A variable frequency resonance test device

By designing the test mechanism and warning mechanism of the variable frequency resonance test device, the risk of electric shock caused by the connection problem is solved, and automatic switching of backup lines and timely warnings are realized to ensure test safety and equipment integrity.

CN119087000BActive Publication Date: 2025-08-12WUHAN JINDIAN TECH CO LTD
View PDF 4 Cites 0 Cited by

Patent Information

Application Number
CN202411235380.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-04
Publication Date
2025-08-12
Estimated Expiration
2044-09-04

AI Technical Summary

Technical Problem

In the frequency conversion resonance test, problems at the connection such as poor contact or looseness may lead to poor grounding or leakage, increasing the risk of electric shock for the tester. Especially in high voltage tests, the consequences of electric shock accidents are serious.

Method used

A frequency conversion resonance test device is designed, including a test mechanism, a conversion mechanism and a warning mechanism. It can disconnect the main line in time when problems occur at the connection, automatically switch to the backup line, and remind staff through the warning mechanism to prevent electric shock and electrical fires.

Benefits of technology

Effectively prevent electric shock accidents and electrical fires, ensure personnel safety, and avoid waste of resources during the interruption of the test and adverse effects on the equipment of the subject.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119087000B_ABST
    Figure CN119087000B_ABST
Patent Text Reader

Abstract

The present invention relates to the field of electrical equipment testing technology, and in particular to a variable frequency resonance test device, comprising a housing, a test mechanism installed inside the housing, the test mechanism comprising a first access port, the first access port being fixedly mounted on the right side of an inner cavity of the housing, a first connecting wire being fixedly mounted on the left side of the first access port, a spare access port being fixedly mounted on the right side of the inner cavity of the housing, a spare connecting wire being fixedly mounted on the side of the spare access port, the first access port being fixedly mounted on the left side of the inner cavity of the housing, and a second connecting wire being fixedly mounted on the right side of the first access port. Through the setting of the test mechanism, the present invention can disconnect the connection in time if a problem occurs at the connection during a variable frequency resonance experiment. Timely disconnection can prevent test personnel from coming into contact with these dangerous voltages, thereby avoiding electric shock accidents, and can also prevent safety accidents such as electrical fires caused by leakage, further ensuring the life safety of personnel.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of electrical equipment testing, in particular to a variable frequency resonance testing device. Background Art

[0002] The variable frequency resonance test uses a variable frequency power supply to convert a fixed frequency power supply into an adjustable frequency power supply. By adjusting the frequency, the inductor and capacitor in the test circuit resonate, thereby generating a high voltage on the device under test. The basic principle is based on the resonance condition, that is, the reactance of the inductor and capacitor cancel each other out at a specific frequency. At this time, the current in the test circuit reaches its maximum value, and the voltage on the device under test also increases accordingly.

[0003] However, during the test process, if there are problems with the connection, such as poor contact or looseness, it may lead to poor grounding or leakage. In this case, if the test continues, the risk of electric shock to the test personnel when they touch the equipment will be greatly increased. Especially in high-voltage tests, once an electric shock accident occurs, the consequences will be unimaginable. Summary of the Invention

[0004] In order to remedy the above deficiencies, the present invention provides a variable frequency resonance test device that overcomes the above technical problems or at least partially solves the above problems.

[0005] The present invention is achieved in that:

[0006] The present invention provides a variable frequency resonance test device, comprising a housing, wherein a test mechanism is installed inside the housing, and the test mechanism comprises:

[0007] A first access port, the first access port being fixedly mounted on the right side of the inner cavity of the housing, and a first connecting line being fixedly mounted on the left side of the first access port;

[0008] A spare access port, the spare access port being fixedly mounted on the right side of the inner cavity of the housing, and a spare connecting line being fixedly mounted on the side of the spare access port;

[0009] a first connection port, the first connection port being fixedly mounted on the left side of the inner cavity of the housing, and a second connecting line being fixedly mounted on the right side of the first connection port;

[0010] The mounting plate is fixedly mounted on the bottom of the inner cavity of the shell, and a conversion mechanism is mounted on the top of the mounting plate.

[0011] In one embodiment of the present invention, a first placement box is fixedly installed on the surface of the first connecting line, a partition plate is fixedly installed inside the first placement box, a sodium bicarbonate box is separated from the bottom of the first placement box, a second placement box is fixedly installed on the surface of the spare access port, the interior of the second placement box is configured in the same manner as the first placement box, a piston cylinder is fixedly installed on the left side of the first placement box, and a piston plate is slidably installed inside the piston cylinder.

