Quality detection equipment for cable materials
By designing a combined structure of rotating disc, column, pressure plate, and ejection assembly, the problem of cable materials being difficult to remove after inspection was solved, enabling convenient winding and transfer of cable materials.
Patent Information
- Application Number
- CN202422875927.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-25
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2034-11-25
AI Technical Summary
In existing technologies, it is inconvenient for staff to remove and transfer cable materials after inspection.
A quality inspection device for cable materials was designed. It adopts a support frame and inspection components. Through the combination structure of rotating disk, column, pressure plate, upright and ejection component, it realizes stable winding and convenient removal of cable.
By reducing the friction between the cable and the pole, the process of removing cable materials is simplified, and work efficiency is improved.
Smart Images

Figure CN223646061U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of material quality testing technology, specifically to a quality testing device for cable materials. Background Technology
[0002] Cable materials are indispensable in the construction and practical application of power engineering. The quality of cable materials directly affects the efficiency and quality of power transmission. Therefore, it is necessary to test the quality of cable materials. Based on this, a power engineering quality testing device has emerged in the prior art, see reference 1.
[0003] Reference 1: Chinese patent document with patent publication number CN 212111169 U.
[0004] Reference 1 discloses a power engineering quality inspection device, which uses the piston rods of two sets of hydraulic rods to drive the movable plate, linear motor, and infrared flaw detector head to rise and fall. The moving part of the linear motor drives the detector head to move horizontally, enabling the inspection of different parts of the cable or base. At the same time, the winding assembly includes a motor output shaft that drives the column, circular plate, and multiple sets of uprights to rotate, enabling the winding of the cable. The pressure bar can press the coiled cable tightly to prevent the cable from scattering. The coiled cable can be removed from the circular plate simply by unscrewing the nut on the top of the pressure bar from the upright, saving manpower and space.
[0005] However, the winding assembly described in Reference 1 requires workers to shake the coiled cable material from side to side after winding it up to overcome the friction between the multiple uprights and the cable material before it can be removed and transferred, which makes it inconvenient for workers to remove and transfer the cable material. Utility Model Content
[0006] The purpose of this invention is to solve the problem in the prior art that cable materials are inconvenient to remove and transfer for storage after being inspected and coiled, and to provide a quality inspection device for cable materials.
[0007] To address the shortcomings of the aforementioned technical problems, the present invention adopts the following technical solution: a quality testing device for cable materials, comprising a support frame and a testing component mounted on the support frame. The testing component has a guide component and a drive component on both sides, and the drive component is connected to a rotating disk. A column is located at the center of the rotating disk, and a pressure plate is threadedly connected to the top of the column. The rotating disk has sliding grooves with the same number of columns as the rotating disk. The sliding grooves are arranged radially along the rotating disk, and the lower end of the column is slidably mounted in the sliding groove.
[0008] The column is surrounded by a top pressure strip, and the upper end of the top pressure strip is fixedly connected to the pressure plate.
[0009] A tray is slidably fitted onto the column, and a transverse sliding groove is opened on the tray corresponding to the sliding groove.
[0010] The testing equipment also includes an ejection assembly that can drive multiple uprights to move in the direction of the column while the tray rises vertically.
[0011] As a further optimization of the quality inspection equipment for cable materials of this utility model: the ejection component includes a tension spring provided in the sliding groove and a linkage column provided in the transverse sliding groove. The tension spring drives the upright to move towards the upright. The linkage column is slidably connected to the inclined groove opened on the upright. The inclined groove is set at an angle from bottom to top, gradually moving away from the upright.
[0012] As a further optimization of the quality inspection equipment for cable materials of this utility model: the connecting column is rotatably connected to a roller on its outer periphery in the inclined groove, and the roller is in clearance fit with the inclined groove.
[0013] As a further optimization of the quality inspection equipment for cable materials of this utility model: the ejection component includes a tension spring provided in the sliding groove and a matching groove opened on the tray and communicating with the transverse sliding groove. The tension spring drives the upright to move in the direction of the column. A connecting column fixedly connected to the column is slidably provided in the matching groove. A pushing rod is rotatably provided at the end of the connecting column that passes through the matching groove. The end of the pushing rod away from the connecting column is rotatably connected to the center of the rotating disk.
