Detection device for wear-resistant rope production
By designing a multi-dimensional moving nozzle and cable jitter stretching mechanism, the problem of uneven spraying in the cable detection device is solved, comprehensive and uniform corrosion of the cable surface is achieved, and the accuracy and reliability of the detection are improved.
Patent Information
- Application Number
- CN202510605948.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-12
- Publication Date
- 2025-08-01
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing cable detection devices have uneven spraying during the spraying process, resulting in inaccurate detection results. Especially the top area is over-sprayed and the front and rear areas are insufficient, making it difficult to comprehensively and evenly detect the corrosion resistance of the cable.
A detection device for the production of wear-resistant cables is designed. The connecting nozzle is moved left and right through the wire sleeve, and combined with the up and down movement of the crossbar and the rotation mechanism to drive the cable to rotate, the multi-dimensional movement of the nozzle is realized, ensuring that the corrosive liquid is sprayed evenly on the surface of the cable, and the fiber gap is increased through the shaking and stretching of the cable, and the corrosion liquid is promoted to in-depth penetration.
The comprehensive and uniform spraying of the cable surface is achieved, the accuracy and reliability of corrosion tests are improved, the comprehensiveness and consistency of the test results are ensured, and the corrosion situation in actual use is simulated.
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Figure CN120404556A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cable detection, and specifically provides a detection device for producing wear-resistant cables. Background Art
[0002] Cables have properties such as tensile strength, impact resistance, wear resistance, flexibility, and lightness, and are multi-strand ropes used to tie ships. They are required to have properties such as tensile strength, impact resistance, wear resistance, flexibility, and lightness.
[0003] For example, the disclosure No. CN212844919U discloses a detection device for a corrosion-resistant cable production line. The detection device for the corrosion-resistant cable production line includes an outer frame. A collection tank is fixedly connected to the bottom of the inner wall of the outer frame. A first motor is fixedly connected to the right side of the top of the outer frame. One end of the output shaft of the first motor is fixedly connected to a first pulley. The surface of the first pulley is connected to a second pulley through a belt drive. A lead screw is fixedly connected to the center of the second pulley. Both ends of the lead screw are rotationally connected to the top of the inner wall of the outer frame through rotating members. A moving block is threadedly connected to the surface of the lead screw. The detection device for the corrosion-resistant cable production line provided by the present invention achieves the purpose of facilitating the fixation of the cable, facilitating the detection of the cable, and can perform corrosion detection by spraying a corrosion inhibitor at different positions of the cable, making the detection result more accurate and reliable.
[0004] When the spray head moves horizontally, its vertical position is relatively fixed, which will cause the corrosion-resistant liquid to concentrate on the top of the cable, resulting in excessive spraying in the top area and insufficient spraying in the front and rear areas, and it is impossible to achieve a comprehensive and uniform spraying effect, making it difficult to accurately detect the overall corrosion resistance of the cable. Summary of the Invention
[0005] The technical problem to be solved by the present invention is to provide a detection device for producing wear-resistant cables in view of the above-mentioned deficiencies in the prior art.
[0006] To solve the above technical problems, the technical solution adopted by the present invention is: a detection device for producing wear-resistant ropes and cables, including a collection box. The top of the collection box is fixedly connected with a first fixing plate and a second fixing plate. The left side of the first fixing plate is rotatably connected with a first rope and cable fixing sleeve. The back of the collection box is fixedly connected with a corrosion liquid box. A connecting spray pipe is fixedly connected inside the corrosion liquid box. A spraying mechanism is arranged on the left side of the first fixing plate. The spraying mechanism includes a motor. The motor is fixedly connected to the right side of the first fixing plate. The output end of the motor is rotatably connected with a reciprocating lead screw through a coupling. A wire sleeve is slidably connected to the outer wall of the reciprocating lead screw. The right side of the wire sleeve is fixedly connected with a third fixing plate. The back of the third fixing plate is fixedly connected with a fixing rod. A second movable sleeve is movably sleeved on the outer wall of the fixing rod. The second movable sleeve is fixedly connected to the top of the connecting spray pipe. By moving the wire sleeve left and right, the connecting spray pipe can be driven to move left and right, so as to spray the ropes and cables.
[0007] Preferably, a chute is opened on the front surface of the wire sleeve. A first slider is slidably connected inside the chute. The top of the first slider is fixedly connected with a contact ball. An arc-shaped plate is fixedly connected between the first fixing plate and the second fixing plate. The top of the first slider is fixedly connected with a contact ball. The contact ball contacts the arc-shaped plate.
