High-frequency wire harness detection equipment and detection method for data center
By designing a high-frequency wire harness detection device that includes swing, moving and vibration components, the problem that existing equipment cannot simulate actual working conditions is solved, and a comprehensive evaluation of wire harness performance and comprehensive reliability detection are achieved.
Patent Information
- Application Number
- CN202510798240.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-16
- Publication Date
- 2025-08-22
AI Technical Summary
The existing wiring harness detection equipment cannot simulate the impact on wiring harness performance under actual working conditions, resulting in a single detection scenario and the inability to comprehensively evaluate the comprehensive reliability of the wiring harness.
A high-frequency wire harness detection device including swing assembly, moving assembly and vibration assembly is designed. The worm and worm gear mechanism are driven by a motor, and the cone wheel, gear and threaded rod are combined to realize the test of simulated static deformation stress and dynamic environmental load of the wire harness.
It realizes a comprehensive evaluation of the wiring harness, ensures the accuracy and comprehensiveness of the detection results, simulates the complex environment under actual working conditions, and improves the comprehensive reliability of wiring harness detection.
Smart Images

Figure CN120521997A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of new material wire harness detection technology, and in particular to a high-frequency wire harness detection device and a detection method for a data center. Background Art
[0002] A data center is a physical location where infrastructure is centrally stored, used for centralized processing, storage, transmission, and management of data. A high-frequency wiring harness is a wiring harness assembly used to transmit high-frequency signals. It is made up of multiple high-frequency cables that are insulated, shielded, and bundled together. Traditional wiring harness materials cannot meet the performance requirements in high-frequency scenarios. Wire harness testing equipment can verify whether new materials meet the performance indicators of high-frequency transmission, avoiding signal failures or equipment failures caused by material defects. The wire harness testing equipment mainly includes a loading mechanism, a fixture, a display, and a safety protection device. The loading mechanism can produce a test force to test the wire harness, the fixture can quickly fix the wire harness, the display is used to display the test results and data, and the safety protection device can prevent equipment damage and personal injury. When testing wire harnesses, existing wire harness testing equipment cannot automatically simulate the impact of vibration and bending at different rates on the wire harness, and cannot accurately reproduce the impact of rate changes on wire harness performance in actual working conditions. This causes the test results to be out of touch with the actual usage scenarios, making the test scenarios single and unable to comprehensively evaluate the comprehensive reliability of the wire harness. Summary of the Invention
[0003] The purpose of the present invention is to provide a high-frequency wire harness detection device and detection method for data centers to solve the following technical problems: the inability to simulate the impact of actual working conditions on wire harness performance, resulting in a single detection scenario and an inability to comprehensively evaluate the comprehensive reliability of the wire harness.
[0004] The object of the present invention can be achieved by the following technical solution: A high-frequency wire harness detection device for a data center includes a housing, wherein a swing assembly, a moving assembly, and a vibrating assembly are provided inside the housing, wherein the swing assembly includes a swing plate, the moving assembly includes a moving plate, and the vibrating assembly includes a vibrating plate, wherein the outer wall of the vibrating plate is slidably connected to the inner top side of the housing; Two fixing plates are provided on the top of the housing, wherein the bottom of one of the fixing plates is slidably connected to the top of the swing plate, and the bottom of the other fixing plate is fixedly connected to the top of the vibration plate, and a clamping assembly is provided inside the fixing plate; The swing component can drive the swing plate to swing, thereby simulating static deformation stress to perform bending tests on the new material harness; The moving assembly is controlled by the swing assembly, and the swing assembly can drive the moving plate to move through operation, thereby adjusting the vibration frequency of the vibration plate; The vibration component is controlled by the moving component. The moving component can drive the vibration plate to vibrate through operation, thereby performing vibration tests on the new material harness simulating dynamic environmental loads; Clamping assembly that holds new material harnesses in place for testing.
[0005] As a preferred embodiment of the present invention, the swing assembly further comprises a motor, the motor being fixedly connected to the interior of the housing, a worm being fixedly connected to the driving end of the motor, a worm wheel being rotatably connected to the interior of the housing, and the worm wheel being meshed with the worm wheel; A connecting plate is rotatably connected to the top eccentric portion of the worm gear, a side of the connecting plate away from the worm gear is rotatably connected to a rotating plate, an inner side of the rotating plate is fixedly connected to a fixing rod, an outer wall of the fixing rod is rotatably connected to the inside of the housing, and a top end of the fixing rod is fixedly connected to the inside of the swinging plate; The moving assembly also includes an active bevel gear, which is fixedly connected to one end of the worm gear. The internal thread of the moving plate is connected to a threaded rod, and the threaded rod is rotatably connected to the inside of the shell. The outer wall of one side of the threaded rod is slidably connected to two passive bevel gears, and the outer wall of the passive bevel gear is rotatably connected to the inside of the shell. The passive bevel gear is meshed with the active bevel gear, and the outer wall of one side of the threaded rod is fixedly connected to a toothed rod, and the toothed rod is individually meshed with the two passive bevel gears; One side of the inner part of the movable plate is slidably connected to a slide rod 1, and the slide rod 1 is fixedly connected to the inside of the shell. The outer wall of the slide rod 1 is slidably connected to two limit plates 1, and the outer wall of the limit plate 1 is slidably connected to the inside of the shell. One side of the limit plate 1 is fixedly connected to a spring 1, and one end of the spring 1 away from the limit plate 1 is fixedly connected to the inside of the shell. The spring is set on the outer wall of the slide rod 1; The vibration assembly further includes a driving gear, the driving gear being rotatably connected to the interior of the housing, one side of the driving gear being slidably connected to one end of the threaded rod, a rotating shaft being rotatably connected to the interior of the housing, one end of the rotating shaft being fixedly connected to a driven gear, the driven gear being meshed with the driving gear; The outer wall of the rotating shaft is slidably connected with a vibration rod, the bottom of the vibration plate is fixedly connected with a vibration block, and the bottom of the vibration block abuts against the outer wall of the vibration rod.
