Interstage connector testing device, method and system, electronic equipment and storage medium
By designing the interstage connector testing device, including the first base, the second base, the tensile tester and the detection device, the problem of lack of molding detection methods in the prior art is solved, and scientific and accurate testing of the tensile force of the interstage connector is achieved.
Patent Information
- Application Number
- CN202311843510.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-28
- Publication Date
- 2025-07-01
AI Technical Summary
The lack of molded interstage connector tension detection devices and detection methods in the prior art leads to inaccurate detection and the inaccurate evaluation of the tensile state of interstage connectors cannot be scientifically and accurately evaluated.
A interstage connector testing device is designed, including a first base, a second base, a tensile tester and a detection device. By setting the first and second frames, and installing a tensile tester and detection device thereon, the tension force of the connector between the stages can be adjusted and tested, and the states under different tension conditions can be obtained for comparison.
Scientific and accurate tension testing of interstage connectors is realized, filling the gap in the lack of molding detection methods and test data evaluation standards in the existing technology, and improving the test accuracy.
Smart Images

Figure CN120232718A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of applied geophysical exploration, and particularly to an inter-stage connector testing device, an inter-stage connector testing method, an inter-stage connector testing system, an electronic device, and a storage medium. Background Art
[0002] The well condition environment of the observation well is complex. The inter-stage connector at a depth of several thousand meters underground has to withstand the erosion of high temperature, high pressure, highly corrosive gases and liquids. The outer armor of the cable of the inter-stage connector is extremely prone to hydrogen embrittlement. Hydrogen embrittlement will reduce the strength of the cable, leading to the accident of the three-component geophone array falling into the well, resulting in huge property losses. If the three-component geophone array cannot be salvaged successfully, it will cause the abandonment of the observation well project and secondary accidents, bringing even greater property losses. However, the inter-stage connector manufacturer does not provide a tensile test device, a test method, and a qualified standard for test data. That is to say, there is no formed tensile detection device and detection method for the inter-stage connector in the related art. Summary of the Invention
[0003] In view of this, the present invention provides an inter-stage connector testing device, an inter-stage connector testing method, an inter-stage connector testing system, an electronic device, and a storage medium.
[0004] Specifically, the present invention is implemented by the following technical solutions:
[0005] According to a first aspect of the present invention, there is provided an inter-stage connector testing device, which includes: a first base; a second base, the second base and the first base are disposed opposite to each other, one end of the inter-stage connector is connected to the first base, and the other end is connected to the second base; a tensile tester, the tensile tester is disposed on the first base or the second base for adjusting the tensile force of the inter-stage connector; a detection device for obtaining the state of the inter-stage connector under different tensile forces.
[0006] The inter-stage connector testing device provided by the present invention is mainly used for linearly constant tensile testing of downhole seismic inter-stage connectors. Among them, the inter-stage connector testing device includes: a first base, a second base, a tensile force tester, and a detection device. Specifically, the first base and the second base are arranged opposite to each other, so that one end of the inter-stage connector can be connected to the first base, and the other end of the inter-stage connector can be connected to the second base. Since the first base and the second base are arranged opposite to each other, the inter-stage connector can be arranged parallel to the ground and perpendicular to the first base and the second base. Further, the tensile force tester can be arranged on the first base or the second base. When the inter-stage connector is connected to the first base and the second base, the tensile force of the inter-stage connector can be adjusted by adjusting the parameters in the tensile force tester. Specifically, the tensile force tester can be an adjustable linearly constant tensile force tester. Further, the detection device is arranged on the first base and the second base, and can be used to obtain the state of the inter-stage connector under different tensile forces, and then compare the states under different tensile forces, so as to realize the tensile force test of the inter-stage connector. By setting the first base and the second base in the present invention, and the inter-stage connector can be arranged at both ends of the first base and the second base, and then the tensile force of the inter-stage connector is adjusted by the tensile force tester arranged on the first base or the second base, and the state of the inter-stage connector under different tensile forces can be obtained by the detection device, and then the states of the inter-stage connector under different tensile forces are compared, so as to realize the tensile force test of the inter-stage connector. Thus, the technical problems of no formed detection method, test data evaluation standard, and inaccurate detection at present are solved, and the scientific and accurate evaluation of the tensile force test of the inter-stage connector is realized.
