A stress testing device and method thereof

By designing a stress test device with multi-angle fixation and synchronous rotation, the problem of only one-way detection of stress in the prior art is solved, comprehensive testing and real-time marking of pipe fittings are achieved, and the accuracy and safety of detection are improved.

CN120063534BActive Publication Date: 2025-07-11BUREAU VERITAS INSPECTION TECH (GUANGDONG) CO LTD TIANJIN BRANCH
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Patent Information

Application Number
CN202510530676.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-25
Publication Date
2025-07-11
Estimated Expiration
2045-04-25

AI Technical Summary

Technical Problem

The existing stress testing devices can only perform stress detection in one-way direction, and cannot comprehensively test the stress distribution of pipe fittings, and it is easy to cause damage to pipe fittings during inspection.

Method used

A stress testing device is designed, including an adjustment mechanism, a rotating mechanism and a test mechanism. Through the adjustment mechanism, the multi-angle fixation of the pipe fittings is achieved, the rotation mechanism realizes synchronous rotation of the pipe fittings, and the test mechanism realizes full surface coverage of the strain patch, and marks the stress distribution in real time with the labeling assembly.

Benefits of technology

The comprehensive inspection of the stress of the pipe fittings at different angles is achieved, and the damage caused by mismatch between the stress and the drilling force is avoided, ensuring the accuracy and reliability of the test.

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Abstract

The present invention relates to the technical field of stress testing, and particularly relates to a stress testing device and method, an adjusting mechanism, which includes a support plate, a fixing plate is arranged on the top of the support plate, an adjusting groove is opened inside the fixing plate, a drilling machine is arranged on the surface of the adjusting groove, an adjusting block is arranged on the top of the drilling machine, both the front and rear sides of the adjusting block are connected by screw rods in a transmission manner, a driving motor is arranged on one side of the screw rod, and one side of the driving motor is fixedly connected to the outside of the fixing plate. Through the setting of the testing mechanism, the axial movement of the testing rod is realized, so that the strain gauge can cover the entire surface of the pipe fitting, dynamically capture the stress data at different positions, and mark the positions where the stress difference cannot be drilled in real time during the testing process, avoiding damage caused by the mismatch between the pipe fitting stress and the drilling force. Through the setting of the rotating mechanism, the synchronous movement of the rotating plate and the pipe fitting can be driven, so that the testing rod can test the stress of pipe fittings at different angles.
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Description

Technical Field

[0001] The present invention relates to the technical field of stress testing devices, and in particular to a stress testing device and a method thereof. Background Art

[0002] Stress testing devices are key equipment in industrial testing and materials science. They are used to measure the stress distribution and deformation characteristics of objects under stress. Therefore, after the Qin alloy welded pipe fittings are processed, their restraint stress usually needs to be tested. The existence of residual stress in the pipe fittings will affect the reliability and robustness of the pipe fittings themselves. Therefore, stress testing devices are needed to test the pipe fittings.

[0003] According to the technical effects of the existing technology and technical solutions, there are still areas that need to be optimized: the traditional stress detection device of pipe fittings can generally only perform stress detection in one direction of the pipe fittings during detection, resulting in incomplete test values, and when in use, it cannot be marked according to the stress distribution of the pipe fittings, which can easily cause damage to the pipe fittings during early drilling. Summary of the invention

[0004] The purpose of this section is to summarize some aspects of embodiments of the present invention and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and the specification abstract and the invention title of this application to avoid blurring the purpose of this section, the specification abstract and the invention title, and such simplifications or omissions cannot be used to limit the scope of the present invention.

[0005] In view of the above problems existing in the existing stress testing device, the present invention is proposed.

[0006] Therefore, an object of the present invention is to provide a stress testing device, the purpose of which is to test the stress distribution of a pipe at different angles.