[0014] As a further optimization of the quality inspection equipment for cable materials of this utility model: a limiting disc is provided at the end of the linkage column that protrudes from the matching slide groove.
[0015] As a further optimization of the quality inspection equipment for cable materials of this utility model: a sliding block is fixedly connected to one end of the upright facing the rotating disk, the sliding block slides in the sliding groove, and a tension spring is provided between the side of the sliding block facing the upright and the inner wall of the sliding groove to connect the two.
[0016] As a further optimization of the quality inspection equipment for cable materials of this utility model: a limiting column fixed on the inner wall of the sliding groove is slidably connected at the center of the sliding block, and a tension spring surrounds the outer periphery of the limiting column.
[0017] As a further optimization of the quality testing equipment for cable materials of this utility model: there are four uprights, which are arranged around the column, and the tray is arranged in a cross shape.
[0018] Compared with the prior art, the present invention has the following beneficial effects:
[0019] This invention uses a pressure plate threadedly connected to a column to form a stable winding structure with multiple uprights and a rotating disc. When the pressure plate is connected to the column, the top pressure strip on the pressure plate presses against the tray, thereby compressing and positioning the push-out component between the upright and the tray. Then, driven by the drive component, the cable material is steadily wound up. After the pressure plate is removed from the column, the push-out component moves multiple uprights toward the column and moves the tray upward. Thus, with the wound cable material having low friction with the uprights, the wound cable material is pushed out, making it easy for workers to remove and store the wound cable material. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the structure of Embodiment 1 of the present utility model;
[0021] Figure 2 This is a cross-sectional structural diagram of Embodiment 1 of the present invention;
[0022] Figure 3 This is a schematic diagram of the structure of Embodiment 2 of the present invention;
[0023] Figure 4 This is a cross-sectional structural diagram of Embodiment 2 of the present invention;
[0024] The markings in the diagram are: 1. Support frame; 2. Drive component; 3. Rotary disk; 401. Tray; 402. Transverse slide; 403. Matching slide; 5. Push-out assembly; 501. Upright post; 502. Linking column; 503. Inclined groove; 504. Sliding groove; 505. Tension spring; 506. Limiting column; 507. Sliding block; 508. Pushing link; 601. Pressure plate; 602. Upright post; 603. Top pressure bar; 7. Detection assembly; 8. Guide component. Detailed Implementation
[0025] To better understand this utility model, the following embodiments further illustrate the content of this utility model, but the content of this utility model is not limited to the following embodiments.
[0026] <Example 1>
[0027] like Figure 1 and Figure 2As shown, a quality inspection device for cable materials includes a support frame 1 and an inspection component 7 mounted on the support frame 1 for inspecting the quality of cable materials. The inspection component 7 has a guide member 8 and a drive member 2 on each side. The drive member 2 drives a rotating disk 3. Multiple uprights 501 are mounted on the rotating disk 3 around the outer periphery of a column 602. A column 602 is located at the center of the rotating disk 3. A pressure plate 601 is threadedly connected to the top of the column 602 to press down on the multiple uprights 501. When the rotating disk 3 is driven to rotate by the drive member 2, the multiple uprights 501 rotate to wind up the cable materials, allowing the cable to pass stably through the inspection component 7 for inspection and subsequent collection and storage. During the winding and pulling process, the guide member 8 restricts the passage of the cable materials, reducing the possibility of the cable materials entangled in the inspection component 7, which could cause a decrease in inspection quality.
[0028] The upright 602 is slidably fitted with a tray 401. At the center of the tray 401, on the side opposite to the rotating disk 3, there are multiple top pressure strips 603 fixed on the pressure plate 601. The outer edge of the tray 401 and multiple uprights 501 are equipped with push-out components 5. After the pressure plate 601 is rotated off the upright 602, the top pressure strips 603 will separate from the tray 401. Then, the push-out components 5 will move the multiple uprights 501 toward the upright 602 to separate them from the cable materials, thereby reducing the friction between the cable materials and the uprights 501 during the process of removing the cable materials from the rotating disk 3. At the same time, the tray 401 will move upward to push the wound cable materials upward, making it easier for the staff to remove and store the wound cable materials.
