 40 via frame 20 and support arm 30.
[0045] In an embodiment of the present application, the frame 20 is arranged on the upper side of the foundation 10. The frame 20 is movably installed on the foundation 10 and can move along the length direction of the foundation 10 to facilitate adjustment of the position of the frame 20 relative to the foundation 10, thereby facilitating adjustment of the length position of the frame 20 relative to the foundation 10.
[0046] In an embodiment of the present application, the support arm 30 is arranged on the peripheral side of the frame 20 and is connected to the frame 20 so that the support arm 30 is fixed to the frame 20, thereby facilitating the support arm 30 to move with the movement of the frame 20, and further facilitating the adjustment of the position of the support arm 30 relative to the foundation 10.
[0047] In an embodiment of the present application, multiple optical components 40 are respectively installed on the frame 20 and the support arm 30, so that the multiple optical components 40 are respectively fixed on the frame 20 and the support arm 30, and the multiple optical components 40 move with the movement of the frame 20 and the support arm 30. The output ends of the multiple optical components 40 are all facing the bottom of the frame 20, and an optical area 40a is formed between the multiple optical components 40. The optical area 40a controls the environment below the frame 20 to facilitate fill light or shooting of the test position, thereby being compatible with different test positions and ensuring the versatility of the frame assembly 100.
[0048] In an embodiment of the present application, a moving component 50 is provided between the frame 20 and the foundation 10. The fixed end of the moving component 50 is installed on the foundation 10, and the moving end is connected to the frame 20 and assists the movement of the frame 20. At this time, the moving component 50 is between the frame 20 and the foundation 10. The fixed end of the moving component 50 is installed on the foundation 10 so that the fixed end of the moving component 50 is fixed to the foundation 10. The moving end of the moving component 50 is connected to the frame 20 and assists the movement of the frame 20 so that the frame 20 can move relative to the foundation 10 through the moving component 50, thereby facilitating the adjustment of the position of the frame 20 relative to the foundation 10.
[0049] At this time, the moving part 50 includes a slide rail 51 and a sliding seat 52. The slide rail 51 is arranged on the upper side of the foundation 10, extends along the length direction of the foundation 10, and is installed on the foundation 10; the sliding seat 52 is arranged on the upper side of the slide rail 51, and the sliding seat 52 is movably mounted on the slide rail 51 and carries the frame 20. At this time, the moving part 50 consists of a slide rail 51 and a sliding seat 52. The slide rail 51 extends along the length direction of the foundation 10 and is installed on the foundation 10 so that the slide rail 51 is fixed. On the foundation 10, the sliding seat 52 is movably mounted on the slide rail 51 to facilitate adjustment of the position of the sliding seat 52 relative to the slide rail 51. The sliding seat 52 carries the frame 20 so that the frame 20 moves with the movement of the sliding seat 52, thereby facilitating the movement of the frame 20 relative to the foundation 10 through the slide rail 51 and the sliding seat 52, thereby facilitating adjustment of the position of the frame 20 relative to the foundation 10. Multiple optical components 40 are compatible with different test positions, ensuring the versatility of the frame assembly 100.
[0050] Among them, the support arm 30 is arranged on the peripheral side of the frame 20, and the support arm 30 is swingably connected to the frame 20. The support arm 30 swings along the axial direction of the connection between the support arm 30 and the frame 20 to facilitate adjustment of the position of the support arm 30 relative to the frame 20. The support arm 30 carries at least one optical component 40, so that the at least one optical component 40 swings with the swing of the support arm 30, thereby facilitating adjustment of the position of the at least one optical component 40 relative to the foundation 10.
[0051] In an embodiment of the present application, a telescopic member 60 is provided between the support arm 30 and the frame 20, one end of the support arm 30 is hinged to the frame 20, the fixed end of the telescopic member 60 is connected to the frame 20, the telescopic end is connected to the support arm 30, and drives the support arm 30 to swing relative to the frame 20. At this time, the telescopic member 60 is between the support arm 30 and the frame 20, one end of the support arm 30 is hinged to the frame 20 so that the support arm 30 can swing relative to the frame 20, the fixed end of the telescopic member 60 is connected to the frame 20 so that the fixed end of the telescopic member 60 is fixed to the frame 20, the telescopic end is connected to the support arm 30, and drives the support arm 30 to swing relative to the frame 20, so that the support arm 30 can realize automatic swinging relative to the frame 20 through the telescopic member 60, thereby facilitating adjustment of the position of the support arm 30 relative to the frame 20, and then adjusting the position of at least one optical component 40 relative to the foundation 10.