[0007] In order to solve the above technical problems, the present invention provides the following technical solutions:

[0008] An adjustment mechanism, comprising a support plate, a fixing plate is arranged on the top of the support plate, an adjustment slot is opened inside the fixing plate, a drilling machine is arranged on the surface of the adjustment slot, an adjustment block is arranged on the top of the drilling machine, the front and rear sides of the adjustment block are connected by screw transmission, a drive motor is arranged on one side of the screw, and one side of the drive motor is fixedly connected to the outer side of the fixing plate;

[0009] The rotating mechanism comprises a first push rod disposed at both ends of the right side of the fixed plate, a rotating ring is disposed on the right side of the first push rod, a placement plate is disposed on the right side of the rotating ring, a pipe is placed on the surface of the placement plate, and a clamping assembly is disposed on one side of the placement plate; and,

[0010] A testing mechanism, which includes a fixing column arranged on the top of a support plate. A first motor is arranged on the left side of the fixing column. The output end of the first motor is in transmission connection with a rotating plate. A testing rod is arranged on the left side of the rotating plate. A strain gauge is arranged on the left side of the testing rod. One side of the strain gauge is in contact with the outer side of a pipe fitting. A marking component is arranged on the surface of the testing rod.

[0011] As a preferred scheme of the stress testing device of the present invention, wherein: the clamping component includes a fixing seat arranged on one side of a placement plate. A second motor is arranged on one side of the fixing seat. The output end of the second motor is in transmission connection with an output rod. A rotating ring is arranged on one side of the output rod. A plurality of rotating rods are arranged on the front side of the rotating ring. The rear sides of the rotating rods are all rotatably connected with clamping rods. The outer sides of the clamping rods penetrate through the outer side of a fixing box and are in contact with the inner wall of the pipe fitting. The fixing box is located inside the pipe fitting. One side of the fixing box is fixedly connected with the front side of the placement plate through a connecting rod. A semi-circular groove is opened on the front side of the fixing box. The outer side of the connecting rod is in contact with the inner wall of the semi-circular groove.

[0012] As a preferred scheme of the stress testing device of the present invention, wherein: the marking component includes a marking box arranged on the surface of the testing rod. A marking ring is arranged on the surface of the marking box. A second push rod is arranged on one side of the marking ring. The second push rod is arranged on the right side of the marking box and the bottom is fixedly connected with the outer side of the testing rod.

[0013] As a preferred scheme of the stress testing device of the present invention, wherein: a rotating groove is opened on the left side of the rotating ring. A rotating block is slidably connected to the surface of the rotating groove. The left side of the rotating block is in transmission connection with the output end of a first push rod.

[0014] As a preferred scheme of the stress testing device of the present invention, wherein: the output end of the second motor is in transmission connection with a gear. A toothed plate is arranged on the left side of the gear. The rear side of the toothed plate is fixedly connected with the front side of a fixing plate.

[0015] As a preferred scheme of the stress testing device of the present invention, wherein: a plurality of travel plates are arranged on the right side of the fixing plate. A travel groove is opened on the right side of each of the plurality of travel plates. The outer side of the rotating ring is slidably connected with the inner wall of the travel groove.

[0016] As a preferred scheme of the stress testing device of the present invention, wherein: a plurality of sleeve rods are arranged on the right side of the rotating ring. A plugging groove is opened on the right side of each of the plurality of sleeve rods. A plugging rod is arranged on the inner wall of the plugging groove. The bottom of the plugging rod is fixedly connected with the top of the rotating plate.

[0017] As a preferred embodiment of the stress testing device of the present invention, the following is provided: a third motor is provided on one side of the rotating plate, the output end of the third motor is drivingly connected to a lead screw, the surface of the lead screw is drivingly connected to a transmission block, and the left side of the transmission block is fixedly connected to the right side of the test rod.

[0018] Advantages of the present invention: Through the setting of the testing mechanism, the axial movement of the test rod is realized, so that the strain gauge can cover the entire surface of the pipe fitting, dynamically capture the stress data at different positions, and mark in real time the positions where the stress difference is poor and drilling is not allowed during the testing process, avoiding damage caused by the mismatch between the stress of the pipe fitting and the drilling force. Through the setting of the rotating mechanism, the synchronous movement of the rotating plate and the pipe fitting can be driven, so that the test rod can test the stress of pipe fittings at different angles.

[0019] In view of the problems existing in the above-mentioned existing stress testing methods, the present invention is proposed.

[0020] Therefore, the object of the present invention is to provide a stress testing method, which aims to: test the stress distribution of pipe fittings at different angles.

[0021] To solve the above technical problems, the present invention provides the following technical solution: Place the pipe fitting on the top of the placement plate and test its stress through angle adjustment.

[0022] As a preferred embodiment of the stress testing method of the present invention, the following is provided: The surface of the pipe fitting is marked by a marking component to facilitate the corresponding punching position. When the first motor drives the rotating plate to rotate, the pipe fitting is driven to rotate synchronously, and the stress of different positions of the pipe fitting is tested by starting the third motor.