[0012] In one embodiment of the present invention, a first gear is rotatably installed on the side of the mounting plate, a connecting rod is fixedly installed on the left side of the piston plate, a first threaded rod is fixedly installed on the left side of the connecting rod, the first threaded rod passes through the interior of the mounting plate and is threadedly connected to the first gear, a first sliding plate is fixedly installed on the end of the first threaded rod, a first sliding rail is fixedly installed on the bottom of the mounting plate, the first sliding plate is slidably connected to the first sliding rail, a support plate is fixedly installed on the bottom of the first sliding rail, and a first spring is fixedly installed between the support plate and the first sliding plate.

[0013] In one embodiment of the present invention, a second sliding rail is fixedly installed on the top of the mounting plate, and a plurality of second sliding rails are provided. Second sliding plates are slidably installed on the surfaces of the plurality of second sliding rails. A first tooth groove is provided at the bottom of the right second sliding plate, and the first tooth groove is engaged with the first gear. Second tooth grooves are provided on the sides of the two second sliding plates. A second gear is rotatably installed on the top of the mounting plate, and two second gears are provided, and both second gears are engaged with the second tooth groove.

[0014] In one embodiment of the present invention, the ends of the first connecting line, the spare connecting line and the second connecting line are all fixedly installed with terminal blocks, the surfaces of the plurality of terminal blocks are provided with first sliding grooves, the interior of the first sliding grooves is slidably installed with connecting plates, the connecting plates are arranged between the left and right terminal blocks, the tops of the connecting plates are all fixedly installed with wiring ports, the bottoms of the connecting plates are fixedly installed with second threaded rods, the tops of the second gears are fixedly installed with first threaded cylinders, and the first threaded cylinders are threadedly connected to the second threaded rods.

[0015] In one embodiment of the present invention, the conversion mechanism includes a vertical plate, a second threaded cylinder is rotated inside the vertical plate, two second threaded cylinders are provided, the two second threaded cylinders are connected by a belt, a third threaded rod is fixedly installed on the front of the right second sliding plate, the third threaded rod is threadedly connected to the left second threaded cylinder, and a fourth threaded rod is fixedly installed on the rear of the front second sliding plate, the fourth threaded rod is threadedly connected to the right second threaded cylinder.

[0016] In one embodiment of the present invention, a fixing plate is fixedly installed on the top of the mounting plate, and two fixing plates are provided. A third gear is rotatably installed between the two fixing plates. A rotating shaft is rotatably installed on the top of the third gear. A mounting frame is fixedly installed on the top of the rotating shaft. A conversion line is fixedly installed on the surface of the mounting frame. A first tooth plate is fixedly installed on the front of the second sliding plate on the left side, and the first tooth plate is engaged with the third gear.

[0017] In one embodiment of the present invention, a warning mechanism is installed on the left side of the spare access port, and the warning mechanism includes a first installation cavity, which is opened inside the installation plate, and a connecting pipe is fixedly installed on the side of the first installation cavity, and an airbag is installed inside the first installation cavity, and the airbag is connected to the second placement box through the connecting pipe, and a sliding frame is slidably installed inside the first installation cavity, and the sliding frame is in contact with the airbag.

[0018] In one embodiment of the present invention, a second spring is fixedly installed on the left side of the sliding frame, and the second spring is arranged between the sliding frame and the inner wall of the first mounting cavity. A stinger is fixedly installed on the inner wall of the first mounting cavity, and a plurality of stingers are provided. A through hole is opened on the surface of the sliding frame, and the through hole corresponds to the stinger. A fifth threaded rod is fixedly installed on the left side of the sliding frame, and the fifth threaded rod passes through the outside of the mounting plate and is slidably connected to the mounting plate.

[0019] In one embodiment of the present invention, a third threaded cylinder is rotatably installed on the left side of the mounting plate, the fifth threaded rod is threadedly connected to the third threaded cylinder, the end of the third threaded cylinder is fixedly installed with a first bevel gear, the bottom of the inner cavity of the shell is rotatably installed, the top of the fourth gear is fixedly installed with a second bevel gear, the second bevel gear is meshed with the first bevel gear, the bottom of the inner cavity of the shell is rotatably installed with a fifth gear, and the fifth gear is provided with two, and the tops of the two fifth gears are fixedly installed with fan gears, and the front fifth gear is meshed with the fourth gear, the bottom of the inner cavity of the shell is slidably installed with a second tooth plate, the fan gear is meshed with the second tooth plate, the top of the second tooth plate is fixedly installed with a connecting frame, and the side of the connecting frame is fixedly installed with a striking rod, and the bottom of the inner cavity of the shell is fixedly installed with a vibration plate, and two vibration plates are provided.

