CN112782526A - Method for screening ablation hidden danger cable sections of buffer layer based on inner surface area of corrugated sheath - Google Patents

Method for screening ablation hidden danger cable sections of buffer layer based on inner surface area of corrugated sheath Download PDF

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CN112782526A
CN112782526A CN202011579314.3A CN202011579314A CN112782526A CN 112782526 A CN112782526 A CN 112782526A CN 202011579314 A CN202011579314 A CN 202011579314A CN 112782526 A CN112782526 A CN 112782526A
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cable
surface area
buffer layer
sheath
hidden danger
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CN112782526B (en
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房晟辰
李旭
孟峥峥
朱明正
唐庆华
韩涛
王浩鸣
李维博
于洋
周凤争
宋鹏先
王晓光
杨磊
陈刚
邢向上
冯军基
郭勇
李国�
徐天石
王洋
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State Grid Corp of China SGCC
State Grid Tianjin Electric Power Co Ltd
Electric Power Research Institute of State Grid Tianjin Electric Power Co Ltd
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State Grid Corp of China SGCC
State Grid Tianjin Electric Power Co Ltd
Electric Power Research Institute of State Grid Tianjin Electric Power Co Ltd
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    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
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Abstract

The invention relates to a method for screening cable sections with potential ablation hazards of buffer layers based on the inner surface area of a corrugated sheath, which is technically characterized by comprising the following steps of: according to the inner side surface area of the corrugated sheath in the single corrugated pitch, the inner side surface area of the corrugated sheath of the high-voltage power cable is approximately calculated; according to the surface area of the inner side of the wrinkle sheath of the high-voltage power cable, a screening threshold value of the potential ablation hazard cable section of the buffer layer is obtained by calculating the contact ratio of the fault cable section, and the potential ablation hazard cable section of the buffer layer is screened through the screening threshold value of the potential ablation hazard cable section of the buffer layer. The cable section screening device is reasonable in design, achieves the cable section screening function of ablation hidden danger of the high-voltage cable buffer layer according to the inner side surface area of the high-voltage power cable corrugated sheath, can be used for performance evaluation under the condition that the high-voltage power cable corrugated sheath is matched with the buffer layer in size, gives a list of ablation hidden danger cable sections of the buffer layer of cables in stock, and provides reference for operation and maintenance of the high-voltage power cable.

Description

Method for screening ablation hidden danger cable sections of buffer layer based on inner surface area of corrugated sheath
Technical Field
The invention belongs to the technical field of high voltage and insulation, and particularly relates to a method for screening ablation hidden danger cable sections of a buffer layer based on the inner surface area of a corrugated sheath.
Background
In recent years, the number of faults caused by ablation of a buffer layer of a high-voltage power cable is gradually increased, and the ablation hidden danger of the buffer layer becomes one of important hidden dangers threatening the safety of a power grid. At present, a screening method for a cable section with hidden danger of buffer layer ablation of a high-voltage power cable is still very primary, and a method for summarizing a cable supplier list with faults of the type and listing other cables which are not faulty in the list as hidden danger cables is generally adopted. This approach usually results in a number of high voltage power cables from several suppliers requiring technical modification or replacement, but other supplier products are completely non-hazardous. The screening method does not take into account the technical information of specific cables, on one hand, the hidden dangers of cable products of screened supplier lists are easily overestimated, and on the other hand, the risks of cable products of other suppliers are easily ignored. Therefore, a method for screening ablation risks by combining cable information needs to be developed.
In general, the ablation of a water-blocking buffer layer is generally accompanied by the following two phenomena: (1) the water-blocking buffer layer is affected with damp; (2) the corrugated sheath, buffer layer and insulation shield material are relatively weak in electrical connection. The former can be prevented by enhancing management and control in the cable production stage and the construction stage. The latter is still difficult due to the short time to find a replacement for the combination corrugated aluminum sheath-water-blocking buffer-insulation shielding material. Therefore, on the premise that materials cannot be changed, under the condition that the buffer tape is tightly wrapped on the insulation shielding layer, the contact area between the corrugated sheath and the buffer layer becomes key information for determining the electrical connection between the corrugated sheath and the insulation shielding layer, and a method for screening the ablation hidden danger of the buffer layer can be developed according to the key information.
Neglecting the influence caused by the bending of the cable, the method for intuitively estimating the contact area (hereinafter referred to as the contact area) between the corrugated sheath and the buffer layer is to take the cylindrical area formed by the circle which is coated on the outer side of the buffer layer on the cable and is formed along the axial direction of the cable or the cylindrical area formed by the circle at the position of the wave trough on the inner side of the corrugated sheath and is formed along the axial direction of the cable as the estimated value of the contact area. The premise of the method is that the corrugated sheath is completely and tightly contacted with the buffer layer, and the method is not in accordance with the actual engineering and brings great errors when the electrical connection condition is analyzed. Therefore, the contact area, a key technical parameter, still lacks an effective calculation means, and the solution of the problem mainly has the following challenges:
(1) power cable suppliers commonly use metal corrugated production lines for corrugated sheath production. The technical parameters of the sheath wrinkles are controlled through two production parameters of the wrinkle pitch and the wrinkle depth. This approach does not directly determine the shape parameters of smooth wrinkles typical of the radius of curvature. In addition, the contact with the buffer layer in the axial direction of the cable is generally discontinuous due to the presence of peaks and valleys in the corrugated jacket. These problems present difficulties in mathematical modeling and calculation of the contact area of the corrugated sheath with the cushioning layer.
