A fully automatic withstand voltage test system for insulating boots
Through the fully automatic insulated shoe pressure resistance test system, the power roller and annular station rotation and movement are used to conduct pressure resistance tests, which solves the problem of low manual operation efficiency in the prior art, and realizes efficient detection of insulated shoe and steel ball recycling.
Patent Information
- Application Number
- CN202310787625.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-29
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2043-06-29
AI Technical Summary
The existing insulated boot pressure-resistant testing device requires manual operation, low detection efficiency, and the test results cannot be automatically judged, and the steel beads in the insulated boot cavity are inconvenient to be recycled.
A fully automatic insulated shoe pressure resistance test system is designed, using power rollers and annular station rotation and movement, and an automatic pressure regulating mechanism for pressure resistance test, combined with cylinders and conductive rods for detection and sampling, realizing automatic judgment and steel ball recycling.
It realizes efficient automatic inspection and steel ball recycling of insulated boots, improves detection efficiency, and can operate continuously without human monitoring, automatically record and sample qualified products and unqualified products.
Smart Images

Figure CN116859193B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of insulating boots withstand voltage test, in particular to a full-automatic insulating boots withstand voltage test system. Background Art
[0002] Insulation boots are also called high-voltage insulation boots and mining boots. Insulation refers to the use of insulating materials to enclose charged bodies, thereby isolating charged bodies or conductors with different potentials so that current can flow through a certain path. Good insulation is a necessary condition to ensure the normal operation of equipment and lines, and is also an important measure to prevent electric shock accidents.
[0003] The existing insulating boots pressure test device is carried out manually step by step. The processes of filling steel balls, wiring, pressurizing, and data recording all require manual operation. The entire test process requires personnel participation, and the detection efficiency is low. After the test, the test results are automatically judged. After the test, the insulating boots cannot be sorted and need to be manually sent to the qualified and unqualified areas. In addition, the steel balls in the inner cavity of the insulating boots cannot be quickly recovered and need to be recovered manually. Summary of the invention
[0004] The present invention provides a fully automatic insulating boot withstand voltage test system to solve the above problems.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical scheme: comprising a box body, a controller is fixedly connected to the front surface of the box body, universal wheels are fixedly connected to the four corners of the bottom of the box body, first limit plates are fixedly connected to the left and right sides of the inner cavity of the box body, a first sliding bar is fixedly connected to the inner side of the first limit plate, a first rodless cylinder is movably sleeved on the surface of the first sliding bar, a first clamping mechanism is movably provided on the bottom of the first rodless cylinder, the first rodless cylinder and the first clamping mechanism are fixedly connected by a group of lifting linear cylinders, a power roller is movably connected to the inner cavity of the box body, a ring-shaped work station is movably sleeved on the surface of the power roller, a detection mechanism is fixedly connected to the bottom of the inner cavity of the box body, and a transmission mechanism is fixedly connected to the inner cavity of the box body;
[0006] The detection mechanism includes a second support plate, the top of the second support plate is fixedly connected to the top of the inner cavity of the box body, a support frame is fixedly connected to the inner cavity of the box body, an insulator is fixedly connected to the inner cavity of the box body, the back surface of the second support plate is fixedly connected to a connection frame, a rotating rod is movably connected to the inner cavity of the connection frame through a bearing, a first insulating rod is fixedly connected to the back surface of the rotating rod, a conductive rod is fixedly connected to the back surface of the first insulating rod, a wire is fixedly connected to the bottom of the surface of the conductive rod, an electrode is fixedly connected to the side of the wire away from the conductive rod, a first support plate is fixedly connected to the inner cavity of the support frame, an elastic contact is fixedly connected to the surface of the top of the first support plate, an insulating bracket is fixedly connected to the surface of the top of the annular work station, a work station groove is movably connected to the surface of the top of the insulating bracket, the bottom of the work station groove is movably connected to the top of the elastic contact, a second rodless cylinder is movably sleeved on the surface of the support frame, a second insulating rod is fixedly connected to the inner side of the second rodless cylinder, a conduction rod is fixedly connected to the bottom of the electrode, a hook is fixedly connected to the surface of the top of the rotating rod, a high-voltage breaking electromagnet is fixedly connected to the back surface of the second support plate, an armature is fixedly connected to the output end of the high-voltage breaking electromagnet, and a pulling spring is fixedly connected to the bottom of the rotating rod;
[0007] The transmission mechanism includes a third sliding rod, a third rodless cylinder is movably sleeved on the surface of the third sliding rod, a swinging air rod is fixedly connected to the surface on the right side of the third rodless cylinder, a turning cylinder is fixedly connected to the left side of the third rodless cylinder, a first material box is fixedly connected to the output end of the turning cylinder, and a triangular sliding table is fixedly connected to the surface on the right side of the box body.
