Multi-mode nondestructive testing integrated system
By designing a multimodal nondestructive testing integrated system, and utilizing the automatic fixing and position adjustment of the testing frame and components, the system solves the problems of operational difficulties and inaccurate data caused by manual handling in the testing of large steel components, and achieves efficient and accurate testing.
Patent Information
- Application Number
- CN202423064930.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-12
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2034-12-12
AI Technical Summary
Existing non-destructive testing equipment requires manual handling of large steel components when inspecting them, which makes operation difficult and results in inaccurate data.
A multimodal nondestructive testing integrated system was designed, including a testing frame, testing components, adjustment components, displacement components, and positioning components. Through the cooperation of these components, automatic fixing and position adjustment of steel components can be achieved, avoiding manual handling.
It enables precise inspection of large steel components, improves inspection efficiency and data accuracy, and simplifies the operation process.
Smart Images

Figure CN223742459U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of steel component testing technology, and in particular to a multimodal nondestructive testing integrated system. Background Technology
[0002] Steel components refer to steel structural composite components that can bear and transmit loads, made of steel plates, angle steel, channel steel, I-beams, welded or hot-rolled H-beams that are cold-bent or welded together with connectors.
[0003] However, in the use of existing non-destructive testing equipment, users generally place the steel components on the workbench of the non-destructive testing equipment and then hold the steel components by hand for testing.
[0004] Based on the aforementioned technologies, the applicant believes that holding steel components by hand is only suitable for inspecting small steel components. If inspecting large steel components, holding the steel components by hand makes it impossible to operate the inspection body for inspection, which can easily lead to inaccurate data. In response to the above problems, we have launched a multimodal nondestructive testing integrated system. Utility Model Content
[0005] This utility model discloses a multimodal nondestructive testing integrated system, which aims to solve the technical problem that holding steel components by hand is only suitable for testing small steel components. However, when testing large steel components, it is impossible to operate the testing body by holding the steel component by hand, which can easily lead to inaccurate data.
[0006] To achieve the above objectives, the present invention adopts the following technical solution:
[0007] A multimodal nondestructive testing integrated system includes a testing frame with feet symmetrically fixedly connected to its bottom. A testing component and a testing mechanism are located on the top of the testing frame. The testing mechanism includes an adjustment component, a displacement component, and a positioning component, which cooperate with each other. Each adjustment component includes slide rails symmetrically fixedly connected to the top of the testing frame. Sliding blocks are slidably connected to the outer sides of both slide rails. A sliding frame is fixedly connected between the two sliding blocks. Blocks are fixedly connected to both sides of the two slide rails. An adjustment block is slidably connected to the outer side of the sliding frame. A testing component is fixedly connected to the bottom of the adjustment block. The testing component and the testing mechanism cooperate with each other.
[0008] The established testing mechanism can perform fixed clamping testing on multimodal steel components without requiring manual support, thus improving testing efficiency, ensuring the accuracy of test data, and offering a simple structure with strong practicality.
[0009] In a preferred embodiment, the displacement assembly includes fixed blocks symmetrically fixedly connected to both sides of the bottom inner wall of the detection frame. A sliding rod is fixedly connected between the two fixed blocks on the same side. Moving blocks are slidably connected to the outer sides of both sliding rods. Support plates are fixedly connected to the tops of the two moving blocks. A threaded rod is rotatably connected to the bottom inner wall of the detection frame. A displacement block is threadedly connected to the outer side of the threaded rod. The top of the displacement block is fixedly connected to the bottom of the support plate. A first gear is fixedly connected to the outer side of the threaded rod. A motor is fixedly connected to the bottom of the detection frame. A second gear is fixedly connected to the output end of the motor. The first and second gears are meshed together.
[0010] By setting up displacement components, the detection position of steel components can be adjusted, and the support plate can be transported.
[0011] In a preferred embodiment, the positioning component includes an L-shaped barrier frame, which is fixedly connected to the top side of the support plate. A cylinder is fixedly connected to the top of the support plate on the side away from the L-shaped barrier frame. A fixing frame is fixedly connected to the telescopic end of the cylinder. The fixing frame and the L-shaped barrier frame are used in cooperation with each other.
[0012] By setting up positioning components, multimodal steel components can be clamped and fixed, improving clamping efficiency.
[0013] In a preferred embodiment, the interior of the testing frame is symmetrically provided with transparent windows for observation.
[0014] The transparent window allows staff to easily observe the condition of the steel components during the inspection process.
[0015] In a preferred embodiment, silicone pads for protection are fixedly connected to the sides of the L-shaped barrier and the fixing frame that are close to each other.
[0016] The silicone pads can protect the steel components and provide non-destructive clamping.
[0017] In a preferred embodiment, a controller is fixedly connected to the outside of the detection frame, and the detection components, motor, and cylinder are all electrically connected to the controller.
[0018] The controller allows staff to easily control the opening and closing of the detection components, motors, and cylinders, making operation simpler.
[0019] The multimodal nondestructive testing integrated system provided by this utility model has the following advantages:
[0020] Firstly, the set-up testing mechanism can perform fixed clamping testing on multimodal steel components without the need for manual support, thus improving testing efficiency, ensuring the accuracy of test data, and offering a simple structure with strong practicality.
