Outgoing line equipment with detection effect and adjustable outgoing line detection position

By introducing laser sensors into the cable output equipment to detect cable breaks and knots, and combining them with a flip adjustment component and a winding component, the problem of untimely cable detection in existing equipment is solved, achieving efficient and accurate cable output.

CN224185571UActive Publication Date: 2026-05-01SCHLEUNIGER HAOFENG (TIANJIN) MACHNERY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SCHLEUNIGER HAOFENG (TIANJIN) MACHNERY CO LTD
Filing Date
2025-06-05
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

The lack of testing facilities in existing outgoing equipment makes it difficult to detect cable breaks and knots in a timely manner. Furthermore, manual testing is inefficient, reducing transmission efficiency and increasing costs.

Method used

The design incorporates a cable exit device with a detection mechanism. A laser sensor is used to detect whether the cable is broken or knotted. Combined with a flip-adjustment component and a winding component, the cable exit angle and speed are adjusted to ensure smooth cable output.

Benefits of technology

It improves the accuracy and efficiency of cable testing, reduces labor costs, ensures the continuity and efficiency of cable output, and avoids breakage and knotting problems caused by excessive speed.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224185571U_ABST
    Figure CN224185571U_ABST
Patent Text Reader

Abstract

The utility model discloses an outgoing line device with a detection effect and an adjustable outgoing line detection position, which belongs to the technical field of cable transmission equipment and comprises a control host, a detection assembly, a second winding assembly, a first winding assembly, an L-shaped rod, a detection mechanism, a line stroking assembly, a connecting rod and a turnover adjusting assembly. The connecting rod is installed on the top of the control host and arranged on the left side of the rectangular hole, the L-shaped rod is installed on the top of the control host and arranged behind the wire stroking assembly, one end of the overturning adjusting assembly is installed on the connecting rod, the overturning adjusting assembly is connected to the L-shaped rod, and the first winding assembly is installed at the right end of the L-shaped rod. The second winding assembly is installed at the rear end of the L-shaped rod, and the detection mechanism is installed at the rear end of the connecting rod. The problem that in the prior art, due to the lack of an outgoing line detection component, a cable and a fracture position are not convenient to detect is solved. The labor cost is reduced, and the wire outlet efficiency is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of cable transmission equipment technology, specifically to an outgoing cable device with detection effect and adjustable outgoing cable detection position. Background Technology

[0002] After the cable is manufactured, it is usually wound and stored using a spool. However, with existing technology, no matter what method is used for winding, knotting is inevitable.

[0003] Cable reels typically use a clamping mechanism with two clamps to hold the cable in a floating state. The rotation of these clamps drives the reel to rotate as well. After pulling out the cable end, the worker delivers it to the cable cutting equipment or the intended location, where the reel then rotates to release the cable. This is the standard procedure. Some reels also have auxiliary cable release devices for winding and storing the cable, or for straightening it. However, even with straightening, issues like cable tangling or breakage can still occur during storage. Both of these situations present the problem of needing to observe the cable for knots or breaks. Current practice involves manual observation during cable release, but this requires reducing the cable conveying speed. At high speeds, the cable condition becomes difficult to see, and manual observation inevitably misses some issues. Furthermore, existing cable release mechanisms lack detection mechanisms, leading to not only an inability to promptly identify knots and breaks but also reduced conveying efficiency and increased labor costs.

[0004] Therefore, how to provide a cable exit device with detection effect and adjustable cable exit detection position, and solve the structural defects of existing cable exit devices, is a technical problem that urgently needs to be solved by those skilled in the art. Utility Model Content

[0005] Therefore, this utility model provides a cable exit device with detection effect and adjustable cable exit detection position to solve the problem that the lack of cable exit detection components in the prior art makes it difficult to detect cables and breaks.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] This utility model discloses a cable-out device with detection effect and adjustable cable-out detection position, comprising:

[0008] The control host has a rectangular hole on its top surface, and a cable straightening assembly is provided at the rear end of the rectangular hole;

[0009] A connecting rod is installed on the top of the control host, and the connecting rod is located on the left side of the rectangular hole;

[0010] An L-shaped rod is installed on the top of the control host, and the L-shaped rod is located behind the cable straightening assembly;

[0011] A flip-adjustment assembly is mounted on the connecting rod at one end and is connected to the L-shaped rod.