[0007] In some embodiments, the inter-stage connector testing device further includes: a moving guide rail, which is connected to the first base and the second base, and is used to adjust the distance between the first base and the second base.
[0008] In this embodiment, the inter-stage connector testing device further includes a moving guide rail. The two ends of the moving guide rail are respectively connected to the first base and the second base. The distance between the first base and the second base can be adjusted by sliding the moving guide rail. Specifically, the moving guide rail can be a telescopic moving guide rail. The moving guide rail is arranged between the first base and the second base. When the inter-stage connector is fixed between the first base and the second base, the inter-stage connector can be tightly fixed between the first base and the second base by adjusting the moving guide rail, thus avoiding errors caused by the looseness of the inter-stage connector during testing.
[0009] In some embodiments, the detection device includes: at least two image acquisition devices respectively located on a first base and a second base, configured to acquire image information of the inter-stage connector under different tensile forces; and / or at least two distance detection devices respectively located on the first base and the second base for acquiring tensile data of the inter-stage connector under different tensile forces; and / or at least two displacement sensors respectively located on the first base and the second base, configured to acquire displacement data of the inter-stage connector under different tensile forces.
[0010] In this embodiment, the detection device includes: at least two image acquisition devices, at least two distance detection devices, and at least two displacement sensors. Specifically, the at least two image acquisition devices are respectively located on the first base and the second base, and the at least two image acquisition devices are located between the first base and the second base, so that the at least two image acquisition devices can acquire image information of the inter-stage connector under different tensile forces. Among them, the image acquisition device can be a high-definition camera. The at least two distance detection devices are respectively located on the first base and the second base, and the at least two distance detection devices can detect the tensile data of the inter-stage connector under different tensile forces. Among them, the distance detection device can be a laser rangefinder. The at least two displacement sensors are respectively located on the first base and the second base, and the at least two displacement sensors are located between the first base and the second base, so that the at least two displacement sensors can record the displacement data of the inter-stage connector under different tensile forces. By acquiring the image information, tensile data, and displacement data of the inter-stage connector under different tensile forces and performing comparative analysis on them, the tensile test of the inter-stage connector is made more scientific and accurate.
[0011] In some embodiments, the inter-stage connector test device further includes: at least two fixing devices respectively located on the first base and the second base, and the at least two fixing devices are arranged oppositely, configured to fix the inter-stage connector.
[0012] In this embodiment, the inter-stage connector test device further includes: at least two fixing devices. Specifically, the at least two fixing devices are respectively located on the first base and the second base, and the at least two fixing devices are arranged oppositely, so that when the inter-stage connector is between the first base and the second base, the inter-stage connector can be fixed to prevent the inter-stage connector from detaching from the first base and the second base during the test. Among them, the fixing device can be a locking device.
[0013] According to a second aspect of the present invention, there is provided a method for testing an inter-stage connector, which is applicable to the inter-stage connector testing device in any of the above embodiments. The method for testing an inter-stage connector includes: obtaining a first state of the inter-stage connector; adjusting the pulling force of the inter-stage connector according to preset parameters; obtaining a second state of the inter-stage connector after adjusting the pulling force; and determining a test result based on the first state and the second state.
[0014] The method for testing an inter-stage connector provided by the present invention is mainly used for an inter-stage connector testing device. The method for testing an inter-stage connector includes: first, setting the inter-stage connector in the inter-stage connector testing device, and then obtaining a first state of the inter-stage connector, that is, obtaining an initial state of the inter-stage connector, where mainly the initial length and the initial position of the inter-stage connector are obtained. Further, the pulling force of the inter-stage connector is adjusted according to preset parameters. Specifically, the pulling force of the inter-stage connector can be adjusted by a pulling force tester, and then a second state of the inter-stage connector after adjusting the pulling force is obtained. Furthermore, the first state and the second state are compared to determine the test result. By comparing the initial state of the inter-stage connector with the state after changing the pulling force of the inter-stage connector, the pulling force test of the inter-stage connector can be realized, thereby solving the technical problems of the lack of a formed detection method, a test data evaluation standard, and inaccurate detection at present, and realizing a scientific and accurate evaluation of the pulling force test of the inter-stage connector.