[0023] Advantages of the present invention: Through the setting of the testing mechanism, the first motor drives the rotating plate to drive the test rod to surround the surface of the pipe fitting. Combining the transmission of the third motor and the lead screw, the axial movement of the test rod is realized, so that the strain gauge can cover the entire surface of the pipe fitting, dynamically capture the stress data at different positions, and through the clamping component, an internal clamping design is adopted, and the second motor drives the rotating ring to drive the clamping rod to expand radially, tightly fitting the inner wall of the pipe fitting, suitable for stable fixation of different pipe diameters. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings. Among them:

[0025] Figure 1 It is a schematic diagram of the support plate, fixed plate and fixed column structures provided by the present invention.

[0026] Figure 2 provided for the present invention Figure 1 Partial enlarged schematic view up to point A.

[0027] Figure 3 Schematic view of the split adjustment mechanism provided for the present invention.

[0028] Figure 4 Schematic view of the split rotation mechanism provided for the present invention.

[0029] Figure 5 Partial sectional view schematic of the clamping assembly provided for the present invention.

[0030] Figure 6 Sectional view schematic of the rotating plate provided for the present invention.

[0031] Figure 7 Sectional view schematic of the test rod provided for the present invention.

[0032] Figure 8 Schematic view of the cooperation between the gear and the toothed plate provided for the present invention. Detailed implementation manners

[0033] To make the above objects, features and advantages of the present invention more obvious and understandable, the following will describe the detailed implementation manners of the present invention with reference to the accompanying drawings of the specification.

[0034] In the following description, many specific details are set forth to fully understand the present invention. However, the present invention can also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the connotation of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed below.

[0035] Secondly, the so-called "one embodiment" or "embodiment" herein refers to a specific feature, structure or characteristic that can be included in at least one implementation manner of the present invention. The "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it an individual or alternative embodiment that is mutually exclusive with other embodiments.

[0036] Furthermore, the present invention is described in detail with reference to the schematic diagrams. When describing the embodiments of the present invention in detail, for the convenience of explanation, the sectional views showing the device structure will be enlarged locally out of the general proportion, and the schematic diagrams are only examples, which should not limit the protection scope of the present invention herein. In addition, in actual production, the three-dimensional space dimensions of length, width and depth should be included.

[0037] Embodiment 1

[0038] Refer to Figures 1 to 8, which is the first embodiment of the present invention, provides a stress testing method. It realizes placing the pipe fitting 204 on the top of the placement plate 203 and performing stress testing on it through angle adjustment;

[0039] The surface of the pipe fitting 204 is marked by the marking component 306 to facilitate the corresponding punching positions. When the first motor 302 drives the rotating plate 303 to rotate, it drives the pipe fitting 204 to rotate synchronously, and the stress of different positions of the pipe fitting 204 is tested by starting the third motor 410;

[0040] By using the first push rod 201, the rotating ring 202 can be driven to move to the left and right sides. When moving to the right side, it is marked by the marking ring 306b, so as to achieve real-time testing and marking of the stress data on the entire surface of the pipe fitting 204, and avoid damage caused by the mismatch between the stress of the pipe fitting 204 and the drilling force.

[0041] Embodiment 2

[0042] Refer to Figures 1 to 5 , 8, which is the second embodiment of the present invention, provides a rotating mechanism 200 to realize the rotation of the pipe fitting 204.