(2) Currently, the corrugated sheaths and cushioning layers still lack the corresponding standard constraints in terms of dimensional fit. Under the condition of comprehensively considering the requirements of the mechanical strength, the axial water resistance and other properties of the cable, different power cable suppliers adopt different technical schemes on the problem of whether the diameter of the 'wave trough' on the inner side of the corrugated sheath is larger than the diameter of the outer side of the cable containing the buffer layer. Thus, under the action of gravity, the inside of the corrugated sheath above the cable of some suppliers does not come into effective contact with the buffer layer, as shown in fig. 1; the inside of the corrugated sheath over a portion of the supplier's cable is in operative contact with the buffer layer as shown in fig. 2. Clearly, a calculation method that can take both cases into account is needed.
(3) Early cables lack information such as factory test reports, so that basic data of the cables are incomplete, and sufficient information is difficult to provide for calculating the contact area. Therefore, the calculation method of the contact area between the corrugated sheath and the buffer layer needs to have the capability of accessing measured data so as to deal with the situation of insufficient cable information.
How to calculate the surface area of the inner side of the corrugated sheath of the high-voltage power cable and quickly screen the cable section with the ablation hidden danger of the buffer layer of the high-voltage power cable is a problem which needs to be solved urgently at present.
Disclosure of Invention
The invention aims to overcome the defects of the prior art and provides a reasonable-design, rapid and accurate screening method for cable sections with ablation hidden troubles of buffer layers based on the inner surface area of a corrugated sheath.
The technical problem to be solved by the invention is realized by adopting the following technical scheme:
a method for screening a cable section with ablation hidden danger of a buffer layer based on the inner surface area of a corrugated sheath comprises the following steps:
step 1, approximately calculating the inner side surface area of a corrugated sheath of a high-voltage power cable according to the inner side surface area of the corrugated sheath in a single corrugated pitch;
and 2, according to the surface area of the inner side of the wrinkle sheath of the high-voltage power cable, calculating the contact ratio of the fault cable section to obtain a screening threshold of the ablation hidden danger cable section of the buffer layer, and screening the ablation hidden danger cable section of the buffer layer through the screening threshold of the ablation hidden danger cable section of the buffer layer.
Moreover, the specific implementation method of the step 1 is as follows:
step 1.1, according to a cable factory test report or an actual measurement result, arranging to obtain the following data: length d of cable segmentcableNominal value, inside radius d of corrugated sheathOANominal value, wrinkle pitch dlenNominal value, wrinkle depth ddepA nominal value;
step 1.2, determining the selected interpolation method to obtain an interpolation base point rhokK is 1, r, r is the number of interpolation data points required by the interpolation method;
step 1.3, for all k 1.., r, on the same cable type and batch as provided by the cable or supplier of interest, interpolation of the base points ρ, in different wrinkleskMeasuring the Z-direction coordinate of the inner side of the wrinkle at multiple points at the position, and averaging to obtain the coordinate (rho) of the interpolated data pointk,0,zk);
Step 1.4, interpolation data point (rho)k,0,zk) Performing interpolation calculation on k which is 1, a, r to obtain an interpolation function expression f (rho);
step 1.5, to the surface area S of the inside of the corrugated sheath of the formulatotal-pitSimplifying the integration, then calculating by using a numerical integration method to obtain a result, and calculating the inner surface area of the wrinkle sheath:
Figure BDA0002864407050000021
moreover, the method for obtaining the screening threshold of the cable segment with the ablation hidden danger of the buffer layer by calculating the contact ratio of the fault cable segment in the step 2 comprises the following steps:
(1) for a fault cable segment set { l under a specified voltage leveli}i=1,...,nArranging factory cable data information, arranging data required by the calculation method of the contact area and the surface area of the inner side of the corrugated sheath, and entering the step (2) if the data is insufficient; otherwise, entering the step (3);
(2) for all fault cable sections with insufficient data, actually testing the cable sections intercepted during fault processing, and supplementing the data required by the calculation method;
(3) for all i ═ 1.. times, n, the total contact area was calculated, yielding Stotal(li);
(4) For all i ═ 1.. times, n, the wrinkle sheath inside surface area was calculated, yielding Stotal-pit(li);
(5) Calculation of contact ratio according to the following formula gives w (l)i);
Figure BDA0002864407050000031
(6) The summary calculation obtains a fault cable section contact ratio set w (l)i)}i=1,...,nAnd calculating a screening threshold t of the cable section with the potential ablation hazard of the buffer layer under the voltage level according to the following formula:
Figure BDA0002864407050000032
moreover, the method for screening the cable section with the ablation hidden danger of the buffer layer in the step 2 comprises the following steps:
(1) to and { li}i=1,...,nCable segment set { q ] to be screened at same voltage level}j=1,...,mArranging factory cable data information, keeping the same calculation method of the contact area and the inner side surface area of the wrinkle sheath as the screening threshold calculation process, collecting data required by the calculation method of the contact area and the inner side surface area of the wrinkle sheath, and entering the step (2) if the data are insufficient; otherwise, entering the step (3);
(2) for all the cable segments to be screened with insufficient data, actually testing the same-model same-batch cable segments, and supplementing the data required by the calculation method;
(3) for all j ═ 1.. times, m, the total contact area was calculated, yielding Stotal(qj);
(4) For all j ═ 1.. times, m, the wrinkle sheath inside surface area was calculated, yielding Stotal-pit(qj);
(5) Calculation of contact ratio according to the following formula gives w (q)j);
Figure BDA0002864407050000033
(6) The contact ratio set { w (q) of the cable segments to be screened is obtained through summarizing and calculating)}j=1,...,mFor all j ═ 1.. times, m, the following determinations were made: if w (q)j) When t is less than or equal to t, q is addedjAdding the potential hazards into a hidden danger list, otherwise, adding q into the hidden danger listjExcluded from the hidden danger list;
(7) and (5) sorting and outputting the hidden danger list, and screening the cable section with the ablation hidden danger of the cable buffer layer.