[0020] The present invention provides a variable frequency resonance test device, which has the following beneficial effects:

[0021] 1. Through the setting of the test organization, if there is a problem with the connection during the variable frequency resonance experiment, the connection can be disconnected in time. Timely disconnection can prevent the test personnel from being exposed to these dangerous voltages, thereby avoiding electric shock accidents. It can also prevent safety accidents such as electrical fires caused by leakage, further ensuring the safety of personnel.

[0022] 2. Through the setting of the conversion mechanism, it is possible to switch to the backup line in time when a problem occurs in the main line. When a problem occurs in the main line, if it cannot switch to the backup line in time, the test will be forced to be interrupted. The test interruption will not only waste part of the test time and resources that have been carried out, but may also have adverse effects on the equipment under test.

[0023] 3. Through the setting of the warning mechanism, the staff can be promptly alarmed when problems occur in both the main and backup lines. Line problems may cause leakage, short circuit, etc., causing the equipment casing or the surrounding environment to have dangerous voltages. Timely warnings can allow staff to quickly move away from the dangerous area to avoid electric shock accidents. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the present invention and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying any creative work.

[0025] Figure 1 It is a schematic diagram of the overall structure provided by an embodiment of the present invention;

[0026] Figure 2 A schematic diagram of an internal top view structure provided for an embodiment of the present invention;

[0027] Figure 3 A schematic diagram of the internal structure provided for an embodiment of the present invention;

[0028] Figure 4 A schematic diagram of the internal right side structure provided in an embodiment of the present invention;

[0029] Figure 5 A schematic diagram of the test mechanism structure provided in an embodiment of the present invention;

[0030] Figure 6 A schematic diagram of the structure of a warning mechanism provided in an embodiment of the present invention;

[0031] Figure 7 Provided for the embodiments of the present invention Figure 4 A schematic diagram of the enlarged structure of the middle part A;

[0032] Figure 8 Provided for the embodiments of the present invention Figure 5 Schematic diagram of the enlarged structure of part B in the middle.

[0033] 1. Housing; 2. Test mechanism; 201. First access port; 202. First connecting line; 203. Spare access port; 204. Spare connecting line; 205. First access port; 206. Second connecting line; 207. Mounting plate; 208. First storage box; 209. Partition plate; 210. Sodium bicarbonate box; 211. Second storage box; 212. Piston cylinder; 213. Piston plate; 214. First gear; 215. Connecting rod; 216. First threaded rod; 217. First sliding plate; 218. First sliding track; 219. Support plate; 220. First spring; 221. Second sliding track; 222. Second sliding plate; 223. First tooth groove; 224. Second tooth groove; 225. Second gear; 226. Terminal block; 227. First sliding groove; 228. Connecting plate; 229. Connecting plate Thread mouth; 230, second threaded rod; 231, first threaded barrel; 3, conversion mechanism; 301, vertical plate; 302, second threaded barrel; 303, third threaded rod; 304, fourth threaded rod; 305, fixed plate; 306, third gear; 307, rotating shaft; 308, mounting bracket; 309, conversion line; 310, first tooth plate; 4, warning mechanism; 401, first mounting cavity; 402, connecting pipe; 403, airbag; 404, sliding bracket; 405, second spring; 406, needle; 407, through hole; 408, fifth threaded rod; 409, third threaded barrel; 410, first bevel gear; 411, fourth gear; 412, second bevel gear; 413, fifth gear; 414, fan gear; 415, second tooth plate; 416, connecting bracket; 417, striking rod; 418, vibration plate. DETAILED DESCRIPTION

[0034] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. 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 creative efforts shall fall within the scope of protection of the present invention.

[0035] Reference Figures 1-8, the technical solution provides a variable frequency resonance test device, specifically including a shell 1, a test mechanism 2 is installed inside the shell 1, the test mechanism 2 includes a first access port 201, the first access port 201 is fixedly installed on the right side of the inner cavity of the shell 1, a first connecting line 202 is fixedly installed on the left side of the first access port 201, through the setting of the first access port 201 and the first connecting line 202, it can be set as the main line of the entire device, a spare access port 203 is fixedly installed on the right side of the inner cavity of the shell 1, a spare connecting line 204 is fixedly installed on the side of the spare access port 203, through the setting of the spare access port 203 and the spare connecting line 204, a spare line selection can be provided for the entire device, a first access port 205 is fixedly installed on the left side of the inner cavity of the shell 1, a second connecting line 206 is fixedly installed on the right side of the first access port 205, a mounting plate 207 is fixedly installed on the bottom of the inner cavity of the shell 1, a conversion mechanism 3 is installed on the top of the mounting plate 207, and a surface of the first connecting line 202 is fixedly installed A first storage box 208 is provided, and a partition plate 209 is fixedly installed inside the first storage box 208. A sodium bicarbonate box 210 is separated from the bottom of the first storage box 208. A second storage box 211 is fixedly installed on the surface of the standby access port 203. The interior of the second storage box 211 is configured in the same manner as the first storage box 208. A piston cylinder 212 is fixedly installed on the left side of the first storage box 208. A piston plate 213 is slidably installed inside the piston cylinder 212. When a problem occurs with the first connecting line 202 in the main circuit, the first connecting line 202 generates heat, and the sodium bicarbonate inside the sodium bicarbonate box 210 generates carbon dioxide when heated. The generation of carbon dioxide can not only serve as the power for the movement of the entire device, but also can extinguish possible electrical fires. Carbon dioxide can isolate the circuit from contact with oxygen, thereby preventing the occurrence of fire. When carbon dioxide is generated by heat, it can push the movement of the piston plate 213 inside the piston cylinder 212, causing the piston plate 213 to move toward the outside of the sodium bicarbonate box 210.