[0043] Specifically, the adjustment mechanism 100 includes a support plate 101, a fixing plate 102 is arranged on the top of the support plate 101, an adjustment slot 103 is opened inside the fixing plate 102, a drilling machine 104 is arranged on the surface of the adjustment slot 103, an adjustment block 105 is arranged on the top of the drilling machine 104, and the front and rear sides of the adjustment block 105 are connected by a screw 106. A drive motor 107 is arranged on one side of the screw 106, and one side of the drive motor 107 is fixedly connected to the outer side of the fixing plate 102; the rotating mechanism 200 includes a first push rod 201 arranged at both ends of the right side of the fixing plate 102, and the right side of the first push rod 201 is arranged There is a rotating ring 202, a placing plate 203 is arranged on the right side of the rotating ring 202, a pipe 204 is placed on the surface of the placing plate 203, and a clamping assembly 205 is arranged on one side of the placing plate 203; the clamping assembly 205 includes a fixing seat 205a arranged on one side of the placing plate 203, a second motor 205b is arranged on one side of the fixing seat 205a, an output end of the second motor 205b is connected to an output rod 205c in a transmission manner, a rotating ring 205d is arranged on one side of the output rod 205c, a plurality of rotating rods 205e are arranged on the front side of the rotating ring 205d, and a clamping rod 205f is rotatably connected to the rear side of the rotating rod 205e. The outer side of the clamping rod 205f passes through the outer side of the fixed box 205g and contacts the inner wall of the pipe 204. The fixed box 205g is located inside the pipe 204. One side of the fixed box 205g is fixedly connected to the front side of the placement plate 203 through the connecting rod 205h. A semicircular groove 205i is provided on the front side of the fixed box 205g, and the outer side of the connecting rod 205h contacts the inner wall of the semicircular groove 205i; a rotating groove 401 is provided on the left side of the rotating ring 202, and a rotating block 402 is slidably connected to the surface of the rotating groove 401, and the left side of the rotating block 402 is transmission-connected to the output end of the first push rod 201; the output end of the second motor 205b is connected to the output end of the first push rod 201; The output end transmission is connected with a gear 403, and a tooth plate 404 is arranged on the left side of the gear 403, and the rear side of the tooth plate 404 is fixedly connected to the front side of the fixed plate 102; a plurality of travel plates 405 are arranged on the right side of the fixed plate 102, and a travel groove 406 is opened on the right side of the plurality of travel plates 405, and the outer side of the rotating ring 202 is slidingly connected to the inner wall of the travel groove 406; a plurality of sleeve rods 407 are arranged on the right side of the rotating ring 202, and a plug-in groove 408 is opened on the right side of the plurality of sleeve rods 407, and a plug-in rod 409 is arranged on the inner wall of the plug-in groove 408, and the bottom of the plug-in rod 409 is fixedly connected to the top of the rotating plate 303.

[0044] Specifically, the first push rod 201 is started to push the rotating block 402 to slide along the rotating groove 401 on the left side of the rotating ring 202, driving the rotating ring 202 to rotate, and the sleeve rod 407 on the right side of the rotating ring 202 is plugged into the plug-in groove 408 and the plug-in rod 409, so that the rotating plate 303 can drive the rotating ring 202 to rotate synchronously, ensuring the consistency of the contact angle between the test rod 304 and the surface of the pipe fitting 204.

[0045] Furthermore, by starting the second motor 205b, the output rod 205c drives the rotating ring 205d to rotate. Multiple rotating rods 205e on the rotating ring 205d rotate accordingly, pushing the clamping rods 205f hinged at the rear to expand radially outwards. The anti-slip rubber layer at the front end of the clamping rod 205f closely adheres to the inner wall of the pipe fitting 204, forming a self-centering clamp. This design can avoid damaging the inner surface of the pipe fitting 204. After the clamping is completed, the rotating mechanism 200 starts to act. The first push rods 201 on both sides of the fixed plate 102 extend synchronously, pushing the rotating block 402 to move, and using the movement of the rotating block 402 to squeeze the rotating groove 401 to make the rotating ring 202 move, so that the rotating ring 202 moves on the inner wall of the travel groove 406. By running the first motor 302, the rotating plate 303 can be driven to rotate. Since the sleeve rod 407 on the right side of the rotating ring 202 is connected to the insertion rod 409 of the rotating plate 303 through the insertion groove 408, and the rotating groove 401 is connected to the output end of the first push rod 201 through the rotating block 402, when the rotating plate 303 rotates, the rotating ring 202 can be driven to rotate simultaneously, so that the rotating plate 303 and the pipe fitting 204 rotate synchronously, ensuring the consistency of the stress at different angles of the test pipe fitting 204.

[0046] It should be noted that the lateral travel of the travel groove 406 is equal to the lateral distance that the rotating ring 202 can move; the front end of the clamping rod 205f is made of anti-slip rubber layer material.

[0047] Embodiment 3

[0048] Referring to Figure 1 、 6 Figs. 7 and 8, this is the third embodiment of the present invention, which provides a testing mechanism 300 to realize the marking on the surface of the pipe fitting 204.