[0008] As a preferred solution of the present invention, a first conveyor is fixedly connected to the front side on the right side of the triangular sliding table, a second conveyor is fixedly connected to the rear side on the right side of the triangular sliding table, and a baffle is fixedly connected to the surface on the right side of the box body.
[0009] As a preferred solution of the present invention, a shower head is fixedly connected to the inner cavity of the box body, and the bottom of the pulling spring is fixedly connected to the back surface of the second support plate.
[0010] As a preferred solution of the present invention, a second limiting plate is fixedly connected to the inner cavity of the box body, a second sliding rod is fixedly connected to the inner surface of the second limiting plate, a fifth rodless cylinder is movably sleeved on the surface of the second sliding rod, a second clamping mechanism is movably arranged at the bottom of the fifth rodless cylinder, and the fifth rodless cylinder and the second clamping mechanism are fixedly connected through a set of lifting linear cylinders.
[0011] As a preferred solution of the present invention, a code scanner is fixedly connected to the front surface of the box body, and a third conveyor is movably connected to the surface on the right side of the box body.
[0012] As a preferred solution of the present invention, a detector is fixedly connected to the back surface of the box body, and the inner cavity of the electrode is fixedly connected to the surface of the second insulating rod.
[0013] As a preferred solution of the present invention, a first support rod is fixedly connected to the inner cavity of the box body. A fourth rodless cylinder is movably sleeved on the surface of the first support rod. A moving frame is fixedly connected to the left side surface of the fourth rodless cylinder. A second material box is movably connected to the inner cavity of the moving frame through a bearing.
[0014] As a preferred solution of the present invention, a feeding mechanism is movably connected to the inner cavity of the box body. A flipping stopper is fixedly connected to the left side surface of the feeding mechanism. A control valve is fixedly connected to the top surface of the feeding mechanism. A material pipe is fixedly connected to the inner cavity of the feeding mechanism.
[0015] In the present invention, through the driving of the power roller and the rotational movement of the annular work station, the insulating boots are moved to the withstand voltage test station. After reaching the withstand voltage test station, the conduction rod descends until it touches the steel ball layer inside the insulating boots. Then, the automatic voltage regulating mechanism raises the test voltage to the specified value for the withstand voltage test. The test voltage value, test time, leakage current value, and protection limit value can be set and read on the upper computer. During the test process, if the leakage current is greater than the standard value, it is determined that the insulating boots are unqualified. When breakdown discharge occurs, the armature of the corresponding high-voltage disconnection electromagnet retracts into its interior. At this time, the hook releases the limiting relationship with the armature, and the pulling spring pulls the insulating rod to rotate downward, resulting in the disconnection of the high-voltage electrode. The three detection mechanisms conduct tests independently of each other without interference. When the withstand voltage test lasts for the specified test time and the leakage current does not exceed the standard value, it is determined to be qualified, thereby testing multiple insulating boots.
[0016] Through the driving of the power roller, the annular work station continues to rotate and move, moving the tested insulating boots to the transmission mechanism. The fifth rodless cylinder and the second clamping mechanism move the insulating boots to the first material box. The flipping cylinder drives the first material box to rotate, causing the steel balls to pour into the second material box. After pouring out the steel balls, the first material box rotates back to its original position. According to the test results, the third rodless cylinder selects to act. Then, the pneumatic flap at the bottom of the first material box opens, and the insulating boots fall out. After being detected by the detector, the swinging air rod is started. The swinging air rod rotates forward, causing the flap inside the first material box to turn downward to pour out the insulating boots. The second material box is lifted by the rising of the fourth rodless cylinder. Through the provided flipping stopper, the second material box can be flipped, causing the steel balls to pour into the feeding mechanism, completing the recovery of the steel balls and the sorting output of qualified and unqualified products. The second transfer table and the first transfer table transfer the sorted insulating boots to the qualified and unqualified product areas, thereby completing the recovery of the steel balls and the sorting of the insulating boots. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0018] Figure 2 This is the rear view of the overall structure of the present invention;
[0019] Figure 3 This is the schematic structural diagram of the detection mechanism of the present invention;
[0020] Figure 4 This is the enlarged view of the structure of the detection mechanism of the present invention;
[0021] Figure 5 This is the schematic structural diagram of the material distribution mechanism of the present invention;
[0022] Figure 6 This is the enlarged view of the structure of the material distribution mechanism of the present invention.
