Crosslinked cable eccentricity adjustment process and crosslinked production line thereof

By setting marking notches in cable production and using an X-ray transmission instrument, dynamically solving trend derivatives for instant feedback adjustment, the problem of complex and costly eccentricity scanning in existing cable production is solved, achieving low-cost and efficient cable production line adjustment and improving product yield.

CN119207908BActive Publication Date: 2025-10-10FAR EAST SUBMARINE CABLE CO LTD
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Patent Information

Application Number
CN202411386102.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-30
Publication Date
2025-10-10
Estimated Expiration
2044-09-30

AI Technical Summary

Technical Problem

In the existing cable production process, the eccentricity scanning process is long and requires expensive imported cross-section scanning equipment. It is also unable to timely determine the eccentricity of each layer of cable, resulting in high production costs, complex adjustments, and affected product yield.

Method used

By setting the number of cable extrusion layers and marking the notch, using an X-ray transmission instrument to measure the material's linear attenuation coefficient, collecting thickness parameters, and dynamically solving trend derivatives for instant feedback adjustment, data collection is simplified, equipment dependence is reduced, and adjustment sensitivity is improved.

Benefits of technology

It achieves low-cost, instant feedback adjustment, accurately collects thickness data of each layer of the cable, improves product yield, shortens the judgment process, and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of crosslinking cable eccentricity adjustment process and crosslinking production line thereof, and its adjustment process includes the following steps: S1 sets the layer number of cable extrusion;S2: set mark aperture;S3: sample material and carry out layer number serial number calibration;S4: carry out multilayer co-extrusion and move crude product;S5: collect thickness parameter set 1;S6: vulcanization and cooling;S7: collect thickness parameter set 2;S8: carry out thickness solution, and x i store standard thickness parameter;S9: the thickness x i of each layer is dynamically solved and time parameter derivation is carried out to obtain trend derivative d1 and trend derivative d2;S10: determine trend derivative d1 and trend derivative d2, carry out feedback adjustment.Using the process, the thickness data of each layer can be accurately collected and the deformation reason of the extruded layer can be determined, the data collection method is simpler, the collection cost is lower, the hysteresis of parameter adjustment can be effectively overcome, and the product yield can be greatly improved.
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Description

Technical Field

[0001] The invention relates to a cross-linked cable eccentricity adjustment process and a cross-linked production line thereof, belonging to the technical field of cable production. Background Art

[0002] Cables are important infrastructure in modern industry and daily life. They are widely used in power transmission, communication, data transmission, control signal transmission and other fields. Cable eccentricity is an important indicator that affects important performance of cables such as impedance, capacitance imbalance performance, electromagnetic interference performance, stress, and thermal stability. In the cable production process, it is generally necessary to extrude the cross-linked polyethylene insulation shielding layer onto the surface of the conductor through heating of the machine head. After the cable passes through the vulcanizing tube, neutral tube and cooling tube, due to factors such as pipeline temperature, pulling speed, cooling temperature, cable position (tension), etc., the eccentricity of the cable is still in an unknown state. Before winding the cable, it is generally necessary to scan and inspect the cable cross section, and then make a judgment based on the scanning results, and adjust the production process according to the scanning results.

[0003] In the existing production process, the eccentricity scanning process is generally at the end of the production link and serves the purpose of finished product inspection. This process adjustment process is relatively long and requires the use of specialized imported cross-sectional scanning equipment. This equipment is generally expensive, and due to problems with factory settings, a separate adjustment system needs to be configured during the automated adjustment process. The adjustment process is long, the production line configuration cost is extremely high, and the technical level of production personnel is also required to be relatively high.

[0004] Furthermore, in the cable production process, it is often necessary to extrude multiple adhesive layers. The above-mentioned cross-sectional scanning device can only scan the cross-sectional shape. In the cable co-extrusion process, due to the different performance of each layer, complex deformations such as inter-layer torsion and inconsistent deformation of each layer will occur during the processing process. These problems make it impossible for simple cross-sectional scanning to timely determine the specific eccentricity of each layer of the cable, which brings greater difficulties to actual production. Summary of the Invention

[0005] The purpose of the present invention is to provide a cross-linked cable eccentricity adjustment process and a cross-linked cable production line thereof to solve the above technical problems.