[0015] In some embodiments, the second state includes one or several combinations of: the stretching distance of the inter-stage connector after adjusting the pulling force, the displacement distance of the inter-stage connector after adjusting the pulling force, and the image information of the inter-stage connector after adjusting the pulling force.
[0016] In this embodiment, the second state may be the stretching distance of the inter-stage connector after adjusting the pulling force, the displacement distance of the inter-stage connector after adjusting the pulling force, the image information of the inter-stage connector after adjusting the pulling force, etc. By obtaining the stretching distance, the displacement distance, and the image information of the inter-stage connector after the pulling force is changed and comparing them with the data in the initial state, the pulling force test of the inter-stage connector becomes more scientific and accurate.
[0017] According to a third aspect of the present invention, there is provided an inter-stage connector testing system. The inter-stage connector testing system includes: a first obtaining module for obtaining a first state of the inter-stage connector; an adjusting module for adjusting the pulling force of the inter-stage connector according to preset parameters; a second obtaining module for obtaining a second state of the inter-stage connector after adjusting the pulling force; and a determining module for determining a test result based on the first state and the second state.
[0018] The inter-stage connector test system provided by the present invention mainly includes: a first acquisition module, an adjustment module, a second acquisition module, and a determination module. First, the inter-stage connector is set in the inter-stage connector test device, and then the first acquisition module acquires the first state of the inter-stage connector, that is, the initial state of the inter-stage connector, where mainly the initial length and the initial position of the inter-stage connector are acquired. Further, the adjustment module adjusts the tensile force of the inter-stage connector according to preset parameters. Specifically, the tensile force of the inter-stage connector can be adjusted by a tensile force tester, and then the second acquisition module acquires the second state of the inter-stage connector after the tensile force is adjusted. Furthermore, the determination module compares the first state with the second state to determine the test result. By comparing the initial state of the inter-stage connector with the state after changing the tensile force of the inter-stage connector, the tensile force test of the inter-stage connector can be realized, thus solving the technical problems of the lack of a formed detection method, a test data evaluation standard, and inaccurate detection at present, and realizing a scientific and accurate evaluation of the tensile force test of the inter-stage connector.
[0019] In some embodiments, the second state includes one or a combination of several of the following: the stretching distance of the inter-stage connector after the tensile force is adjusted, the displacement distance of the inter-stage connector after the tensile force is adjusted, and the image information of the inter-stage connector after the tensile force is adjusted.
[0020] In this embodiment, the second state may be the stretching distance of the inter-stage connector after the tensile force is adjusted, the displacement distance of the inter-stage connector after the tensile force is adjusted, the image information of the inter-stage connector after the tensile force is adjusted, etc. By acquiring the stretching distance, displacement distance, and image information of the inter-stage connector after the tensile force is changed and comparing them with the data in the initial state, the tensile force test of the inter-stage connector becomes more scientific and accurate.
[0021] According to a fourth aspect of the present invention, there is provided an electronic device including a memory, a processor, and a computer program stored on the memory and executable on the processor. When the processor executes the program, it implements the steps of the inter-stage connector test method in the second aspect or any possible implementation manner of the second aspect.
[0022] According to a fifth aspect of the present invention, there is provided a readable storage medium having a computer program stored thereon. When the computer program is executed by a processor, it implements the steps of the inter-stage connector test method in the second aspect or any possible implementation manner of the second aspect.