[0052] Optionally, the telescopic member 60 is a hydraulic cylinder or a pneumatic cylinder. The telescopic member 60 is in an inclined state and drives the support arm 30 to swing relative to the frame 20, thereby realizing the position adjustment of the support arm 30 relative to the frame 20, so as to facilitate the position control of the optical component 40 supported by the support arm 30, thereby improving the practical scenarios of the optical component 40.
[0053] In an embodiment of the present application, multiple optical components 40 are arranged in a circular manner below the frame 20 and are respectively installed on the frame 20 and the support arm 30, so that the multiple optical components 40 are respectively fixed below the frame 20 and below the support arm 30, so that the output ends of the multiple optical components 40 are all facing below the frame 20, and an optical area 40a is formed between the multiple optical components 40. The optical area 40a controls the environment below the frame 20 to facilitate fill lighting or shooting of the test position, thereby being compatible with different test positions and ensuring the versatility of the frame assembly 100.
[0054] In an embodiment of the present application, the frame 20 includes two columns 21 arranged opposite to each other; the multiple optical components 40 include multiple lamps 41, the two columns 21 are arranged in a vertical direction, and the multiple lamps 41 are respectively installed on the two columns 21, so that the multiple lamps 41 are respectively fixed on the two columns 21; the multiple lamps 41 are arranged obliquely relative to the corresponding columns 21 and toward the bottom of the frame 20, so that the multiple lamps 41 all output light obliquely downward, thereby facilitating the improvement of the brightness below the frame 20. By arranging multiple lamps 41, the brightness of the lamps 41 relative to the bottom of the frame 20 is increased, thereby facilitating the improvement of the visibility below the frame 20.
[0055] In the embodiment of the present application, the frame 20 includes a crossbeam 22; the crossbeam 22 is located between the two columns 21 and is connected to the two columns 21, so that the crossbeam 22 is fixed to the two columns 21, thereby facilitating the crossbeam 22 and the two columns 21 to enclose an inverted U-shape; the multiple optical components 40 include multiple optical measuring parts 42, and the multiple optical measuring parts 42 are respectively installed on the support arms 30, so that the multiple optical measuring parts 42 are fixed to the support arms 30, thereby facilitating the multiple optical measuring parts 42 to swing with the swing of the support arms 30; the multiple optical measuring parts 42 are arranged obliquely relative to the corresponding support arms 30 and face the bottom of the frame, so that the measuring ends of the multiple optical measuring parts 42 face obliquely downward, thereby facilitating the multiple optical measuring parts 42 to measure the situation obliquely downward. By arranging multiple optical measuring parts 42, the test position of the optical measuring parts 42 relative to the inner side of the foundation 10 is increased, and different test positions are compatible.
[0056] Among them, an optical area 40a is formed between the multiple optical measuring parts 42 and the multiple lighting lamps 41. The optical area 40a controls the environment below the frame 20 to facilitate fill light or photography of the test position, thereby being compatible with different test positions and ensuring the versatility of the frame assembly 100.
[0057] In the embodiment of the present application, the frame 20 is formed by connecting a plurality of tube bodies 23, and two columns 21 and a crossbeam 22 are formed between the plurality of tube bodies 23 respectively; the crossbeam 22 is located between the two columns 21 and is connected to the two columns 21; a reinforcement structure is formed between at least two tube bodies 23, and the reinforcement structure is arranged on the crossbeam 22 and / or the column 21. By arranging a plurality of tube bodies 23, the hardness of the two columns 21 and the crossbeam 22 is increased, thereby ensuring the safety of the frame 20.