[0012] A first winding assembly is installed at the right end of the L-shaped rod, and a second winding assembly is installed at the rear end of the L-shaped rod;

[0013] The detection component is installed at the bottom of the second winding assembly;

[0014] The testing mechanism is installed at the rear end of the connecting rod.

[0015] In one possible implementation, the L-shaped rod includes:

[0016] A horizontal rod is installed on the upper end of the control host, and several threaded holes are opened on the upper side of the horizontal rod.

[0017] A vertical rod is installed at the rear end of the horizontal rod. A displacement groove is formed in the vertical rod, and the displacement groove passes through the top of the vertical rod. The rear end of the flip adjustment assembly is drivenly connected to the vertical rod.

[0018] In one possible implementation, the flip adjustment component includes:

[0019] A flip-up seat is installed at the top of the connecting rod, and a drive shaft is installed inside the flip-up seat;

[0020] A triangular seat is screwed onto the horizontal rod, and a connecting shaft is installed on the top of the triangular seat. The bottom end of the cylinder is flipped and connected to the connecting shaft.

[0021] A drive shaft is connected in the displacement groove, the top of the drive shaft is connected to the rear end of the flipping rod, and the front end of the flipping rod is flipped and connected to the drive shaft;

[0022] A connector is installed at the bottom end of the flipping rod, and the top of the cylinder is connected to the connector.

[0023] The rear right side of the flipping rod is connected to a stop bar and a connecting shaft, and several winding wheels are sleeved on the connecting shaft.

[0024] In one possible implementation, the first winding assembly includes:

[0025] A mounting block is installed at the rear end of the L-shaped rod, and a round rod is installed in the mounting block;

[0026] Several winding reels are sleeved on the round rod, and a baffle is connected to the right end of the round rod.

[0027] In one possible implementation, the second winding assembly includes:

[0028] An extension plate, arranged in pairs, is installed at the rear end of the L-shaped rod. The other end of the extension plate is connected to a mounting rod, and the detection component is installed at the bottom of the mounting rod. The detection component is located below the extension plate.

[0029] A connecting block is installed at the rear end of the mounting rod, and a drive rod is installed in the mounting rod;

[0030] The discharge wheel is sleeved on the drive rod and is located at the right end of the connecting block. A baffle plate is connected to the right end of the drive rod and is located on the right side of the discharge wheel.

[0031] In one possible implementation, the detection component includes:

[0032] The mounting component is screwed onto the mounting rod, and a fixing block is installed at the front end of the mounting component. A rotating rod is rotatably connected to the fixing block.

[0033] A rotating plate is installed at the right end of the rotating rod. A pressure roller is installed at the right end of the rotating plate. A portion of the pressure roller is placed in the discharge roller. A drive handle is installed at the bottom front end of the rotating plate. A tensile displacement sensor is connected to the rear end of the rotating plate.

[0034] In one possible implementation, the detection mechanism employs a laser sensor.

[0035] In one possible implementation, the top of the control host is provided with several threaded holes.

[0036] This invention uses a detection mechanism to check for cable output, thereby determining if there is any breakage during cable output. If a cable is broken, it will be undetectable by the cable winding assembly. By placing the detection assembly at the cable exit point, it can detect knots or breaks in the cable at the exit location. Compared to manual inspection, this method is not only more efficient but also more accurate. The flip-adjustment assembly allows for changing the cable exit angle, making cable exit more convenient. The first and second winding assemblies, in conjunction with the flip-adjustment assembly, provide a certain amount of cable storage. This prevents the cable output from being insufficient when the cable conveying speed is too high, ensuring continuous cable output. This reduces labor costs while ensuring cable output efficiency, improving the practicality and versatility of the cable conveying equipment. Attached Figure Description

[0037] To more clearly illustrate the embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings in the following description are merely exemplary, and those skilled in the art can derive other embodiments based on the provided drawings without creative effort.