[0023] In the figure: 1. Box body; 2. Controller; 3. Universal wheel; 4. Second transfer table; 5. Third transfer table; 6. First transfer table; 7. Baffle; 8. Power roller; 9. Ring-shaped work station; 10. Detector; 11. Barcode scanner; 12. First limit plate; 13. First slide bar; 14. First rodless cylinder; 15. First clamping mechanism; 16. Second insulating rod; 17. Detection mechanism; 1701. Second support plate; 1702. Armature; 1703. Pulling spring; 1704. Connecting frame; 1705. High-voltage disconnection electromagnet; 1706. Hook; 1707. Rotating rod; 1708. First insulating rod; 1709. Conductive rod; 1710. Conducting wire; 18. Support frame; 19. Insulator; 20. Second rodless cylinder; 21. Electrode; 22. Conducting rod; 23. First support plate; 24. Elastic contact; 25. Work station groove; 26. Material pipe; 27. Triangular slide table; 28. Control valve; 29. Second material box; 30. Flipping baffle; 31. Fourth rodless cylinder; 32. First support rod; 33. Second slide bar; 34. Fifth rodless cylinder; 35. Second clamping mechanism; 36. Second limit plate; 37. Transmission mechanism; 3701. Flipping cylinder; 3702. Oscillating air rod; 3703. Third slide bar; 3704. Third rodless cylinder; 3705. First material box; 38. Moving frame; 39. Feeding mechanism; 40. Insulating support. Embodiment
[0024] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.
[0025] Embodiment: Please refer to Figure 1-6A fully automatic withstand voltage test system for insulating boots as shown, comprising a box body 1, a controller 2 is fixedly connected to the front surface of the box body 1, universal wheels 3 are fixedly connected to the four corners of the bottom of the box body 1, first limiting plates 12 are fixedly connected to both the left and right sides of the inner cavity of the box body 1, first sliding rods 13 are fixedly connected to the inner sides of the first limiting plates 12, a first rodless cylinder 14 is movably sleeved on the surface of the first sliding rod 13, a first clamping mechanism 15 is movably arranged at the bottom of the first rodless cylinder 14, the first rodless cylinder 14 and the first clamping mechanism 15 are fixedly connected by a set of lifting linear cylinders, a power roller 8 is movably connected to the inner cavity of the box body 1, an annular working station 9 is movably sleeved on the surface of the power roller 8, a detection mechanism 17 is fixedly connected to the bottom of the inner cavity of the box body 1, a transmission mechanism 37 is fixedly connected to the inner cavity of the box body 1. After the steel balls are filled and the code scanning and identification are completed through the set code scanner 11 and material pipe 26, the insulating boots are moved to the three working slots 25 by the first rodless cylinder 14 and the first clamping mechanism 15, so as to synchronously detect multiple insulating boots, which is convenient for improving the detection efficiency of the insulating boots.