[0058] In another embodiment, a mesh testing device includes a frame assembly 100. The frame assembly 100 is a part of the mesh testing device. The mesh testing device is used to measure the maximum force, elongation, stress and deformation of the entire mesh, and to verify the rationality of the mesh structure design.
[0059] Compared with the prior art, the beneficial effects of the present invention are:
[0060] The present invention provides a frame assembly 100 and a mesh testing device, wherein the frame 20 is movably mounted on the foundation 10 and can move along the length direction of the foundation 10 to adjust the position of the frame 20 relative to the foundation 10; the support arm 30 is arranged on one side of the frame 20 and connected to the frame 20; a plurality of optical components 40 are respectively mounted on the frame 20 and the support arm 30, and the plurality of optical components 40 move with the movement of the frame 20, and the output ends of the plurality of optical components 40 are all facing the bottom of the frame 20, and an optical area 40a is formed between the plurality of optical components 40, and the optical area 40a controls the environment below the frame 20 to facilitate fill light or shooting of the test position, thereby being compatible with different test positions and ensuring the versatility of the frame assembly 100.
[0061] In the above embodiments, the description of each embodiment has its own focus. For parts that are not described in detail in a certain embodiment, reference can be made to the relevant descriptions of other embodiments.
[0062] In the description of this application, the terms "first" and "second" are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the number of technical features indicated. Therefore, features specified as "first" or "second" may explicitly or implicitly include one or more features.
[0063] This document uses specific examples to illustrate the principles and implementation methods of this application. The description of the above embodiments is only used to help understand the method and core ideas of this application. At the same time, for technical personnel in this field, based on the ideas of this application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on this application.
Claims
1. A frame assembly, characterized in that: Applicable to mesh testing equipment; the frame assembly includes: foundation; a frame movably mounted on the foundation and capable of moving along the length of the foundation; a support arm, disposed on one side of the frame and connected to the frame; A plurality of optical components are respectively mounted on the frame and the support arm. Output ends of the plurality of optical components are all directed downwards toward the frame. An optical area is formed between the plurality of optical components.
2. The frame assembly according to claim 1, wherein: A moving component is provided between the frame and the foundation. The fixed end of the moving component is installed on the foundation, and the moving end is connected to the frame to assist the movement of the frame.
3. The frame assembly according to claim 2, wherein: The moving component includes a slide rail and a slide seat, wherein the slide rail extends along the length direction of the foundation and is installed on the foundation; The sliding seat is movably sleeved on the sliding rail and carries the frame.
4. The frame assembly according to claim 1, wherein: The supporting arm is swingably connected to the frame and carries at least one optical component.
5. The frame assembly according to claim 4, wherein: A telescopic member is provided between the support arm and the frame. One end of the support arm is hinged to the frame. The fixed end of the telescopic member is connected to the frame, and the telescopic end is connected to the support arm, driving the support arm to swing relative to the frame.
6. The frame assembly according to claim 1, wherein: The plurality of optical components are arranged in a circular direction below the frame and are respectively mounted on the frame and the support arm.
7. The frame assembly according to claim 6, wherein: The frame includes two upright posts arranged opposite to each other; The plurality of optical components include a plurality of lighting lamps, which are respectively mounted on the two columns; the plurality of lighting lamps are arranged obliquely relative to the corresponding columns and face downwards of the frame.
8. The frame assembly according to claim 7, wherein: The frame includes a crossbeam; the crossbeam is located between the two columns and connected to the two columns; The plurality of optical components include a plurality of optical measuring pieces, and the plurality of optical measuring pieces are respectively mounted on the support arms; the plurality of optical measuring pieces are arranged obliquely relative to the corresponding support arms and face downwardly of the frame; An optical area is formed between the plurality of optical measuring components and the plurality of illumination lamps.
9. The frame assembly according to claim 8, wherein: The frame is formed by connecting a plurality of tubes, wherein the plurality of tubes respectively form two columns and a crossbeam; the crossbeam is located between the two columns and is connected to the two columns; A reinforcement structure is formed between at least two of the tubes, and the reinforcement structure is arranged on the beam and / or the column.
10. A mesh testing device, characterized in that: Comprising a frame assembly as claimed in any one of claims 1 to 9.