[0006] As a preferred solution of the present invention: the clamping assembly includes an electric push rod 1, which is fixedly connected to the inside of the fixed plate, the telescopic end of the electric push rod 1 is fixedly connected to a moving block 1, both sides of the moving block 1 are fixedly connected to trapezoidal blocks, and the outer wall of the trapezoidal block is slidably connected to a splint.
[0007] As a preferred solution of the present invention: the outer wall of the splint is slidably connected to the inside of the fixed plate, one side of the splint is fixedly connected to a non-slip pad, the inside of the splint is slidably connected to a sliding rod three, and the sliding rod three is fixedly connected to the inside of the fixed plate.
[0008] As a preferred solution of the present invention: the interior of the swing plate is fixedly connected to an electric push rod 2, the telescopic end of the electric push rod 2 is fixedly connected to a moving block 2, the top of the moving block 2 is fixedly connected to the bottom of the fixed plate, and the outer wall of the moving block 2 is slidably connected to the interior of the swing plate.
[0009] As a preferred solution of the present invention: dampers are fixedly connected to both sides of the bottom of the vibration plate, the bottom ends of the dampers are fixedly connected to the inside of the shell, and the inside of the vibration plate is slidably connected to a plurality of evenly distributed sliding rods 2, and the bottom ends of the sliding rods 2 are fixedly connected to the inside of the shell.
[0010] As a preferred solution of the present invention: the outer wall of the threaded rod is fixedly connected to a stabilizing block, the interior of the shell is fixedly connected to a second spring, one end of the second spring is fixedly connected to a second limiting plate, the outer wall of the second limiting plate is slidably connected to the interior of the shell, the side of the second limiting plate away from the second spring is fixedly connected to a positioning block, and one side of the positioning block abuts against one side of the stabilizing block.
[0011] As a preferred solution of the present invention: a positioning rod is fixedly connected to the interior of the housing, an outer wall of the positioning rod is rotatably connected to the interior of the swing plate, and an outer wall of the positioning rod is rotatably connected to the interior of the fixed rod.
[0012] As a preferred solution of the present invention: a display screen is fixedly connected to one side of the shell, a switch is installed on one side of the shell, a plurality of evenly distributed buttons are installed on one side of the shell, a heat sink is fixedly connected to the front side of the shell, and a plurality of evenly distributed support pads are fixedly connected to the bottom of the shell.
[0013] A high-frequency wire harness detection method for a data center, comprising: Step 1: Use the clamping assembly to fix the two ends of the new material harness to be tested on the two fixed plates respectively, and pass it through the inside of the positioning rod. During the fixing process, the electric push rod 1 is started to drive the moving block 1 to move, and then the clamping plate is driven to move through the cooperation of the trapezoidal block. The movement of the clamping plate can fix the new material harness, and then the moving block 2 can drive one of the fixed plates to move, thereby adjusting the force on the new material harness and testing it; Step 2: Start the motor to drive the worm to rotate, the worm rotation drives the worm wheel rotation, the worm wheel rotation drives the rotating plate to rotate through the connecting plate, the rotating plate rotation drives the swing plate to rotate through the fixed rod, and the swing plate rotation drives one of the fixed plates to rotate, thereby simulating static deformation stress for bending test; The third step is to drive the active bevel gear to rotate during the rotation of the worm gear, and the rotation of the active bevel gear can drive the passive bevel gear to rotate. The passive bevel gear can first drive the toothed rod to rotate forward by rotating, and the forward rotation of the toothed rod can drive the threaded rod to rotate forward, and the forward rotation of the threaded rod can drive the movable plate to move. After the movable plate moves to a certain extent, it can squeeze the limit plate 1. At the same time, after squeezing for a period of time, it can no longer be squeezed to move. At this time, the elastic force of the spring 1 can drive the limit plate 1 to generate a reset force, thereby driving the movable plate to move in the opposite direction and then driving the threaded rod to move, and causing the toothed rod to disengage from one of the passive bevel gears and engage with the other passive bevel gear, thereby realizing the reversal of the toothed rod. Step 4. The rotation of the tooth rod can drive the moving plate to move through the threaded rod, and the movement of the moving plate can drive the vibration rod to move. At the same time, the threaded rod can also drive the driving gear to rotate during the rotation process. The rotation of the driving gear can drive the rotating shaft to rotate through the passive gear, and then drive the vibration rod to rotate. The vibration rod can make the vibration block vibrate by rotating, thereby making the fixed plate vibrate through the vibration plate. At the same time, the vibration rod can change the vibration rate of the fixed plate by moving, thereby simulating the dynamic environmental load for vibration testing of the new material harness.