The invention has the advantages and positive effects that:
the method is reasonable in design, the surface area of the inner side of the corrugated sheath of the high-voltage power cable is approximately calculated through the surface area of the inner side of the corrugated sheath in a single corrugated pitch, the screening threshold value of the ablation hidden danger cable section of the buffer layer of the high-voltage power cable is obtained through calculating the contact ratio of the fault cable section, the ablation hidden danger cable section of the buffer layer of the high-voltage power cable is screened according to the screening threshold value, the method can be used for evaluating the performance of the high-voltage power cable under the condition that the corrugated sheath and the buffer layer are matched in size, the list of the ablation hidden danger cable.
Drawings
FIG. 1 is a schematic view of a condition of no contact between the corrugated sheath and the buffer layer over the cable;
FIG. 2 is a schematic view of the presence of contact between the corrugated jacket and the buffer layer over the cable;
FIG. 3 shows the contact surface between the corrugated sheath and the buffer layer at θ ═ θPA plan sectional view.
Detailed Description
The present invention will be described in further detail with reference to the accompanying drawings.
A method for screening a cable section with ablation hidden danger of a buffer layer based on the inner surface area of a corrugated sheath comprises the following steps:
step 1, approximately calculating the surface area of the inner side of the corrugated sheath of the high-voltage power cable.
The method for approximately calculating the surface area of the inner side of the corrugated sheath of the high-voltage power cable is carried out based on the following principle:
1. calculated decomposition of the inside surface area of a corrugated sheath
Due to the peak-valley position of the corrugated sheath, the following basic assumptions in accordance with engineering practice need to be made for calculating the inside surface area of the corrugated sheath:
assume that the inside surface area of the corrugated sheath within each corrugation pitch is approximately the same;
assume that the effect of the angle of inclination of the wrinkles on the inside surface area of the wrinkled jacket is negligible.
The surface area of the inner side of the corrugated sheath can be decomposed into the sum of the surface areas of the inner sides of the corrugated sheaths in each corrugated pitch. Since a corrugation pitch is small compared to the total length of the cable segment, the surface area at the ends of the cable less than one corrugation pitch can be approximated with a corresponding ratio. This gives:
Figure BDA0002864407050000041
in the formula, Stotal-pitIs the inside surface area of the corrugated sheath; spitA corrugated sheath inside surface area within a single corrugated pitch; dlenIs the nominal value of the corrugation pitch. So to obtain the overall corrugated jacket inside surface area of the cable, the corrugated jacket inside surface area within a single corrugation pitch needs to be calculated.
2. Approximate calculation of inside surface area of corrugated sheath within single corrugation pitch
Considering that the inner side surface of the actual corrugated sheath is a space curved surface, and taking the center position O of the corrugated sheath as an origin in a radial plane of the cable, a rho-theta plane polar coordinate can be established as shown in figure 1. O 'is the centre of a circle of the cable core, and the critical points of the contact of the buffer layer and the corrugated sheath are marked as A and A'. As shown in fig. 3, on the basis of the rho-theta plane coordinate, a rho-theta-Z three-dimensional coordinate system can be established by taking the axial direction of the cable as the Z direction, and the dotted line part in the figure is a schematic diagram of the contact surface of the buffer layer and the corrugated sheath. Obviously, within one corrugation pitch, if the contact surface function is z ═ f (ρ, θ), the corresponding contact area can be calculated by the following equation:
Figure BDA0002864407050000042
wherein, Ω ρ θ is the projection of the inner curved surface of the corrugated sheath on the plane z ═ 0.
As described in the background section, the analytical expression of f (ρ, θ) is difficult to obtain. The approximate value of the inside surface area of the corrugated sheath can be obtained by performing a surface integral calculation on a continuous micro-approximable function of the z ═ f (rho, theta) surface. The patent proposes a method for approximate calculation of the inside surface area of a corrugated sheath in a single corrugation pitch. ByThe projection of the inner curved surface of the corrugated sheath on the plane z equal to 0 is symmetrical to the straight line in the direction theta equal to 0, and the inner curved surface of the corrugated sheath in the single corrugated pitch is symmetrical to the plane z equal to 0, so S is calculatedpitThe value of (a) is only required to finish the calculation of the integral of the curved surface multiplied by 4 times in the interval of pi being more than or equal to theta being more than or equal to 0 and Z being more than or equal to 0.
As shown in FIG. 3, for an arbitrary point P ∈ Ω ρ θ, let its coordinate be (ρ ∈ Ω ρ θ)P,θP,0). On a plane where z is 0, taking a ray from an origin O to a point P, and marking an intersection point of the ray and the outer side of the insulation shield as B; the intersection point of the buffer layer and the outer side is marked as C; the intersection point of the inner side of the corrugated sheath is marked as D; the critical positions of the corrugated sheath contacting the buffer layer in the single corrugated pitch are E, F two points respectively, and the starting point and the ending point of the single corrugated pitch are G, H two points. By approximating the wrinkle curve GDH in the cable axial direction, one approximate curved surface (hereinafter referred to as an approximate curved surface) of the contact curved surface of the wrinkle sheath and the buffer layer can be obtained.
In terms of the integrand, polynomial interpolation, triangular interpolation, etc. may be applied to approximate the curve GD inside the wrinkled jacket. After the interpolation method is determined, an interpolation base point can be determined, the field cable or the supplier can be provided with the same type and batch of cables, the interpolation base point in different wrinkles can be subjected to multi-point actual measurement, and the coordinates (rho) of the interpolation data point can be obtained after the averagingk,0,zk) And k is 1, and r is the number of interpolation data points required by the selected interpolation method. Thereby obtaining an approximate curved surface
Figure BDA0002864407050000051
The interpolation function within the interval is expressed as f (ρ).
