FRP reinforced core material insulation detector

By automating the design of the FRP reinforced core material insulation detector, the problem of manual insertion of thin optical fiber cables required by existing detectors has been solved, achieving an efficient and safe detection process.

CN223513297UActive Publication Date: 2025-11-04HUBEI CHANGDA OPTOELECTRONIC COMM MATERIALS CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202422634062.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-30
Publication Date
2025-11-04
Estimated Expiration
2034-10-30

AI Technical Summary

Technical Problem

Existing detectors require manual alignment before insertion during wire and cable testing. For cables made of thin optical fiber, this is cumbersome, affecting testing efficiency and safety.

Method used

An FRP-reinforced core material insulation detector is used. By setting a combination of a second pneumatic telescopic rod, a motor, and a threaded rod, the optical fiber is automatically pushed to the power input port. Anti-slip pads and locking blocks are used to ensure stable insertion and anti-slip of the line. An electric push rod is used to assist in the laying of the optical fiber.

Benefits of technology

It reduces the amount of manual insertion work, improves testing efficiency, enhances safety, and ensures uniform fiber optic cable laying and stable power-on testing.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223513297U_ABST
    Figure CN223513297U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of optical fiber material detection, and provides an FRP (Fiber Reinforce Plastic) reinforced core material insulation detector which comprises two detection box bodies, the two detection box bodies are far away from each other, the two opposite sides of the two detection box bodies are fixedly connected with side top plates and side conveying platforms, and the side top plates and the side conveying platforms are arranged on the two sides of the two detection box bodies. The side top plate is located above the side face of the detection box body, a first pneumatic telescopic rod is started to press first pressing plates downwards, bayonets in the bottoms of the first pressing plates on the two sides are clamped to the outer portions of circuits at the two ends respectively, anti-skid pads are used for preventing skid, and under the state that a motor is started to enable a threaded rod and a first conveying block to further conduct threaded conveying, the first conveying block conducts threaded conveying. And the circuit with the bottom clamped in the bayonet is input into the limiting notch, so that the two ends of the circuit are inserted into the first power-on output port and the first power-on input port respectively for power-on detection, the manual insertion workload is reduced, and the safety is relatively high.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of insulation detector, specifically to a kind of FRP reinforced core material insulation detector. BACKGROUND

[0002] ‌FRP reinforced core material is a kind of new high-performance engineering composite material with glass fiber as reinforcing material and resin as matrix material, which has the remarkable advantages of light weight, high strength, corrosion resistance, environmental protection and energy saving, and is widely used in various optical cables‌.

[0003] After searching, the existing patent (CN220568881U) discloses a wire and cable insulation detector, which comprises a detector, a pushing mechanism fixed to one side of the detector, a limiting mechanism fixed to the inside of the pushing mechanism, which is suitable for inserting the line to be detected, a cleaning mechanism fixed to the center position inside the pushing mechanism, and a detector body which is the detection main body of the detector. As the preferred scheme of the utility model, the pushing mechanism comprises an electric push rod fixed to one side of the detector body, an adjusting plate fixed to the extended end of the electric push rod, and a fixed plate provided on one side of the detector body, and the adjusting plate is distributed on the four corners of the fixed plate. As the preferred scheme of the utility model, the pushing mechanism further comprises a sliding groove opened on the four corners of the side edge of the fixed plate, the four side edges of the fixed plate are rounded, a T-shaped sliding block fixed to one side of the adjusting plate is inserted into the inside of the sliding groove and slides, and a limiting spring is fixed between the T-shaped sliding block and the inner wall of one side of the sliding groove. The T-shaped sliding block and the limiting spring can insert the line after pushing the fixed plate outward, and the fixed plate rebounds after being released, the inserted line is pressed tightly to the detection socket, and the line is fixed. The first anti-slip pad can avoid the impact of the rebound speed on the line fixation, the line is inserted between the four air bags, and the line is further fixed. The limiting sheet can limit the line after insertion.

[0004] However, in the above scheme, the detector usually needs to be manually aligned and inserted during the detection of the wire and cable. For cables made of thin optical material, it is troublesome to pick up and insert, and the detection safety is not high under the condition of power on. It is not conducive to improving the detection efficiency in thin cables made of optical material.