[0014] Beneficial effects of the present invention: (1) The present invention can drive the worm to rotate by starting the motor, and then drive the swing plate to rotate by the cooperation of the worm wheel, the connecting plate, the fixed rod and the fixed rod. The swing plate can simulate the static deformation stress of the new material wiring harness to perform a bending test by rotating. At the same time, the rotation of the worm can drive the vibration rod to rotate by the cooperation of the active bevel wheel, the passive bevel wheel, the tooth rod, the threaded rod, the active gear, the passive gear and the rotating shaft. The rotation of the vibration rod can drive the vibration block to vibrate, thereby causing the vibration plate to vibrate, completing the vibration test of the new material wiring harness simulating the dynamic environmental load, thereby comprehensively evaluating the comprehensive reliability of the wiring harness.
[0015] (2) The present invention can drive the passive bevel wheel to rotate by rotating the active bevel wheel. The passive bevel wheel can first drive the tooth rod to rotate forward by rotating. The forward rotation of the tooth rod can drive the threaded rod to rotate forward. The forward rotation of the threaded rod can drive the movable plate to move. After the movable plate moves to a certain extent, it can squeeze the limit plate 1. At the same time, after squeezing for a period of time, it can no longer be squeezed to move. At this time, the elastic force of the spring 1 can drive the limit plate 1 to generate a reset force, thereby driving the movable plate to move in the opposite direction and then driving the threaded rod to move, and making the tooth rod disengage from one of the passive bevel wheels and engage with the other passive bevel wheel, realizing the reversal of the tooth rod, thereby driving the threaded rod to reverse, causing the movable plate to move repeatedly, and then driving the vibration rod to move repeatedly. The movement of the vibration rod can adjust the vibration rate of the vibration plate, thereby simulating different vibration conditions for the simulation detection of the new material harness, ensuring the accuracy of the detection.
[0016] (3) The present invention firmly connects the two ends of the new material harness to be tested to two fixed plates respectively through a clamping assembly, and passes it through the interior of the positioning rod. During the fixing process, the electric push rod 1 is started, which can drive the moving block 1 to move. Then, the cooperation of the trapezoidal block enables the clamping plate to move, thereby fixing the new material harness. Subsequently, the electric push rod 2 is started to drive the moving block 2 to move, and then drives one of the fixed plates to move, thereby adjusting the stress condition of the new material harness for testing. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The present invention will be further described below with reference to the accompanying drawings.
[0018] Figure 1 A perspective view of the present invention; Figure 2 is a schematic diagram of the housing of the present invention; Figure 3 is a schematic diagram of the swing assembly in the present invention; Figure 4 is a schematic diagram of a stabilizing block in the present invention; Figure 5 For the present invention Figure 4 Enlarged view of point A in the middle; Figure 6 is a schematic diagram of the movable plate in the present invention; Figure 7 Schematic diagram of the tooth rod in the present invention; Figure 8 is a schematic diagram of a threaded rod in the present invention; Figure 9 Schematic diagram of the vibration rod in the present invention; Figure 10 is a schematic diagram of the rotating shaft in the present invention; Figure 11 Schematic diagram of the swing plate in the present invention; Figure 12 Schematic diagram of mobile block 2 in the present invention; Figure 13 Schematic diagram of the mobile block 1 in the present invention; Figure 14 Schematic diagram of the splint in the present invention.
[0019] Description of the drawings: 1. Housing; 2. Swinging assembly; 3. Moving assembly; 5. Vibrating assembly; 6. Clamping assembly; 11. Fixed plate; 12. Display screen; 13. Switch; 14. Button; 15. Heat sink; 16. Support pad; 21. Swing plate; 22. Motor; 23. Worm; 24. Worm gear; 25. Connecting plate; 26. Rotating plate; 27. Fixed rod; 28. Positioning rod; 31. Active bevel gear; 32. Passive bevel gear; 33. Toothed rod; 34. Threaded rod; 35. Moving plate; 36. Sliding rod 1; 37. Limiting plate 1; 38. Spring Spring 1; 39. Stabilizing block; 40. Spring 2; 41. Limiting plate 2; 42. Positioning block; 51. Vibrating plate; 52. Driving gear; 53. Passive gear; 54. Rotating shaft; 55. Vibrating rod; 56. Vibrating block; 57. Damper; 58. Sliding rod 2; 61. Electric push rod 1; 62. Moving block 1; 63. Trapezoidal block; 64. Clamp; 65. Anti-slip pad; 66. Sliding rod 3; 71. Electric push rod 2; 72. Moving block 2. DETAILED DESCRIPTION
[0020] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention.