The approximate expression for the inside surface area of the corrugated sheath within a single corrugation pitch is available as:
Figure BDA0002864407050000052
wherein d isOAIs the nominal value of the inside radius of the corrugated sheath; ddepIs the nominal value of wrinkle depth.
After determining a particular interpolation function, the above integration attempt may be simplified. It can be found that the integral before and after the simplification can not guarantee to have an analytic solution, and a numerical integration method can be applied to solve. Numerical integration methods such as a trapezoidal method, a Simpson's rule, a Newton-Cowster formula, a Longeberg method, a Gaussian integration method, a Chebyshev integration method, a Monte Carlo integration method and the like and improved forms thereof can be used for solving the integration, so that an approximate value of the inner side surface area of the wrinkle sheath in a single wrinkle pitch is obtained.
Based on the principle, the method for calculating the surface area of the inner side of the corrugated sheath of the high-voltage power cable comprises the following steps:
step 1.1, according to a cable factory test report or an actual measurement result, arranging to obtain the following data: length d of cable segmentcableNominal value, inside radius d of corrugated sheathoANominal value, wrinkle pitch dlenNominal value, wrinkle depth ddepA nominal value.
Step 1.2, determining the selected interpolation method to obtain an interpolation base point rhokAnd k is 1, r, r is the number of interpolation data points required by the interpolation method.
Step 1.3, for all k 1.., r, on the same cable type and batch as provided by the cable or supplier of interest, interpolation of the base points ρ, in different wrinkleskMeasuring the Z-direction coordinate of the inner side of the wrinkle at multiple points at the position, and averaging to obtain the coordinate (rho) of the interpolated data pointk,0,zk)。
Step 1.4, interpolation data point (rho)k,0,zk) And k is 1, a.
Step 1.5, to the surface area S of the inside of the corrugated sheath of the formulatotal-pitAnd simplifying the integral, then calculating by using a numerical integration method to obtain a result, and finishing the calculation of the inner side surface area of the wrinkle sheath.
Figure BDA0002864407050000061
The method can be applied to obtain the approximate surface area value of the buffer layer of the newly-delivered cable according to the dimension nominal value information on the cable delivery test report. The method can be used for carrying out approximate calculation on the surface area of the buffer layer of the operated cable by using the measured data of the cable.
And 2, screening cable sections with ablation hidden troubles of the buffer layer of the high-voltage power cable according to the surface area of the inner side of the corrugated sheath of the high-voltage power cable.
The contact area of the corrugated sheath and the buffer layer on the whole cable depends on the size information of the length of the actual cable segment, the thickness of insulation and the like, and the size design of the high-voltage cable of each cable supplier is not consistent. Since the contact area mainly reflects the contact condition of the buffered layer between the cable insulation shield and the corrugated sheath, in order to realize the comparison of cables with different sizes, the invention provides a method for performing comparison by using the contact ratio.
On the basis that the contact area can be calculated or estimated, the contact ratio is calculated using the following equation:
Figure BDA0002864407050000062
wherein w is a contact ratio between the buffer layer and the wrinkled jacket; stotalThe contact area of the corrugated sheath and the buffer layer; stotal-pitIs the inside surface area of the corrugated sheath.
After the contact area of the wrinkle sheath and the buffer layer on the whole cable and the inner surface area of the wrinkle sheath are determined, a hidden danger cable section screening threshold value can be obtained according to the contact ratio information of the fault cable, and the hidden danger cable section screening threshold value is compared with the contact ratio information of the cable to be screened, so that the conclusion whether the cable to be screened contains the ablation hidden danger of the buffer layer is obtained.
Based on the above description, the specific implementation method of this step includes the following steps:
step 2.1, calculating a screening threshold value of the cable section with the ablation hidden danger of the buffer layer, wherein the specific method comprises the following steps:
(1) for a fault cable segment set { l under a specified voltage leveli}i=1,...,nFor all the i-1,.., n, arranging cable data information such as factory reports and the like. And respectively determining a contact area and a calculation method of the inner side surface area of the corrugated sheath. Finishing data required by the calculation method of the contact area and the surface area of the inner side of the wrinkle sheath, and entering the step (2) if the data are insufficient; otherwise, entering the step (3).
(2) And for all fault cable sections with insufficient data, actually testing the cable sections intercepted during fault processing, and supplementing the data required by the calculation method.
(3) For all i ═ 1.. times, n, the total contact area was calculated, yielding Stotal(li)。
(4) For all i ═ 1.. times, n, the wrinkle sheath inside surface area was calculated, yielding Stotal-pit(li)。
(5) Calculation of contact ratio according to the following formula gives w (l)i)。
Figure BDA0002864407050000063
(6) The summary calculation obtains a fault cable section contact ratio set w (l)i)}i=1,...,nAnd calculating to obtain the screening threshold t of the cable section with the ablation hidden danger of the buffer layer under the voltage level according to the following formula.
Figure BDA0002864407050000071
Step 2.2, screening the cable section with the ablation hidden danger of the buffer layer, wherein the specific method comprises the following steps:
(1) to and { li}i=1,...,nCable segment set { q ] to be screened at same voltage levelj}j=,...mAnd for all j being 1, 1.. and m, cable data information such as factory reports and the like is arranged. The same contact area and wrinkle sheath inside surface area calculation method is applied as the screening threshold calculation process is maintained. Collecting data required by the calculation method of the contact area and the surface area of the inner side of the wrinkle sheath, and entering the step (2) if the data are insufficient; otherwise, entering the step (3).