[0026] The detection mechanism 17 includes a second support plate 1701, the top of the second support plate 1701 is fixedly connected to the top of the inner cavity of the box body 1, a support frame 18 is fixedly connected to the inner cavity of the box body 1, an insulator 19 is fixedly connected to the inner cavity of the box body 1, a connection frame 1704 is fixedly connected to the back surface of the second support plate 1701, a rotating rod 1707 is movably connected to the inner cavity of the connection frame 1704 through a bearing, a first insulating rod 1708 is fixedly connected to the back surface of the rotating rod 1707, a conducting rod 1709 is fixedly connected to the back surface of the first insulating rod 1708, a wire 1710 is fixedly connected to the bottom of the surface of the conducting rod 1709, an electrode 21 is fixedly connected to the side of the wire 1710 away from the conducting rod 1709, a first support plate 23 is fixedly connected to the inner cavity of the support frame 18, an elastic contact 24 is fixedly connected to the surface of the top of the first support plate 23, an insulating support 40 is fixedly connected to the surface of the top of the annular working station 9, a working station groove 25 is movably connected to the surface of the top of the insulating support 40, the bottom of the working station groove 25 is movably connected to the top of the elastic contact 24, a second rodless cylinder 20 is movably sleeved on the surface of the support frame 18, a second insulating rod 16 is fixedly connected to the inner side of the second rodless cylinder 20, a conduction rod 22 is fixedly connected to the bottom of the electrode 21, a hook 1706 is fixedly connected to the surface of the top of the rotating rod 1707, a high-voltage disconnection electromagnet 1705 is fixedly connected to the back surface of the second support plate 1701, an armature 1702 is fixedly connected to the output end of the high-voltage disconnection electromagnet 1705, a pulling spring 1703 is fixedly connected to the bottom of the rotating rod 1707, a sponge is laid in the working station groove 25, according to the test requirements, the outer electrode is composed of sponge and water, and a circuit loop is formed through the first insulating rod 1708, the conducting rod 1709, the wire 1710, the electrode 21, the conduction rod 22, the insulator 19 and the elastic contact 24 to complete the power frequency withstand voltage test and leakage current measurement of the insulating boots. More specifically, when all three working station grooves 25 identify insulating boots or the slots are not fully filled but the input annular working station 9 identifies that there are no more insulating boots, the power rollers 8 and the annular working station 9 rotate and move to move the insulating boots to the withstand voltage test station. After reaching the withstand voltage test station, the conduction rod 22 descends until it touches the steel ball layer inside the insulating boots, and then the automatic voltage regulating mechanism raises the test voltage to the specified value for the withstand voltage test. The test voltage value, test time, leakage current value, and protection limit value can be set and read on the host computer. During the test process, if the leakage current is greater than the standard value, it is determined that the insulating boots are unqualified. When breakdown discharge occurs, the corresponding high-voltage disconnection electromagnet 1705 opens, and the high-voltage electrode disconnects. The three detection mechanisms 17 conduct tests independently of each other without interference. When the withstand voltage test lasts for the specified test time and the leakage current does not exceed the standard value, it is determined to be qualified. The test data of each insulating boot will be stored in the number corresponding to the insulating boot barcode. The test personnel can export the test data stored on the host computer for easy filling of the test report corresponding to the insulating boot with the barcode. After the withstand voltage test process ends, the conduction rod 22 rises to the initial position;
[0027] The transmission mechanism 37 includes a third slide bar 3703. A third rodless cylinder 3704 is movably sleeved on the surface of the third slide bar 3703. A swing air rod 3702 is fixedly connected to the right side surface of the third rodless cylinder 3704. A turning cylinder 3701 is fixedly connected to the left side of the third rodless cylinder 3704. The output end of the turning cylinder 3701 is fixedly connected to a first material box 3705. A triangular slide table 27 is fixedly connected to the right side surface of the box body 1. Through the fixation of the feeding mechanism 39, the second material box 29 rotates, so that steel balls are poured into the feeding mechanism 39, facilitating the recycling of steel balls and the sorting and output of qualified products and unqualified products.
[0028] In this embodiment, specifically refer to Figure 1 and Figure 2 , a first transfer table 6 is fixedly connected to the front side of the right side of the triangular slide table 27, a second transfer table 4 is fixedly connected to the rear side of the right side of the triangular slide table 27, and a baffle 7 is fixedly connected to the right side surface of the box body 1. Through the arranged second transfer table 4 and first transfer table 6, the insulating boots are sorted and transferred to the qualified product and unqualified product areas, facilitating the sorting of insulating boots.
[0029] In this embodiment, specifically refer to Figure 1 and Figure 3 , a shower head is fixedly connected to the inner cavity of the box body 1. The bottom of the pulling spring 1703 is fixedly connected to the back surface of the second support plate 1701. In order to ensure the retention of the moisture in the sponge, when the working station groove 25 moves, according to the preset requirement, the sponge in the working station groove 25 is periodically sprayed and moistened through the shower head.
