A high-efficiency non-destructive testing device for container and pipeline welds
The integrated design of the non-destructive testing device solves the problem of reliance on manual operation, achieves efficient and uniform application and testing of coupling agent, improves the convenience of testing and data consistency, and is suitable for modern mass production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- LUXI IND EQUIP
- Filing Date
- 2025-07-03
- Publication Date
- 2026-07-17
AI Technical Summary
Existing non-destructive testing equipment relies on manual operation for high-efficiency container and pipeline weld inspection, which has problems such as uneven application of coupling agent, equipment shaking, blind spots, and differences in test data across batches, making it difficult to meet the needs of modern mass production.
Design an integrated nondestructive testing device, including an operating table, clamping device, coating device and testing components, to achieve uniform coating and testing of coupling agent through a mechanized and automated process, reducing manual intervention.
It improves the convenience and consistency of inspection, significantly reduces manual operation time, ensures the quality of weld inspection and the traceability of data, and meets the needs of mass production.
Smart Images

Figure CN224518659U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of weld inspection technology, specifically to a high-efficiency non-destructive testing device for container and pipeline welds. Background Technology
[0002] In the current manufacturing process of high-efficiency container pipelines, weld quality inspection, as a key link in ensuring the pressure-bearing performance and service safety of pipelines, is facing a profound contradiction between traditional inspection methods and the needs of modern mass production. Although existing non-destructive testing technologies can achieve non-destructive detection of internal defects in materials, their operational paradigm remains stuck in a primitive stage that heavily relies on manual intervention. Whenever a batch of pipelines needs to be systematically inspected, operators must first use a brush to repeatedly apply coupling agent to the cold metal weld surface—this viscous liquid acts as the "sound transmission medium" for ultrasonic probes, and a continuous and uniform film must be formed on the weld surface to ensure effective sound wave transmission. The application process not only requires operators to bend over and kneel to follow the winding weld trajectory, but also to precisely control the thickness of the liquid: too thick a layer will form a sound wave scattering layer, while too thin a layer will create air gaps that block the sound. The whole process is like drawing a precise ink painting on a steel plate; the slightest oversight requires rework and recoating.
[0003] An even more challenging phase arises during the actual inspection. Operators must simultaneously support the several-kilogram flaw detector unit with both hands while manipulating a testing gun connected to a probe the size of a bowl. For ultrasonic waves to effectively penetrate thick-walled pipes, the probe must be held tightly against the pipe wall at a specific angle and moved at a uniform, serpentine speed within the weld area. When inspecting vertical pipe welds at heights, inspectors must frequently adjust their positions on narrow scaffolding. The combined effect of equipment swaying caused by strong winds and natural fatigue vibrations often leads to the probe accidentally detaching from the inspection surface. The most critical issue in batch operations lies in the fragmented workflow: by the time the operator finishes applying the coupling agent to the last pipe, the initially treated coupling agent on the pipe surface has already dried and become ineffective, forcing the inspection process into a vicious cycle of "apply, dry, touch up."
[0004] When inspecting curved pipe fittings, the human eye struggles to accurately determine whether the probe has completely covered the target area, and unavoidable blind spots exist in certain special locations (such as the base of pipe flanges). Even more worrying is that in large-scale engineering projects with round-the-clock shifts, differences in inspection techniques among operators—fluctuations in probe movement speed, uneven pressure application, and arbitrary path planning—make cross-batch inspection data appear as if the same object is being measured with different rulers, severely hindering the establishment of a quality traceability system. Utility Model Content
[0005] To address the issue that current non-destructive testing devices consist of an operator and a testing head, which require operators to apply coupling agent to the pipeline and manually handle the operator, this method is not suitable for large-scale pipeline testing.
[0006] This utility model provides a high-efficiency non-destructive testing device for weld seams in containers and pipelines, comprising:
[0007] The control panel has mounting brackets on both sides of its surface, and clamping devices are provided on opposite sides of the two mounting brackets. A motor is mounted on one side of one of the mounting brackets.