(2) And for all the cable segments to be screened with insufficient data, actually testing the same-model same-batch cable segments, and supplementing the data required by the calculation method.
(3) For all j ═ 1.. times, m, the total contact area was calculated, yielding Stotal(qj)。
(4) For all j ═ 1.. times, m, the wrinkle sheath inside surface area was calculated, yielding Stotal-,pit(qj)。
(5) Calculation of contact ratio according to the following formula gives w (q)j)。
Figure BDA0002864407050000072
(6) The contact ratio set { w (q) of the cable segments to be screened is obtained through summarizing and calculatingj)}j=1,...,mFor all j ═ 1.. times, m, the following determinations were made: if w (q)j) When t is less than or equal to t, q is addedjAdding the potential hazards into a hidden danger list, otherwise, adding q into the hidden danger listjExcluded from the hidden danger list.
(7) And (5) sorting and outputting the hidden danger list. And finishing screening the cable section with the ablation hidden danger of the cable buffer layer.
And 2, rapidly screening the cable section with the ablation hidden danger of the buffer layer of the high-voltage power cable according to the surface area of the inner side of the corrugated sheath of the high-voltage power cable.
The contact area of the corrugated sheath and the buffer layer on the whole cable depends on the size information of the length of the actual cable segment, the thickness of insulation and the like, and the size design of the high-voltage cable of each cable supplier is not consistent. Since the contact area mainly reflects the contact condition of the buffered layer between the cable insulation shield and the corrugated sheath, in order to realize the comparison of cables with different sizes, the invention provides a method for performing comparison by using the contact ratio.
On the basis that the contact area can be calculated or estimated, the contact ratio is calculated using the following equation:
Figure BDA0002864407050000073
wherein w is a contact ratio between the buffer layer and the wrinkled jacket; stotalThe contact area of the corrugated sheath and the buffer layer; stotal-pitIs the inside surface area of the corrugated sheath.
After the contact area of the wrinkle sheath and the buffer layer on the whole cable and the inner surface area of the wrinkle sheath are determined, a hidden danger cable section screening threshold value can be obtained according to the contact ratio information of the fault cable, and the hidden danger cable section screening threshold value is compared with the contact ratio information of the cable to be screened, so that the conclusion whether the cable to be screened contains the ablation hidden danger of the buffer layer is obtained.
Based on the above description, the specific implementation method of this step includes the following steps:
step 2.1, calculating a screening threshold value of the cable section with the ablation hidden danger of the buffer layer, wherein the specific flow is as follows:
(1) for a fault cable segment set { l under a specified voltage leveli}i=1,...,nAnd sorting out cable data information such as a factory report for all i 1. And respectively determining a contact area and a calculation method of the inner side surface area of the corrugated sheath. Finishing data required by the calculation method of the contact area and the surface area of the inner side of the wrinkle sheath, and entering the step (2) if the data are insufficient; otherwise, entering the step (3).
(2) And for all fault cable sections with insufficient data, actually testing the cable sections intercepted during fault processing, and supplementing the data required by the calculation method.
(3) For all i ═ 1.. times, n, the total contact area was calculated, yielding Stotal(li)。
(4) For all i ═ 1.. times, n, the wrinkle sheath inside surface area was calculated, yielding Stotal-pit(li)。
(5) Calculation of contact ratio according to the following formula gives w (l)i)。
Figure BDA0002864407050000081
(6) The summary calculation obtains a set of contact ratios of the fault cable sections{w(li)}i=1,...,nAnd calculating to obtain the screening threshold t of the cable section with the ablation hidden danger of the buffer layer under the voltage level according to the following formula.
Figure BDA0002864407050000082
Step 2.2, screening the cable section with the ablation hidden danger of the buffer layer, wherein the specific method comprises the following steps:
(1) to and { li}i=1,...,nCable segment set { q ] to be screened at same voltage levelj}j=1,...,4Cable data information such as a factory report is sorted for all j equal to 1 …, m. The same contact area and wrinkle sheath inside surface area calculation method is applied as the screening threshold calculation process is maintained. Collecting data required by the calculation method of the contact area and the surface area of the inner side of the wrinkle sheath, and entering the step (2) if the data are insufficient; otherwise, entering the step (3).
(2) And for all the cable segments to be screened with insufficient data, actually testing the same-model same-batch cable segments, and supplementing the data required by the calculation method.
(3) For all j ═ 1.. times, m, the total contact area was calculated, yielding Stotal(qj)。
(4) For all j ═ 1.. times, m, the wrinkle sheath inside surface area was calculated, yielding Stotal-pit(qj)。
(5) Calculation of contact ratio according to the following formula gives w (q)j)。
Figure BDA0002864407050000083
(6) The contact ratio set { w (q) of the cable segments to be screened is obtained through summarizing and calculatingj)}j=1,...,mFor all j ═ 1.. times, m, the following determinations were made: if w (q)j) When t is less than or equal to t, q is addedjAdding the potential hazards into a hidden danger list, otherwise, adding q into the hidden danger listjExcluded from the hidden danger list.
(7) And (5) sorting and outputting the hidden danger list. And finishing screening the cable section with the ablation hidden danger of the cable buffer layer.
The effect of the present invention is verified by one example as follows:
in the example, a cable section with ablation corrosion hidden danger of a buffer layer of a 220kV high-voltage power cable is screened. 3 sections of fault cable sections are shared, namely a fault section A, a fault section B and a fault section C; and 4 cable sections to be screened are respectively a first conveying section, a second conveying section, a third conveying section and a third conveying section.
And calculating screening threshold values of the cable sections with the ablation hidden danger of the buffer layer.