[0023] The technical solution provided by the present invention at least brings the following beneficial effects:
[0024] The inter-stage connector testing device provided by the present invention greatly simplifies the design and manufacture of the linear constant tension testing system for the inter-stage connector of the downhole seismic data acquisition system. The on-site construction operation is simple, the testing accuracy is high, filling the blank of the inter-stage connector equipment detection system. The system of the present invention is small and light, and is convenient for use and maintenance in production. Since the linear constant tension testing system for the inter-stage connector of the downhole seismic data acquisition system proposed by the present invention can measure the tension value, tensile length, and appearance detection data that the inter-stage connector can withstand, and comprehensively analyze and judge the detection conclusion of the inter-stage connector. It effectively improves the target detection accuracy and realizes the combined and comprehensive application evaluation. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The drawings herein are incorporated into and constitute a part of this specification, showing embodiments consistent with the present invention, and are used together with the specification to explain the principles of the present invention.
[0026] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or related technologies, the following will briefly introduce the drawings required for use in the description of the embodiments or related technologies. Obviously, for those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0027] Figure 1 It is a schematic structural diagram of the inter-stage connector testing device provided by the embodiment of the present invention;
[0028] Figure 2 It is one of the schematic flowcharts of the inter-stage connector testing method provided by the embodiment of the present invention;
[0029] Figure 3 It is the second of the schematic flowcharts of the inter-stage connector testing method provided by the embodiment of the present invention;
[0030] Figure 4 It is a schematic block diagram of the inter-stage connector testing system provided by the embodiment of the present invention;
[0031] Among them, Figure 1 The corresponding relationship between the reference numerals and the component names in the drawings is as follows:
[0032] 10 Inter-stage connector testing device, 102 First base, 104 Second base, 106 Moving guide rail, 108 Detection device, 1082 Image acquisition device, 1084 Distance detection device, 1086 Displacement sensor, 110 Fixing device, 112 Tensile force tester, 114 Host, 116 Control device. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0033] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the scope of protection of the present invention.
[0034] As Figure 1 shown, the present invention provides an inter-stage connector testing device 10, which includes: a first base 102; a second base 104, the second base 104 and the first base 102 are disposed opposite to each other, one end of the inter-stage connector is connected to the first base 102, and the other end is connected to the second base 104; a tensile force tester 112, the tensile force tester 112 is disposed on the first base 102 or the second base 104 for adjusting the tensile force of the inter-stage connector; a detection device 108 for obtaining the state of the inter-stage connector under different tensile forces.
[0035] The inter-stage connector testing device 10 provided by the present invention is mainly used for performing linear constant tension tests on downhole seismic inter-stage connectors. Among them, the inter-stage connector testing device 10 includes: a first base 102, a second base 104, a tension tester 112, and a detection device 108. Specifically, the first base 102 and the second base 104 are arranged opposite to each other, so that one end of the inter-stage connector can be connected to the first base 102, and the other end of the inter-stage connector can be connected to the second base 104. Since the first base 102 and the second base 104 are arranged opposite to each other, the inter-stage connector can be arranged parallel to the ground and perpendicular to the first base 102 and the second base 104. Further, the tension tester 112 can be arranged on the first base 102 or the second base 104. When the inter-stage connector is connected to the first base 102 and the second base 104, the tension of the inter-stage connector can be adjusted by adjusting the parameters in the tension tester 112. Specifically, the tension tester 112 can be an adjustable linear constant tension tester. Further, the detection device 108 is arranged on the first base 102 and the second base 104, and can be used to obtain the state of the inter-stage connector under different tensions, and then compare the states under different tensions to realize the tension test of the inter-stage connector. By setting the first base 102 and the second base 104 in the present invention, and the inter-stage connector can be arranged at both ends of the first base 102 and the second base 104, and then the tension of the inter-stage connector is adjusted by the tension tester 112 arranged on the first base 102 or the second base 104, and the state of the inter-stage connector under different tensions can be obtained by the detection device 108, and then the states of the inter-stage connector under different tensions are compared, so as to realize the tension test of the inter-stage connector. Thus, the technical problems of the lack of a formed detection method, a test data evaluation standard, and inaccurate detection at present are solved, and the scientific and accurate evaluation of the tension test of the inter-stage connector is realized.
[0036] Further, as Figure 1 shown, the inter-stage connector testing device 10 further includes: a moving guide rail 106, the moving guide rail 106 is connected to the first base 102 and the second base 104, and the moving guide rail 106 is used to adjust the distance between the first base 102 and the second base 104.