[0008] An adjustment device is disposed between the operating table and one of the mounting brackets;
[0009] A movable component, wherein the movable component is disposed on the side of the operating table;
[0010] An applicator is provided above the movable component. The applicator includes a hydraulic telescopic rod, a connecting frame is connected to the top end of the hydraulic telescopic rod, and an arc-shaped applicator tube is connected to one end of the connecting frame.
[0011] A placement assembly is disposed on the surface of the hydraulic telescopic rod. The placement assembly includes a rotating ring, a hydraulic rod connected to one side of the rotating ring, a Z-shaped fixing rod connected to one end of the hydraulic rod, and a placement box connected to one end of the Z-shaped fixing rod.
[0012] A detection component, wherein the detection component is disposed on the placement box;
[0013] A support device is provided on one side of the Z-shaped fixing rod;
[0014] A conveying device is disposed at the bottom of the operating table;
[0015] A lifting frame is installed at the center of the operating table surface.
[0016] Preferably, the clamping device includes a circular base, a double-headed hydraulic telescopic rod is installed on one side of the circular base, both ends of the double-headed hydraulic telescopic rod are connected to movable frames, one end of each of the two movable frames is connected to an arc-shaped clamping block, and the inside of the arc-shaped clamping block is bonded with a rubber pad.
[0017] Preferably, the adjusting device includes a hydraulic adjusting rod, one end of which is connected to an adjusting block. The surface of the operating table is provided with an adjusting groove that matches the adjusting block. An extension frame is connected to the surface of the adjusting block, and one end of the extension frame is connected to the bottom end of the mounting frame.
[0018] Preferably, the movable component includes a fixed rod, the surface of which is fitted with a movable sleeve, and both ends of the fixed rod are connected to fixed blocks, with one side of each of the two fixed blocks connected to the side of the operating table.
[0019] Preferably, the support device includes a first hydraulic support rod, one end of which is connected to a second hydraulic support rod via a connecting block, and the top end of the second hydraulic support rod is connected to a bracket via a connecting block.
[0020] Preferably, the detection component includes an operator, one side of which is connected to a connecting line, and one end of the connecting line is connected to a detection head.
[0021] Preferably, the conveying device includes a housing, a pump body is installed on one side of the housing, and a conveying pipe is connected to both the input and output ends of the pump body. One end of the conveying pipe is connected to one end of the arc-shaped applicator tube.
[0022] Preferably, a disassembly assembly is provided between the extension frame and the mounting frame. The disassembly assembly includes a disassembly sleeve, and a disassembly head is plugged into the disassembly sleeve. One end of the disassembly head is connected to the bottom end of the mounting frame, and a fixing bolt is provided between the disassembly sleeve and the disassembly head.
[0023] Preferably, a movable component is provided on one side of the placement box. The movable component includes a movable plate, and two locking blocks are connected to both sides of the movable plate. The inner wall of the placement box has slots on both sides that are adapted to the two locking blocks. A limit bolt is provided between the placement box and the locking blocks.
[0024] The detection method of this utility model using the high-efficiency container pipe weld non-destructive testing device includes the following steps:
[0025] S1. When inspecting the weld seam of the pipeline, first, contact one end of the finished pipeline with the mounting bracket equipped with a motor. After one end of the pipeline contacts one of the mounting brackets, start the hydraulic adjusting rod to move the adjusting block inside the adjusting groove. When the adjusting block moves inside the adjusting groove, it drives the extension bracket on the surface to move. When the extension bracket moves, it drives the other mounting bracket to move and contact the other end of the pipeline. After the two mounting brackets contact the two ends of the pipeline respectively, start the two double-headed hydraulic telescopic rods to move the movable brackets at both ends. When the two movable brackets move, they drive the two arc-shaped clamping blocks to contact the pipeline and squeeze and fix it.
[0026] S2. After the pipeline is fixed in S1, the hydraulic telescopic rod is started to drive the arc-shaped coating tube to contact the pipeline through the connecting frame. After the arc-shaped coating tube contacts the pipeline, the left and right positions are adjusted by pulling the hydraulic telescopic rod and using the action of the moving sleeve and the fixed rod. After the arc-shaped coating tube moves to the welding point with the pipeline, the pump body is started to deliver the coupling agent inside the box to the surface of the pipeline through two delivery pipes. When the arc-shaped coating tube applies the coupling agent to the surface of the pipeline, the motor is started to drive the pipeline to rotate through the circular seat and two arc-shaped clamping blocks so that the coupling agent is evenly applied to the surface of the pipeline.