Step 1, collecting fault cable sections { l) under 220kV leveli}i=1,...,3And for all the i-1, the-3, cable data information such as factory reports and the like is arranged. And respectively determining a contact area and a calculation method of the inner side surface area of the corrugated sheath. And (4) finishing the contact area and calculating the required data of the method for calculating the surface area of the inner side of the corrugated sheath. If the data is insufficient, entering the step 2; otherwise, entering the step 3.
And 2, for all fault cable sections with insufficient data, actually testing the cable sections intercepted during fault processing, supplementing the data required by the calculation method, and entering the step 3.
Through the first two steps, the input data of the sorted fault cable set are as follows:
Figure BDA0002864407050000091
and 3, respectively calculating the total contact area of all the i-1, i-3 by adopting a method for calculating the contact area of the buffer layer and the wrinkle sheath to obtain Stotal(li) And the result is as follows, and step 4 is entered.
Figure BDA0002864407050000092
In step 4, the procedure goes to step 4.1 for all i ═ 1.
Step 4.1, sample determination three timesPolynomial interpolation method, which requires 4 interpolated data points. In that
Figure BDA0002864407050000093
Obtaining an interpolation base point rho by evenly distributing on the intervalkAnd k is 1, 4, entering the step 4.2.
Step 4.2, for all k 1,.., 4, the base point ρ is interpolated in different corrugations on the same type of cable or batch of cables provided by the supplier in questionkThe Z-direction coordinate of the inner side of the wrinkle is measured at multiple points at the position, and the coordinate (rho) of the interpolation data point can be obtained after the average value is takenk,0,zk). And 4.3, entering the step 4.3.
The interpolated data point coordinates obtained after measurement are as follows:
Figure BDA0002864407050000094
Figure BDA0002864407050000101
step 4.3, according to the interpolation data point (rho)k,0,zk) And k is 1,.. 4, and interpolation calculation is carried out to obtain an interpolation function expression f (rho) which is T3ρ3+T2ρ2+T1ρ+T0And entering the step 4.4.
The results of the cubic polynomial interpolation calculation are as follows:
Figure BDA0002864407050000102
step 4.4, to the inside surface area S of the corrugated sheath of the formulatotal-pitAnd (5) simplifying the integral, then calculating by using a numerical integration method to obtain a result, and entering the step 5 after the calculation of the inner side surface area of the wrinkle sheath is finished.
Figure BDA0002864407050000103
Step 5, calculating the contact ratio according to the following formula to obtain w (l)i) And entering the step 6.
Figure BDA0002864407050000104
The calculation results are collated in the following table:
Figure BDA0002864407050000105
step 6, summarizing and calculating to obtain a fault cable section contact ratio set { w (l)i)}i=1,...,3And calculating to obtain the screening threshold t of the cable section with the ablation hidden danger of the buffer layer under the voltage level according to the following formula.
Figure BDA0002864407050000106
In this example, it is calculated that t is 13.72%.
And then, carrying out a buffer layer ablation hidden danger cable section screening process.
Step 1, for a 220kV voltage level cable segment set to be screened { qj}j=1,...,4And for all j, 1, 4, cable data information such as factory reports is arranged. The same contact area and wrinkle sheath inside surface area calculation method is applied as the screening threshold calculation process is maintained. Collecting data required by the contact area and the wrinkle sheath inner side surface area calculation method, and entering the step 2 if the data are insufficient; otherwise, entering the step 3.
And step 2, for all the cable segments to be screened with insufficient data, actually testing the same-model same-batch cable segments, supplementing the data required by the calculation method, and entering step 3.
Through the first two steps, the input data of the cable set to be screened after the arrangement is as follows:
Figure BDA0002864407050000111
and 3, respectively calculating the total contact area of all j 1, j, 4 by adopting a method for calculating the contact area of the buffer layer and the wrinkle sheath to obtain Stotal(qj) And the result is as follows, and step 4 is entered.
Figure BDA0002864407050000112
Step 4, go to step 4.1 for all j ═ 1.
At step 4.1, the example determined the use of a cubic polynomial interpolation method, which requires 4 interpolated data points. In that
Figure BDA0002864407050000113
Obtaining an interpolation base point rho by evenly distributing on the intervalkAnd k is 1, 4, entering the step 4.2.
Step 4.2, for all k 1,.., 4, the base point ρ is interpolated in different corrugations on the same type of cable or batch of cables provided by the supplier in questionkThe position is measured at multiple points and the Z-direction coordinate is measured, and the coordinate (rho) of the interpolated data point can be obtained after the average value is obtainedk,0,zk). And 4.3, entering the step 4.3.
The interpolated data point coordinates obtained after measurement are as follows:
Figure BDA0002864407050000114
step 4.3, according to the interpolation data point (rho)k,0,zk) And k is 1,.. 4, and interpolation calculation is carried out to obtain an interpolation function expression f (rho) which is T3ρ3+T2ρ2+T1ρ+T0And entering the step 4.4.
The results of the cubic polynomial interpolation calculation are as follows:
Figure BDA0002864407050000115
Figure BDA0002864407050000121
step 4.4, to the inside surface area S of the corrugated sheath of the formulatotal-pitAnd (5) simplifying the integral, then calculating by using a numerical integration method to obtain a result, and entering the step 5 after the calculation of the inner side surface area of the wrinkle sheath is finished.
Figure BDA0002864407050000122
Step 5, calculating the contact ratio according to the following formula to obtain w (q)j) And entering the step 6.
Figure BDA0002864407050000123
The calculation results are collated in the following table:
Figure BDA0002864407050000124
step 6, summarizing and calculating to obtain a cable segment contact ratio set { w (q) to be screenedj)}j=1,...,4For all j ═ 1.·, 4, the following determinations were made: if w (q)j) Q is less than or equal to 13.72, then q isjAdding the potential hazards into a hidden danger list, otherwise, adding q into the hidden danger listjExcluded from the hidden danger list. And 7, entering the step.