[0049] The testing mechanism 300 includes a fixing column 301 disposed on the top of the support plate 101. A first motor 302 is arranged on the left side of the fixing column 301. The output end of the first motor 302 is drivingly connected to a rotating plate 303. A testing rod 304 is arranged on the left side of the rotating plate 303. A strain gauge 305 is arranged on the left side of the testing rod 304. One side of the strain gauge 305 is in contact with the outer side of the pipe fitting 204. A marking assembly 306 is arranged on the surface of the testing rod 304; The marking assembly 306 includes a marking box 306a arranged on the surface of the testing rod 304. A marking ring 306b is arranged on the surface of the marking box 306a. A second push rod 306c is arranged on one side of the marking ring 306b. The second push rod 306c is arranged on the right side of the marking box 306a and its bottom is fixedly connected to the outer side of the testing rod 304; A third motor 410 is arranged on one side of the rotating plate 303. The output end of the third motor 410 is drivingly connected to a lead screw 411. A transmission block 412 is drivingly connected to the surface of the lead screw 411. The left side of the transmission block 412 is fixedly connected to the right side of the testing rod 304.

[0050] Specifically, the third motor 410 drives the lead screw 411 to rotate, driving the transmission block 412 and the testing rod 304 to move axially along the pipe fitting 204, so that the strain gauge 305 on the testing rod 304 continuously contacts the surface of the pipe fitting 204, and circumferential stress data is collected in real time. When the strain gauge 305 completes the test at a certain point, the second push rod 306c pushes the marking ring 306b to apply pressure to the surface of the pipe fitting 204, and the quick-drying ink in the marking box 306a prints a marking point through the micropores of the marking ring 306b. The marking color is graded according to the stress value. For example, red represents the drillable area, and no marking is made in the non-drillable area.

[0051] Furthermore, the start of the third motor 410 drives the lead screw 411 to rotate, and the rotation of the lead screw 411 can drive the transmission block 412 to reciprocate inside the rotating plate 303, so that the strain gauge 305 on the left side of the testing rod 304 contacts different positions on the outer surface of the pipe fitting 204, and transverse stress data is collected in real time; During the test, if the stress on the surface of the pipe fitting 204 is suitable for drilling, it is transmitted to the controller through the sensor and the second push rod 306c is started, so that the marking ring 306b is pushed against the surface of the pipe fitting 204, and the quick-drying ink in the marking box 306a forms a marking point on the pipe fitting 204, otherwise no marking is made.

[0052] It should be noted that when the pipe fitting is subjected to strain testing, the gear 403 and the toothed plate 404 are in a disengaged state, and the end of the toothed plate 404 is flush with the side wall of the rotating ring 202; When and after the strain gauge completes the detection of the fixed circumferential position, the pipe fitting is rotated by the rotation of the second motor 205b, so as to realize the stress detection of all circumferential positions of the pipe fitting. After the detection is completed, the connecting rod 205h is rotated back to the bottom of the semi-circular groove 205i by the rotation of the second motor 205b again.

[0053] The remaining structure is the same as that of Embodiment 2.

[0054] Embodiment 4

[0055] Refer to Figures 1 to 8 , which is the fourth embodiment of the present invention. The difference between this embodiment and the third embodiment is that this embodiment provides a stress testing device.

[0056] When using this stress testing device;

[0057] First, place the pipe fitting 204 on the top of the placement plate 203. By starting the second motor 205b, the output rod 205c drives the rotating ring 205d to rotate. A plurality of rotating rods 205e on the rotating ring 205d rotate accordingly, pushing the clamping rods 205f hinged at the rear to expand radially outward. The anti-slip rubber layer at the front end of the clamping rods 205f closely adheres to the inner wall of the pipe fitting 204, forming a self-centering clamp. This design can avoid damaging the inner surface of the pipe fitting 204. After clamping, the rotating mechanism 200 starts to act. The first push rods 201 on both sides of the fixed plate 102 extend synchronously, pushing the rotating block 402 to move, and using the movement of the rotating block 402 to squeeze the rotating groove 401 to make the rotating ring 202 move, so that the rotating ring 202 moves on the inner wall of the travel groove 406. Since a semi-circular groove 205i is opened on the outer side of the fixed box 205g, and the outer side of the connecting rod 205h is in contact with the inner wall of the semi-circular groove 205i and is fixedly connected to the outer side of the placement plate 203, when the clamping rods 205f expand outward, the fixed box 205g will be restricted by the connecting rod 205h and will not rotate, ensuring the stable clamping of the clamping rods 205f;