[0027] S3. After the coupling agent is evenly applied to the surface of the pipe in S2, the arc-shaped coating tube is moved away from the pipe by the hydraulic telescopic rod. Then, the detection head is moved above the pipe detection position by the moving sleeve and the fixed rod. Then, the detection head is moved to the welding position of the pipe by the second hydraulic support rod and the bracket. Then, the motor is started and the pipe is rotated by the arc-shaped clamping block. At the same time, the pipe weld is detected by the operating instrument.
[0028] The beneficial effects of this utility model are as follows:
[0029] This invention, through innovative integrated design and process reengineering, transforms traditional fragmented manual operations into a mechanized, automated, and intelligent continuous operation system. Specifically, the operator first places the pipe to be inspected on the operating table support frame, then activates the hydraulic adjusting rod in the adjusting device, pushing the extension frame and mounting frame to slide along the adjusting groove, causing the clamping devices on both sides to automatically align with the pipe end face. At this time, the double-headed hydraulic telescopic rod synchronously drives the arc-shaped clamping blocks at both ends to close. The internal rubber pads undergo elastic deformation upon contact with the pipe wall, forming a flexible clamping structure that adapts to the pipe diameter, completely eliminating the risk of indentation damage to the pipe wall caused by traditional clamps. After the fixing process is completed, the hydraulic telescopic rod drives the connecting frame to vertically lower the arc-shaped coating tube to the weld area. The pump body located below the operating table immediately presses the coupling agent inside the box into the arc-shaped coating tube through the delivery pipe. As the pipe is rotated by the motor, the high-viscosity coupling agent is continuously squeezed into a uniformly thick film of 0.1-0.3mm. The entire process takes only one-eighth of the time required for traditional manual coating. During operation, the pipe can be placed in the device, and the device can be used to apply coupling agent and the detection component can be used to detect the pipe, which significantly improves the convenience of operation for operators. Attached Figure Description
[0030] To make the content of this utility model easier to understand, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings, wherein...
[0031] Figure 1 A schematic diagram of the structure of Embodiment 1 provided by this utility model;
[0032] Figure 2 for Figure 1 The enlarged schematic diagram of part A shown below;
[0033] Figure 3 for Figure 1 The diagram shows a three-dimensional structure of the non-destructive testing device from a first-view perspective.
[0034] Figure 4 for Figure 3 The enlarged schematic diagram of section B is shown below;
[0035] Figure 5 for Figure 1 A three-dimensional structural diagram of the non-destructive testing device from a second perspective;
[0036] Figure 6 for Figure 5 The enlarged schematic diagram of section C is shown below;
[0037] Figure 7 A schematic diagram of the structure of Embodiment 2 provided by this utility model;
[0038] Figure 8 A schematic diagram of the structure of Embodiment 3 provided by this utility model;
[0039] Figure 9 for Figure 8 The enlarged schematic diagram of part D is shown.
[0040] The diagram shows: 1. Control panel; 2. Mounting bracket; 3. Motor.
[0041] 4. Clamping device; 41. Circular seat; 42. Double-headed hydraulic telescopic rod; 43. Movable frame; 44. Arc-shaped clamping block; 45. Rubber pad;
[0042] 5. Adjustment device; 51. Hydraulic adjustment rod; 52. Adjustment block; 53. Adjustment groove; 54. Extension frame;
[0043] 6. Moving component; 61. Fixed rod; 62. Moving sleeve; 63. Fixed block;
[0044] 7. Application device; 71. Hydraulic telescopic rod; 72. Connecting frame; 73. Arc-shaped application tube;
[0045] 8. Placement component; 81. Rotating ring; 82. Hydraulic rod; 83. Z-shaped fixing rod; 84. Placement box;
[0046] 9. Support device; 91. First hydraulic support rod; 92. Second hydraulic support rod; 93. Bracket;
[0047] 10. Detection components; 101. Operator; 102. Connecting cable; 103. Detection head;
[0048] 11. Conveying device; 111. Housing; 112. Pump body; 113. Conveying pipe;
[0049] 12. Lifting frame;
[0050] 13. Disassembly of components; 131. Disassembly sleeve; 132. Disassembly head; 133. Fixing bolt;
[0051] 14. Active component; 141. Active plate; 142. Card block; 143. Card slot; 144. Limit bolt. Detailed Implementation
[0052] To illustrate the features of this utility model, the following description, in conjunction with the accompanying drawings and embodiments, will further explain this utility model.