[0006] The technical solution for achieving the purpose of the present invention is: a cross-linked cable eccentricity adjustment process for adjusting the extrusion speed of a cross-linked extruder and the cooling parameters of a cooling pipe, comprising the following steps:

[0007] S1: Set the number of cable extrusion layers;

[0008] S2: Setting the marking positions of different extrusion layers and setting marking notches on the outermost extrusion die so that the extrusion layers have corresponding marking lines;

[0009] S3: Sample different extrusion layer materials, use X-ray transmission instrument to measure the material linear attenuation coefficient and calibrate the layer number i;

[0010] S4: Multi-layer co-extrusion is performed to move the conductor-containing rough product along the production line;

[0011] S5: continuously collecting first thickness data at the cable extrusion outlet to obtain thickness parameter set 1;

[0012] S6: The crude product passes through the vulcanizing pipe, neutral pipe and cooling pipe in sequence;

[0013] S7: continuously collecting second thickness data at the cooling pipe outlet to obtain thickness parameter set 2;

[0014] S8: Solve the thickness according to thickness parameter set 1 and thickness parameter set 2 to obtain the thickness x of each layer i , and x i Stored as standard thickness parameters;

[0015] S9: According to parameter set 1 and thickness parameter set 2, x i Perform dynamic solution and calculate x i Derivative the time parameter to obtain trend derivative d1 and trend derivative d2 respectively;

[0016] S10: Determine the values ​​of the trend derivative d1 and the trend derivative d2, and return the determined values ​​to the extrusion cross-linking extruder and the cooling pipe control device for reverse adjustment.

[0017] The above-mentioned cross-linked cable eccentricity adjustment process can accurately collect the thickness data of each extruded layer and determine the deformation cause of the extruded layer. Compared with the existing process, its data collection method is simpler, it does not require the use of imported cross-sectional scanners, and the collection cost is lower. It can also perform instant feedback adjustment at key deformation nodes, which can effectively overcome the lag of parameter adjustment and greatly improve product yield.

[0018] Further or optionally, in step S2, the inner layer of the extrusion die is a circle concentric with the conductor, the marking notch is an arc attached to the circumference, there are two arcs, and the line connecting the midpoints of the two arcs relative to the center of the conductor is perpendicular to each other.

[0019] The vertical design used in the above-mentioned marking notches can effectively expand the parameter differences, thereby improving the accuracy of data collection, and separately decompose each layer of data.

[0020] Further or optionally, the collection method of the thickness parameter set 1 and the thickness parameter set 2 in steps S5 and S7 is two-point penetration sampling.

[0021] And solve;

[0022] in:

[0023] i is the number of extrusion layers;

[0024] I is the X-ray intensity after penetration;

[0025] I0 is the initial X-ray intensity;

[0026] μ i is the linear attenuation coefficient of the ith material;

[0027] x i is the thickness of the i-th material;

[0028] Among them, the definition of two-point penetration sampling is: align the X-ray transmission instrument with the marking line corresponding to the extrusion of the marking notch, and perform continuous sampling along the marking line.

[0029] The above sampling method can be used to sample the thickness data of each layer separately; the significance of sampling along the marking line is that when deflection occurs, due to the inconsistency of the thickness of the extruded layer corresponding to each part of the arc of the outer marking line, the thickness parameters obtained by sampling will change dramatically, thereby effectively amplifying the sensitivity of deflection data acquisition.

[0030] Further or optionally, the determination method in step S9 is:

[0031] When the trend derivative d1 and the trend derivative d2 are both constant at 0, no adjustment is performed;

[0032] When the trend derivative d1 is not equal to 0, the thickness parameter set 1 is retrieved, the trend of the data of the thickness parameter set 1 is determined and reverse adjustment is performed;

[0033] When the trend derivative d2 is not equal to 0, the thickness parameter set 1 is called, the trend of the data of the thickness parameter set 2 is determined and reverse adjustment is performed;

[0034] Compare the trend derivative d1 and the trend derivative d2. When the trend derivative d1 = 0 but d1 ≠ 0, it is determined that the extrusion has deflected at least in the middle section of the cooling process, and the relevant parameters affecting the deflection are adjusted.

[0035] The above-mentioned determination method does not involve the cable cross-section modeling process, and the number of key parameters is small, which can effectively shorten the determination process and thus improve the sensitivity of parameter adjustment, accurately locate the cause of the fault, and thus improve the accuracy of feedback adjustment.