[0037] In this embodiment, the inter-stage connector testing device 10 further includes a moving guide rail 106. The two ends of the moving guide rail 106 are respectively connected to the first base 102 and the second base 104. The distance between the first base 102 and the second base 104 can be adjusted by sliding the moving guide rail 106. Specifically, the moving guide rail 106 can be a telescopic moving guide rail. The moving guide rail 106 is arranged between the first base 102 and the second base 104. When the inter-stage connector is fixed between the first base 102 and the second base 104, the inter-stage connector can be tightly fixed between the first base 102 and the second base 104 by adjusting the moving guide rail 106, thereby avoiding errors caused by the looseness of the inter-stage connector during testing.
[0038] Further, as Figure 1 shown, the detection device 108 includes: at least two image acquisition devices 1082, which are respectively located on the first base 102 and the second base 104 and are used to acquire image information of the inter-stage connector under different tensile forces; and / or at least two distance detection devices 1084, which are respectively located on the first base 102 and the second base 104 and are used to acquire tensile data of the inter-stage connector under different tensile forces; and / or at least two displacement sensors 1086, which are respectively located on the first base 102 and the second base 104 and are used to acquire displacement data of the inter-stage connector under different tensile forces.
[0039] In this embodiment, the detection device 108 includes: at least two image acquisition devices 1082, at least two distance detection devices 1084, and at least two displacement sensors 1086. Specifically, the at least two image acquisition devices 1082 are respectively located on the first base 102 and the second base 104, and the at least two image acquisition devices 1082 are located between the first base 102 and the second base 104, so that the at least two image acquisition devices 1082 can acquire image information of the inter-stage connector under different tensile forces. Among them, the image acquisition device 1082 can be a high-definition camera. The at least two distance detection devices 1084 are respectively located on the first base 102 and the second base 104, and the at least two distance detection devices 1084 can detect the stretching data of the inter-stage connector under different tensile forces. Among them, the distance detection device 1084 can be a laser rangefinder. The at least two displacement sensors 1086 are respectively located on the first base 102 and the second base 104, and the at least two displacement sensors 1086 are located between the first base 102 and the second base 104, so that the at least two displacement sensors 1086 can record the displacement data of the inter-stage connector under different tensile forces. By obtaining the image information, stretching data, and displacement data of the inter-stage connector under different tensile forces and comparing and analyzing them, the tensile test of the inter-stage connector is made more scientific and accurate.
[0040] Further, as Figure 1 shown, the inter-stage connector test device 10 further includes: at least two fixing devices 110. The at least two fixing devices 110 are respectively located on the first base 102 and the second base 104, and the at least two fixing devices 110 are arranged oppositely to fix the inter-stage connector.
[0041] In this embodiment, the inter-stage connector test device 10 further includes: at least two fixing devices 110. Specifically, the at least two fixing devices 110 are respectively located on the first base 102 and the second base 104, and the at least two fixing devices 110 are arranged oppositely, so that when the inter-stage connector is between the first base 102 and the second base 104, the inter-stage connector can be fixed to prevent the inter-stage connector from detaching from the first base 102 and the second base 104 during the test. Among them, the fixing device 110 can be a locking device.
[0042] Further, as Figure 1As shown in the figure, the inter-stage connector testing device 10 further includes a host computer 114 and a control device 116. The detection device 108 will summarize all data in the host computer 114 in real time, and then the host computer 114 uses the inter-stage connector linear constant tensile force test analysis software to perform data analysis and comparison. At the same time, the data is displayed on the control device 116 in real time. After the test is completed, the host computer 114 will also output a test report. Among them, the host computer 114 can be an industrial host computer, and the control device 116 can be a liquid crystal display controller.
[0043] Figure 2 One of the flow diagrams of the inter-stage connector testing method provided by the embodiment of the present invention. The method may include the following steps:
[0044] S202: Obtain the first state of the inter-stage connector;
[0045] S204: Adjust the tensile force of the inter-stage connector according to the preset parameters;
[0046] S206: Obtain the second state of the inter-stage connector after adjusting the tensile force;
[0047] S208: Determine the test result according to the first state and the second state.