[0053] Example 1:
[0054] Please refer to the following: Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6 ,in, Figure 1 A schematic diagram of the structure of Embodiment 1 of the high-efficiency container and pipeline weld non-destructive testing device provided by this utility model; Figure 2 for Figure 1 The enlarged schematic diagram of part A shown below; Figure 3 for Figure 1 The diagram shows a three-dimensional structure of the non-destructive testing device from a first-view perspective. Figure 4 for Figure 3 The enlarged schematic diagram of section B is shown below; Figure 5 for Figure 1 A three-dimensional structural diagram of the non-destructive testing device from a second perspective; Figure 6 for Figure 5 The enlarged schematic diagram of section C is shown. A high-efficiency non-destructive testing device for vessel and pipeline welds includes:
[0055] The operating table 1 has mounting brackets 2 on both sides of its surface, and clamping devices 4 are provided on opposite sides of the two mounting brackets 2. A motor 3 is installed on one side of one of the mounting brackets 2.
[0056] Adjustment device 5, wherein the adjustment device 5 is disposed between the operating table 1 and one of the mounting brackets 2;
[0057] Movable component 6, which is disposed on the side of the operating table 1;
[0058] The applicator 7 is disposed above the moving component 6. The applicator 7 includes a hydraulic telescopic rod 71, the top end of which is connected to a connecting frame 72, and one end of the connecting frame 72 is connected to an arc-shaped applicator tube 73.
[0059] Placement component 8 is disposed on the surface of the hydraulic telescopic rod 71. The placement component 8 includes a rotating ring 81, a hydraulic rod 82 connected to one side of the rotating ring 81, a Z-shaped fixing rod 83 connected to one end of the hydraulic rod 82, and a placement box 84 connected to one end of the Z-shaped fixing rod 83.
[0060] Detection component 10, the detection component 10 being disposed on the placement box 84;
[0061] Support device 9, which is disposed on one side of the Z-shaped fixing rod 83;
[0062] A conveying device 11 is disposed at the bottom of the operating table 1;
[0063] The lifting frame 12 is installed at the center of the operating table surface.
[0064] The clamping device 4 includes a circular seat 41, on one side of which a double-headed hydraulic telescopic rod 42 is installed. Both ends of the double-headed hydraulic telescopic rod 42 are connected to movable frames 43. One end of each of the two movable frames 43 is connected to an arc-shaped clamping block 44. An adhesive pad 45 is bonded inside the arc-shaped clamping block 44.
[0065] The double-headed hydraulic telescopic rod 42 is installed at the center of the surface of the circular seat 41 via a fixing ring. One of the circular seats 41 is connected to the motor 3, and the other circular seat 41 is rotatably connected to one side of one of the mounting brackets 2 via a rotating shaft.
[0066] The adjustment device 5 includes a hydraulic adjustment rod 51, one end of which is connected to an adjustment block 52. The surface of the operating table 1 is provided with an adjustment groove 53 that is adapted to the adjustment block 52. An extension frame 54 is connected to the surface of the adjustment block 52, and one end of the extension frame 54 is connected to the bottom end of the mounting frame 2.
[0067] The hydraulic adjusting rod 51 is installed at the center of one end of the operating table 1. The use of the hydraulic adjusting rod 51, adjusting block 52 and adjusting groove 53 facilitates the adjustment of the mounting bracket 2 of one of the driving clamping devices 4 to adapt to the installation of pipes of different sizes.
[0068] The movable component 6 includes a fixed rod 61, a movable sleeve 62 is fitted on the surface of the fixed rod 61, and fixed blocks 63 are connected to both ends of the fixed rod 61. One side of each of the two fixed blocks 63 is connected to the side of the operating table 1.