[0036] Further or optionally, in order to obtain accurate deflection parameters, the method for determining the data trend derivative d1 and the trend derivative d2 of thickness parameter set 1 and thickness parameter set 2 is:

[0037] Compare 3 to 5 consecutive sampling point data x i 'Size, when xi 'With standard thickness parameter x i If there is any inconsistency, scan the cable circumferentially and collect x i 'Corresponding to the scanning angle, the x at different time points i ' and angle data are incorrect. When the angle does not change, it is determined that the thickness is uneven and the thickness affecting parameters are adjusted; when the angle deflects, the deflection affecting parameters are adjusted.

[0038] In order to improve the yield rate of cross-linked cables, the present application also proposes a cross-linked cable production line, which adopts any of the above-mentioned eccentricity adjustment processes, and specifically includes a cross-linking extruder, a first X-ray transilluminator, a vulcanizing tube, a neutral tube, a cooling tube, a second X-ray transilluminator, a cable winding machine, and a feedback adjustment system for controlling the aforementioned equipment.

[0039] Further or optionally, in order to reduce the energy consumption of the cable winding machine, in the above-mentioned cross-linked cable production line, the cross-linking extruder, the first X-ray transilluminator, the vulcanizing tube, the neutral tube, the cooling tube, and the second X-ray transilluminator are laid on one platform, and the cable winding machine is laid on another platform. There is a height difference between the two and the cable winding machine is lower than the second X-ray transilluminator, and the time between the two is ramped.

[0040] The above structure can be referred to as a catenary structure, which can effectively utilize the gravity of the cable itself and reduce the energy consumption of the cable winding machine.

[0041] By adopting the above technical solution, the present invention has the following beneficial effects:

[0042] (1) The cross-linked cable eccentricity adjustment process of the present application can accurately collect the thickness data of each extruded layer and determine the deformation cause of the extruded layer. Compared with the existing process, its data collection method is simpler, it does not require the use of imported cross-sectional scanners, the collection cost is lower, and it can perform instant feedback adjustment at key deformation nodes, which can effectively overcome the lag of parameter adjustment and greatly improve product yield.

[0043] (2) The vertical design used in the marking notch design of this application can effectively expand the parameter difference and thus improve the accuracy of data collection.

[0044] (3) The sampling method of the present application can sample the thickness data of each layer separately; the significance of sampling along the marking line is that when deflection occurs, since the thickness of the extruded layer corresponding to each part of the arc of the marking line is inconsistent, the thickness parameter obtained by sampling will change dramatically, thereby effectively amplifying the sensitivity of the deflection data acquisition.

[0045] (4) The key parameter determination method of the present application does not involve the cable cross-section modeling process. The number of key parameters is small, which can effectively shorten the determination process and thus improve the sensitivity of parameter adjustment, accurately locate the cause of the fault and thus improve the accuracy of feedback adjustment.

[0046] (5) This application can obtain accurate deflection parameters under the premise of compressing the number of samples.

[0047] (6) The present application also provides a cross-linked cable production line that can perform rapid feedback adjustment and significantly improve the yield rate. BRIEF DESCRIPTION OF THE DRAWINGS

[0048] In order to make the content of the present invention more clearly understood, the present invention is further described in detail below based on specific embodiments and in conjunction with the accompanying drawings, wherein

[0049] Figure 1 This is a flow chart of the adjustment method of the present invention.

[0050] Figure 2 Schematic diagram of the device connection relationship of the present invention. DETAILED DESCRIPTION

[0051] In order to better understand the above technical solution, the above technical solution will be described in detail below with reference to the accompanying drawings and specific implementation methods.

[0052] In order to make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments.

[0053] All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative work shall fall within the scope of protection of the present invention.