[0029] The launching component 5 includes a transverse groove 402 on the outer edge of the tray 401, which slides and engages with multiple uprights 501. Each upright 501 slides and engages with the rotating disk 3. A tension spring 505 is provided on each upright 501 to drive it to move towards the column 602. An inclined groove 503 is provided on each upright 501; specifically, the inclined groove 503 is inclined with its lower end close to the column 602 and its upper end away from the column 602. Therefore, when the upright 501 moves towards the column 602... The drive connects the tray 401 to move upward. A connecting column 502, which is located on the inner wall of the transverse slide groove 402, slides in the inclined groove 503. Specifically, the outer periphery of the connecting column 502 is provided with a roller, and the roller is in clearance fit with the inclined groove 503. This reduces the friction between the two when the connecting column 502 slides in the inclined groove 503, so that the connecting column 502 can stably and quickly move with the displacement of the upright 501 and cooperate with the inclined groove 503 to push the tray 401 upward.
[0030] Multiple uprights 501 are fixedly provided with sliding blocks 507 at their ends facing the rotating disk 3. The multiple sliding blocks 507 are slidably engaged with multiple sliding grooves 504 opened on the rotating disk 3. Each sliding block 507 is provided with a tension spring 505 between itself and the inner wall of the corresponding sliding groove 504. The tension spring 505 is used to cooperate with the sliding block 507 to drive the upright 501 to move towards the column 602. The sliding block 507 is slidably engaged with a limiting post 506 whose end is provided on the inner wall of the sliding groove 504. The tension spring 505 is arranged around the limiting post 506. The limiting post 506 can stabilize the sliding stability of the sliding block 507 and stabilize the deformation of the tension spring 505. The limiting post 506 can also strengthen the structure of the rotating disk 3.
[0031] Specifically, there are four uprights 501, which are evenly distributed around the outer periphery of the column 602. The tray 401 is arranged in a cross shape. The four uprights 501 and the four edges of the tray 401 are provided with push-out components 5. The four uprights 501 can cooperate with the column 602 at the center to position the end of the cable material onto the rotating disk 3, so that the subsequent drive component 2 can drive the rotating disk 3 to cooperate with the four uprights 501 to wind up the cable material.
[0032] In practical use, when the top pressure bar 603 presses the tray 401 on the rotating disk 3, multiple linkage columns 502 will be located at the bottom of the inclined groove 503. Then, multiple uprights 501 will be deployed and positioned against the tension of the tension spring 505. After that, the cable material can be wound up by the drive component 2. After the pressure plate 601 and the top pressure bar 603 are removed, the tension spring 505 will pull the multiple uprights 602 to move towards the uprights 501. Then, the linkage columns 502 will drive the multiple edges of the tray 401 to move upward through the inclined groove 503. After that, the tray 401 will push out the wound cable material so that the staff can quickly and conveniently remove and transfer the wound cable material for storage.
[0033] <Example 2>
[0034] like Figure 3 and Figure 4 As shown, this embodiment is basically the same as embodiment 1. The difference from embodiment 1 is that the push-out component 5 pushes the tray 401 to vertical displacement. The push-out component 5 in this embodiment includes a mating groove 403 opened at the edge of the tray 401 and communicating with the transverse groove 402. A connecting column 502 fixedly connected to the upright 501 slides in the mating groove 403, so that the connecting column 502 can move with the displacement of the upright 501. The end of the connecting column 502 that passes through the mating groove 403 is rotatably connected to a pushing rod 508. The end of the pushing rod 508 that is away from the connecting column 502 is rotatably located at the center of the rotating disk 3. The displacement of the connecting column 502 can cause the pushing rod 508 to rotate around the end of the rotating disk 3, thereby pushing the connecting column 502 to change its own height position.
[0035] A limiting plate is fixedly provided at the end of the connecting column 502 that protrudes from the mating groove 403. The limiting plate can maintain the connection stability between the connecting column 502 and the push rod 508. The height of the mating groove 403 facing the rotating disk 3 is higher than that of the rotating disk 3, so that the push rod 508 is inclined in an inner-lower-outer-higher shape when the tray 401 is restricted to the rotating disk 3. This reduces the initial force required for the column 602 to be displaced by the tension spring 505. Subsequently, the push rod 508 can stably push the wound cable material upward.