[0008] Preferably, a cross bar is slidably connected to the left side of the first fixing plate. The cross bar movably penetrates through the first slider and extends to both its left and right sides. A first movable sleeve is movably sleeved on the outer wall of the cross bar. A first support rod is hinged between the back of the first movable sleeve and the top of the second movable sleeve. When the wire sleeve moves left and right, it will drive the contact ball to move left and right. Under the action of the arc-shaped plate, the contact ball moves up and down, so as to drive the cross bar to move up and down. By moving the cross bar up and down, the second movable sleeve is driven to move longitudinally on the fixing rod, so as to drive the bottom connecting spray pipe to move back and forth. At the same time, through horizontal and front-back displacements, the nozzle can spray the surface of the ropes and cables more comprehensively. Whether it is the front end, the rear end or the middle part of the ropes and cables, they can be evenly sprayed, ensuring that the entire surface of the ropes and cables can be fully detected.
[0009] Preferably, a shaking mechanism is arranged on the front surface of the first slider. An L-shaped rod is fixedly connected to the front surface of the first slider. The L-shaped rod contacts the outer wall of the ropes and cables. A baffle is fixedly connected to one end of the L-shaped rod. The baffle is used to limit the third movable sleeve.
[0010] Preferably, a third movable sleeve is movably sleeved on the outer wall of the L-shaped rod. A second support rod is hinged between the top of the third movable sleeve and the bottom of the wire sleeve. When the first slider moves up and down, the L-shaped rod will be driven to move up and down. The up and down movement of the L-shaped rod will drive the cable to vibrate up and down. Through the up and down vibration of the cable, fresh corrosive liquid will continuously contact the surface of the cable, accelerating the chemical reaction between the corrosive components in the corrosive liquid and the cable material, improving the corrosion effect. Thus, the hinged second support rod drives the third movable sleeve to move back and forth on the L-shaped rod, and then the cable can be driven to move back and forth through the back and forth movement of the third movable sleeve. During the back and forth movement of the cable, the contact position with the corrosive liquid can be continuously changed, so that the corrosive liquid can cover the surface of the cable more evenly, avoiding the situation of too much or too little local corrosive liquid, and thus ensuring that the corrosion degree of the entire cable surface is more consistent, improving the accuracy and reliability of the corrosion test.
[0011] Preferably, a rotating mechanism is arranged on the right side of the second fixing plate. The rotating mechanism includes a rack. The rack is slidably connected to the right side of the second fixing plate. The rack is fixedly connected to the left side of the cross bar. A rotating shaft is rotatably connected to the right side of the second fixing plate. A second cable fixing sleeve is fixedly connected to the right side of the rotating shaft. When the cross bar moves up and down, the rack will be driven to move up and down. When the rack moves up and down, the gear will be driven to rotate, thereby driving the internal rotating shaft to rotate. Through the rotation of the rotating shaft, the second cable fixing sleeve will be driven to rotate, thereby driving the cable to rotate. Rotating the cable can evenly cover the corrosive liquid on all parts of the cable, including easily overlooked areas such as the side and bottom of the cable, avoiding spraying dead corners, ensuring that the entire cable surface can be in full contact with the corrosive liquid, and thus more comprehensively simulating the corrosion situation in actual use.
[0012] Preferably, four sliding holes are formed in the outer wall of the second cable fixing sleeve. Four second sliders are slidably connected inside the four sliding holes. A second spring is fixedly connected between the second slider and the inner wall of the sliding hole.
[0013] Preferably, one end of each of the four second sliders is fixedly connected to a cable clamping plate. The other ends of the four cable clamping plates are fixedly connected to a contact plate. The contact plate contacts the L-shaped rod. When the L-shaped rod moves to the left, the L-shaped rod will drive the contact plate to move to the left, thereby driving the cable to be stretched. When the contact is disengaged, the cable will be reset under the action of the second spring. By stretching the cable, the gap between the fibers or strands inside the cable can be increased, providing a smoother channel for the corrosive liquid, which is beneficial for the corrosive liquid to penetrate more deeply into the cable interior and fully react with the internal material.