[0036] Reference Figures 1-8, this embodiment also proposes that a first gear 214 is rotatably installed on the side of the mounting plate 207, a connecting rod 215 is fixedly installed on the left side of the piston plate 213, and a first threaded rod 216 is fixedly installed on the left side of the connecting rod 215. The first threaded rod 216 passes through the interior of the mounting plate 207 and is threadedly connected to the first gear 214. When the piston plate 213 moves, it can drive the connecting rod 215 and the first threaded rod 216 to move together, and the movement of the first threaded rod 216 can drive the first gear 214 to rotate, and the end of the first threaded rod 216 is fixedly installed with a first sliding plate 217, and the bottom of the mounting plate 207 is fixedly installed with a first sliding rail 218, and the first sliding plate 217 slides with the first sliding rail 218 Dynamic connection, the bottom of the first sliding track 218 is fixedly installed with a support plate 219, and a first spring 220 is fixedly installed between the support plate 219 and the first sliding plate 217. The movement of the first threaded rod 216 can drive the first sliding plate 217 to slide on the surface of the first sliding track 218, thereby compressing the first spring 220. Through the setting of the first spring 220, when the temperature of the first connecting line 202 drops, under the action of the first spring 220, the first threaded rod 216 can move toward the direction of the sodium bicarbonate tank 210, so that the entire main line returns to its original state. The top of the mounting plate 207 is fixedly installed with a second sliding track 221, and the second sliding track 221 is provided with multiple, multiple second sliding tracks The surface of each of the two second sliding plates 222 is slidably mounted with a second sliding plate 222, and a first tooth groove 223 is provided at the bottom of the right second sliding plate 222. The first tooth groove 223 is engaged with the first gear 214. When the first gear 214 rotates, the first tooth groove 223 can be driven to slide on the surface of the second sliding rail 221, thereby driving the second sliding plate 222 to slide on the surface of the second sliding rail 221. The side portions of the two second sliding plates 222 are both provided with a second tooth groove 224. The top of the mounting plate 207 is rotatably mounted with a second gear 225. There are two second gears 225, and the two second gears 225 are both engaged with the second tooth groove 224. The first connecting line 202, the spare connecting line 204 and the second The ends of the connecting wires 206 are fixedly installed with terminal blocks 226. The surfaces of the plurality of terminal blocks 226 are provided with first sliding grooves 227. A connecting plate 228 is slidably installed inside the first sliding grooves 227. The connecting plate 228 is arranged between the left and right terminal blocks 226. The tops of the connecting plates 228 are fixedly installed with wiring ports 229. The bottoms of the connecting plates 228 are fixedly installed with second threaded rods 230. The tops of the second gears 225 are fixedly installed with first threaded cylinders 231. The first threaded cylinders 231 are threadedly connected to the second threaded rods 230. When the second tooth grooves 224 move along with the second sliding plate 222, the second gear 225 can be driven to rotate, thereby driving the first threaded cylinder 231 to rotate.The rotation of the first threaded barrel 231 can drive the second threaded rod 230 to move downward, and the downward movement of the second threaded rod 230 can cause the connecting plate 228 to move downward inside the first sliding groove 227, thereby separating the wiring port 229 from the connecting plate 228, thereby disconnecting the first connecting line 202 and the second connecting line 206, and further disconnecting the main line to prevent electrical fires.