[0038] The structures, proportions, sizes, etc. illustrated in this specification are only for the purpose of assisting those skilled in the art in understanding and reading the content disclosed herein, and are not intended to limit the implementation conditions of this utility model. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in the proportions, or adjustments to the size, without affecting the effects and objectives that this utility model can produce, should still fall within the scope of the technical content disclosed in this utility model.

[0039] Figure 1 A perspective view of the cable-out device with detection effect and adjustable cable-out detection position provided by this utility model;

[0040] Figure 2 A perspective view of the L-shaped rod provided for this utility model;

[0041] Figure 3 A perspective view of the flip-adjustment component provided by this utility model;

[0042] Figure 4 A perspective view of the drive shaft provided for this utility model;

[0043] Figure 5 A perspective view of the first winding assembly provided by this utility model;

[0044] Figure 6 A perspective view of the baffle provided for this utility model;

[0045] Figure 7 A perspective view of the second winding assembly provided by this utility model;

[0046] Figure 8 A perspective view of the shielding plate provided for this utility model;

[0047] Figure 9 A perspective view of the detection component provided by this utility model;

[0048] Figure 10 A perspective view of the drive handle provided for this utility model;

[0049] In the diagram: 1. Control host; 2. Detection component; 21. Fixing block; 22. Rotating rod; 23. Rotating plate; 24. Tensile displacement sensor; 25. Pressure roller; 26. Mounting component; 27. Drive handle; 3. Second winding assembly; 31. Extension plate; 32. Mounting rod; 33. Discharge wheel; 34. Connecting block; 35. Drive rod; 36. Baffle plate; 4. First winding assembly; 41. Mounting block; 42. Round rod; 43. Winding wheel; 44. Baffle plate; 5. L-shaped rod; 51. Horizontal rod body; 52. Threaded hole; 53. Vertical rod body; 6. Detection mechanism; 7. Winding assembly; 8. Connecting rod; 9. Tilting adjustment assembly; 91. Triangular seat; 92. Cylinder; 93. Tilting seat; 94. Drive shaft; 95. Tilting rod; 96. Stop rod; 97. Connecting shaft; 98. Winding wheel body; 99. Connecting component; 910. Transmission shaft. Detailed Implementation

[0050] The following specific embodiments illustrate the implementation of this utility model. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0051] Please refer to Figures 1-10 The present invention discloses a wire-out device with adjustable detection effect and wire-out detection position. Figure 1 The system includes a control host 1, a detection component 2, a second winding component 3, a first winding component 4, an L-shaped rod 5, a detection mechanism 6, a wire straightening component 7, a connecting rod 8, and a flip adjustment component 9. A rectangular hole is opened on the top surface of the control host 1, and the wire straightening component 7 is set at the rear end of the rectangular hole. The connecting rod 8 is installed on the top of the control host 1 and is located on the left side of the rectangular hole. The L-shaped rod 5 is installed on the top of the control host 1 and is located behind the wire straightening component 7. One end of the flip adjustment component 9 is installed on the connecting rod 8 and is connected to the L-shaped rod 5. The first winding component 4 is installed on the right end of the L-shaped rod 5, and the second winding component 3 is installed at the rear end of the L-shaped rod 5. The detection component 2 is installed at the bottom of the second winding component 3, and the detection mechanism 6 is installed at the rear end of the connecting rod 8.