[0014] The present invention adopts the above technical solutions and can bring the following beneficial effects: 1. The detection device for producing wear-resistant ropes and cables can spray the ropes and cables by moving the connecting nozzle left and right. When the connecting nozzle moves horizontally, it can also move back and forth. This multi-dimensional movement method enables the nozzle to evenly spray the front end, rear end, and middle part of the ropes and cables, ensuring that the entire surface of the ropes and cables can be fully detected, avoiding the possible spraying dead angles in the traditional spraying method, greatly improving the uniformity and comprehensiveness of spraying, thereby ensuring that the corrosion degree of the entire surface of the ropes and cables is more consistent and improving the accuracy and reliability of the corrosion test.
[0015] 2. The detection device for producing wear-resistant ropes and cables can make the ropes and cables shake up and down by moving the L-shaped rod up and down. This shaking can continuously make the corrosive liquid contact the surface of the ropes and cables, accelerating the chemical reaction between the corrosive components in the corrosive liquid and the rope material, improving the corrosion effect. And by moving the third movable sleeve back and forth, the ropes and cables are driven to move back and forth. During the forward and backward movement of the ropes and cables, the contact position with the corrosive liquid can be continuously changed, enabling the corrosive liquid to cover the surface of the ropes and cables more evenly, avoiding the situation of too much or too little local corrosive liquid, thereby ensuring that the corrosion degree of the entire surface of the ropes and cables is more consistent and improving the accuracy and reliability of the corrosion test.
[0016] 3. The detection device for producing wear-resistant ropes and cables can evenly cover the corrosive liquid on all parts of the cable by rotating the cable, including the side and bottom surfaces of the cable and other areas that are easily overlooked, avoiding spraying dead angles, more comprehensively simulating the corrosion situation in actual use, and making the detection results more valuable for reference.
[0017] 4. When the L-shaped rod moves to the left, the detection device for producing wear-resistant ropes and cables drives the ropes and cables to be stretched, increasing the gap between the fibers or strands inside the ropes and cables, providing a smoother channel for the corrosive liquid, facilitating the deeper penetration of the corrosive liquid into the cable interior, fully reacting with the internal materials, further improving the corrosion effect, and making the detection results closer to the corrosion situation in actual use. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is the first front view of the structure of the present invention; Figure 2 It is the side view of the structure of the present invention; Figure 3 It is the second front view of the structure of the present invention; Figure 4 It is the enlarged view of part A of the structure of the present invention; Figure 5 It is the first cross-sectional view of the structure of the present invention; Figure 6 It is the enlarged view of part B of the structure of the present invention; Figure 7This is the second cross-sectional view of the structure of the present invention; Figure 8 This is the enlarged view of part C of the structure of the present invention.
[0019] In the figure: 1. Collection box; 2. First fixing plate; 3. Second fixing plate; 4. First cable fixing sleeve; 51. Corrosion liquid box; 52. Connecting spray pipe; 6. Spraying mechanism; 611. Motor; 612. Reciprocating lead screw; 613. Nut sleeve; 614. Chute; 615. First slider; 616. Contact ball; 617. Arc plate; 618. Cross bar; 619. First movable sleeve; 620. Third fixing plate; 621. Fixed rod; 622. Second movable sleeve; 623. First support rod; 7. Shaking mechanism; 711. L-shaped rod; 712. Third movable sleeve; 713. Baffle; 714. Second support rod; 8. Rotating mechanism; 811. Rack; 812. Rotating shaft; 813. Gear; 814. Second cable fixing sleeve; 815. Slide hole; 816. Second slider; 817. Second spring; 818. Contact plate; 819. Cable clamping plate. Detailed implementation manners
[0020] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0021] Please refer to Figure 1-8, an embodiment of the present invention is: a detection device for producing wear-resistant ropes and cables, including a collection box 1. On the top of the collection box 1, a first fixing plate 2 and a second fixing plate 3 are fixedly connected. On the left side of the first fixing plate 2, a first rope and cable fixing sleeve 4 is rotatably connected. On the back of the collection box 1, a corrosion liquid box 51 is fixedly connected. Inside the corrosion liquid box 51, a connecting spray pipe 52 is fixedly connected. On the left side of the first fixing plate 2, a spraying mechanism 6 is arranged. The spraying mechanism 6 includes a motor 611. The motor 611 is fixedly connected to the right side of the first fixing plate 2. The output end of the motor 611 is rotatably connected to a reciprocating lead screw 612 through a coupling. The outer wall of the reciprocating lead screw 612 is slidably connected with a nut sleeve 613. On the right side of the nut sleeve 613, a third fixing plate 620 