[0005] In view of this, the utility model provides a kind of FRP reinforcing core material insulation detector. Utility model content

[0006] The utility model provides a kind of FRP reinforcing core material insulation detector, solve the detector in the process of related art in the detection of electric wire cable and usually need to be inserted after being aligned by hand, for the cable made of relatively thin light material, its taking and insertion are more troublesome, in the relatively thin cable made of optical fiber material, the problem of not conducive to improving the efficiency of detection.

[0007] The utility model discloses a technical scheme as follows: a kind of FRP reinforcing core material insulation detector, including detection box body: the quantity of detection box body is provided with two, two detection box bodies are away from each other, two detection box bodies are oppositely both sides are fixedly connected with side top plate and side conveying platform, the side top plate is located the above of detection box body side, the side conveying platform is located the below of detection box body side, the bottom of side top plate is equipped with two sliding grooves, the inside of two sliding grooves is provided with threaded rod, the side top plate one side is fixedly connected with two motors, the output of two motors is fixedly connected with the inside of sliding groove two threaded rods respectively, the outside of one side threaded rod is provided with first conveying block, the threaded rod passes through first conveying block and is threadedly connected with first conveying block, the bottom of first conveying block is fixedly connected with first support plate, the bottom of first support plate is fixedly connected with first pneumatic telescopic link, the bottom of first pneumatic telescopic link is fixedly connected with first pressing plate, the bottom of first pressing plate is equipped with bayonet, the inside of bayonet is fixedly connected with non-slip mat, the outside of other side threaded rod is provided with second conveying block, the threaded rod passes through other side second conveying block and is threadedly connected with second conveying block, the bottom of second conveying block is fixedly connected with second support plate, the bottom of second support plate is fixedly connected with second pneumatic telescopic link, the bottom of second pneumatic telescopic link is fixedly connected with second pressing plate, the bottom of second pressing plate is fixedly connected with clamping block, the inside of one side clamping block is fixedly connected with second electrification output, the top of side conveying platform is rotatably connected with rotating top plate, the top of rotating top plate is fixedly connected with fixed plate, the inside of fixed plate is equipped with limit slot, the inside of the both sides of two detection box bodies is provided with first electrification output and first electrification input respectively, the limit slot and first electrification input are oppositely provided, the above of first electrification input is provided with warning light, the bottom of rotating top plate is provided with inclined support mechanism, the second pressing plate can be extended by the second pneumatic telescopic link of setting, so that the clamping block of second pressing plate bottom can be inserted into the inside of limit slot, then start motor to make threaded rod rotate screw thread transmission second support plate in the inside of sliding groove, further drive second pneumatic telescopic link, second pressing plate and clamping block on the bottom of second support plate to move, short fiber optic line placed in the inside of limit slot is pushed to the inside of first electrification input and is inserted, at this time, the both ends of fiber optic line are connected with second electrification output and first electrification input respectively and carry out electrification detection, in the case of detecting longer fiber optic line, the both ends of line are placed in the inside of two sides arbitrary limit slot, start first pneumatic telescopic link and press down first pressing plate, the bayonet of both sides first pressing plate bottom is respectively inserted in the outside of both ends line, and is prevented by non-slip mat, in the state that threaded rod and first conveying block are further screw thread transmission under the start of motor, the line input limit slot in the inside of bayonet inside bottom is inserted, so that the both ends of line are inserted in the inside of first electrification output and first electrification input and carry out electrification detection.

[0008] Preferably, the second conveying block is fixed on one side of the top surface of the second supporting plate, the first conveying block is fixed on the other side of the top surface of the first supporting plate, and the first supporting plate and the second supporting plate are arranged in parallel in the conveying direction of the threaded rod.

[0009] Preferably, the bottom of the first supporting plate is provided with two first pneumatic telescopic rods, and the extension ends of the two first pneumatic telescopic rods are respectively fixedly connected with the two ends of the top of the first pressing plate.

[0010] Preferably, the bottom of the second supporting plate is fixedly connected with two second pneumatic telescopic rods, and the extension ends of the two second pneumatic telescopic rods are respectively fixedly connected with the two ends of the top of the second pressing plate.

[0011] Preferably, the bayonet and the clamping block are located directly above the limiting slot, the clamping block is adapted to be inserted into the inside of the limiting slot, and the clamping block can close one side of the inside of the limiting slot, so that the line can be pushed into the inside of the first power input port or the first power output port during movement.