[0052] In use, the multi-layered winding spool is delivered to the control host 1 using a forklift. Then, the cabinet door of the control host 1 is opened, and the spool is placed between two clamps. The two clamps are then driven by a motor to move closer together and lock onto the side of the spool. The forklift is then removed. Both clamps are connected to motors to drive the rotation of the spool, thereby driving the spool to output the wire. Pull out the cable end and feed it into the cable straightening assembly 7. The two rollers in the assembly 7 flatten the wound cable and output it at a specified angle. At this point, the detection mechanism 6 checks the cable exit position to ensure proper output. The detection method involves using a laser sensor to illuminate the corresponding cable position. If a laser sensor is used, the connecting plate between the two rollers must be made of transparent material to allow the laser from the left to pass through and illuminate the cable position. Alternatively, the cable straightening assembly 7 can be positioned on the right, opposite the detection mechanism 6, for better cable detection. The detection method involves triggering an alarm if the cable breaks or fails to pass through the illuminated position, indicating a transmission interruption. After exiting the cable straightening assembly 7, the distance between the first winding assembly 4 and the flip adjustment assembly 9 is adjusted according to the cable width. This ensures the cable is taut after passing through these components, preventing breakage due to stress.

[0053] The adjustment method involves using cylinder 92 to drive connector 99 upwards, causing the flipping rod 95 to flip along drive shaft 94. During the flipping of the flipping rod 95, transmission shaft 910 extends from the displacement groove. The purpose of setting transmission shaft 910 is to make the circular motion generated at the rear end of the flipping rod 95 approximately linear. This ensures that the distance between the winding wheel 98 and the winding wheel 43 will only increase, facilitating the adjustment of the distance between the winding wheel 98 and the winding wheel 43. This, in turn, ensures better stress adjustment between the winding wheel 98 and the winding wheel 43. Besides preventing the cable from breaking due to stress, the distance between the winding wheel 98 and the winding wheel 43 can be used to adjust the amount of wire stored, thus adapting to a wider range of output speeds. The second winding assembly 3, as an optional accessory, is installed to generate a winding effect again. When the amount of wire stored changes again, the output position is adjusted by changing the installation position of the second winding assembly 3.

[0054] As for the detection component 2, it utilizes the cable clamping between the discharge wheel 33 and the pressure wheel 25 during cable delivery. The tension displacement sensor 24 and the rotation of the rotating plate 23 are used to determine if there are knots or cable breaks. Specifically, when a knotted section passes between the discharge wheel 33 and the pressure wheel 25, the rotating plate 23 will deflect more significantly, thus indicating a knot. If the cable is broken, it will not pass between the discharge wheel 33 and the pressure wheel 25, causing the rotating plate 23 to return to its original position. This method not only detects problems on the cable but also accurately identifies existing issues. By using the pressure wheel 25 to engage with the wheel body, the detection component 2 can be installed on the first winding assembly 4 or the flip adjustment assembly 9. This allows for cable delivery detection even without the optional second winding assembly 3. The first winding assembly 4 is also an optional accessory; when winding is no longer needed, the detection component 2 is installed on the flip rod 95, causing part of the pressure wheel 25 to engage with the winding wheel body 98 for cable delivery detection.

[0055] In a specific embodiment, such as Figure 2 The L-shaped rod 5 includes a horizontal rod body 51, threaded holes 52, and a vertical rod body 53. The horizontal rod body 51 is installed on the upper end of the control host 1, and several threaded holes 52 are opened on the upper side of the horizontal rod body 51. The vertical rod body 53 is installed at the rear end of the horizontal rod body 51, and a displacement groove is opened in the vertical rod body 53, which extends through the top of the vertical rod body 53. The rear end of the flip adjustment assembly 9 is drivenly connected to the vertical rod body 53. Figure 2 The diagram shows the installation of the triangular seat 91 using threaded holes 52. Multiple threaded holes 52 allow for different installation positions of the triangular seat 91, resulting in different driving directions and amplitudes of the cylinder 92. This adapts to cables requiring different stresses, allowing for greater distance between the winding wheel 98 and the winding wheel 43. Another method for connecting the triangular seat 91 involves creating a slide rail at the upper end of the horizontal rod 51, connecting the triangular seat 91 to a lead screw, and then connecting the lead screw to a motor. The rotation of the lead screw causes the triangular seat 91 to move along the slide rail, allowing the cylinder 92 to have more installation positions and thus a wider range of compatibility.