[0030] In this embodiment, specifically refer to Figure 6 , a second limiting plate 36 is fixedly connected to the inner cavity of the box body 1. A second slide bar 33 is fixedly connected to the inner side surface of the second limiting plate 36. A fifth rodless cylinder 34 is movably sleeved on the surface of the second slide bar 33. A second clamping mechanism 35 is movably arranged at the bottom of the fifth rodless cylinder 34. The fifth rodless cylinder 34 and the second clamping mechanism 35 are fixedly connected through a group of lifting linear cylinders. Through the arranged fifth rodless cylinder 34 and second clamping mechanism 35, the insulating boots are moved to the first material box 3705. The turning cylinder 3701 drives the first material box 3705 to rotate, so that steel balls are poured into the second material box 29, facilitating the recycling of steel balls.
[0031] In this embodiment, specifically refer to Figure 1 , a code scanner 11 is fixedly connected to the front surface of the box body 1. A third transfer table 5 is movably connected to the right side surface of the box body 1. Through the arranged third transfer table 5, the insulating boots can be transferred to the bottom of the material pipe 26, facilitating the bead adding of the insulating boots.
[0032] In this embodiment, specifically refer to Figure 2 andFigure 4 On the back surface of the box body 1, a detector 10 is fixedly connected. The inner cavity of the electrode 21 is fixedly connected to the surface of the second insulating rod 16. By providing the detector 10, the insulating boots are detected, facilitating the sorting and transfer of the insulating boots to the qualified and unqualified product areas.
[0033] In this embodiment, specifically refer to Figure 6 Inside the box body 1, a first support rod 32 is fixedly connected. The surface of the first support rod 32 is movably sleeved with a fourth rodless cylinder 31. On the left surface of the fourth rodless cylinder 31, a moving frame 38 is fixedly connected. Inside the moving frame 38, a second material box 29 is rotatably connected through a bearing. By providing the moving frame 38, the second material box 29 can be flipped, facilitating the recovery of steel balls.
[0034] In this embodiment, specifically refer to Figure 6 Inside the box body 1, a feeding mechanism 39 is movably connected. On the left surface of the feeding mechanism 39, a flipping stopper 30 is fixedly connected. On the top surface of the feeding mechanism 39, a control valve 28 is fixedly connected. Inside the feeding mechanism 39, a material pipe 26 is fixedly connected. By providing the flipping stopper 30, the second material box 29 can be flipped, facilitating the recovery of steel balls.
[0035] When the full-automatic insulating boot withstand voltage test system of this solution is working, the test insulating boots are conveyed to the steel ball filling station through the input third transfer table 5. After the steel balls are filled and the code is scanned and recognized through the code scanner 11 and the material pipe 26 at the steel ball filling station, the first rodless cylinder 14 and the first clamping mechanism 15 move the insulating boots to the three station slots 25. After the insulating boots are placed on the station slots 25, the power roller 8 drives the annular station 9 to rotate and move to move the insulating boots to the bottom of the conduction rod 22. An electrical circuit loop is formed through the first insulating rod 1708, the conductive rod 1709, the wire 1710, the electrode 21, the conduction rod 22, the insulator 19, and the elastic contact 24 to complete the power frequency withstand voltage test and leakage current measurement of the insulating boots.
[0036] When insulating boots are recognized in all three working stations 25 or the slots are not fully filled but no insulating boots are recognized in the input annular working station 9, the power rollers 8 and the annular working station 9 rotate and move to transfer the insulating boots to the withstand voltage test station. After reaching the withstand voltage test station, the conduction rod 22 descends until it touches the steel ball layer inside the insulating boot. Then, the automatic voltage regulating mechanism raises the test voltage to the specified value for the withstand voltage test. The test voltage value, test time, leakage current value, and protection limit value can be set and read on the host computer. During the test process, if the leakage current is greater than the standard value, it is determined that the insulating boot is unqualified. When breakdown discharge occurs, the armature 1702 of the corresponding high-voltage disconnection electromagnet 1705 retracts into it. At this time, the hook 1706 releases the limiting relationship with the armature 1702, and the pulling spring 1703 pulls the first insulating rod 1708 to rotate downward, causing the high-voltage electrode to disconnect. The three detection mechanisms 17 conduct tests independently of each other without interference.