[0012] Preferably, the fixing plate is fixed on the upper surface of the rotating top plate close to the detection box, the fixing plates on both sides are away from each other, the blank position between the fixing plates on both sides on the upper surface of the rotating top plate is a placement area, and when the longer optical fiber line is detected, the line roll can be placed above the placement area of the rotating top plate.

[0013] Preferably, the inclined supporting mechanism comprises an electric push rod and a ball-shaped sliding block, the rotating top plate is a top plate of a side conveying platform, the rotating top plate is rotationally connected with the side plate of the side conveying platform through a hinge, the electric push rod is fixedly connected above the bottom plate of the side conveying platform, the ball-shaped sliding block is fixedly connected to the top of the electric push rod, the ball-shaped sliding block slides with the bottom surface of the rotating top plate, and the baffle is fixedly connected to the two sides of the top of the rotating top plate. After the electric push rod is started, one side of the rotating top plate naturally rises or falls, the short optical fiber line is more easily rolled into the next limiting slot under the action of gravity when the rotating top plate is arranged obliquely, and the staff can quickly and uniformly lay the short optical fiber line in the inside of the limiting slot.

[0014] Preferably, the rotating top plates on both sides are connected with each other, except for the first power output port, the first power input port, the clamping block, the second power input port and the warning light, the detection box, the side top plate and the side conveying platform and the connected structures thereof are arranged in mirror image with the connecting surface of the rotating top plates on both sides as the center, and the inside of the clamping block on the other side arranged in mirror image is provided with the second power input port.

[0015] Preferably, the inside of the detection box is provided with a power supply, the output end of the power supply is connected with the first and second power-on output ports by wires, and the first and second power-on input ports are connected with the input end of the power supply by wires.

[0016] Preferably, the opposite side of the two side top plates is fixedly connected with a third supporting plate, the third supporting plate is fixedly connected with a limiting rod between the detection boxes, and the limiting rod penetrates through the two ends inside the first and second supporting plates to limit the first and second supporting plates to slide outside the third supporting plate, so that the stability of the first and second supporting plates during operation can be realized.

[0017] The utility model discloses a beneficial effect is:

[0018] In the utility model, the second pressing plate can be extended through the second pneumatic telescopic rod, so that the clamping block at the bottom of the second pressing plate can be inserted into the inside of the limiting slot, the motor is started to make the threaded rod rotate the threaded transmission second supporting plate in the sliding groove, and the second pneumatic telescopic rod, the second pressing plate and the clamping block at the bottom of the second supporting plate are further moved to push the short optical fiber line placed in the limiting slot into the inside of the first power-on input port. At this time, the two ends of the optical fiber line are connected with the second power-on output port and the first power-on input port respectively for power-on detection. In the case of detecting a longer optical fiber line, the two ends of the line are placed in the inside of the limiting slot on the two sides respectively, the first pressing plate is pressed down by starting the first pneumatic telescopic rod, the clamping hole at the bottom of the first pressing plate on the two sides is clamped on the outside of the two ends of the line respectively, and the anti-skid pad is used for anti-skid. In the state that the motor is started to make the threaded rod and the first transmission block further threadedly transmit, the line clamped in the clamping hole is input into the inside of the limiting slot, and the two ends of the line are inserted into the inside of the first power-on output port and the first power-on input port respectively for power-on detection. The artificial insertion workload is reduced, and the safety is higher.

[0019] In the utility model, the electric push rod is arranged, and after the electric push rod is started, one side of the top plate is naturally lifted or lowered, the top plate is arranged obliquely, and the short optical fiber line is more easily rolled into the inside of the next limiting slot under the action of gravity, which assists the staff to quickly and evenly lay the short optical fiber line in the inside of the limiting slot. The first and second supporting plates are limited to slide outside the third supporting plate, so that the stability of the first and second supporting plates during operation can be realized. ACCURATE DRAWING

[0020] The utility model will be further explained in detail in connection with the drawings and specific embodiment.

[0021] Figure 1 It is a side view of the three-dimensional structure schematic diagram of the utility model.

[0022] Figure 2 It is another side view of the three-dimensional structure schematic view of the utility model;

[0023] Figure 3 It is the three-dimensional structure schematic view of the bottom plate connecting structure of the utility model from the bottom view;

[0024] Figure 4 It is the internal structure schematic view of the utility model from the side view;

[0025] Figure 5 It is the three-dimensional structure schematic view of the utility model Figure 3 It is the enlarged structure schematic view of A in the utility model.