[0056] In a specific embodiment, such as Figures 3-4The flip adjustment assembly 9 includes a triangular seat 91, a cylinder 92, a flip seat 93, a drive shaft 94, a flip rod 95, a stop lever 96, a connecting shaft 97, a winding wheel body 98, a connector 99, and a transmission shaft 910. The flip seat 93 is installed at the top of the connecting rod 8, and the drive shaft 94 is installed inside the flip seat 93. The triangular seat 91 is screwed onto the horizontal rod 51, and a connecting shaft is installed at the top of the triangular seat 91. The bottom end of the cylinder 92 is flipped and connected to the connecting shaft. The transmission shaft 910 is driven and connected in the displacement groove. The top of the transmission shaft 910 is connected to the rear end of the flip rod 95, and the front end of the flip rod 95 is flipped and connected to the drive shaft 94. The connector 99 is installed at the bottom end of the flip rod 95, and the top of the cylinder 92 is connected to the connector 99. The stop lever 96 and the connecting shaft 97 are connected to the right side of the rear end of the flip rod 95. Several winding wheels 98 are sleeved on the connecting shaft 97. With the transmission shaft 910 configured to drive within the displacement groove, the rear end of the flipping rod 95 can only move vertically. However, since the other end of the flipping rod 95 is connected to the drive shaft 94, the cylinder 92 will generate a circular motion during its drive. This creates a conflict between the two motions. At this point, the triangular seat 91 is used to deflect the cylinder 92 along the triangular seat 91, allowing the rear end of the flipping rod 95 to move vertically without generating a circular motion. This allows for better adjustment of the distance between the winding wheel 43 and the winding wheel body 98, making it easier to adjust the stress and the amount of wire stored. The stop lever 96 is designed to cooperate with the winding wheel body 98, allowing the cable to enter the winding wheel body 98 more effectively and producing a certain leveling effect. The connecting shaft 97 is designed to allow the winding wheel body 98 to rotate, which also reduces cable loss during transport.

[0057] In a specific embodiment, such as Figures 5-6 The first winding assembly 4 includes a mounting block 41, a round rod 42, winding wheels 43 and a baffle 44. The mounting block 41 is installed at the rear end of the L-shaped rod 5. The round rod 42 is installed in the mounting block 41. Several winding wheels 43 are sleeved on the round rod 42. The baffle 44 is connected to the right end of the round rod 42. Mounting block 41 is used to mount round rod 42. The purpose of setting round rod 42 is the same as that of connecting shaft 97. It is used for winding cable through winding wheel 43 and winding wheel body 98, which can achieve the effect of storing wire. In addition to changing the distance, the effect of storing wire can also be achieved by increasing the number of winding wheels 43 and winding wheel body 98, or by adding a second winding assembly 3 to generate multi-stage winding, which can better achieve the effect of storing wire. The purpose of setting baffle 44 is twofold: one is for aesthetics, to cover the winding part, and the other is to prevent winding wheel 43 from falling off. The installation of winding wheel 43 or winding wheel body 98 is carried out by using limiting sleeve to lock winding wheel 43 or winding wheel body 98 on the shaft. This allows winding wheel 43 or winding wheel body 98 to rotate while preventing them from falling off.