[0054] (Example 1)

[0055] A cross-linked cable eccentricity adjustment process according to this embodiment, wherein the specific adjustment method is as follows: Figure 1 As shown, the specific steps include:

[0056] S1: Set the number of cable extrusion layers;

[0057] S2: Setting the marking positions of different extrusion layers and setting marking notches on the outermost extrusion die so that the extrusion layers have corresponding marking lines;

[0058] S3: Sample different extrusion layer materials, use X-ray transmission instrument to measure the material linear attenuation coefficient and calibrate the layer number i;

[0059] S4: Multi-layer co-extrusion is performed to move the conductor-containing rough product along the production line;

[0060] S5: continuously collecting first thickness data at the cable extrusion outlet to obtain thickness parameter set 1;

[0061] S6: The crude product passes through the vulcanizing pipe, neutral pipe and cooling pipe in sequence;

[0062] S7: continuously collecting second thickness data at the cooling pipe outlet to obtain thickness parameter set 2;

[0063] S8: Solve the thickness according to thickness parameter set 1 and thickness parameter set 2 to obtain the thickness x of each layer i , and x i Stored as standard thickness parameters;

[0064] S9: According to parameter set 1 and thickness parameter set 2, x i Perform dynamic solution and calculate x i Derivative the time parameter to obtain trend derivative d1 and trend derivative d2 respectively;

[0065] S10: Determine the values ​​of the trend derivative d1 and the trend derivative d2, and return the determined values ​​to the extrusion cross-linking extruder and the cooling pipe control device for reverse adjustment.

[0066] In step S2, the inner layer of the extrusion die is a circle concentric with the conductor, and the marking notch is an arc attached to the circumference. There are two arcs, and the line connecting the midpoints of the two arcs relative to the center of the conductor is perpendicular to each other.

[0067] The collection method of thickness parameter set 1 and thickness parameter set 2 in steps S5 and S7 is two-point penetration sampling.

[0068] And solve;

[0069] in:

[0070] i is the number of extrusion layers;

[0071] I is the X-ray intensity after penetration;

[0072] I0 is the initial X-ray intensity;

[0073] μ i is the linear attenuation coefficient of the ith material;

[0074] x i is the thickness of the i-th material;

[0075] Among them, the definition of two-point penetration sampling is: align the X-ray transmission instrument with the marking line corresponding to the extrusion of the marking notch, and perform continuous sampling along the marking line.

[0076] The determination method in step S9 is:

[0077] When the trend derivative d1 and the trend derivative d2 are both constant at 0, no adjustment is performed;

[0078] When the trend derivative d1 is not equal to 0, the thickness parameter set 1 is retrieved, the trend of the data of the thickness parameter set 1 is determined and reverse adjustment is performed;

[0079] When the trend derivative d2 is not equal to 0, the thickness parameter set 1 is called up, the trend of the data of the thickness parameter set 2 is determined and reverse adjustment is performed;

[0080] Compare the trend derivative d1 and the trend derivative d2. When the trend derivative d1 = 0 but d1 ≠ 0, it is determined that deflection occurs in at least the middle section of the extrusion cooling process, and the relevant parameters affecting the deflection are adjusted.

[0081] The method for determining the data trend derivative d1 and trend derivative d2 of thickness parameter set 1 and thickness parameter set 2 is:

[0082] Compare 3 to 5 consecutive sampling point data x i 'Size, when x i 'With standard thickness parameter x i If there is any inconsistency, scan the cable circumferentially and collect x i 'Corresponding to the scanning angle, the x at different time points i ' and angle data are incorrect. When the angle does not change, it is determined that the thickness is uneven and the thickness affecting parameters are adjusted; when the angle deflects, the deflection affecting parameters are adjusted.

[0083] A cross-linked cable production line adopts a catenary structure and the above-mentioned eccentricity adjustment process, wherein the cross-linked extruder, the first X-ray transilluminator, the vulcanizing tube, the neutral tube, the cooling tube, the second X-ray transilluminator, the cable winding machine, and the feedback adjustment system for controlling the above-mentioned devices are connected in sequence. The specific device connection method is as follows: Figure 2 shown.

[0084] By adopting the above-mentioned cross-linked cable eccentricity adjustment process, the product yield can be increased from 90% to 97%.

[0085] It should be understood that the present invention is described by way of certain embodiments, and it will be appreciated by those skilled in the art that various changes or equivalent substitutions may be made to these features and embodiments without departing from the spirit and scope of the present invention. In addition, under the teachings of the present invention, these features and embodiments may be modified to adapt to specific circumstances and materials without departing from the spirit and scope of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application are intended to be protected by the present invention.