[0037] When the withstand voltage test lasts for the specified test time and the leakage current does not exceed the standard value, it is determined to be qualified. The test data of each insulating boot will be stored in the number corresponding to the insulating boot barcode. The tester can export the test data stored on the host computer for facilitating the filling of the test report corresponding to the insulating boot with the barcode. After the withstand voltage test process ends, the conduction rod 22 rises to the initial position and the test data is correspondingly saved and displayed on the host computer.
[0038] After the test ends, the power rollers 8 drive the annular working station 9 to continue rotating and moving to transfer the tested insulating boots to the transmission mechanism 37. The fifth rodless cylinder 34 and the second clamping mechanism 35 transfer the insulating boots to the first material box 3705. The flipping cylinder 3701 drives the flap at the bottom of the first material box 3705 to flip, so that the steel balls inside the insulating boot are poured into the second material box 29. Then the flipping cylinder 3701 drives the first material box 3705 to rotate back to the original position. After being detected by the detector 10, the swinging air rod 3702 is started to drive the flap at the bottom of the first material box 3705 to open downward to pour out the insulating boot. The fourth rodless cylinder 31 rises to drive the second material box 29 to rise. Through the set flipping stopper 30, the second material box 29 can be flipped so that the steel balls are poured into the feeding mechanism 39 to complete the recovery of the steel balls and the sorting output of qualified and unqualified products. The second transfer table 4 and the first transfer table 6 transfer the sorted insulating boots to the qualified and unqualified product areas. When the whole set of devices operates continuously, the three links of insulating boot station placement, withstand voltage test, and insulating boot recovery can be carried out synchronously. The whole process has compact actions and high test efficiency.
[0039] The withstand voltage test system for insulating boots of the present invention operates in a fully automatic and unmanned monitoring mode with a continuous cyclic operation mode. It tests three insulating boots at a time, automatically records the test data of the insulating boots, automatically judges the test results, and sends the sampled insulating boots to the qualified and unqualified product areas after the test. The full load of the insulating boot test is 90 pairs per hour. Calculated according to an 8-hour working system, the daily detection volume is about 720 pairs, and only one operator is required.
[0040] The test voltage of the withstand voltage test system for insulating boots of the present invention is 0 kV - 30 kV, and the test current is 100 mA;
[0041] The power supply voltage is 380 V / 50 Hz; the equipment power is 3 kW.
[0042] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A fully automatic withstand voltage test system for insulating boots, comprising a box body (1), characterized in that: A controller (2) is fixedly connected to the front surface of the box body (1). Universal wheels (3) are fixedly connected to the four corners of the bottom of the box body (1). First limiting plates (12) are fixedly connected to both the left and right sides inside the box body (1). A first sliding rod (13) is fixedly connected to the inner side of the first limiting plate (12). A first rodless cylinder (14) is movably sleeved on the surface of the first sliding rod (13). A first clamping mechanism (15) is movably arranged at the bottom of the first rodless cylinder (14). The first rodless cylinder (14) and the first clamping mechanism (15) are fixedly connected by a set of lifting linear cylinders. A power roller (8) is movably connected to the inner cavity of the box body (1). An annular work station (9) is movably sleeved on the surface of the power roller (8). A detection mechanism (17) is fixedly connected to the bottom of the inner cavity of the box body (1). A transmission mechanism (37) is fixedly connected to the inner cavity of the box body (1); The detection mechanism (17) includes a second support plate (1701). The top of the second support plate (1701) is fixedly connected to the top of the inner cavity of the box body (1). A support frame (18) is fixedly connected to the inner cavity of the box body (1). An insulator (19) is fixedly connected to the inner cavity of the box body (1). A connection frame (1704) is fixedly connected to the back surface of the second support plate (1701). A rotating rod (1707) is rotatably connected to the inner cavity of the connection frame (1704) through a bearing. A first insulating rod (1708) is fixedly connected to the back surface of the rotating rod (1707). A conductive rod (1709) is fixedly connected to the back surface of the first insulating rod (1708). A wire (1710) is fixedly