[0026] In the figure: 1, detection box body;2, side top plate;3, side conveying platform;4, first power output;5, first power input;6, baffle;7, fixed plate;8, limiting notch;9, sliding groove;10, threaded rod;11, motor;12, first conveying block;13, first support plate;14, first pneumatic telescopic rod;15, first pressing plate;16, bayonet;17, non-slip pad;18, second conveying block;19, second support plate;20, second pneumatic telescopic rod;21, second pressing plate;22, clamping block;23, second power output;24, rotating top plate;25, electric push rod;26, spherical sliding block;27, warning light;28, limiting rod;29, third support plate. DETAILED DESCRIPTION

[0027] The technical scheme in the embodiments of the utility model will be described clearly and completely below in conjunction with the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor are involved in the protection scope of the utility model. EMBODIMENT

[0028] The preferred embodiment of the FRP reinforcing core material insulation detector provided by the utility model is as follows Figures 1 to 5The utility model discloses a kind of FRP reinforcing core material insulation detectors, including detection box 1: the quantity of detection box 1 is provided with two, two detection box 1 is away from each other, two detection box 1 opposite sides are fixedly connected with side top plate 2 and side conveying platform 3, side top plate 2 is located above the side of detection box 1, side conveying platform 3 is located below the side of detection box 1, the bottom of side top plate 2 is equipped with two sliding grooves 9, the inside of two sliding grooves 9 is provided with threaded rod 10, one side of side top plate 2 is fixedly connected with two motors 11, the output of two motors 11 is fixedly connected with two threaded rods 10 in the inside of sliding groove 9 respectively, first conveying block 12 is provided outside one side threaded rod 10, threaded rod 10 passes through first conveying block 12 and is connected with first conveying block 12 screw, the bottom of first conveying block 12 is fixedly connected with first support plate 13, the bottom of first support plate 13 is fixedly connected with first pneumatic telescopic rod 14, the bottom of first pneumatic telescopic rod 14 is fixedly connected with first pressing plate 15, the bottom of first pressing plate 15 is equipped with bayonet 16, the inside of bayonet 16 is fixedly connected with non-slip pad 17, second conveying block 18 is provided outside another side threaded rod 10, threaded rod 10 passes through another side second conveying block 18 and is connected with second conveying block 18 screw, the bottom of second conveying block 18 is fixedly connected with second support plate 19, the bottom of second support plate 19 is fixedly connected with second pneumatic telescopic rod 20, the bottom of second pneumatic telescopic rod 20 is fixedly connected with second pressing plate 21, the bottom of second pressing plate 21 is fixedly connected with clamping block 22, the inside of one side clamping block 22 is fixedly connected with second electrification output 23, the top of side conveying platform 3 is rotatably connected with rotating top plate 24, the top of rotating top plate 24 is fixedly connected with fixed plate 7, the inside of fixed plate 7 is equipped with limiting slot 8, the inside of two detection box 1 opposite sides is respectively provided with first electrification output 4 and first electrification input 5, limiting slot 8 and first electrification input 5 are oppositely arranged, the top of first electrification input 5 is provided with warning light 27, the bottom of rotating top plate 24 is provided with inclined support mechanism.The second pressing plate 21 can be extended by the second pneumatic telescopic rod 20, so that the clamping block 22 at the bottom of the second pressing plate 21 is inserted into the inside of the limiting slot 8. Then the motor 11 is started to rotate the threaded rod 10 inside the sliding groove 9 to threadedly convey the second supporting plate 19, further drive the second pneumatic telescopic rod 20, the second pressing plate 21 and the clamping block 22 at the bottom of the second supporting plate 19 to move, and push the short optical fiber line placed in the limiting slot 8 into the inside of the first power input port 5. At this time, the two ends of the optical fiber line are connected with the second power output port 23 and the first power input port 5 respectively for power-on detection. In the case of detecting a longer optical fiber line, the two ends of the line are placed in the inside of the limiting slot 8 on both sides, the first pneumatic telescopic rod 14 is started to press down the first pressing plate 15, the clamping hole 16 at the bottom of the first pressing plate 15 on both sides is clamped to the outside of the two ends of the line respectively, and the anti-skid pad 17 is used for anti-skid. In the state that the motor 11 is started to further threadedly convey the threaded rod 10 and the first conveying block 12, the line clamped in the clamping hole 16 at the bottom is input into the inside of the limiting slot 8, and the two ends of the line are inserted into the inside of the first power output port 4 and the first power input port 5 respectively for power-on detection.