[0021] See also Figures 1-14 As shown, the present invention is a high-frequency wire harness detection device and detection method for a data center, comprising a housing 1, wherein a swinging assembly 2, a moving assembly 3, and a vibrating assembly 5 are provided inside the housing 1, wherein the swinging assembly 2 includes a swinging plate 21, the moving assembly 3 includes a moving plate 35, and the vibrating assembly 5 includes a vibrating plate 51, wherein the outer wall of the vibrating plate 51 is slidably connected to the inner top side of the housing 1, and two fixed plates 11 are provided on the top of the housing 1, wherein the bottom of one fixed plate 11 is slidably connected to the top of the swinging plate 21, and the bottom of the other fixed plate 11 is fixedly connected to the top of the vibrating plate 51, and a clamping assembly 6 is provided inside the fixed plate 11; The swing component 2 can drive the swing plate 21 to swing, and then simulate the static deformation stress of the new material harness to perform a bending test. The moving component 3 is controlled by the swing component 2. The swing component 2 can drive the moving plate 35 to move through operation, and then adjust the vibration frequency of the vibration plate 51. The vibration component 5 is controlled by the moving component 3. The moving component 3 can drive the vibration plate 51 to vibrate through operation, and then simulate the dynamic environmental load to perform a vibration test on the new material harness. The clamping component 6 can fix the new material harness, so as to perform detection and testing on it.
[0022] The swing assembly 2 also includes a motor 22, which is fixedly connected to the interior of the housing 1. The driving end of the motor 22 is fixedly connected to a worm 23. The interior of the housing 1 is rotatably connected to a worm gear 24, which meshes with the worm gear 23. The top eccentric portion of the worm gear 24 is rotatably connected to a connecting plate 25. The side of the connecting plate 25 away from the worm gear 24 is rotatably connected to a rotating plate 26. The inner side of the rotating plate 26 is fixedly connected to a fixing rod 27. The outer wall of the fixing rod 27 is rotatably connected to the interior of the housing 1, and the top end of the fixing rod 27 is fixedly connected to the interior of the swing plate 21. The motor 22 is used to drive the worm 23 to rotate. The rotation of the worm 23 can drive the worm wheel 24 to rotate. The rotation of the worm wheel 24 can drive the connecting plate 25 to swing. The connecting plate 25 can drive the rotating plate 26 to swing. The rotating plate 26 can drive the fixed rod 27 to rotate. The fixed rod 27 can drive the swing plate 21 to swing. The swinging of the swing plate 21 can simulate the static deformation stress of the new material harness to perform a bending test; The movable assembly 3 also includes an active bevel gear 31, which is fixedly connected to one end of the worm gear 23, and the internal thread of the movable plate 35 is connected to a threaded rod 34, which is rotatably connected to the interior of the shell 1, and an outer wall of one side of the threaded rod 34 is slidably connected to the two passive bevel gears 32, and the outer wall of the passive bevel gear 32 is rotatably connected to the interior of the shell 1. The passive bevel gear 32 is meshed with the active bevel gear 31 and the active bevel gear 31. The outer wall of one side of the threaded rod 34 is fixedly connected to a toothed rod 33, and the toothed rod 33 is respectively meshed with the two passive bevel gears 32. The worm gear 23 can also drive the active bevel gear 31 to rotate by rotating. The active bevel gear 31 can drive the two passive bevel gears 32 to rotate by rotating. The two passive bevel gears 32 respectively drive the toothed rods 33 to rotate forward and reverse. First, a passive bevel gear 32 drives the toothed rod 33 to rotate forward by rotating. The forward rotation of the toothed rod 33 can drive the threaded rod 34 to rotate forward. The forward rotation of the threaded rod 34 can drive the movable plate 35 to move. After the movable plate 35 moves to a certain extent, it can squeeze the limit plate 1 37. At the same time, after squeezing for a while, it can no longer be squeezed to move. At this time, the elastic force of the spring 1 38 can drive the limit plate 1 37 to generate a reset force, thereby driving the movable plate 35 to move in the opposite direction and then driving the threaded rod 34 to move, and causing the toothed rod 33 to disengage from one of the passive bevel gears 32 and engage with the other passive bevel gear 32, thereby realizing the reversal of the toothed rod 33. The vibration assembly 5 also includes a driving gear 52, which is rotatably connected to the interior of the housing 1. One side of the driving gear 52 is slidably connected to one end of the threaded rod 34. A rotating shaft 54 is rotatably connected to the interior of the housing 1. One end of the rotating shaft 54 is fixedly connected to a passive gear 53. The passive gear 53 meshes with the driving gear 52. A vibration rod 55 is slidably connected to the outer wall of the rotating shaft 54. A vibration block 56 is fixedly connected to the bottom of the vibration plate 51. The bottom of the vibration block 56 abuts against the outer wall of the vibration rod 55. The threaded rod 34 can also drive the driving gear 52 to rotate by rotating, and the driving gear 52 can drive the driven gear 53 to rotate by rotating, and the driven gear 53 can drive the rotating shaft 54 to rotate by rotating, and the rotating shaft 54 can drive the vibration rod 55 to rotate by rotating, and the vibration rod 55 can drive the vibration block 56 to vibrate by rotating, and the vibration block 56 can transmit the vibration to the vibration plate 51, and the vibration of the vibration plate 51 can drive one of the fixed plates 11 to vibrate, thereby simulating the dynamic environmental load to perform vibration testing on the new material wiring harness.