[0021] Secondly, the transparent window allows staff to easily observe the condition of the steel components during the testing process. The silicone pads protect the steel components and provide non-destructive clamping. The controller allows staff to easily control the opening and closing of the testing components, motors, and cylinders, making operation simpler. Attached Figure Description
[0022] Figure 1 This is a three-dimensional front view schematic diagram of a multimodal nondestructive testing integrated system proposed in this utility model.
[0023] Figure 2 This is a three-dimensional rear view schematic diagram of a multimodal nondestructive testing integrated system proposed in this utility model.
[0024] Figure 3 This is a three-dimensional bottom view of a multimodal nondestructive testing integrated system proposed in this utility model.
[0025] Figure 4 This is a three-dimensional schematic diagram of the testing frame of a multimodal nondestructive testing integrated system proposed in this utility model.
[0026] In the attached diagram: 1. Detection frame; 2. Base; 31. Slide rail; 32. Slider; 33. Barrier block; 34. Sliding frame; 35. Adjusting block; 36. Detection assembly; 41. Fixed block; 42. Sliding rod; 43. Moving block; 44. Threaded rod; 45. Gear No. 1; 46. Motor; 47. Gear No. 2; 48. Support plate; 49. Displacement block; 5. L-shaped barrier frame; 6. Cylinder; 7. Fixed frame; 8. Transparent window; 9. Controller. Detailed Implementation
[0027] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. The components of the embodiments of this application described and marked in the accompanying drawings can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of this application provided in the accompanying drawings is not intended to limit the scope of the claimed application, but merely to illustrate selected embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of this application.
[0028] The multimodal nondestructive testing integrated system disclosed in this utility model is mainly applied to the testing of steel components.
[0029] Reference Figure 1 - Figure 4 A multimodal nondestructive testing integrated system includes a testing frame 1. The bottom of the testing frame 1 is symmetrically and fixedly connected to base feet 2. A testing component 36 is provided on the top of the testing frame 1. A testing mechanism is also provided on the top of the testing frame 1. The testing mechanism includes an adjustment component, a displacement component, and a positioning component. The adjustment component, displacement component, positioning component, and testing component 36 cooperate with each other. The adjustment component includes slide rails 31, which are symmetrically and fixedly connected to the top of the testing frame 1. Sliding blocks 32 are slidably connected to the outer sides of both slide rails 31. A sliding frame 34 is fixedly connected between the two sliding blocks 32. Blocks 33 are fixedly connected to both sides of both slide rails 31. An adjustment block 35 is slidably connected to the outer side of the sliding frame 34. The testing component 36 is fixedly connected to the bottom of the adjustment block 35. The testing component 36 and the testing mechanism cooperate with each other. The displacement assembly includes fixed blocks 41, which are symmetrically fixedly connected to both sides of the bottom inner wall of the detection frame 1. A sliding rod 42 is fixedly connected between the two fixed blocks 41 on the same side. A moving block 43 is slidably connected to the outer side of each of the two sliding rods 42. A support plate 48 is fixedly connected to the top of the two moving blocks 43. A threaded rod 44 is rotatably connected to the bottom inner wall of the detection frame 1. A displacement block 49 is threadedly connected to the outer side of the threaded rod 44. The top of the displacement block 49 is fixedly connected to the bottom of the support plate 48. A first gear 45 is fixedly connected to the outer side of the threaded rod 44. A motor 46 is fixedly connected to the bottom of the detection frame 1. A second gear 47 is fixedly connected to the output end of the motor 46. The first gear 45 and the second gear 47 are meshed together. The positioning component includes an L-shaped barrier 5, which is fixedly connected to the top side of the support plate 48. A cylinder 6 is fixedly connected to the top of the support plate 48 and to the side away from the L-shaped barrier 5. A fixing frame 7 is fixedly connected to the telescopic end of the cylinder 6. The fixing frame 7 and the L-shaped barrier 5 work together.
[0030] In this embodiment: the telescopic end of cylinder 6 extends, driving the fixing frame 7 to move closer to the L-shaped barrier frame 5. The fixing frame 7 and the L-shaped barrier frame 5 clamp and fix the irregularly shaped steel component onto the support plate 48. At this time, the operator starts the motor 46. The output end of the motor 46 rotates, driving the threaded rod 44 to rotate. The rotation of the threaded rod 44 drives the displacement block 49 to move. The movement of the displacement block 49 drives the support plate 48 to move until the support plate 48 moves the steel component into the interior of the inspection frame 1. Then, the operator adjusts the inspection position by moving the inspection component 36, and then starts the inspection component 36 to begin inspecting the steel structure. Through the set inspection mechanism, multi-modal steel components can be fixed and clamped for inspection without the need for manual support, improving inspection efficiency, ensuring the accuracy of inspection data, and featuring a simple structure and strong practicality.