Claims

1. A cross-linked cable eccentricity adjustment process for adjusting the extrusion speed of a cross-linked extruder and the cooling parameters of a cooling pipe, characterized by: The steps include: S1: Set the number of cable extrusion layers; S2: Setting the marking positions of different extrusion layers and setting marking notches on the outermost extrusion die so that the extrusion layers have corresponding marking lines; S3: Sample different extrusion layer materials, use X-ray transmission instrument to measure the material linear attenuation coefficient and calibrate the layer number i; S4: Multi-layer co-extrusion is performed to move the conductor-containing rough product along the production line; S5: continuously collecting first thickness data at the cable extrusion outlet to obtain thickness parameter set 1; S6: The crude product passes through the vulcanizing pipe, neutral pipe and cooling pipe in sequence; S7: continuously collecting second thickness data at the cooling pipe outlet to obtain thickness parameter set 2; S8: Solve the thickness according to thickness parameter set 1 and thickness parameter set 2 to obtain the thickness x of each layer i , and x i Stored as standard thickness parameters; S9: According to parameter set 1 and thickness parameter set 2, x i Perform dynamic solution and calculate x i Derivative the time parameter to obtain trend derivative d1 and trend derivative d2 respectively; S10: Determine the values ​​of the trend derivative d1 and the trend derivative d2, and return the determined values ​​to the extrusion cross-linking extruder and the cooling pipe control device for reverse adjustment.

2. The cross-linked cable eccentricity adjustment process according to claim 1, characterized in that: In step S2, the inner layer of the extrusion die is a circle concentric with the conductor, and the marking notch is an arc attached to the circumference. There are two arcs, and the line connecting the midpoints of the two arcs relative to the center of the conductor is perpendicular to each other.

3. The cross-linked cable eccentricity adjustment process according to claim 1, characterized in that: The collection method of thickness parameter set 1 and thickness parameter set 2 in steps S5 and S7 is two-point penetration sampling. I i =I0e - (+μ i x i +μ i x i ) and solve; in: i is the number of extrusion layers; I is the X-ray intensity after penetration; I0 is the initial X-ray intensity; μ i is the linear attenuation coefficient of the i-th material; x i is the thickness of the i-th material; Among them, the definition of two-point penetration sampling is: align the X-ray transmission instrument with the marking line corresponding to the extrusion of the marking notch, and perform continuous sampling along the marking line.

4. The cross-linked cable eccentricity adjustment process according to claim 1, characterized in that: The determination method in step S9 is: When the trend derivative d1 and the trend derivative d2 are both constant at 0, no adjustment is performed; When the trend derivative d1 is not equal to 0, the thickness parameter set 1 is retrieved, the trend of the data of the thickness parameter set 1 is determined and reverse adjustment is performed; When the trend derivative d2 is not equal to 0, the thickness parameter set 1 is called, the trend of the data of the thickness parameter set 2 is determined and reverse adjustment is performed; Compare the trend derivative d1 and the trend derivative d2. When the trend derivative d1 = 0 but d1 ≠ 0, it is determined that the extrusion has deflected at least in the middle section of the cooling process, and the relevant parameters affecting the deflection are adjusted.

5. A cross-linked cable eccentricity adjustment process according to claim 4, characterized in that The method for determining the data trend derivative d1 and trend derivative d2 of thickness parameter set 1 and thickness parameter set 2 is: Compare 3 to 5 consecutive sampling point data x i 'Size, when x i 'With standard thickness parameter x i If there is any inconsistency, scan the cable circumferentially and collect x i 'Corresponding to the scanning angle, the x at different time points i ' and angle data are incorrect. When the angle does not change, it is determined that the thickness is uneven and the thickness affecting parameters are adjusted; when the angle deflects, the deflection affecting parameters are adjusted.

6. A cross-linked cable production line, characterized by: It adopts the eccentricity adjustment process described in any one of claims 1 to 5, and specifically comprises a cross-linking extruder, a first X-ray transilluminator, a vulcanizing tube, a neutral tube, a cooling tube, a second X-ray transilluminator, a cable winding machine, and a feedback adjustment system for controlling the aforementioned devices.

7. A cross-linked cable production line according to claim 6, characterized in that: The cross-linking extruder, the first X-ray transilluminator, the vulcanizing tube, the neutral tube, the cooling tube and the second X-ray transilluminator are laid on one platform, and the cable winder is laid on another platform. There is a height difference between the two and the cable winder is lower than the second X-ray transilluminator. The time between the two is sloped.

Citation Information

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