[0036] In practical use, when the top pressure bar 603 presses against the tray 401, the multiple linkage columns 502, under the constraint of the multiple push rods 508, cause the multiple uprights 501 to overcome the tension of the tension spring 505 and unfold and position. Then, with the drive of the drive component 2, the cable material can be wound up. After the pressure plate 601 and the top pressure bar 603 are removed, the tension spring 505 will pull the multiple uprights 602 to move towards the uprights 501. Subsequently, the multiple linkage columns 502 will slide in the matching slide groove 403 to push the multiple push rods 508 to rotate. Then, the tray 401 will be supported by the rotation of the push rods 508, causing the tray 401 to move upward, thereby pushing out the wound cable material, so that the staff can quickly and conveniently remove and transfer the wound cable material for storage.
[0037] The specific embodiments of this utility model have been described above. It should be understood that this utility model is not limited to the specific embodiments described above, and those skilled in the art can make various modifications or variations within the scope of the claims, which do not affect the substantive content of this utility model.
Claims
1. A quality inspection device for cable materials, comprising a support frame (1) and an inspection component (7) disposed on the support frame (1), wherein a guide component (8) and a drive component (2) are respectively provided on both sides of the inspection component (7), the drive component (2) is connected to a rotating disk (3), a column (602) is provided at the center of the rotating disk (3), and a pressure plate (601) is threadedly connected to the top of the column (602), characterized in that: The rotating disk (3) is provided with sliding grooves (504) in the same number as the uprights (501). The sliding grooves (504) are arranged radially along the rotating disk (3), and the lower end of the uprights (501) is slidably arranged in the sliding grooves (504). The column (602) is surrounded by a top pressure strip (603), and the upper end of the top pressure strip (603) is fixedly connected to the pressure plate (601); The column (602) is slidably fitted with a tray (401), and the tray (401) is provided with a transverse sliding groove (402) corresponding to the sliding groove (504). The testing equipment also includes an ejection assembly (5) capable of driving multiple uprights (501) to move toward the column (602) while the tray (401) rises vertically.
2. The quality testing equipment for cable materials as described in claim 1, characterized in that: The ejection assembly (5) includes a tension spring (505) in the sliding groove (504) and a connecting column (502) in the transverse sliding groove (402). The tension spring (505) drives the upright (501) to move towards the upright (602). The connecting column (502) is slidably connected to the inclined groove (503) opened on the upright (602), and the inclined groove (503) is inclinedly arranged from bottom to top, gradually moving away from the upright (602).
3. The quality testing equipment for cable materials as described in claim 2, characterized in that: The connecting column (502) is rotatably connected to a roller on its outer periphery within the inclined groove (503), and the roller is in clearance fit with the inclined groove (503).
4. The quality testing equipment for cable materials as described in claim 1, characterized in that: The ejection assembly (5) includes a tension spring (505) located in the sliding groove (504) and a mating groove (403) located on the tray (401) and communicating with the transverse sliding groove (402). The tension spring (505) drives the upright (501) to move towards the column (602). A connecting column (502) fixedly connected to the column (602) is slidably provided in the mating groove (403). A push link (508) is rotatably provided at the end of the connecting column (502) that protrudes from the mating groove (403). The end of the push link (508) away from the connecting column (502) is rotatably connected to the center of the rotating disk (3).
5. The quality testing equipment for cable materials as described in claim 4, characterized in that: The end of the linkage column (502) that protrudes from the mating groove (403) is provided with a limiting disc.
6. A quality testing device for cable materials as described in claim 2 or 4, characterized in that: The end of the upright (501) facing the rotating disk (3) is fixedly connected to a sliding block (507). The sliding block (507) slides in the sliding groove (504), and a tension spring (505) is provided between the side of the sliding block (507) facing the upright (602) and the inner wall of the sliding groove (504).
7. The quality testing equipment for cable materials as described in claim 6, characterized in that: The sliding block (507) is slidably connected to a limiting post (506) fixed on the inner wall of the sliding groove (504), and a tension spring (505) surrounds the outer periphery of the limiting post (506).
8. The quality testing equipment for cable materials as described in claim 1, characterized in that: The uprights (501) are provided in four positions, which are arranged around the column (602), and the tray (401) is arranged in a cross shape.
Citation Information
Patent Citations
Electric power engineering quality detection device
CN212111169U