[0069] Bolts are provided on the surface of the movable sleeve 62, and multiple threaded holes that are compatible with the bolts are provided on the surface of the fixed rod 61.
[0070] The support device 9 includes a first hydraulic support rod 91, one end of which is connected to a second hydraulic support rod 92 via a connecting block, and the top end of the second hydraulic support rod 92 is connected to a bracket 93 via a connecting block.
[0071] The first hydraulic support rod 91 is connected to the Z-shaped fixing rod 83 through the connecting sleeve. The use of the first hydraulic support rod 91 and the second hydraulic support rod 92 can adjust the position of the detection head 103 through the bracket 93. The operating instrument 101 is installed inside the placement box 84 for use. A U-shaped groove is provided at one end of the placement box 84 to facilitate the installation of the connecting wire 102.
[0072] The detection component 10 includes an operator 101, one side of which is connected to a connecting line 102, and one end of the connecting line 102 is connected to a detection head 103.
[0073] The conveying device 11 includes a housing 111, a pump body 112 is installed on one side of the housing 111, and both the input and output ends of the pump body 112 are connected to a conveying pipe 113. One end of the conveying pipe 113 is connected to one end of the arc-shaped applicator 73.
[0074] The detection method of the detection device provided in this embodiment includes the following steps:
[0075] S1. When inspecting the weld of the pipeline, first, one end of the finished pipeline is brought into contact with the mounting bracket 2 with the motor 3. After one end of the pipeline is in contact with one of the mounting brackets 2, the hydraulic adjusting rod 51 is activated to drive the adjusting block 52 to move inside the adjusting groove 53. When the adjusting block 52 moves inside the adjusting groove 53, it drives the extension bracket 54 on the surface to move. When the extension bracket 54 moves, it drives the other mounting bracket 2 to move and contact the other end of the pipeline. After the two mounting brackets 2 are in contact with the two ends of the pipeline respectively, the two double-headed hydraulic telescopic rods 42 are activated to drive the movable brackets 43 at both ends to move. When the two movable brackets 43 move, they drive the two arc-shaped clamping blocks 44 to contact the pipeline and squeeze and fix it.
[0076] S2. After the pipe is fixed in S1, the hydraulic telescopic rod 71 is started and the arc-shaped coating tube 73 is brought into contact with the pipe through the connecting frame 72. After the arc-shaped coating tube 73 is in contact with the pipe, the hydraulic telescopic rod 71 is pulled to adjust the left and right position under the action of the moving sleeve 62 and the fixed rod 61. After the arc-shaped coating tube 73 moves to the welding point with the pipe, the pump body 112 is started to transport the coupling agent inside the box 111 to the surface of the pipe through the two delivery pipes 113. When the arc-shaped coating tube 73 applies the coupling agent to the surface of the pipe, the motor 3 is started to drive the pipe to rotate through the circular seat 41 and the two arc-shaped clamping blocks 44 so that the coupling agent is evenly applied to the surface of the pipe.
[0077] S3. After the coupling agent is evenly applied to the surface of the pipe in S2, the arc-shaped coating tube 73 is moved away from the pipe by the hydraulic telescopic rod 71. Then, the detection head 103 is moved above the pipe detection position by the moving sleeve 62 and the fixed rod 61. Then, the detection head 103 is moved to the welding position of the pipe by the second hydraulic support rod 92 and the bracket 93. Then, the motor 3 is started to drive the pipe to rotate by the arc-shaped clamping block 44. At the same time, the pipe weld is detected by the operating instrument 101.
[0078] Compared with related technologies, the high-efficiency non-destructive testing device for container and pipeline welds provided by this utility model has the following advantages:
[0079] This utility model provides a high-efficiency non-destructive testing device for container pipe welds. The device consists of a mounting bracket 2, two clamping devices 4, a motor 3, an adjusting device 5, a moving component 6, an application device 7, a placement component 8, a testing component 10, a support device 9, and a conveying device 11, which work together on both sides of the operating table 1. During operation, the pipe can be placed in the device, and the device can apply the coupling agent while the testing component 10 tests the pipe. This method improves the convenience of operation for the operator.