[0037] Reference Figures 1-8, this embodiment further proposes a conversion mechanism 3 including a vertical plate 301, a second threaded cylinder 302 is rotated inside the vertical plate 301, two second threaded cylinders 302 are provided, and the two second threaded cylinders 302 are connected by a belt, and a third threaded rod 303 is fixedly installed on the front of the right second sliding plate 222, and the third threaded rod 303 is threadedly connected to the left second threaded cylinder 302. When the second sliding plate 222 at the rear right side slides, the third threaded rod 303 can be driven to move, and then the second threaded cylinder 302 can be driven to rotate. Through the setting of the belt, the two second threaded cylinders 302 can rotate synchronously, and the front second sliding plate 22 2 is fixedly installed with a fourth threaded rod 304 on the rear part, and the fourth threaded rod 304 is threadedly connected to the second threaded cylinder 302 on the right. Under the setting of the second threaded cylinder 302, the fourth threaded rod 304 can move, thereby driving the front second sliding plate 222 to move. Under the action of the second gear 225, the first threaded cylinder 231 on the standby line can rotate, thereby causing the second threaded rod 230 on the standby line to move upward, thereby causing the front terminal block 226 to move upward, so that the wiring port 229 at the top of the front terminal block 226 is connected to the terminal block 226 on the end of the standby connection line 204, and the top of the mounting plate 207 is fixedly installed with a fourth threaded rod 304 on the rear part, and the fourth threaded rod 304 is threadedly connected to the second threaded cylinder 302. Under the setting of the second threaded cylinder 302, the fourth threaded rod 304 can move, thereby driving the front second sliding plate 222 to move. Under the action of the second gear 225, the first threaded cylinder 231 on the standby line can rotate, thereby causing the second threaded rod 230 on the standby line to move upward, thereby causing the front terminal block 226 to move upward, so that the wiring port 229 at the top of the front terminal block 226 is connected to the terminal block 226 on the end of the standby connection line 204, and the top of the mounting plate 207 is fixedly installed with a fourth threaded rod 304 on the rear part, A fixing plate 305 is fixedly installed on the top, and two fixing plates 305 are provided. A third gear 306 is rotatably installed between the two fixing plates 305. A rotating shaft 307 is rotatably installed on the top of the third gear 306. A mounting bracket 308 is fixedly installed on the top of the rotating shaft 307. A conversion line 309 is fixedly installed on the surface of the mounting bracket 308. A first tooth plate 310 is fixedly installed on the front of the left second sliding plate 222. When the first tooth plate 310 is meshed with the third gear 306, when the rear connecting plate 228 moves downward, it drives the second gear 225 at the second connecting line 206 to rotate, thereby driving the left second sliding plate 22 2 slides, thereby driving the first toothed plate 310 to move, thereby driving the third gear 306 to rotate. The rotation of the third gear 306 can drive the rotating shaft 307 to rotate, thereby rotating the conversion line 309. The conversion line 309 is provided with two groups of wires, one group of insulating wires and one group of conductive wires. When a problem occurs in the main line, the third gear 306 drives the conversion line 309 to rotate, making the conductive wires parallel to the fixed plate 305, so that the two fixed plates 305 are energized, and the test current connected to the first inlet 205 is redirected so that it can enter the terminal block 226 of the backup circuit, so that the backup circuit can be energized.

[0038] Reference Figures 1-8, this embodiment also proposes that a warning mechanism 4 is installed on the left side of the spare access port 203, and the warning mechanism 4 includes a first installation cavity 401, the first installation cavity 401 is opened inside the installation plate 207, and a connecting pipe 402 is fixedly installed on the side of the first installation cavity 401, and an air bag 403 is installed inside the first installation cavity 401, and the air bag 403 is connected to the second placement box 211 through the connecting pipe 402. When a problem occurs in the spare access port 203, the sodium bicarbonate box 210 inside the second placement box 211 is heated to produce carbon dioxide, and the carbon dioxide will inflate the air bag 403. A sliding frame 404 is slidably installed inside the first installation cavity 401, and the sliding frame 404 contacts the air bag 403. The inflation of the air bag 403 will push the sliding The frame 404 slides inside the first installation cavity 401, and a second spring 405 is fixedly installed on the left side of the sliding frame 404. The second spring 405 is arranged between the sliding frame 404 and the inner wall of the first installation cavity 401, and a puncture needle 406 is fixedly installed on the inner wall of the first installation cavity 401. There are multiple puncture needles 406. The puncture needle 406 can puncture the airbag 403 that is inflated to the limit, so that the carbon dioxide inside the airbag 403 is ejected, so that the carbon dioxide fills the entire device to avoid fire. A through hole 407 is opened on the surface of the sliding frame 404, and the through hole 407 corresponds to the puncture needle 406. A fifth threaded rod 408 is fixedly installed on the left side of the sliding frame 404, and the fifth threaded rod 408 passes through the outside of the mounting plate 207 and is connected to the mounting plate 207. The mounting plate 207 is slidably connected, and a third threaded cylinder 409 is rotatably installed on the left side of the mounting plate 207. The fifth threaded rod 408 is threadedly connected to the third threaded cylinder 409. The sliding of the sliding frame 404 can drive the fifth threaded rod 408 to move, and the moving fifth threaded rod 408 can drive the third threaded cylinder 409 to rotate. The end of the third threaded cylinder 409 is fixedly installed with a first bevel gear 410, and the rotating third threaded cylinder 409 can drive the first bevel gear 410 to rotate. The bottom of the inner cavity of the shell 1 is rotatably installed with a fourth gear 411, and the top of the fourth gear 411 is fixedly installed with a second bevel gear 412, the second bevel gear 412 is meshed with the first bevel gear 410, and the rotating first bevel gear 410 can drive the second bevel gear 41 2 rotates, the rotating second bevel gear 412 can drive the fourth gear 411 to rotate, and the fifth gear 413 is rotatably installed at the bottom of the inner cavity of the shell 1. Two fifth gears 413 are provided, and the two fifth gears 413 are meshed with each other. The tops of the two fifth gears 413 are fixedly installed with fan gears 414. The front fifth gear 413 is meshed with the fourth gear 411. The rotation of the fourth gear 411 can drive the front fifth gear 413 to rotate, thereby making the two fifth gears 413 rotate in opposite directions. A second tooth plate 415 is slidably installed at the bottom of the inner cavity of the shell 1, and the fan gear 414 is meshed with the second tooth plate 415. The rotation of the two fifth gears 413 can make the fan gears 414 rotate in opposite directions.This allows the second tooth plate 415 to slide back and forth. A connecting frame 416 is fixedly mounted on the top of the second tooth plate 415, and a striking rod 417 is fixedly mounted on the side of the connecting frame 416. A vibration plate 418 is fixedly mounted on the bottom of the inner cavity of the shell 1. Two vibration plates 418 are provided. The back and forth sliding of the second tooth plate 415 can drive the connecting frame 416 to slide back and forth, and then drive the striking rod 417 to slide back and forth, thereby causing the two vibration plates 418 to emit a warning sound, reminding the staff to disconnect the power supply in time and terminate the test.