[0029] It should be noted that the existing detection equipment still has certain deficiencies, which can only be aligned and inserted manually. For the cable made of thin optical material, it is troublesome to take and insert, and it is difficult to improve the detection efficiency in the detection of optical fiber material.

[0030] In the embodiment, the second pressing plate 21 can be extended by the second pneumatic telescopic rod 20, so that the clamping block 22 at the bottom of the second pressing plate 21 is inserted into the inside of the limiting slot 8. Then the motor 11 is started to rotate the threaded rod 10 inside the sliding groove 9 to threadedly convey the second supporting plate 19, further drive the second pneumatic telescopic rod 20, the second pressing plate 21 and the clamping block 22 at the bottom of the second supporting plate 19 to move, and push the short optical fiber line placed in the limiting slot 8 into the inside of the first power input port 5. At this time, the two ends of the optical fiber line are connected with the second power output port 23 and the first power input port 5 respectively for power-on detection. In the case of detecting a longer optical fiber line, the two ends of the line are placed in the inside of the limiting slot 8 on both sides, the first pneumatic telescopic rod 14 is started to press down the first pressing plate 15, the clamping hole 16 at the bottom of the first pressing plate 15 on both sides is clamped to the outside of the two ends of the line respectively, and the anti-skid pad 17 is used for anti-skid. In the state that the motor 11 is started to further threadedly convey the threaded rod 10 and the first conveying block 12, the line clamped in the clamping hole 16 at the bottom is input into the inside of the limiting slot 8, and the two ends of the line are inserted into the inside of the first power output port 4 and the first power input port 5 respectively for power-on detection.

[0031] The further preferable embodiment of the utility model further provides a first transmission block 12 and a second transmission block 18, the first transmission block 12 is fixed to the top surface of a first support plate 13, the second transmission block 18 is fixed to the top surface of a second support plate 19, and the first support plate 13 and the second support plate 19 are arranged in parallel with the conveying direction of the threaded rod 10.

[0032] The further preferable embodiment of the utility model further provides that the first support plate 13 is provided with two first pneumatic telescopic rods 14 at the bottom, and the extension ends of the two first pneumatic telescopic rods 14 are fixedly connected to the two ends of the top of a first pressing plate 15 respectively.

[0033] The further preferable embodiment of the utility model further provides that the second support plate 19 is fixedly connected with two second pneumatic telescopic rods 20 at the bottom, and the extension ends of the two second pneumatic telescopic rods 20 are fixedly connected to the two ends of the top of a second pressing plate 21 respectively. Embodiment

[0034] On the basis of the embodiment 1, the preferable embodiment of the FRP reinforcing core material insulation detector provided by the utility model is as shown in the figure: Figures 1 to 5 As shown in the figure, the bayonet 16 and the clamping block 22 are located directly above the limiting slot 8, and the clamping block 22 is adapted to be inserted into the inside of the limiting slot 8.

[0035] In the embodiment, the clamping block 22 can close one side inside the limiting slot 8, so that the line can be pushed into the inside of the first power input port 5 or the first power output port 4 in movement.

[0036] The further preferable embodiment of the utility model further provides that the fixed plate 7 is fixed to the upper surface of a rotating top plate 24 close to the detection box 1, the fixed plates 7 on both sides are away from each other, and the blank position between the fixed plates 7 on both sides on the upper surface of the rotating top plate 24 is a storage area.

[0037] In the embodiment, when the longer optical fiber line is detected, the line roll can be placed above the storage area of the rotating top plate 24.

[0038] The further preferable embodiment of the utility model further provides that the inclined support mechanism comprises an electric push rod 25 and a spherical sliding block 26, the rotating top plate 24 is a top plate of the side conveying platform 3, the rotating top plate 24 is rotationally connected with the side plate of the side conveying platform 3 through a hinge, the electric push rod 25 is fixedly connected above the bottom plate of the side conveying platform 3, the spherical sliding block 26 is fixedly connected to the top of the electric push rod 25, the spherical sliding block 26 slides with the bottom surface of the rotating top plate 24, and the baffle 6 is fixedly connected to the two sides of the top of the rotating top plate 24.