[0080] Example 2:
[0081] Please refer to the following: Figure 7 Based on the efficient non-destructive testing device for vessel and pipeline welds provided in Embodiment 1 of this application, Embodiment 2 of this application proposes another efficient non-destructive testing device for vessel and pipeline welds. Embodiment 2 is merely a preferred embodiment of Embodiment 1, and the implementation of Embodiment 2 will not affect the individual implementation of Embodiment 1.
[0082] Specifically, the difference in the high-efficiency container pipe weld non-destructive testing device provided in Embodiment 2 of this application is that, in the high-efficiency container pipe weld non-destructive testing device, a disassembly assembly 13 is provided between the extension frame 54 and the mounting frame 2. The disassembly assembly 13 includes a disassembly sleeve 131, and a disassembly head 132 is plugged into and connected to the disassembly sleeve 131. One end of the disassembly head 132 is connected to the bottom end of the mounting frame 2, and a fixing bolt 133 is provided between the disassembly sleeve 131 and the disassembly head 132.
[0083] The disassembly sleeve 131 is connected to one end of the extension frame 54.
[0084] The working principle of the high-efficiency container and pipeline weld non-destructive testing device provided by this utility model is as follows:
[0085] When using the extension frame 54, when disassembling the mounting bracket 2, first remove the fixing bolt 133 between the disassembly sleeve 131 and the disassembly head 132. After the fixing bolt 133 is removed, pull the mounting bracket 2 to separate the disassembly head 132 from the disassembly sleeve 131.
[0086] Compared with related technologies, the high-efficiency non-destructive testing device for container and pipeline welds provided by this utility model has the following advantages:
[0087] This utility model provides a high-efficiency non-destructive testing device for container pipe welds. A disassembly component 13 is provided between the mounting frame 2 and the extension frame 54 to facilitate the installation and disassembly of the mounting frame 2 and the extension frame 54, which is convenient for the installation operation of long pipes.
[0088] Example 3:
[0089] Please refer to the following: Figure 8 and Figure 9 Based on the efficient non-destructive testing device for vessel and pipeline welds provided in Embodiment 1 of this application, Embodiment 3 of this application proposes another efficient non-destructive testing device for vessel and pipeline welds. Embodiment 3 is merely a preferred embodiment of Embodiment 1, and the implementation of Embodiment 3 will not affect the individual implementation of Embodiment 1.
[0090] Specifically, the difference in the high-efficiency container and pipeline weld non-destructive testing device provided in Embodiment 3 of this application is that, in the high-efficiency container and pipeline weld non-destructive testing device, a movable component 14 is provided on one side of the placement box 84, the movable component 14 includes a movable plate 141, and a locking block 142 is connected to both sides of the movable plate 141. The inner wall of the placement box 84 is provided with a locking groove 143 on both sides that is adapted to the two locking blocks 142, and a limit bolt 144 is provided between the placement box 84 and the locking block 142.
[0091] A U-shaped mounting groove adapted to the movable plate 141 is provided on one side of the placement box 84. The use of the locking block 142 and the locking groove 143 facilitates the connection between the movable plate 141 and the placement box 84. A limiting hole adapted to the limiting bolt 144 is provided between the placement box 84 and the locking block 142.
[0092] The working principle of the high-efficiency container and pipeline weld non-destructive testing device provided by this utility model is as follows:
[0093] When using the device 101 inside the placement box 84, first remove the limiting bolt 144 between the placement box 84 and the locking block 142. After the limiting bolt 144 is removed, pull the movable plate 141 upward. When the movable plate 141 moves upward, it will cause the locking blocks 142 on both sides to separate from the locking grooves 143 on both sides of the inner wall of the placement box 84.
[0094] Compared with related technologies, the high-efficiency non-destructive testing device for container and pipeline welds provided by this utility model has the following advantages:
[0095] This utility model provides a high-efficiency non-destructive testing device for container and pipeline welds. A movable component 14 is provided at one end of the placement box 84 to facilitate the installation and removal of the operating instrument 101 from the placement box 84.
[0096] The above embodiments and accompanying drawings are only used to illustrate the technical solutions of this utility model and are not intended to limit this utility model. This utility model has been described in detail with reference to preferred embodiments. Those skilled in the art should understand that any changes, modifications, additions, or substitutions made by those skilled in the art within the scope of this utility model do not depart from the spirit of this utility model and should also fall within the protection scope of the claims of this utility model. Other related technical structures not disclosed in detail in this utility model are existing technologies in the art.