[0039] Specifically, the working process or working principle of the variable frequency resonance test device is as follows: when a problem occurs with the first connecting line 202 in the main circuit, the first connecting line 202 generates heat, and the sodium bicarbonate inside the sodium bicarbonate box 210 generates carbon dioxide when heated. The generation of carbon dioxide can not only serve as the power for the movement of the entire device, but also can extinguish possible electrical fires. Carbon dioxide can isolate the contact between the line and oxygen, thereby avoiding the generation of fire. When carbon dioxide is generated by heat, it can push the movement of the piston plate 213 inside the piston cylinder 212 to move the piston plate 213 toward the outside of the sodium bicarbonate box 210. When the piston plate 213 moves, it can drive the connecting rod 215 and the first threaded rod 216 to move together, and the movement of the first threaded rod 216 can drive the first gear 214 to rotate. The movement of the first threaded rod 216 can drive the first sliding plate 217 to slide on the surface of the first sliding track 218, thereby adjusting the first spring 220. When the temperature of the first connecting line 202 drops, under the action of the first spring 220, the first threaded rod 216 can move toward the direction of the sodium bicarbonate tank 210, so that the entire main line returns to its original state. When the first gear 214 rotates, it can drive the first tooth groove 223 to slide on the surface of the second sliding rail 221, and then drive the second sliding plate 222 to slide on the surface of the second sliding rail 221. When the second tooth groove 224 moves along with the second sliding plate 222, it can drive the second gear 225 to rotate, and then drive the first threaded cylinder 231 to rotate. The rotation of the first threaded cylinder 231 can drive the second threaded rod 230 to move downward, and the downward movement of the second threaded rod 230 can make the connecting plate 228 move downward in the first sliding groove 227, so that the wiring port 229 can be separated from the connecting plate 228, thereby disconnecting the first connecting line 202 from the second connecting line 206.

[0040] When the second sliding plate 222 at the rear right side slides, the third threaded rod 303 can be driven to move, and then the second threaded cylinder 302 can be driven to rotate. By setting the belt, the two second threaded cylinders 302 can be rotated synchronously. Under the setting of the second threaded cylinder 302, the fourth threaded rod 304 can be moved, and then the front second sliding plate 222 can be driven to move. Under the action of the second gear 225, the first threaded cylinder 231 on the standby line can be rotated, and then the second threaded rod 230 on the standby line can be moved upward, so that the front terminal board 226 can be moved upward, so that the wiring port 222 at the top of the front terminal board 226 can be opened. 9 is connected to the terminal block 226 at the end of the backup connection line 204. When the rear connection plate 228 moves downward, it drives the second gear 225 at the second connection line 206 to rotate, which can drive the second sliding plate 222 on the left to slide, and then drive the first toothed plate 310 to move, thereby driving the third gear 306 to rotate. The rotation of the third gear 306 can drive the rotating shaft 307 to rotate, thereby rotating the conversion line 309, energizing the two fixed plates 305, and converting the route of the test current connected to the first inlet 205 so that it can enter the terminal block 226 of the backup line, so that the backup circuit can be energized.