And 7, sorting and outputting the hidden danger list to obtain a hidden danger list: { in second segment }.
It should be emphasized that the embodiments described herein are illustrative rather than restrictive, and thus the present invention is not limited to the embodiments described in the detailed description, but also includes other embodiments that can be derived from the technical solutions of the present invention by those skilled in the art.

Claims (4)

1. A method for screening potential ablation hazard cable sections of a buffer layer based on the inner surface area of a corrugated sheath is characterized by comprising the following steps: the method comprises the following steps:
step 1, approximately calculating the inner side surface area of a corrugated sheath of a high-voltage power cable according to the inner side surface area of the corrugated sheath in a single corrugated pitch;
and 2, according to the surface area of the inner side of the wrinkle sheath of the high-voltage power cable, calculating the contact ratio of the fault cable section to obtain a screening threshold of the ablation hidden danger cable section of the buffer layer, and screening the ablation hidden danger cable section of the buffer layer through the screening threshold of the ablation hidden danger cable section of the buffer layer.
2. The method for screening cable segments based on ablation hidden danger of buffer layer on inner surface area of wrinkle sheath as claimed in claim 1, wherein: the specific implementation method of the step 1 comprises the following steps:
step 1.1, according to a cable factory test report or an actual measurement result, arranging to obtain the following data: length d of cable segmentcableNominal value, inside radius d of corrugated sheathOANominal value, wrinkle pitch dlenNominal value, wrinkle depth ddepA nominal value;
step 1.2, determining the selected interpolation method to obtain an interpolation base point rhokK is 1, …, r is the number of interpolation data points needed by the interpolation method;
step 1.3, where all k is 1, …, r, the base point ρ is interpolated in different corrugations on the same type of cable or batch of cables provided by the supplier in questionkMeasuring the Z-direction coordinate of the inner side of the wrinkle at multiple points at the position, and averaging to obtain the coordinate (rho) of the interpolated data pointk,0,zk);
Step 1.4, interpolation data point (rho)k,0,zk) K is 1, …, r, and an interpolation function expression f (rho) is obtained by interpolation calculation;
step 1.5, to the surface area S of the inside of the corrugated sheath of the formulatotal-pitThe integral is simplified, and then a numerical integral method is appliedCalculating the result by the method, and calculating the surface area of the inner side of the wrinkle sheath:
Figure FDA0002864407040000011
3. the method for screening cable segments based on ablation hidden danger of buffer layer on inner surface area of wrinkle sheath as claimed in claim 1, wherein: the method for obtaining the screening threshold value of the cable segment with the ablation hidden danger of the buffer layer by calculating the contact ratio of the fault cable segment in the step 2 comprises the following steps:
the method comprises the steps of collecting { l ] fault cable segments under a specified voltage leveli}i=1,...,nArranging factory cable data information, arranging data required by the calculation method of the contact area and the surface area of the inner side of the corrugated sheath, and performing the second step if the data are insufficient; otherwise, entering the step three;
for all fault cable sections with insufficient data, actually testing the cable sections cut out during fault processing, and supplementing the data required by the calculation method;
(iii) for all i ═ 1, …, n, the total contact area was calculated and S was obtainedtotal(li);
Fourth, the inner surface area of the corrugated sheath is calculated for all i 1, …, n to obtain Stotal-pit(li);
Calculating the contact ratio according to the following formula to obtain w (l)i);
Figure FDA0002864407040000021
Sixthly, calculating and obtaining a fault cable segment contact ratio set { w (l)i)}i=1,...,nAnd calculating a screening threshold t of the cable section with the potential ablation hazard of the buffer layer under the voltage level according to the following formula:
Figure FDA0002864407040000022
4. the method for screening cable segments based on ablation hidden danger of buffer layer on inner surface area of wrinkle sheath as claimed in claim 1, wherein: the method for screening the cable section with the potential ablation hazard of the buffer layer in the step 2 comprises the following steps:
first pair and { li}i=1,...,nCable segment set { q ] to be screened at same voltage levelj}j=1,...,mArranging factory cable data information, keeping the same calculation method of the contact area and the inner surface area of the wrinkle sheath as the screening threshold calculation process, and collecting data required by the calculation method of the contact area and the inner surface area of the wrinkle sheath, wherein if the data are insufficient, the second step is carried out; otherwise, entering the step three;
for all cable segments to be screened with insufficient data, actually testing the same-model same-batch cable segments, and supplementing the data required by the calculation method;
(iii) comparing all j to 1, …, m, calculating the total contact area, and obtaining Stotal(qj);
Fourth, the inner surface area of the corrugated sheath is calculated for all j 1, …, m to obtain Stotal-pit(qj);
Calculating the contact ratio according to the following formula to obtain w (q)j);
Figure FDA0002864407040000023
Sixthly, calculating and obtaining a cable segment contact ratio set { w (q) to be screenedj)}j=1,...,mWhen j is 1, …, m, the following determinations are made: if w (q)j) When t is less than or equal to t, q is addedjAdding the potential hazards into a hidden danger list, otherwise, adding q into the hidden danger listjExcluded from the hidden danger list;
and (5) finishing the output hidden danger list and screening the cable sections with the ablation hidden dangers of the cable buffer layer.