[0048] The inter-stage connector testing method provided by the present invention is mainly used for the inter-stage connector testing device 10. Among them, the inter-stage connector testing method includes: First, set the inter-stage connector in the inter-stage connector testing device 10, and then obtain the first state of the inter-stage connector, that is, obtain the initial state of the inter-stage connector. Among them, mainly obtain the initial length and initial position of the inter-stage connector. Further, adjust the tensile force of the inter-stage connector according to the preset parameters. Specifically, the tensile force of the inter-stage connector can be adjusted by the tensile force tester 112, and then obtain the second state of the inter-stage connector after the tensile force is adjusted, and then compare the first state and the second state to determine the test result. By comparing the initial state of the inter-stage connector with the state after changing the tensile force of the inter-stage connector, the tensile force test of the inter-stage connector can be realized, thus solving the technical problems of no formed detection method, test data evaluation standard, and inaccurate detection at present, and realizing scientific and accurate evaluation of the tensile force test of the inter-stage connector.
[0049] Further, the second state includes one or a combination of several of the following: the stretching distance of the inter-stage connector after adjusting the tensile force, the displacement distance of the inter-stage connector after adjusting the tensile force, and the image information of the inter-stage connector after adjusting the tensile force.
[0050] In this embodiment, the second state may be the stretching distance of the inter-stage connector after adjusting the pulling force, the displacement distance of the inter-stage connector after adjusting the pulling force, the image information of the inter-stage connector after adjusting the pulling force, etc. By obtaining the stretching distance, displacement distance, and image information of the inter-stage connector after the pulling force is changed and comparing them with the data in the initial state, the pulling force test of the inter-stage connector becomes more scientific and accurate.
[0051] Figure 3 This is the second flowchart of the inter-stage connector test method provided by the embodiment of the present invention. The method may include the following steps:
[0052] S302: Receive a task;
[0053] S304: Power on and perform startup detection;
[0054] S306: Determine whether it is normal. If the result is Y, execute S308; if the result is N, execute S304;
[0055] S308: Set parameters;
[0056] S310: Fix the inter-stage connector;
[0057] S312: Straighten the inter-stage connector;
[0058] S314: Measure the initial length and position of the inter-stage connector;
[0059] S316: Perform linear and constant pulling force tests;
[0060] S318: Measure the stretching distance, displacement distance, and take pictures;
[0061] S320: Analyze and compare data;
[0062] S322: Determine whether it is qualified. If the result is Y, execute S324; if the result is N, execute S326;
[0063] S324: Print a test report;
[0064] S326: End the task.
[0065] The inter-stage connector testing method provided by the present invention is specifically as follows: First, power on for system detection. Second, set parameters. Specifically, the tensile force value can be set to 5 tons and the time can be set to 1 minute. Then, fix the connector of the inter-stage connector detector on the first base 102 and the second base 104, and lock it using the fixing device 110. Further, adjust the moving guide rail 106 according to the length of the inter-stage connector so that the inter-stage connector is tightly fixed between the first base 102 and the second base 104. Then measure the initial length and position of the inter-stage connector. Further, use the tensile force tester 112 to perform a linear constant tensile force test on the connector of the detector and the multi-core data transmission armored cable according to the set test value. When the tensile force value reaches the set value of 5 tons and is stably maintained for 1 minute, the tensile force of the inter-stage connector is changed. Then, use the image acquisition device 1082 to record the appearance data of the connector of the inter-stage connector detector, the displacement sensor 1086 to record the displacement data of the connector part of the inter-stage connector detector, and the distance detection device 1084 to record the stretching data of the inter-stage connector. Then, analyze and compare the data after the tensile force change with the initial data. If the increment of the length data of the inter-stage connector after the tensile force change and the initial length data of the inter-stage connector is not greater than one-thousandth, that is to say, the difference between the length data of the inter-stage connector after the tensile force change and the initial length data of the inter-stage connector is not greater than one-thousandth of the initial length data of the inter-stage connector, and at the same time, there is no deformation or crack in the transmission armored cable and the appearance of the inter-stage connector, and there is no wire skipping in the transmission armored cable, it is judged as qualified and then print the test report, indicating that the inter-stage connector is a qualified inter-stage connector. If it is unqualified, it means that the inter-stage connector is not a qualified inter-stage connector, and then the test task ends.