[0058] When the pipe fitting 204 is pushed to contact the strain gauge 305, starting the third motor 410 drives the lead screw 411 to rotate, and the rotation of the lead screw 411 can drive the transmission block 412 to reciprocate on the inner wall of the rotating plate 303, so that the strain gauge 305 on the left side of the test rod 304 contacts different positions on the outer surface of the pipe fitting 204, and the transverse stress data is collected in real time;

[0059] During the test, if the stress on the surface of the pipe fitting 204 is suitable for punching, it is transmitted to the controller through the sensor and the second push rod 306c is started, so that the pushing marking ring 306b presses against the surface of the pipe fitting 204, and the quick-drying ink in the marking box 306a forms a marking point on the pipe fitting 204. Otherwise, no marking is performed;

[0060] After the first push rod 201 is reset after the marking is completed, and during the movement of the rotating ring 202, the gear 403 will be engaged with the toothed plate 404, so that the fixed box 205g rotates following the rotation of the gear 403. Since the clamping rod 205f is in a state of clamping the pipe fitting 204, the pipe fitting 204 will also rotate when the fixed box 205g rotates. Since the connecting rod 205h is on the inner wall of the semi-circular groove 205i, the semi-circular groove 205i will rotate synchronously when the fixed box 205g rotates, so that the connecting rod 205h is located at the other end of the semi-circular groove 205i, which is used to ensure that the fixed box 205g can drive the pipe fitting 204 to rotate stably; conversely, the connecting rod 205h is at the other end of the semi-circular groove 205i.

[0061] When it is necessary to test the stress of the pipe fitting 204 at different angles, by restarting the first push rod 201, the pipe fitting 204 is brought into contact with the strain gauge 305 again, and the rotation of the rotating plate 303 can be driven by the operation of the first motor 302. Since the sleeve rod 407 on the right side of the rotating ring 202 is connected to the insertion rod 409 of the rotating plate 303 through the insertion slot 408, and the rotating slot 401 is connected to the output end of the first push rod 201 through the rotating block 402, when the rotating plate 303 rotates, the rotating ring 202 can be driven to rotate at the same time, so that the rotating plate 303 and the pipe fitting 204 rotate synchronously, ensuring the consistency of testing the stress of the pipe fitting 204 at different angles.

[0062] In summary: The degree of meshing and moving of the gear 403 and the toothed plate 404 is about 90 degrees, and the moving and rotating degrees are the same; the inside of the marking ring 306b is marked with fast-drying ink.

[0063] Importantly, it should be noted that the construction and arrangement of the present application shown in multiple different exemplary embodiments are merely illustrative. Although only a few embodiments are described in detail in this disclosure, those who refer to this disclosure should easily understand that many modifications are possible without materially departing from the novel aspects and advantages of the subject matter described in this application. For example, the dimensions, scales, structures, shapes and proportions of various elements, as well as parameter values such as temperature, pressure, etc., installation arrangements, the use of materials, color, orientation changes, etc. For example, an element shown as integrally formed may be composed of multiple parts or elements, the position of the element may be inverted or otherwise changed, and the nature or number or position of discrete elements may be altered or changed. Accordingly, all such modifications are intended to be included within the scope of the present invention. The order or sequence of any process or method steps may be altered or reordered according to alternative embodiments. In the claims, any "means plus function" clause is intended to cover the structures that perform the functions described herein, and not only structural equivalents but also equivalent structures. Other substitutions, modifications, changes and omissions may be made in the design, operating conditions and arrangement of the exemplary embodiments without departing from the scope of the present invention. Accordingly, the present invention is not limited to the specific embodiments, but extends to various modifications that still fall within the scope of the appended claims. In addition, in order to provide a concise description of the exemplary embodiments, all features of the actual embodiments may not be described, i.e., those features that are not relevant to the currently contemplated best mode of carrying out the present invention or those features that are not relevant to the implementation of the present invention.

[0064] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered within the scope of the claims of the present invention.