[0039] In the embodiment, the electric push rod 25 is arranged to rotate one side of the top plate 24 to naturally rise or fall after the electric push rod 25 is started, and the short optical fiber line is more easily rolled into the next limiting slot 8 under the action of gravity when the top plate 24 is arranged obliquely, thereby assisting the worker to uniformly lay the short optical fiber line in the limiting slot 8.

[0040] In the further preferred embodiment of the utility model, the two rotating top plates 24 are connected to each other, and the detection box 1, the side top plate 2 and the side conveying platform 3 and the structure connected thereto are all arranged in mirror image with the connecting surface of the two rotating top plates 24 as the center, except for the first power output port 4, the first power input port 5, the clamping block 22, the second power input port and the warning light 27.

[0041] In the further preferred embodiment of the utility model, the detection box 1 is internally provided with a power supply, the output end of the power supply is connected with the first power output port 4 and the second power output port 23 through wires, the first power input port 5 and the second power input port are connected with the input end of the power supply through wires, and the first power output port 4 is connected with the first power input port 5 and the second power input port through wires.

[0042] In the further preferred embodiment of the utility model, the opposite side of the two side top plates 2 is fixedly connected with a third supporting plate 29, the third supporting plate 29 is fixedly connected with a limiting rod 28 between the detection box 1, and the limiting rod 28 penetrates through the two ends in the first supporting plate 13 and the second supporting plate 19.

[0043] In the embodiment, the sliding of the first supporting plate 13 and the second supporting plate 19 outside the third supporting plate 29 can realize the stability of the first supporting plate 13 and the second supporting plate 19 in the operation process.

[0044] The working principle of this utility model is as follows: When in use, activating the electric push rod 25 causes one side of the rotating top plate 24 to rise or fall naturally. When the rotating top plate 24 is angled, the short optical fiber is more easily rolled into the next limiting slot 8 under gravity, assisting the operator in quickly and evenly laying the short optical fiber inside the limiting slot 8. Activating the second pneumatic telescopic rod 20 extends the second pressing plate 21, causing the locking block 22 at the bottom of the second pressing plate 21 to insert into the limiting slot 8. Then, activating the motor 11 causes the threaded rod 10, located inside the sliding groove 9, to rotate and transmit the threaded transmission to the second support plate 19. This further moves the second pneumatic telescopic rod 20, the second pressing plate 21, and the locking block 22 at the bottom of the second support plate 19, pushing the short optical fiber placed inside the limiting slot 8 to the first… When the power input port 5 is inserted, the two ends of the optical fiber are connected to the second power output port 23 and the first power input port 5 respectively for power-on testing. When testing a longer optical fiber, the two ends of the line are placed inside the limit slots 8 on both sides respectively. The first pneumatic telescopic rod 14 is activated to press down the first pressing plate 15, and the latches 16 at the bottom of the first pressing plates 15 on both sides are respectively engaged with the outside of the two ends of the line. The anti-slip pads 17 provide anti-slip limit. When the motor 11 is activated to further thread the threaded rod 10 and the first conveying block 12, the line input limit slot 8 with the bottom engaged inside the latch 16 is inserted into the first power output port 4 and the first power input port 5 respectively for power-on testing.

[0045] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. An FRP-reinforced core material insulation detector, characterized in that, The test chamber (1) includes two test chambers (1) positioned far apart from each other. A side top plate (2) and a side conveying platform (3) are fixedly connected to each of the two test chambers (1) on opposite sides. The side top plate (2) is located above the side of the test chamber (1), and the side conveying platform (3) is located below the side of the test chamber (1). Two sliding grooves (9) are formed at the bottom of the side top plate (2), and threaded rods (10) are installed inside each of the two sliding grooves (9). Two motors (11) are fixedly connected to one side of the side top plate (2), and the output ends of the two motors (11) are... The two threaded rods (10) inside the chute (9) are fixedly connected. A first conveying block (12) is provided on the outside of one of the threaded rods (10). The threaded rod (10) passes through the first conveying block (12) and is threadedly connected to the first conveying block (12). A first support plate (13) is fixedly connected to the bottom of the first conveying block (12). A first pneumatic telescopic rod (14) is fixedly connected to the bottom of the first support plate (13). A first pressing plate (15) is fixedly connected to the bottom of the first pneumatic telescopic rod (14). A bayonet (16) is opened at the bottom of the first pressing plate (15). The bayonet (16) has a... An anti-slip pad (17) is fixedly connected internally. A second conveying block (18) is provided on the outside of the threaded rod (10) on the other side. The threaded rod (10) passes through the second conveying block (18) on the other side and is threadedly connected to the second conveying block (18). A second support plate (19) is fixedly connected to the bottom of the second conveying block (18). A second pneumatic telescopic rod (20) is fixedly connected to the bottom of the second support plate (19). A second pressing plate (21) is fixedly connected to the bottom of the second pneumatic telescopic rod (20). A locking block (22) is fixedly connected to the bottom of the second pressing plate (21). One side of the locking block (22) is internally fixed. A second power output port (23) is fixedly connected to the top of the side conveying platform (3), and a rotating top plate (24) is rotatably connected to the top of the rotating top plate (24). A fixed plate (7) is fixedly connected to the top of the rotating top plate (24). A limit slot (8) is opened inside the fixed plate (7). A first power output port (4) and a first power input port (5) are respectively provided inside the two side plates of the two detection boxes (1). The limit slot (8) and the first power input port (5) are arranged opposite to each other. A warning light (27) is provided above the first power input port (5). An inclined support mechanism is provided at the bottom of the rotating top plate (24).