connected to the bottom of the surface of the conductive rod (1709). An electrode (21) is fixedly connected to the side of the wire (1710) away from the conductive rod (1709). A first support plate (23) is fixedly connected to the inner cavity of the support frame (18). An elastic contact (24) is fixedly connected to the top surface of the first support plate (23). An insulating bracket (40) is fixedly connected to the top surface of the annular work station (9). A work station groove (25) is rotatably connected to the top surface of the insulating bracket (40). The bottom of the work station groove (25) is rotatably connected to the top of the elastic contact (24). A second rodless cylinder (20) is movably sleeved on the surface of the support frame (18). A second insulating rod (16) is fixedly connected to the inner side of the second rodless cylinder (20). A conduction rod (22) is fixedly connected to the bottom of the electrode (21). A hook (1706) is fixedly connected to the top surface of the rotating rod (1707). A high-voltage breaking electromagnet (1705) is fixedly connected to the back surface of the second support plate (1701). An armature (1702) is fixedly connected to the output end of the high-voltage breaking electromagnet (1705). A pulling spring (1703) is fixedly connected to the bottom of the rotating rod (1707); The transmission mechanism (37) includes a third slide bar (3703). A third rodless cylinder (3704) is movably sleeved on the surface of the third slide bar (3703). A swing air rod (3702) is fixedly connected to the right side surface of the third rodless cylinder (3704). A turning cylinder (3701) is fixedly connected to the left side of the third rodless cylinder (3704). The output end of the turning cylinder (3701) is fixedly connected to a first material box (3705). A triangular slide table (27) is fixedly connected to the right side surface of the box body (1).
2. The fully automatic withstand voltage test system for insulating boots according to claim 1, characterized in that: A first transfer table (6) is fixedly connected to the front side of the right side of the triangular slide table (27). A second transfer table (4) is fixedly connected to the rear side of the right side of the triangular slide table (27). A baffle (7) is fixedly connected to the right side surface of the box body (1).
3. The fully automatic withstand voltage test system for insulating boots according to claim 1, wherein: A shower head is fixedly connected to the inner cavity of the box body (1). The bottom of the pulling spring (1703) is fixedly connected to the back surface of the second support plate (1701).
4. The fully automatic withstand voltage test system for insulating boots according to claim 1, wherein: A second limiting plate (36) is fixedly connected to the inner cavity of the box body (1). A second slide bar (33) is fixedly connected to the inner side surface of the second limiting plate (36). A fifth rodless cylinder (34) is movably sleeved on the surface of the second slide bar (33). A second clamping mechanism (35) is movably arranged at the bottom of the fifth rodless cylinder (34). The fifth rodless cylinder (34) and the second clamping mechanism (35) are fixedly connected by a set of lifting linear cylinders.
5. A fully automatic insulating boot voltage withstand test system according to claim 1, characterized in that: A code scanner (11) is fixedly connected to the front surface of the box body (1). A third transfer table (5) is movably connected to the right side surface of the box body (1).
6. The fully automatic withstand voltage test system for insulating boots according to claim 1, characterized in that: A detector (10) is fixedly connected to the back surface of the box body (1). The inner cavity of the electrode (21) is fixedly connected to the surface of the second insulating rod (16).
7. The fully automatic voltage withstand test system for insulating boots according to claim 1, wherein: A first support rod (32) is fixedly connected to the inner cavity of the box body (1). A fourth rodless cylinder (31) is movably sleeved on the surface of the first support rod (32). A moving frame (38) is fixedly connected to the left side surface of the fourth rodless cylinder (31). A second material box (29) is movably connected to the inner cavity of the moving frame (38) through a bearing.
8. An automatic voltage withstand test system for insulating boots according to claim 7, characterized in that: A feeding mechanism (39) is movably connected to the inner cavity of the box body (1). A turning stop block (30) is fixedly connected to the left side surface of the feeding mechanism (39). A control valve (28) is fixedly connected to the top surface of the feeding mechanism (39). A material pipe (26) is fixedly connected to the inner cavity of the feeding mechanism (39).
Citation Information
Patent Citations
Insulating boot withstand voltage test system
CN113740675A
Withstand voltage test device for automatically filling steel balls into insulating boots
CN115406768A