Claims

1. A stress testing device, characterized in that: An adjustment mechanism (100) comprises a support plate (101), a fixing plate (102) being arranged on the top of the support plate (101), an adjustment slot (103) being provided inside the fixing plate (102), a drilling machine (104) being arranged on the surface of the adjustment slot (103), an adjustment block (105) being arranged on the top of the drilling machine (104), front and rear sides of the adjustment block (105) being connected by transmission via a screw rod (106), a drive motor (107) being arranged on one side of the screw rod (106), and one side of the drive motor (107) being fixedly connected to the outer side of the fixing plate (102); A rotating mechanism (200) comprising a first push rod (201) arranged at two ends of the right side of a fixed plate (102), a rotating ring (202) being arranged on the right side of the first push rod (201), a placement plate (203) being arranged on the right side of the rotating ring (202), a pipe (204) being placed on the surface of the placement plate (203), and a clamping assembly (205) being arranged on one side of the placement plate (203); and, A testing mechanism (300) comprises a fixed column (301) arranged on the top of a support plate (101); a first motor (302) is arranged on the left side of the fixed column (301); an output end of the first motor (302) is drivingly connected to a rotating plate (303); a testing rod (304) is arranged on the left side of the rotating plate (303); a strain sticker (305) is arranged on the left side of the testing rod (304); one side of the strain sticker (305) is in contact with the outer side of a pipe (204); and a labeling component (306) is arranged on the surface of the testing rod (304).

2. The stress testing device according to claim 1, wherein: The clamping assembly (205) comprises a fixing seat (205a) arranged on one side of the placement plate (203); a second motor (205b) is arranged on one side of the fixing seat (205a); an output end of the second motor (205b) is transmission-connected to an output rod (205c); a rotating ring (205d) is arranged on one side of the output rod (205c); a plurality of rotating rods (205e) are arranged on the front side of the rotating ring (205d); and a clamping member (205e) is rotationally connected to the rear side of each rotating rod (205e). Rod (205f), the outer side of the clamping rod (205f) passes through the outer side of the fixing box (205g) and contacts the inner wall of the pipe (204), the fixing box (205g) is located inside the pipe (204), one side of the fixing box (205g) is fixedly connected to the front side of the placement plate (203) through a connecting rod (205h), a semicircular groove (205i) is provided on the front side of the fixing box (205g), and the outer side of the connecting rod (205h) contacts the inner wall of the semicircular groove (205i).

3. The stress testing device according to claim 1 or 2, characterized in that: The described marking component (306) includes a marking box (306a) disposed on the surface of the test rod (304). A marking ring (306b) is provided on the surface of the marking box (306a). A second push rod (306c) is provided on one side of the marking ring (306b). The second push rod (306c) is disposed on the right side of the marking box (306a) and its bottom is fixedly connected to the outer side of the test rod (304).

4. The stress testing device according to claim 3, wherein: A rotation groove (401) is formed on the left side of the rotation ring (202). A rotation block (402) is slidably connected to the surface of the rotation groove (401). The left side of the rotation block (402) is drivingly connected to the output end of the first push rod (201).

5. The stress testing device according to claim 2, wherein: The output end of the second motor (205b) is drivingly connected to a gear (403). A toothed plate (404) is provided on the left side of the gear (403). The rear side of the toothed plate (404) is fixedly connected to the front side of the fixed plate (102).

6. The stress testing device according to claim 5, characterized in that: A plurality of travel plates (405) are provided on the right side of the fixed plate (102). A travel groove (406) is formed on the right side of each of the plurality of travel plates (405). The outer side of the rotation ring (202) is slidably connected to the inner wall of the travel groove (406).

7. The stress testing device according to claim 6, wherein: A plurality of sleeve rods (407) are provided on the right side of the rotation ring (202). A plug-in groove (408) is formed on the right side of each of the plurality of sleeve rods (407). A plug-in rod (409) is provided on the inner wall of the plug-in groove (408). The bottom of the plug-in rod (409) is fixedly connected to the top of the rotating plate (303).

8. The stress testing device according to claim 7, wherein: A third motor (410) is provided on one side of the rotating plate (303). The output end of the third motor (410) is drivingly connected to a lead screw (411). A transmission block (412) is drivingly connected to the surface of the lead screw (411). The left side of the transmission block (412) is fixedly connected to the right side of the test rod (304).

9. A stress testing method, characterized in that: Including the stress testing device according to any one of claims 1 to 8, further comprising Placing the pipe fitting (204) on the top of the placing plate (203) and performing stress testing on it by adjusting the angle.

10. The stress test method according to claim 9, characterized in that: Marking the surface of the pipe fitting (204) through the marking component (306) to facilitate the corresponding punching position. When the first motor (302) drives the rotating plate (303) to rotate, it drives the pipe fitting (204) to rotate synchronously, and the stress of different positions of the pipe fitting (204) is tested by starting the third motor (410).

Citation Information

Patent Citations

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