[0058] In a specific embodiment, such as Figures 7-8 The second winding assembly 3 includes an extension plate 31, a mounting rod 32, a discharge wheel 33, a connecting block 34, a drive rod 35, and a baffle plate 36. The extension plates 31 are arranged in pairs and installed at the rear end of the L-shaped rod 5. The other end of the extension plate 31 is connected to the mounting rod 32. A detection component 2 is installed at the bottom of the mounting rod 32 and is located below the extension plate 31. The connecting block 34 is installed at the rear end of the mounting rod 32. The drive rod 35 is installed in the mounting rod 32. The discharge wheel 33 is sleeved on the drive rod 35 and is located at the right end of the connecting block 34. The right end of the drive rod 35 is connected to the baffle plate 36 and is located to the right of the discharge wheel 33. The winding structure of the second winding assembly 3 is basically the same as that of the first winding assembly 4. The difference between the second winding assembly 3 and the first winding assembly 4 is the addition of an extension plate 31 and a mounting rod 32. The extension plate 31 is used to install the mounting rod 32, and the mounting rod 32 is used to install the winding part in different places. Similarly, the extension plate 31 is used to install the entire second winding assembly 3 in different places. This setting method can change the amount of wire stored and adjust the wire output position. The second winding assembly 3 and the first winding assembly 4 are optional accessories. When winding is required, they can be installed independently. When winding is not required, the wire output angle can be adjusted directly by flipping the adjustment component 9, and the cable can be output normally.

[0059] In a specific embodiment, such as Figures 9-10The detection component 2 includes a fixed block 21, a rotating rod 22, a rotating plate 23, a tensile displacement sensor 24, a pressure roller 25, a mounting component 26, and a drive handle 27. The mounting component 26 is screwed onto the mounting rod 32. The fixed block 21 is installed at the front end of the mounting component 26. The rotating rod 22 is rotatably connected to the fixed block 21. The rotating plate 23 is installed at the right end of the rotating rod 22. The pressure roller 25 is installed at the right end of the rotating plate 23. A part of the pressure roller 25 is placed in the discharge wheel 33. The drive handle 27 is installed at the bottom front end of the rotating plate 23. The tensile displacement sensor 24 is connected to the rear end of the rotating plate 23. The detection component 2 is also an optional accessory and can be installed on the second winding component 3, the first winding component 4, or the flip adjustment component 9. The installation position can be customized; simply install the mounting piece 26 in a screw-in location. Then, when there is no cable, let the pressure roller 25 rest against the side of the winding or output wheel. Specifically, the cable passes between the pressure roller 25 and the wheel. When the cable passes through, the rotating plate 23 rotates, and one end of the tension displacement sensor 24 is equipped with a pull rope. The pull rope will... Fixed on the rotating rod 22, when the rotating rod 22 rotates with the rotating plate 23, the pull rope will stretch or contract, and this deformation signal will be transmitted to the tensile displacement sensor 24 to determine whether there is a break or knot in the cable. At the same time, a torsion spring is also provided on the rotating rod 22. After the detection component 2 is installed, the pressure roller 25 abuts against the wheel body, and the torsion spring should be in a compressed state. When the cable passes through, the rotation of the rotating plate 23 should cause the torsion spring to be compressed, and the torsion spring will produce a reset effect. The rotating plate 23 will be actively rotated by the drive handle 27.

[0060] In one specific embodiment, the detection mechanism 6 uses a laser sensor. The laser sensor illuminates a point on the cable winding assembly 7, where a cable passes through, and uses this method to determine whether the cable is being delivered normally.

[0061] In one specific embodiment, the top of the control host 1 is provided with several threaded holes. These threaded holes are used to change the mounting position of various components. Figure 1 The image shown represents the rear view, but by utilizing threaded holes, cable exit can also be achieved from both the left and right sides.

[0062] Although the present invention has been described in detail above with general descriptions and specific embodiments, some modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, all such modifications or improvements made without departing from the spirit of the present invention fall within the scope of protection claimed by the present invention.

Claims

1. A cable-out device with adjustable detection effect and cable-out detection position, characterized in that, include: The control host (1) has a rectangular hole on its top surface, and a wire straightening assembly (7) is provided at the rear end of the rectangular hole; A connecting rod (8) is installed on the top of the control host (1), and the connecting rod (8) is located on the left side of the rectangular hole; An L-shaped rod (5) is installed on the top of the control host (1), and the L-shaped rod (5) is located behind the cable straightening assembly (7); A flip adjustment assembly (9) is mounted on the connecting rod (8) at one end, and the flip adjustment assembly (9) is connected to the L-shaped rod (5); The first winding assembly (4) is installed at the right end of the L-shaped rod (5), and the second winding assembly (3) is installed at the rear end of the L-shaped rod (5); The detection component (2) is installed at the bottom of the second winding component (3); The testing mechanism (6) is installed at the rear end of the connecting rod (8).