Claims
1. A high-efficiency non-destructive testing device for weld seams in containers and pipelines, characterized in that, include: The operating table (1) has mounting brackets (2) on both sides of its surface. Each of the two mounting brackets (2) has a clamping device (4) on one side opposite to the other. A motor (3) is installed on one side of one of the mounting brackets (2). Adjustment device (5), the adjustment device (5) is disposed between the operating table (1) and one of the mounting brackets (2); A movable component (6) is disposed on the side of the operating table (1); The applicator (7) is located above the moving component (6). The applicator (7) includes a hydraulic telescopic rod (71), the top end of which is connected to a connecting frame (72), and one end of the connecting frame (72) is connected to an arc-shaped applicator tube (73). Placement assembly (8) is disposed on the surface of the hydraulic telescopic rod (71). The placement assembly (8) includes a rotating ring (81), a hydraulic rod (82) is connected to one side of the rotating ring (81), a Z-shaped fixing rod (83) is connected to one end of the hydraulic rod (82), and a placement box (84) is connected to one end of the Z-shaped fixing rod (83). Support device (9), which is disposed on one side of the Z-shaped fixing rod (83); A detection component (10) is disposed on the placement box (84); A conveying device (11) is disposed at the bottom of the operating table (1); A lifting frame (12) is installed at the center of the surface of the operating table (1).
2. The high efficiency vessel pipe weld non-destructive testing apparatus of claim 1, wherein: The clamping device (4) includes a circular seat (41), on one side of which is a double-headed hydraulic telescopic rod (42). Both ends of the double-headed hydraulic telescopic rod (42) are connected to movable frames (43), and one end of each of the two movable frames (43) is connected to an arc-shaped clamping block (44). The inside of the arc-shaped clamping block (44) is bonded with a rubber pad (45).
3. The apparatus of claim 1, wherein: The adjustment device (5) includes a hydraulic adjustment rod (51), one end of which is connected to an adjustment block (52). The surface of the operating table (1) is provided with an adjustment groove (53) that is compatible with the adjustment block (52). The surface of the adjustment block (52) is connected to an extension frame (54), one end of which is connected to the bottom end of the mounting frame (2).
4. The apparatus of claim 1, wherein: The movable component (6) includes a fixed rod (61), and a movable sleeve (62) is fitted on the surface of the fixed rod (61). Both ends of the fixed rod (61) are connected to fixed blocks (63), and one side of each of the two fixed blocks (63) is connected to the side of the operating table (1).
5. The apparatus of claim 1, wherein: The support device (9) includes a first hydraulic support rod (91), one end of which is connected to a second hydraulic support rod (92) via a connecting block, and the top end of the second hydraulic support rod (92) is connected to a bracket (93) via a connecting block.
6. The apparatus of claim 1, wherein: The detection component (10) includes an operator (101), one side of which is connected to a connecting line (102), and one end of the connecting line (102) is connected to a detection head (103).
7. The apparatus of claim 1, wherein: The conveying device (11) includes a housing (111), a pump body (112) is installed on one side of the housing (111), and a conveying pipe (113) is connected to both the input end and the output end of the pump body (112). One end of the conveying pipe (113) is connected to one end of the arc-shaped applicator (73).
8. The apparatus of claim 3, wherein: A disassembly assembly (13) is provided between the extension frame (54) and the mounting frame (2). The disassembly assembly (13) includes a disassembly sleeve (131), which is pluggably connected to a disassembly head (132). One end of the disassembly head (132) is connected to the bottom end of the mounting frame (2). A fixing bolt (133) is provided between the disassembly sleeve (131) and the disassembly head (132).
9. The apparatus of claim 1, wherein: A movable component (14) is provided on one side of the placement box (84). The movable component (14) includes a movable plate (141). Both sides of the movable plate (141) are connected to a locking block (142). Both sides of the inner wall of the placement box (84) are provided with a slot (143) that is adapted to the two locking blocks (142). A limit bolt (144) is provided between the placement box (84) and the locking block (142).