[0031] In the above technical solution, considering that manually fixing the steel component is only suitable for inspecting small steel components, and that it is impossible to operate the inspection body while holding the steel component by hand when inspecting large steel components, which can easily lead to inaccurate data, the specific operation is as follows:
[0032] Reference Figure 1 - Figure 4 In a preferred embodiment, the interior of the detection frame 1 is symmetrically provided with transparent windows 8 for observation. The L-shaped barrier frame 5 and the fixing frame 7 are both fixedly connected to protective silicone pads on their adjacent sides. A controller 9 is fixedly connected to the outside of the detection frame 1, and the detection assembly 36, motor 46, and cylinder 6 are all electrically connected to the controller 9.
[0033] In this embodiment, the transparent window 8 allows staff to easily observe the state of the steel components during the inspection process. The silicone pad protects the steel components and provides non-destructive clamping. The controller 9 allows staff to easily control the opening and closing of the inspection component 36, motor 46, and cylinder 6, making operation simpler.
[0034] Working principle: In actual use, the operator can place steel components of different shapes on the support plate 48, and then start the cylinder 6. The telescopic end of the cylinder 6 extends, driving the fixing frame 7 to move closer to the L-shaped barrier frame 5. The fixing frame 7 and the L-shaped barrier frame 5 clamp and fix the irregularly shaped steel components on the support plate 48. Through the set silicone pad, the steel components can be clamped without damage. At this time, the operator starts the motor 46. The output end of the motor 46 rotates, driving the threaded rod 44 to rotate. The rotation of the threaded rod 44 drives the displacement block 49 to move. The movement of the displacement block 49 drives the support plate 48 to move until the support plate 48 moves the steel component into the inside of the detection frame 1. Then, the operator adjusts the detection position by moving the position of the detection component 36, and then starts the detection component 36 to start the detection of the steel structure.
[0035] The above description is merely a preferred embodiment of this utility model, but the protection scope of this utility model is not limited thereto. The substitutions may be replacements of some structures, devices, or method steps, or they may be complete technical solutions. Equivalent substitutions or modifications made based on the technical solution and inventive concept of this utility model should all be covered within the protection scope of this utility model.
Claims
1. A multimodal non-destructive testing integrated system comprising a testing frame (1), characterized in that: The bottom of the detection frame (1) is symmetrically fixedly connected with a foot (2), the top of the detection frame (1) is provided with a detection assembly (36), the top of the detection frame (1) is provided with a detection mechanism, the detection mechanism comprises an adjusting assembly, a displacement assembly and a positioning assembly, the adjusting assembly, the displacement assembly, the positioning assembly and the detection assembly (36) are used in cooperation, the adjusting assembly comprises a sliding rail (31), the sliding rail (31) is fixedly connected to the top of the detection frame (1), the outer sides of the two sliding rails (31) are slidably connected with sliding blocks (32), the sliding blocks (32) are fixedly connected with a sliding frame (34), the two sides of the two sliding rails (31) are fixedly connected with blocking blocks (33), the outer side of the sliding frame (34) is slidably connected with an adjusting block (35), the bottom of the adjusting block (35) is fixedly connected with the detection assembly (36), and the detection assembly (36) and the detection mechanism are used in cooperation.
2. The multi-modal non-destructive testing integrated system of claim 1, wherein: The displacement assembly comprises a fixed block (41), the fixed block (41) is fixedly connected to the inner wall bottom of the detection frame (1) on both sides, the fixed blocks (41) on the same side are fixedly connected with sliding rods (42), the outer sides of the two sliding rods (42) are slidably connected with moving blocks (43), the top of the two moving blocks (43) is fixedly connected with a supporting plate (48), the inner wall bottom of the detection frame (1) is rotatably connected with a threaded rod (44), the outer side of the threaded rod (44) is threadedly connected with a displacement block (49), the top of the displacement block (49) is fixedly connected with the bottom of the supporting plate (48), the outer side of the threaded rod (44) is fixedly connected with a first gear (45), the bottom of the detection frame (1) is fixedly connected with a motor (46), the output end of the motor (46) is fixedly connected with a second gear (47), and the first gear (45) and the second gear (47) are engagedly connected.
3. The multi-modal non-destructive testing integrated system of claim 1, wherein: The positioning assembly comprises an L-shaped blocking frame (5), the L-shaped blocking frame (5) is fixedly connected to one side of the top of the supporting plate (48), the top of the supporting plate (48) and located away from the L-shaped blocking frame (5) is fixedly connected with an air cylinder (6), the telescopic end of the air cylinder (6) is fixedly connected with a fixed frame (7), and the fixed frame (7) and the L-shaped blocking frame (5) are used in cooperation.
4. The multi-modal non-destructive testing integrated system of claim 1, wherein: The inside of the detection frame (1) is symmetrically provided with a transparent window (8) for observation.
5. The multi-modal non-destructive testing integrated system of claim 3, wherein: The side close to each other of the L-shaped blocking frame (5) and the fixed frame (7) is fixedly connected with a silica gel pad for protection.
6. The multi-modal non-destructive testing integrated system of claim 1, wherein: The outer side of the detection frame (1) is fixedly connected with a controller (9), and the detection assembly (36), the motor (46) and the air cylinder (6) are electrically connected with the controller (9).