2. The cable-out device with adjustable detection effect and cable-out detection position as described in claim 1, characterized in that, The L-shaped rod (5) includes: A horizontal rod (51) is installed on the upper end of the control host (1), and several threaded holes (52) are opened on the upper side of the horizontal rod (51); A vertical rod (53) is installed at the rear end of the horizontal rod (51). A displacement groove is opened in the vertical rod (53) and the displacement groove passes through the top of the vertical rod (53). The rear end of the flip adjustment assembly (9) is drivenly connected in the vertical rod (53).

3. The cable-out device with adjustable detection effect and cable-out detection position as described in claim 2, characterized in that, The flip adjustment component (9) includes: A flip seat (93) is installed at the top of the connecting rod (8), and a drive shaft (94) is installed inside the flip seat (93); A triangular seat (91) is screwed onto the horizontal rod (51). A connecting shaft is installed on the top of the triangular seat (91), and the bottom end of the cylinder (92) is flipped and connected to the connecting shaft. A drive shaft (910) is connected in the displacement groove. The top of the drive shaft (910) is connected to the rear end of the flipping rod (95), and the front end of the flipping rod (95) is flipped and connected to the drive shaft (94). A connector (99) is installed at the bottom end of the flipping rod (95), and the top of the cylinder (92) is connected to the connector (99); The rear right side of the flipping rod (95) is connected to a stop bar (96) and a connecting shaft (97), and a number of winding wheels (98) are sleeved on the connecting shaft (97).

4. The cable-out device with adjustable detection effect and cable-out detection position as described in claim 1, characterized in that, The first winding assembly (4) includes: Mounting block (41) is installed at the rear end of the L-shaped rod (5), and a round rod (42) is installed in the mounting block (41); Several winding wheels (43) are sleeved on the round rod (42), and a baffle (44) is connected to the right end of the round rod (42).

5. The cable-out device with adjustable detection effect and cable-out detection position as described in claim 1, characterized in that, The second winding assembly (3) includes: An extension plate (31) is installed in pairs at the rear end of the L-shaped rod (5). The other end of the extension plate (31) is connected to an installation rod (32). The detection component (2) is installed at the bottom of the installation rod (32). The detection component (2) is located below the extension plate (31). A connecting block (34) is installed at the rear end of the mounting rod (32), and a drive rod (35) is installed in the mounting rod (32); The discharge wheel (33) is sleeved on the drive rod (35). The discharge wheel (33) is located at the right end of the connecting block (34). The right end of the drive rod (35) is connected to a baffle plate (36). The baffle plate (36) is located on the right side of the discharge wheel (33).

6. The cable-out device with adjustable detection effect and cable-out detection position as described in claim 5, characterized in that, The detection component (2) includes: The mounting part (26) is screwed onto the mounting rod (32). A fixing block (21) is installed at the front end of the mounting part (26), and a rotating rod (22) is rotatably connected in the fixing block (21). A rotating plate (23) is installed at the right end of the rotating rod (22). A pressure roller (25) is installed at the right end of the rotating plate (23). A portion of the pressure roller (25) is placed in the discharge roller (33). A drive handle (27) is installed at the bottom of the front end of the rotating plate (23). A tensile displacement sensor (24) is connected to the rear end of the rotating plate (23).

7. The cable-out device with detection effect and adjustable cable-out detection position as described in claim 1, characterized in that, The detection mechanism (6) uses a laser sensor.

8. The cable-out device with adjustable detection effect and cable-out detection position as described in claim 1, characterized in that, The top of the control host (1) is provided with several threaded holes.