[0023] The clamping assembly 6 includes an electric push rod 1 61, which is fixedly connected to the inside of the fixed plate 11. The telescopic end of the electric push rod 1 61 is fixedly connected to a moving block 1 62. Both sides of the moving block 1 62 are fixedly connected to a trapezoidal block 63. The outer wall of the trapezoidal block 63 is slidably connected to a clamping plate 64. The outer wall of the clamping plate 64 is slidably connected to the inside of the fixed plate 11. One side of the clamping plate 64 is fixedly connected to an anti-slip pad 65. The inside of the clamping plate 64 is slidably connected to a sliding rod 3 66. The sliding rod 3 66 is fixedly connected to the inside of the fixed plate 11. The electric push rod 61 can drive the moving block 62 to move, and the moving block 62 can drive the trapezoidal block 63 to move by moving. The trapezoidal block 63 can drive the splint 64 to move by moving. The splint 64 can fix the new material wiring harness by moving. The anti-slip pad 65 not only reinforces the splint 64 to fix the new material wiring harness, but also prevents damage to the new material wiring harness. The slide rod three 66 is used to fix the moving route of the splint 64.
[0024] The interior of the swing plate 21 is fixedly connected to an electric push rod 2 71, and the telescopic end of the electric push rod 2 71 is fixedly connected to a moving block 2 72. The top of the moving block 2 72 is fixedly connected to the bottom of the fixed plate 11, and the outer wall of the moving block 2 72 is slidably connected to the interior of the swing plate 21. Dampers 57 are fixedly connected to both sides of the bottom of the vibration plate 51, and the bottom end of the damper 57 is fixedly connected to the interior of the housing 1. A plurality of evenly distributed sliding rods 58 are slidably connected to the interior of the vibration plate 51, and the bottom end of the sliding rod 58 is fixedly connected to the interior of the housing 1. The electric push rod 2 71 can drive the moving block 2 72 to move, and the moving block 2 72 can drive the fixed plate 11 to move by moving, thereby adjusting the force of the new material harness and testing it. The damper 57 can make the vibration plate 51 vibrate stably, and the slide rod 2 58 is used to fix the moving route of the vibration plate 51.
[0025] The outer wall of the threaded rod 34 is fixedly connected to a stabilizing block 39, the interior of the shell 1 is fixedly connected to a spring 2 40, one end of the spring 2 40 is fixedly connected to a limiting plate 2 41, the outer wall of the limiting plate 2 41 is slidably connected to the interior of the shell 1, the side of the limiting plate 2 41 away from the spring 2 40 is fixedly connected to a positioning block 42, one side of the positioning block 42 abuts against one side of the stabilizing block 39, the interior of the shell 1 is fixedly connected to a positioning rod 28, the outer wall of the positioning rod 28 is rotatably connected to the interior of the swing plate 21, the outer wall of the positioning rod 28 is rotatably connected to the interior of the fixed rod 27, one side of the shell 1 is fixedly connected to a display screen 12, a switch 13 is installed on one side of the shell 1, a plurality of evenly distributed buttons 14 are installed on one side of the shell 1, a heat sink 15 is fixedly connected to the front side of the shell 1, and a plurality of evenly distributed support pads 16 are fixedly connected to the bottom of the shell 1; The stabilizing block 39 is used to fix the threaded rod 34, the spring 2 40 is used to drive the limit plate 2 41 to reset, the limit plate 2 41 is used to fix the positioning block 42, the positioning block 42 is used to fix the stabilizing block 39, and the positioning rod 28 can ensure that the tension of the wire harness is always in a tensioned state when the swing plate 21 is swinging to test the wire harness. The display screen 12 is used to display the test data and measurement results. The switch 13 is used to control the start and stop of the equipment. The button 14 is used to operate the equipment. The heat sink 15 plays the role of heat dissipation of the equipment. The support pad 16 is used to support the equipment.