is fixedly connected. On the back of the third fixing plate 620, a fixing rod 621 is fixedly connected. The outer wall of the fixing rod 621 is movably sleeved with a second movable sleeve 622. The second movable sleeve 622 is fixedly connected to the top of the connecting spray pipe 52. By the left and right movement of the nut sleeve 613, the connecting spray pipe 52 can be driven to move left and right, so that the ropes and cables can be sprayed. A chute 614 is opened on the front surface of the nut sleeve 613. Inside the chute 614, a first slider 615 is slidably connected. On the top of the first slider 615, a contact ball 616 is fixedly connected. Between the first fixing plate 2 and the second fixing plate 3, an arc-shaped plate 617 is fixedly connected. On the top of the first slider 615, a contact ball 616 is fixedly connected. The contact ball 616 contacts the arc-shaped plate 617. On the left side of the first fixing plate 2, a cross bar 618 is slidably connected. The cross bar 618 movably penetrates through the first slider 615 and extends to its left and right sides. The outer wall of the cross bar 618 is movably sleeved with a first movable sleeve 619. Between the back of the first movable sleeve 619 and the top of the second movable sleeve 622, a first support rod 623 is hinged. When the nut sleeve 613 moves left and right, the contact ball 616 will be driven to move left and right. Under the action of the arc-shaped plate 617, the contact ball 616 moves up and down, so that the cross bar 618 can be driven to move up and down. By the up and down movement of the cross bar 618, the second movable sleeve 622 is driven to move longitudinally on the fixing rod 621, so that the connecting spray pipe 52 at the bottom can be driven to move back and forth. At the same time, horizontal and back-and-forth displacements are carried out, which can make the nozzle spray the surface of the ropes and cables more comprehensively. Whether it is the front end, the rear end or the middle part of the ropes and cables, they can be evenly sprayed, ensuring that the entire surface of the ropes and cables can be fully detected.
[0022] Working principle: Clamp both ends of the cable between the cable clamping plates 819 inside the first cable fixing sleeve 4 and the second cable fixing sleeve 814, and spray the corrosive liquid on the cable through the connecting nozzle 52. Then start the motor 611. The motor 611 drives the reciprocating lead screw 612 to rotate. When the reciprocating lead screw 612 rotates, it drives the nut sleeve 613 to move. The movement of the nut sleeve 613 drives the third fixing plate 620 on the right side to move, thereby driving the second movable sleeve 622 on the outer wall of the fixed rod 621 to move. In this way, the connecting nozzle 52 is driven to move horizontally to spray the corrosive liquid on the cable. And when the nut sleeve 613 moves left and right, it will drive the abutting ball 616 to move left and right. The abutting ball 616 moves up and down under the action of the arc-shaped plate 617, so as to drive the cross bar 618 to move up and down. The up and down movement of the cross bar 618 drives the second movable sleeve 622 to move longitudinally on the fixed rod 621, so as to drive the connecting nozzle 52 at the bottom to move back and forth. The simultaneous horizontal and back-and-forth displacements can make the nozzle spray the cable surface more comprehensively. Whether it is the front end, the rear end or the middle part of the cable, it can be evenly sprayed, ensuring that the entire cable surface can be fully detected.
[0023] Please refer to Figure 1-8 On the basis of the above embodiment, in another embodiment of the present invention, a shaking mechanism 7 is provided on the front surface of the first slider 615. An L-shaped rod 711 is fixedly connected to the front surface of the first slider 615. The L-shaped rod 711 is in contact with the outer wall of the cable. One end of the L-shaped rod 711 is fixedly connected with a baffle 713. The baffle 713 is provided for limiting the third movable sleeve 712. A third movable sleeve 712 is movably sleeved on the outer wall of the L-shaped rod 711. A second support rod 714 is hinged between the top of the third movable sleeve 712 and the bottom of the nut sleeve 613. When the first slider 615 moves up and down, it will drive the L-shaped rod 711 to move up and down. The up and down movement of the L-shaped rod 711 will drive the cable to shake up and down. Through the up and down shaking of the cable, the fresh corrosive liquid continuously contacts the cable surface, accelerating the chemical reaction between the corrosive components in the corrosive liquid and the cable material, improving the corrosion effect. Thus, the hinged second support rod 714 drives the third movable sleeve 712 to move back and forth on the L-shaped rod 711, so that the cable can be driven to move back and forth through the back-and-forth movement of the third movable sleeve 712. During the back-and-forth movement of the cable, the contact position with the corrosive liquid can be continuously changed, so that the corrosive liquid can cover the cable surface more evenly, avoiding the situation of too much or too little local corrosive liquid, thereby ensuring that the corrosion degree of the entire cable surface is more consistent and improving the accuracy and reliability of the corrosion test.