[0041] When a problem occurs in the backup access port 203, the sodium bicarbonate box 210 inside the second placement box 211 is heated to produce carbon dioxide, and the carbon dioxide will inflate the airbag 403. The inflation of the airbag 403 will push the sliding frame 404 to slide inside the first installation cavity 401, and the needle 406 can puncture the airbag 403 that has been inflated to the limit, so that the carbon dioxide inside the airbag 403 is ejected, and the carbon dioxide fills the entire device to avoid fire. The sliding of the sliding frame 404 can drive the fifth threaded rod 408 to move, and the moving fifth threaded rod 408 can drive the third threaded cylinder 409 to rotate. The end of the third threaded cylinder 409 is fixedly installed with a first bevel gear 410, and the rotating third threaded cylinder 409 can drive The first bevel gear 410 rotates, and the rotating first bevel gear 410 can drive the second bevel gear 412 to rotate. The rotating second bevel gear 412 can drive the fourth gear 411 to rotate. The rotation of the fourth gear 411 can drive the front fifth gear 413 to rotate, so that the two fifth gears 413 can rotate in opposite directions. The rotation of the two fifth gears 413 can make the fan gear 414 rotate in opposite directions, so that the second tooth plate 415 can slide back and forth. The back and forth sliding of the second tooth plate 415 can drive the connecting frame 416 to slide back and forth, and then drive the striking rod 417 to slide back and forth, so that the two vibration plates 418 emit a warning sound, reminding the staff to disconnect the power supply in time and terminate the test.

Claims

1. A variable frequency resonance test device, comprising a housing (1), characterized in that: A testing mechanism (2) is installed inside the housing (1), and the testing mechanism (2) comprises: A first access port (201), the first access port (201) being fixedly mounted on the right side of the inner cavity of the housing (1), and a first connecting line (202) being fixedly mounted on the left side of the first access port (201); A spare access port (203), the spare access port (203) being fixedly mounted on the right side of the inner cavity of the housing (1), and a spare connecting line (204) being fixedly mounted on the side of the spare access port (203); A first connection port (205), the first connection port (205) being fixedly mounted on the left side of the inner cavity of the housing (1), and a second connecting line (206) being fixedly mounted on the right side of the first connection port (205); A mounting plate (207), the mounting plate (207) being fixedly mounted on the bottom of the inner cavity of the housing (1), and a conversion mechanism (3) being mounted on the top of the mounting plate (207); The ends of the first connecting line (202), the spare connecting line (204) and the second connecting line (206) are all fixedly mounted with a wiring board (226); a first sliding groove (227) is provided on the surface of each of the wiring boards (226); a connecting board (228) is slidably mounted inside the first sliding groove (227); the connecting board (228) is arranged between the left and right wiring boards (226); and a wiring port (229) is fixedly mounted on the top of each of the connecting boards (228); A second sliding track (221) is fixedly installed on the top of the mounting plate (207), and a plurality of second sliding tracks (221) are provided. A second sliding plate (222) is slidably installed on the surfaces of the plurality of second sliding tracks (221). A fixed plate (305) is fixedly installed on the top of the mounting plate (207), and two fixed plates (305) are provided. A third gear (306) is rotatably installed between the two fixed plates (305). A rotating shaft (307) is rotatably installed on the top of the third gear (306). A mounting frame (308) is fixedly installed on the top of the rotating shaft (307). A conversion line (309) is fixedly installed on the surface of the mounting frame (308). A first tooth plate (310) is fixedly installed on the front of the left second sliding plate (222), and the first tooth plate (310) is meshed with the third gear (306).

2. A variable frequency resonance test device according to claim 1, characterized in that: A first storage box (208) is fixedly installed on the surface of the first connecting line (202), a partition plate (209) is fixedly installed inside the first storage box (208), a sodium bicarbonate box (210) is separated at the bottom of the first storage box (208), a second storage box (211) is fixedly installed on the surface of the standby access port (203), the interior of the second storage box (211) is configured in the same manner as the first storage box (208), a piston cylinder (212) is fixedly installed on the left side of the first storage box (208), and a piston plate (213) is slidably installed inside the piston cylinder (212).