[0026] A high-frequency wire harness detection method for a data center, comprising: Step 1: Use the clamping assembly 6 to fix the two ends of the new material harness to be tested on the two fixed plates 11 respectively, and pass it through the inside of the positioning rod 28. During the fixing process, the electric push rod 1 61 is started to drive the moving block 1 62 to move, and then the clamping plate 64 is driven to move by the cooperation of the trapezoidal block 63. The movement of the clamping plate 64 can fix the new material harness, and then the moving block 2 72 can drive one of the fixed plates 11 to move, thereby adjusting the force on the new material harness and testing it; Step 2: Start the motor 22 to drive the worm 23 to rotate. The rotation of the worm 23 drives the worm wheel 24 to rotate. The rotation of the worm wheel 24 drives the rotating plate 26 to rotate through the connecting plate 25. The rotating plate 26 drives the swing plate 21 to rotate through the fixed rod 27. The swing plate 21 drives one of the fixed plates 11 to rotate by rotating, thereby simulating static deformation stress to perform a bending test; The third step is to rotate the worm 23 so that the active bevel gear 31 can rotate. The rotation of the active bevel gear 31 can drive the passive bevel gear 32 to rotate. The passive bevel gear 32 can first drive the toothed rod 33 to rotate forward by rotating. The toothed rod 33 can drive the threaded rod 34 to rotate forward by rotating. The threaded rod 34 can drive the movable plate 35 to move forward. After the movable plate 35 moves to a certain extent, it can squeeze the limit plate 1 37. At the same time, after squeezing for a period of time, it can no longer be squeezed to move. At this time, the elastic force of the spring 1 38 can drive the limit plate 1 37 to generate a reset force, thereby driving the movable plate 35 to move in the opposite direction and then driving the threaded rod 34 to move, and making the toothed rod 33 disengage from one of the passive bevel gears 32 and mesh with the other passive bevel gear 32, thereby realizing the reversal of the toothed rod 33. Step 4. The rotation of the tooth rod 33 can drive the movable plate 35 to move through the threaded rod 34. The movement of the movable plate 35 can drive the vibration rod 55 to move. At the same time, the threaded rod 34 can also drive the driving gear 52 to rotate during the rotation process. The rotation of the driving gear 52 can drive the rotating shaft 54 to rotate through the passive gear 53, and then drive the vibration rod 55 to rotate. The vibration rod 55 can vibrate the vibration block 56 by rotating, thereby vibrating the fixed plate 11 through the vibration plate 51. At the same time, the vibration rod 55 can change the vibration rate of the fixed plate 11 by moving, thereby simulating the dynamic environmental load for vibration testing of the new material wiring harness.
[0027] The working principle of the present invention is as follows: first, the new material harness is passed through the positioning rod 28, and then the electric push rod 1 61 is started to drive the moving block 1 62 to move. The moving block 1 62 moves through the cooperation of the trapezoidal block 63 to drive the clamping plate 64 to move, thereby fixing one end of the harness. Similarly, the other end of the harness is fixed on another fixed plate 11. Starting the electric push rod 2 71 can drive one of the fixed plates 11 to move through the moving block 2 72, thereby adjusting the force of the new material harness and testing it. Starting the motor 22 drives the worm 23 to rotate, and the worm 23 rotates. The rotation of the worm gear 24 and the connecting plate 25 can drive the rotating plate 26 to rotate. The rotation of the rotating plate 26 can drive the swing plate 21 to rotate through the fixed rod 27. The swing plate 21 can drive another fixed plate 11 to rotate by rotating, thereby simulating static deformation stress to perform a bending test. The worm 23 can also drive the active bevel wheel 31 to rotate during the rotation process. The rotation of the active bevel wheel 31 can drive the passive bevel wheel 32 to rotate. The rotation of one of the passive bevel wheels 32 can drive the tooth rod 33 to rotate forward. The tooth rod 33 can drive the threaded rod 34 to rotate forward. The threaded rod 34 can rotate forward. The forward rotation can drive the movable plate 35 to move. After the movable plate 35 moves to a certain extent, it can squeeze the limit plate 1 37. At the same time, after squeezing for a period of time, it can no longer squeeze and move it. At this time, the elastic force of the spring 1 38 can drive the limit plate 1 37 to generate a reset force, thereby driving the movable plate 35 to move in the reverse direction and then driving the threaded rod 34 to move, and making the toothed rod 33 disengage from one of the passive cone wheels 32 and engage with the other passive cone wheel 32. The rotation of the other passive cone wheel 32 can drive the toothed rod 33 to reverse. The rotation of the toothed rod 33 can be The movable plate 35 is driven to move, and the movement of the movable plate 35 can drive the vibration rod 55 to move. At the same time, the threaded rod 34 can also drive the driving gear 52 to rotate during the rotation process. The rotation of the driving gear 52 can drive the vibration rod 55 to rotate through the passive gear 53 and the rotating shaft 54. The vibration rod 55 can make the vibration block 56 vibrate by rotating, thereby making the fixed plate 11 vibrate through the vibration plate 51. At the same time, the movement of the vibration rod 55 can change the vibration rate of the fixed plate 11, thereby simulating the dynamic environmental load to perform vibration testing on the new material harness.