2. The FRP reinforced core material insulation detector according to claim 1, characterized in that, The second conveying block (18) is fixed to one side of the top surface of the second support plate (19), and the first conveying block (12) is fixed to the other side of the top surface of the first support plate (13). The first support plate (13) and the second support plate (19) are arranged in parallel in the conveying direction of the threaded rod (10).

3. The FRP reinforced core material insulation detector according to claim 1, characterized in that, The bottom of the first support plate (13) is provided with two first pneumatic telescopic rods (14), and the extension ends of the two first pneumatic telescopic rods (14) are respectively fixedly connected to the two ends of the top of the first pressing plate (15).

4. The FRP reinforced core material insulation detector according to claim 1, characterized in that, The bottom of the second support plate (19) is fixedly connected to two second pneumatic telescopic rods (20), and the extension ends of the two second pneumatic telescopic rods (20) are fixedly connected to the two ends of the top of the second pressing plate (21).

5. An FRP-reinforced core material insulation detector according to claim 1, characterized in that, The bayonet (16) and the card block (22) are both located directly above the limiting slot (8), and the card block (22) is adapted to be inserted into the inside of the limiting slot (8).

6. The FRP reinforced core material insulation detector according to claim 1, characterized in that, The fixing plate (7) is fixed on the upper surface of the rotating top plate (24) near the detection box (1). The fixing plates (7) on both sides are far apart from each other. The blank space between the two fixing plates (7) on the upper surface of the rotating top plate (24) is the storage area.

7. An FRP-reinforced core material insulation detector according to claim 1, characterized in that, The inclined support mechanism includes an electric push rod (25) and a spherical slider (26). The rotating top plate (24) is the top plate of the side conveying platform (3). The rotating top plate (24) is rotatably connected to the side plate of the side conveying platform (3) through a hinge. An electric push rod (25) is fixedly connected above the bottom plate of the side conveying platform (3). A spherical slider (26) is fixedly connected to the top of the electric push rod (25). The spherical slider (26) slides against the bottom surface of the rotating top plate (24). Baffles (6) are fixedly connected to both sides of the top of the rotating top plate (24).

8. An FRP-reinforced core material insulation detector according to claim 1, characterized in that, The rotating top plates (24) on both sides are connected to each other. Except for the first power output port (4), the first power input port (5), the card block (22), the second power input port and the warning light (27), the detection box (1), the side top plate (2) and the side conveying platform (3) and their connected structures are all set in a mirror image with the connection surface of the rotating top plates (24) on both sides as the center. The card block (22) on the other side of the mirror image is provided with a second power input port.

9. An FRP-reinforced core material insulation detector according to claim 7, characterized in that, The detection box (1) is equipped with a power supply. The output end of the power supply is connected to the first power output port (4) and the second power output port (23) by wires. The first power input port (5) and the second power input port are connected to the power input end by wires. The first power output port (4) is connected to the first power input port (5) and the second power input port by wires respectively.

10. An FRP-reinforced core material insulation detector according to claim 7, characterized in that, A third support plate (29) is fixedly connected to one side of each of the two side top plates (2). The third support plate (29) is fixedly connected to a limit rod (28) between the detection box (1). The limit rod (28) passes through both ends of the first support plate (13) and the second support plate (19).

Citation Information

Patent Citations

  • Electric wire and cable insulation detector

    CN220568881U