[0066] Figure 4 It is a schematic block diagram of the inter-stage connector testing system provided by an embodiment of the present invention; wherein, the inter-stage connector testing system 40 includes:
[0067] The first acquisition module 402 is used to acquire the first state of the inter-stage connector;
[0068] The adjustment module 404 is used to adjust the tensile force of the inter-stage connector according to the preset parameters;
[0069] The second acquisition module 406 is used to acquire the second state of the inter-stage connector after adjusting the tensile force;
[0070] The determination module 408 is used to determine the test result according to the first state and the second state.
[0071] The inter-stage connector test system 40 provided by the present invention mainly includes: a first acquisition module 402, an adjustment module 404, a second acquisition module 406, and a determination module 408. Among them, first, the inter-stage connector is set in the inter-stage connector test device 10, and then the first acquisition module 402 acquires the first state of the inter-stage connector, that is, the initial state of the inter-stage connector. Among them, mainly the initial length and the initial position of the inter-stage connector are acquired. Further, the adjustment module 404 adjusts the tensile force of the inter-stage connector according to preset parameters. Specifically, the tensile force of the inter-stage connector can be adjusted by a tensile force tester 112. Then, the second acquisition module 406 acquires the second state of the inter-stage connector after the tensile force is adjusted. Furthermore, the determination module 408 compares the first state with the second state to determine the test result. By comparing the initial state of the inter-stage connector with the state after changing the tensile force of the inter-stage connector, the tensile force test of the inter-stage connector can be realized, thereby solving the technical problems of the lack of a formed detection method, a test data evaluation standard, and inaccurate detection at present, and realizing a scientific and accurate evaluation of the tensile force test of the inter-stage connector.
[0072] Further, the second state includes one or a combination of several of the following: the stretching distance of the inter-stage connector after the tensile force is adjusted, the displacement distance of the inter-stage connector after the tensile force is adjusted, and the image information of the inter-stage connector after the tensile force is adjusted.
[0073] In this embodiment, the second state may be the stretching distance of the inter-stage connector after the tensile force is adjusted, the displacement distance of the inter-stage connector after the tensile force is adjusted, the image information of the inter-stage connector after the tensile force is adjusted, etc. By acquiring the stretching distance, displacement distance, and image information of the inter-stage connector after the tensile force is changed and comparing them with the data in the initial state, the tensile force test of the inter-stage connector becomes more scientific and accurate.
[0074] According to a fourth aspect of the present invention, there is provided an electronic device, including a memory, a processor, and a computer program stored on the memory and executable on the processor. When the processor executes the program, it implements the steps of the inter-stage connector test method in the second aspect or any possible implementation manner of the second aspect.
[0075] According to a fourth aspect of the present invention, there is provided a storage medium, on which a computer program is stored. When the computer program is executed by a processor, it implements the steps of the inter-stage connector test method in the second aspect or any possible implementation manner of the second aspect.
[0076] Although this specification contains many specific implementation details, these should not be construed as limiting the scope of any invention or the scope of what is claimed, but rather are mainly used to describe the features of specific embodiments of a particular invention. Certain features described in multiple embodiments in this specification can also be implemented in combination in a single embodiment. On the other hand, the various features described in a single embodiment can also be implemented separately in multiple embodiments or in any suitable sub-combination. Additionally, although features may operate in certain combinations as described above and even be initially claimed as such, one or more features from a claimed combination can in some cases be removed from that combination, and the claimed combination can be directed to a sub-combination or a variation of a sub-combination.
[0077] Similarly, although operations are depicted in the drawings in a particular order, this should not be construed as requiring that the operations be performed in the particular order shown or sequentially, or that all illustrated operations be performed to achieve the desired result. In some cases, multitasking and parallel processing may be advantageous. Additionally, the separation of various device modules and components in the above embodiments should not be construed as required in all embodiments, and it should be understood that the described program components and devices can generally be integrated together in a single software product or packaged into multiple software products.