[0028] The above is a detailed description of an embodiment of the present invention, but the content is only a preferred embodiment of the present invention and should not be considered to limit the scope of the present invention. All equivalent changes and improvements made within the scope of the present invention should still fall within the scope of the patent coverage of the present invention.
Claims
1. A high-frequency wire harness detection device for a data center, comprising a housing (1), characterized in that: The housing (1) is provided with an oscillating assembly (2), a moving assembly (3), and a vibrating assembly (5), wherein the oscillating assembly (2) includes a oscillating plate (21), the moving assembly (3) includes a moving plate (35), and the vibrating assembly (5) includes a vibrating plate (51), wherein the outer wall of the vibrating plate (51) is slidably connected to the inner top side of the housing (1); Two fixed plates (11) are provided on the top of the housing (1), wherein the bottom of one of the fixed plates (11) is slidably connected to the top of the swing plate (21), and the bottom of the other fixed plate (11) is fixedly connected to the top of the vibration plate (51), and a clamping assembly (6) is provided inside the fixed plate (11); The swing assembly (2) is capable of driving the swing plate (21) to swing, thereby performing a bending test on the new material harness by simulating static deformation stress; The moving assembly (3) is controlled by the swing assembly (2), and the swing assembly (2) can drive the moving plate (35) to move by operating, thereby adjusting the vibration frequency of the vibration plate (51); The vibration component (5) is controlled by the moving component (3), and the moving component (3) can drive the vibration plate (51) to vibrate through operation, thereby performing a vibration test on the new material harness by simulating a dynamic environmental load; The clamping assembly (6) can fix the new material harness so as to perform inspection and testing on it.
2. The high-frequency wire harness detection device for a data center according to claim 1, characterized in that: The oscillating assembly (2) further comprises a motor (22), the motor (22) being fixedly connected to the interior of the housing (1), a driving end of the motor (22) being fixedly connected to a worm (23), the interior of the housing (1) being rotatably connected to a worm wheel (24), the worm wheel (24) being meshed with the worm wheel (23); A connecting plate (25) is rotatably connected to an eccentric portion of the top of the worm gear (24), a rotating plate (26) is rotatably connected to a side of the connecting plate (25) away from the worm gear (24), a fixing rod (27) is fixedly connected to an inner side of the rotating plate (26), an outer wall of the fixing rod (27) is rotatably connected to the inside of the housing (1), and a top end of the fixing rod (27) is fixedly connected to the inside of the swing plate (21); The moving assembly (3) further comprises an active bevel gear (31), the active bevel gear (31) being fixedly connected to one end of the worm (23), the internal thread of the moving plate (35) being connected to a threaded rod (34), the threaded rod (34) being rotatably connected to the interior of the housing (1), the outer wall of one side of the threaded rod (34) being slidably connected to two passive bevel gears (32), the outer wall of the passive bevel gear (32) being rotatably connected to the interior of the housing (1), the passive bevel gear (32) being meshed with the active bevel gear (31), the outer wall of one side of the threaded rod (34) being fixedly connected to a toothed rod (33), the toothed rod (33) being individually meshed with the two passive bevel gears (32); One side of the interior of the movable plate (35) is slidably connected to a slide bar (36), the slide bar (36) is fixedly connected to the interior of the housing (1), the outer wall of the slide bar (36) is slidably connected to two limit plates (37), the outer wall of the limit plate (37) is slidably connected to the interior of the housing (1), one side of the limit plate (37) is fixedly connected to a spring (38), one end of the spring (38) away from the limit plate (37) is fixedly connected to the interior of the housing (1), and the spring (38) is sleeved on the outer wall of the slide bar (36); The vibration assembly (5) further includes a driving gear (52), the driving gear (52) being rotatably connected to the interior of the housing (1), one side of the driving gear (52) being slidably connected to one end of the threaded rod (34), the interior of the housing (1) being rotatably connected to a rotating shaft (54), one end of the rotating shaft (54) being fixedly connected to a driven gear (53), the driven gear (53) being meshed with the driving gear (52); The outer wall of the rotating shaft (54) is slidably connected to a vibration rod (55), and the bottom of the vibration plate (51) is fixedly connected to a vibration block (56), and the bottom of the vibration block (56) abuts against the outer wall of the vibration rod (55).
3. The high-frequency wire harness detection device for a data center according to claim 2, characterized in that: The clamping assembly (6) includes an electric push rod (61), the electric push rod (61) is fixedly connected to the inside of the fixed plate (11), the telescopic end of the electric push rod (61) is fixedly connected to a moving block (62), both sides of the moving block (62) are fixedly connected to trapezoidal blocks (63), and the outer wall of the trapezoidal block (63) is slidably connected to a clamping plate (64).
4. The high-frequency wire harness detection device for a data center according to claim 3, characterized in that: The outer wall of the splint (64) is slidably connected to the inside of the fixed plate (11), a non-slip pad (65) is fixedly connected to one side of the splint (64), and a sliding rod three (66) is slidably connected to the inside of the splint (64), and the sliding rod three (66) is fixedly connected to the inside of the fixed plate (11).