[0024] Working principle: When the first slider 615 moves up and down, it drives the L-shaped rod 711 to move up and down. The up and down movement of the L-shaped rod 711 drives the cable to vibrate up and down. Through the up and down vibration of the cable, fresh corrosive liquid continuously contacts the surface of the cable, accelerating the chemical reaction between the corrosive components in the corrosive liquid and the cable material, improving the corrosion effect. As a result, the articulated second support rod 714 drives the third movable sleeve 712 to move back and forth on the L-shaped rod 711. Thus, the cable can be driven to move back and forth through the back and forth movement of the third movable sleeve 712. During the back and forth movement of the cable, the contact position with the corrosive liquid can be continuously changed, enabling the corrosive liquid to cover the surface of the cable more evenly, avoiding the situation of excessive or insufficient corrosive liquid in some parts, and ensuring that the corrosion degree of the entire cable surface is more consistent, improving the accuracy and reliability of the corrosion test.
[0025] Please refer to Figure 1-8 , on the basis of the above embodiment, in another embodiment of the present invention, a rotating mechanism 8 is provided on the right side of the second fixing plate 3. The rotating mechanism 8 includes a rack 811 which is slidably connected to the right side of the second fixing plate 3. The rack 811 is fixedly connected to the left side of the cross bar 618. A rotating shaft 812 is rotatably connected to the right side of the second fixing plate 3. A second cable fixing sleeve 814 is fixedly connected to the right side of the rotating shaft 812. When the cross bar 618 moves up and down, it drives the rack 811 to move up and down. When the rack 811 moves up and down, it drives the gear 813 to rotate, thereby driving the internal rotating shaft 812 to rotate. Through the rotation of the rotating shaft 812, the second cable fixing sleeve 814 is driven to rotate, thereby driving the cable to rotate. Rotating the cable can evenly cover the corrosive liquid on all parts of the cable, including the side and bottom of the cable and other areas that are easily overlooked, avoiding spraying dead angles, ensuring that the entire surface of the cable can fully contact the corrosive liquid, and thus more comprehensively simulating the corrosion situation in actual use. Four sliding holes 815 are provided on the outer wall of the second cable fixing sleeve 814. Four second sliders 816 are slidably connected inside the four sliding holes 815. A second spring 817 is fixedly connected between the second slider 816 and the inner wall of the sliding hole 815. One end of the four second sliders 816 is fixedly connected to a cable clamping plate 819. The other end of the four cable clamping plates 819 is fixedly connected to a contact plate 818. The contact plate 818 contacts the L-shaped rod 711. When the L-shaped rod 711 moves to the left, the L-shaped rod 711 drives the contact plate 818 to move to the left, thereby driving the cable to be stretched. When the contact is disengaged, the cable will reset under the action of the second spring 817. By stretching the cable, the gap between the fibers or strands inside the cable can be increased, providing a smoother channel for the corrosive liquid and facilitating the deeper penetration of the corrosive liquid into the cable interior to fully react with the internal materials.
[0026] Working principle: When the cross bar 618 moves up and down, it drives the rack 811 to move up and down. When the rack 811 moves up and down, it drives the gear 813 to rotate, thereby driving the internal rotating shaft 812 to rotate. The rotation of the rotating shaft 812 drives the second cable fixing sleeve 814 to rotate, thereby driving the cable to rotate. Rotating the cable can evenly cover the corrosion liquid on all parts of the cable, including easily overlooked areas such as the side and bottom of the cable, avoiding spraying dead angles, ensuring that the entire surface of the cable can fully contact the corrosion liquid, and thus more comprehensively simulating the corrosion situation in actual use. When the L-shaped rod 711 moves to the left, the L-shaped rod 711 drives the contact plate 818 to move to the left, thereby driving the cable to be stretched. When the contact is disengaged, the cable will reset under the action of the second spring 817. Stretching the cable can increase the gap between the fibers or strands inside the cable, provide a smoother channel for the corrosion liquid, and is conducive to the corrosion liquid penetrating more deeply into the cable and fully reacting with the internal materials.