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN114113231A (en) * 2022-01-27 2022-03-01 国网天津市电力公司电力科学研究院 Defect detection method, device, equipment and medium for cable corrugated metal sheath

Citations (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1126283A1 (en) * 2000-02-18 2001-08-22 Norscan Instruments, Ltd. A method for estimating the location of a cable break including means to measure resistive fault levels for cable sections
CN107064182A (en) * 2017-03-28 2017-08-18 国网上海市电力公司 A kind of live defect inspection method of the high voltage power cable based on X-ray
CN110389283A (en) * 2019-08-09 2019-10-29 国网电力科学研究院武汉南瑞有限责任公司 A kind of cable slack layer ablation condition detecting system and detection method
CN110672644A (en) * 2019-09-04 2020-01-10 国网电力科学研究院武汉南瑞有限责任公司 Cable buffer layer state evaluation method and system
CN110954471A (en) * 2019-11-21 2020-04-03 国网天津市电力公司电力科学研究院 Electrochemical corrosion off-line detection and evaluation method for water-blocking buffer layer of high-voltage power cable
CN111220631A (en) * 2019-11-29 2020-06-02 国网福建省电力有限公司厦门供电公司 Cable buffer layer ablation detection system and method based on X-ray machine
CN111292888A (en) * 2020-03-05 2020-06-16 国网电力科学研究院武汉南瑞有限责任公司 Corrugated aluminum sheath high-voltage power cable resistant to buffer layer ablation
CN210803241U (en) * 2019-09-02 2020-06-19 国网电力科学研究院武汉南瑞有限责任公司 Cable buffer layer ablation state physicochemical detection system
CN210803639U (en) * 2019-08-09 2020-06-19 国网电力科学研究院武汉南瑞有限责任公司 Cable buffer layer ablation state detection system
CN111352008A (en) * 2020-04-14 2020-06-30 中国电力科学研究院有限公司 Simulation test system and method for cable water-blocking buffer layer structure with adjustable contact state and humidity
CN111832153A (en) * 2020-06-03 2020-10-27 国网天津市电力公司电力科学研究院 Cable buffer layer state evaluation method based on electric field analysis
CN111830378A (en) * 2020-07-23 2020-10-27 四川大学 Rotary stepping type cable buffer layer ablation fault simulation device and method
CN111929544A (en) * 2020-07-23 2020-11-13 四川大学 Cable buffer layer ablation fault simulation device and method with adjustable current and surface pressure
CN212010448U (en) * 2020-03-05 2020-11-24 国网电力科学研究院武汉南瑞有限责任公司 Corrugated aluminum sheath high-voltage power cable resistant to buffer layer ablation
CN212060477U (en) * 2020-04-14 2020-12-01 中国电力科学研究院有限公司 Cable water-blocking buffer layer structure simulation test system with adjustable contact state and humidity

Patent Citations (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1126283A1 (en) * 2000-02-18 2001-08-22 Norscan Instruments, Ltd. A method for estimating the location of a cable break including means to measure resistive fault levels for cable sections
CN107064182A (en) * 2017-03-28 2017-08-18 国网上海市电力公司 A kind of live defect inspection method of the high voltage power cable based on X-ray
CN210803639U (en) * 2019-08-09 2020-06-19 国网电力科学研究院武汉南瑞有限责任公司 Cable buffer layer ablation state detection system
CN110389283A (en) * 2019-08-09 2019-10-29 国网电力科学研究院武汉南瑞有限责任公司 A kind of cable slack layer ablation condition detecting system and detection method
CN210803241U (en) * 2019-09-02 2020-06-19 国网电力科学研究院武汉南瑞有限责任公司 Cable buffer layer ablation state physicochemical detection system
CN110672644A (en) * 2019-09-04 2020-01-10 国网电力科学研究院武汉南瑞有限责任公司 Cable buffer layer state evaluation method and system
CN110954471A (en) * 2019-11-21 2020-04-03 国网天津市电力公司电力科学研究院 Electrochemical corrosion off-line detection and evaluation method for water-blocking buffer layer of high-voltage power cable
CN111220631A (en) * 2019-11-29 2020-06-02 国网福建省电力有限公司厦门供电公司 Cable buffer layer ablation detection system and method based on X-ray machine
CN111292888A (en) * 2020-03-05 2020-06-16 国网电力科学研究院武汉南瑞有限责任公司 Corrugated aluminum sheath high-voltage power cable resistant to buffer layer ablation
CN212010448U (en) * 2020-03-05 2020-11-24 国网电力科学研究院武汉南瑞有限责任公司 Corrugated aluminum sheath high-voltage power cable resistant to buffer layer ablation
CN111352008A (en) * 2020-04-14 2020-06-30 中国电力科学研究院有限公司 Simulation test system and method for cable water-blocking buffer layer structure with adjustable contact state and humidity
CN212060477U (en) * 2020-04-14 2020-12-01 中国电力科学研究院有限公司 Cable water-blocking buffer layer structure simulation test system with adjustable contact state and humidity
CN111832153A (en) * 2020-06-03 2020-10-27 国网天津市电力公司电力科学研究院 Cable buffer layer state evaluation method based on electric field analysis
CN111830378A (en) * 2020-07-23 2020-10-27 四川大学 Rotary stepping type cable buffer layer ablation fault simulation device and method
CN111929544A (en) * 2020-07-23 2020-11-13 四川大学 Cable buffer layer ablation fault simulation device and method with adjustable current and surface pressure

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
吴科等: "《 高压电力电缆绝缘屏蔽烧蚀机理分析及应对措施》", 《绝缘材料》 *
张静等: "《高压电缆缓冲层轴向沿面烧蚀故障机理分析》", 《电力工程技术》 *

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN114113231A (en) * 2022-01-27 2022-03-01 国网天津市电力公司电力科学研究院 Defect detection method, device, equipment and medium for cable corrugated metal sheath
CN114113231B (en) * 2022-01-27 2022-05-27 国网天津市电力公司电力科学研究院 Defect detection method, device, equipment and medium for cable corrugated metal sheath

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