5. The high-frequency wire harness detection device for a data center according to claim 4, characterized in that: The interior of the swing plate (21) is fixedly connected to an electric push rod 2 (71), the telescopic end of the electric push rod 2 (71) is fixedly connected to a moving block 2 (72), the top of the moving block 2 (72) is fixedly connected to the bottom of the fixed plate (11), and the outer wall of the moving block 2 (72) is slidably connected to the interior of the swing plate (21).
6. The high-frequency wire harness detection device for a data center according to claim 5, characterized in that: Both sides of the bottom of the vibration plate (51) are fixedly connected to dampers (57), the bottom ends of the dampers (57) are fixedly connected to the inside of the housing (1), and the inside of the vibration plate (51) is slidably connected to a plurality of evenly distributed sliding rods (58), the bottom ends of the sliding rods (58) are fixedly connected to the inside of the housing (1).
7. The high-frequency wire harness detection device for a data center according to claim 6, characterized in that: The outer wall of the threaded rod (34) is fixedly connected to a stabilizing block (39), the interior of the housing (1) is fixedly connected to a second spring (40), one end of the second spring (40) is fixedly connected to a second limiting plate (41), the outer wall of the second limiting plate (41) is slidably connected to the interior of the housing (1), the side of the second limiting plate (41) away from the second spring (40) is fixedly connected to a positioning block (42), and one side of the positioning block (42) abuts against one side of the stabilizing block (39).
8. The high-frequency wire harness detection device for a data center according to claim 7, characterized in that: A positioning rod (28) is fixedly connected to the interior of the housing (1), an outer wall of the positioning rod (28) is rotatably connected to the interior of the swing plate (21), and an outer wall of the positioning rod (28) is rotatably connected to the interior of the fixing rod (27).
9. The high-frequency wire harness detection device for a data center according to claim 8, characterized in that: A display screen (12) is fixedly connected to one side of the housing (1), a switch (13) is installed on one side of the housing (1), a plurality of evenly distributed buttons (14) are installed on one side of the housing (1), a heat sink (15) is fixedly connected to the front side of the housing (1), and a plurality of evenly distributed support pads (16) are fixedly connected to the bottom of the housing (1).
10. A high-frequency wire harness detection method for a data center adopts the high-frequency wire harness detection device for a data center according to claim 9, characterized in that: include: Step 1: The two ends of the new material harness to be tested are fixedly connected to the two fixing plates (11) by the clamping assembly (6), and pass through the inside of the positioning rod (28). During the fixing process, the electric push rod 1 (61) is started to drive the moving block 1 (62) to move, and then the clamping plate (64) is driven to move by the cooperation of the trapezoidal block (63). The movement of the clamping plate (64) can fix the new material harness, and then the moving block 2 (72) can drive one of the fixing plates (11) to move, thereby adjusting the force on the new material harness and testing it; Step 2: The starting motor (22) can drive the worm (23) to rotate, the rotation of the worm (23) drives the worm wheel (24) to rotate, the rotation of the worm wheel (24) can drive the rotating plate (26) to rotate through the connecting plate (25), the rotation of the rotating plate (26) can drive the swing plate (21) to rotate through the fixed rod (27), and the swing plate (21) can drive one of the fixed plates (11) to rotate by rotating, thereby simulating static deformation stress to perform a bending test; Step 3: The worm (23) can also drive the active cone wheel (31) to rotate during the rotation process. The rotation of the active cone wheel (31) can drive the passive cone wheel (32) to rotate. The passive cone wheel (32) can first drive the tooth rod (33) to rotate forward. The tooth rod (33) can drive the threaded rod (34) to rotate forward. The threaded rod (34) can drive the movable plate (35) to move forward. After the movable plate (35) moves to a certain extent, it can squeeze the limit plate (37). At the same time, after squeezing for a period of time, it can no longer squeeze to move. At this time, the elastic force of the spring (38) can drive the limit plate (37) to generate a reset force, thereby driving the movable plate (35) to move in the opposite direction and then driving the threaded rod (34) to move, and making the tooth rod (33) disengage from one of the passive cone wheels (32) and engage with the other passive cone wheel (32), thereby realizing the reversal of the tooth rod (33). Step 4: The tooth rod (33) rotates through the threaded rod (34) to drive the movable plate (35) to move, and the movement of the movable plate (35) can drive the vibration rod (55) to move. At the same time, the threaded rod (34) can also drive the active gear (52) to rotate during the rotation process. The active gear (52) rotates through the passive gear (53) to drive the rotating shaft (54) to rotate, thereby driving the vibration rod (55) to rotate. The vibration rod (55) can cause the vibration block (56) to vibrate by rotating, thereby causing the fixed plate (11) to vibrate through the vibration plate (51). At the same time, the vibration rod (55) can change the vibration rate of the fixed plate (11) by moving, thereby performing a vibration test on the new material harness simulating a dynamic environmental load.