[0078] Thus, specific embodiments of the subject matter have been described. Other embodiments are within the scope of the appended claims. In some cases, the acts recited in the claims can be performed in a different order and still achieve the desired result. Additionally, the processes depicted in the drawings are not necessarily in the particular order or sequential order shown to achieve the desired result. In some implementations, multitasking and parallel processing may be advantageous.
[0079] It should be noted that in this context, relational terms such as "first" and "second" are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variation thereof is intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the process, method, article or device comprising the element.
[0080] The above are only specific embodiments of the present invention, enabling those skilled in the art to understand or implement the present invention. Various modifications to these embodiments will be obvious to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. The present invention will not be limited to these embodiments shown herein, but rather to the broadest scope consistent with the principles and novel features claimed herein.
Claims
1. A test device for an inter-stage connector, characterized in that, Comprising: A first base; A second base, the second base and the first base are oppositely arranged, one end of the inter-stage connector is connected to the first base, and the other end is connected to the second base; A tensile tester, the tensile tester is arranged on the first base or the second base for adjusting the tensile force of the inter-stage connector; A detection device for obtaining the state of the inter-stage connector under different tensile forces.
2. The inter-stage connector testing device according to claim 1, wherein Further comprising: A moving guide rail, the moving guide rail is connected to the first base and the second base, and the moving guide rail is used for adjusting the distance between the first base and the second base.
3. The inter-stage connector testing device according to claim 1, characterized in that, The detection device includes: At least two image acquisition devices, at least two of the image acquisition devices are respectively located on the first base and the second base for obtaining image information of the inter-stage connector under different tensile forces; and / or At least two distance detection devices, at least two of the distance detection devices are respectively located on the first base and the second base for obtaining stretching data of the inter-stage connector under different tensile forces; and / or At least two displacement sensors, at least two of the displacement sensors are respectively located on the first base and the second base for obtaining displacement data of the inter-stage connector under different tensile forces.
4. The inter-stage connector testing device according to any one of claims 1 to 3, characterized in that, Further comprising: At least two fixing devices, at least two of the fixing devices are respectively located on the first base and the second base, and at least two of the fixing devices are oppositely arranged for fixing the inter-stage connector.
5. A method for testing an inter-stage connector, applicable to the inter-stage connector testing device described in any one of claims 1 to 4, characterized in that, Comprising: Obtaining a first state of the inter-stage connector; Adjusting the tensile force of the inter-stage connector according to preset parameters; Obtaining a second state of the inter-stage connector after adjusting the tensile force; Determining a test result according to the first state and the second state.
6. The method for testing an inter-stage connector according to claim 5, wherein The second state includes one or a combination of several of the stretching distance of the inter-stage connector after adjusting the tensile force, the displacement distance of the inter-stage connector after adjusting the tensile force, and the image information of the inter-stage connector after adjusting the tensile force.
7. An inter-stage connector test system, characterized in that Comprising: A first acquisition module, the first acquisition module is used for obtaining a first state of the inter-stage connector; An adjustment module, the adjustment module is used for adjusting the tensile force of the inter-stage connector according to preset parameters; A second acquisition module, the second acquisition module is used for obtaining a second state of the inter-stage connector after adjusting the tensile force; A determination module, the determination module is used for determining a test result according to the first state and the second state.
8. The inter-stage connector test system according to claim 7, wherein, The second state includes one or a combination of several of the stretching distance of the inter-stage connector after adjusting the tensile force, the displacement distance of the inter-stage connector after adjusting the tensile force, and the image information of the inter-stage connector after adjusting the tensile force.
9. An electronic device, comprising a memory, a processor, and a computer program stored on the memory and executable on the processor, characterized in that, When the processor executes the computer program, the steps of the inter-stage connector test method as claimed in claim 5 or 6 are implemented.
10. A storage medium having a computer program stored thereon, characterized in that, When the computer program is executed by the processor, the steps of the inter-stage connector test method as claimed in claim 5 or 6 are implemented.