[0027] The present invention provides a detection device for producing wear-resistant cables. There are many methods and ways to specifically implement this technical solution. The above description is only the preferred embodiment of the present invention. It should be noted that for those of ordinary skill in the art in this technical field, without departing from the principle of the present invention, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present invention. Each component not clearly defined in this embodiment can be implemented by existing technologies.
Claims
1. A detection device for producing wear-resistant ropes and cables, including a collection box (1), characterized in that: The collection box (1), a first fixing plate (2) and a second fixing plate (3) are fixedly connected to the top of the collection box (1). A first cable fixing sleeve (4) is rotatably connected to the left side of the first fixing plate (2). A corrosion liquid box (51) is fixedly connected to the back of the collection box (1), and a connecting spray pipe (52) is fixedly connected to the inside of the corrosion liquid box (51). A spraying mechanism (6) is arranged on the left side of the first fixing plate (2). The spraying mechanism (6) includes a motor (611). The motor (611) is fixedly connected to the right side of the first fixing plate (2). The output end of the motor (611) is rotatably connected to a reciprocating lead screw (612) through a coupling. A nut sleeve (613) is slidably connected to the outer wall of the reciprocating lead screw (612). A third fixing plate (620) is fixedly connected to the right side of the nut sleeve (613). A fixing rod (621) is fixedly connected to the back of the third fixing plate (620). A second movable sleeve (622) is movably sleeved on the outer wall of the fixing rod (621). The second movable sleeve (622) is fixedly connected to the top of the connecting spray pipe (52).
2. The inspection device for producing wear-resistant ropes according to claim 1, characterized in that: A chute (614) is formed in the front of the nut sleeve (613). A first slider (615) is slidably connected to the inside of the chute (614). A contact ball (616) is fixedly connected to the top of the first slider (615). An arc plate (617) is fixedly connected between the first fixing plate (2) and the second fixing plate (3). A contact ball (616) is fixedly connected to the top of the first slider (615). The contact ball (616) is in contact with the arc plate (617).
3. The testing device for producing wear-resistant ropes according to claim 2, characterized in that: A cross bar (618) is slidably connected to the left side of the first fixing plate (2). The cross bar (618) movably penetrates through the first slider (615) and extends to the left and right sides thereof. A first movable sleeve (619) is movably sleeved on the outer wall of the cross bar (618). A first support rod (623) is hinged between the back of the first movable sleeve (619) and the top of the second movable sleeve (622).
4. The testing device for producing wear-resistant ropes according to claim 3, characterized in that: A shaking mechanism (7) is arranged on the front of the first slider (615). An L-shaped rod (711) is fixedly connected to the front of the first slider (615). The L-shaped rod (711) is in contact with the outer wall of the cable. A baffle (713) is fixedly connected to one end of the L-shaped rod (711).
5. The testing device for producing wear-resistant ropes according to claim 4, wherein: A third movable sleeve (712) is movably sleeved on the outer wall of the L-shaped rod (711). A second support rod (714) is hinged between the top of the third movable sleeve (712) and the bottom of the nut sleeve (613).
6. The testing device for producing wear-resistant ropes according to claim 5, wherein: A rotating mechanism (8) is arranged on the right side of the second fixing plate (3). The rotating mechanism (8) includes a rack (811). The rack (811) is slidably connected to the right side of the second fixing plate (3). The rack (811) is fixedly connected to the left side of the cross bar (618). A rotating shaft (812) is rotatably connected to the right side of the second fixing plate (3). A second cable fixing sleeve (814) is fixedly connected to the right side of the rotating shaft (812).
7. The inspection device for producing wear-resistant ropes according to claim 6, characterized in that: Four sliding holes (815) are formed in the outer wall of the second cable fixing sleeve (814), and a second slider (816) is slidably connected inside the four sliding holes (815). A second spring (817) is fixedly connected between the second slider (816) and the inner wall of the sliding hole (815).
8. An inspection device for producing wear-resistant ropes according to claim 7, characterized in that: One end of the four second sliders (816) is fixedly connected with a cable clamping plate (819), and the other end of the four cable clamping plates (819) is fixedly connected with a contact plate (818), and the contact plate (818) contacts the L-shaped rod (711).
Citation Information
Patent Citations
Detection device for corrosion-resistant cable production line
CN212844919U
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