3. The variable frequency resonance test device according to claim 2, characterized in that: A first gear (214) is rotatably mounted on the side of the mounting plate (207), a connecting rod (215) is fixedly mounted on the left side of the piston plate (213), a first threaded rod (216) is fixedly mounted on the left side of the connecting rod (215), the first threaded rod (216) passes through the interior of the mounting plate (207) and is threadedly connected to the first gear (214), a first sliding plate (217) is fixedly mounted on the end of the first threaded rod (216), a first sliding track (218) is fixedly mounted on the bottom of the mounting plate (207), the first sliding plate (217) is slidably connected to the first sliding track (218), a support plate (219) is fixedly mounted on the bottom of the first sliding track (218), and a first spring (220) is fixedly mounted between the support plate (219) and the first sliding plate (217).

4. A variable frequency resonance test device according to claim 3, characterized in that: A first tooth groove (223) is provided at the bottom of the second sliding plate (222) on the right side, and the first tooth groove (223) is engaged with the first gear (214). Second tooth grooves (224) are provided on the sides of the two second sliding plates (222). A second gear (225) is rotatably installed on the top of the mounting plate (207). Two second gears (225) are provided, and the two second gears (225) are engaged with the second tooth groove (224).

5. The variable frequency resonance test device according to claim 4, characterized in that: A second threaded rod (230) is fixedly mounted on the bottom of the connecting plate (228), a first threaded barrel (231) is fixedly mounted on the top of the second gear (225), and the first threaded barrel (231) is threadedly connected to the second threaded rod (230).

6. The variable frequency resonance test device according to claim 5, characterized in that: The conversion mechanism (3) comprises a vertical plate (301), a second threaded cylinder (302) is rotated inside the vertical plate (301), two second threaded cylinders (302) are provided, and the two second threaded cylinders (302) are connected by a belt, a third threaded rod (303) is fixedly installed on the front of the right second sliding plate (222), and the third threaded rod (303) is threadedly connected to the left second threaded cylinder (302), and a fourth threaded rod (304) is fixedly installed on the rear of the front second sliding plate (222), and the fourth threaded rod (304) is threadedly connected to the right second threaded cylinder (302).

7. The variable frequency resonance test device according to claim 6, characterized in that: A warning mechanism (4) is installed on the left side of the standby access port (203), and the warning mechanism (4) includes a first installation cavity (401). The first installation cavity (401) is opened inside the installation plate (207), and a connecting pipe (402) is fixedly installed on the side of the first installation cavity (401). An air bag (403) is installed inside the first installation cavity (401), and the air bag (403) is connected to the second placement box (211) through the connecting pipe (402). A sliding frame (404) is slidably installed inside the first installation cavity (401), and the sliding frame (404) is in contact with the air bag (403).

8. The variable frequency resonance test device according to claim 7, characterized in that: A second spring (405) is fixedly installed on the left side of the sliding frame (404), and the second spring (405) is arranged between the sliding frame (404) and the inner wall of the first installation cavity (401). A needle (406) is fixedly installed on the inner wall of the first installation cavity (401), and a plurality of needles (406) are provided. A through hole (407) is opened on the surface of the sliding frame (404), and the through hole (407) corresponds to the needle (406). A fifth threaded rod (408) is fixedly installed on the left side of the sliding frame (404), and the fifth threaded rod (408) passes through the outside of the mounting plate (207) and is slidably connected to the mounting plate (207).

9. The variable frequency resonance test device according to claim 8, characterized in that: A third threaded cylinder (409) is rotatably mounted on the left side of the mounting plate (207), the fifth threaded rod (408) is threadedly connected to the third threaded cylinder (409), a first bevel gear (410) is fixedly mounted on the end of the third threaded cylinder (409), a fourth gear (411) is rotatably mounted on the bottom of the inner cavity of the housing (1), a second bevel gear (412) is fixedly mounted on the top of the fourth gear (411), the second bevel gear (412) is meshed with the first bevel gear (410), a fifth gear (413) is rotatably mounted on the bottom of the inner cavity of the housing (1), the fifth gear (413) is configured to rotate relative to the first bevel gear (410). There are two of them, and the tops of the two fifth gears (413) are fixedly mounted with fan gears (414), the front fifth gear (413) is meshed with the fourth gear (411), a second tooth plate (415) is slidably mounted on the bottom of the inner cavity of the shell (1), the fan gear (414) is meshed with the second tooth plate (415), a connecting frame (416) is fixedly mounted on the top of the second tooth plate (415), a striking rod (417) is fixedly mounted on the side of the connecting frame (416), a vibration plate (418) is fixedly mounted on the bottom of the inner cavity of the shell (1), and two vibration plates (418) are provided.

Citation Information

Patent Citations

  • Intelligent switching device for dedicated telephone lines, and intelligent testing system and method for dedicated telephone lines

    CN107613147A

  • Automatic change-over switch with manual and automatic switching mechanism

    CN112885624A

  • Circuit protection device for power distribution equipment abnormity

    CN117713342A

  • Take two power automatic transfer switch of elastic adjusted device

    CN205920888U