WO2000049626A1 - A cable, a method of constructing a cable, and use of a cable - Google Patents

A cable, a method of constructing a cable, and use of a cable Download PDF

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Publication number
WO2000049626A1
WO2000049626A1 PCT/DK2000/000069 DK0000069W WO0049626A1 WO 2000049626 A1 WO2000049626 A1 WO 2000049626A1 DK 0000069 W DK0000069 W DK 0000069W WO 0049626 A1 WO0049626 A1 WO 0049626A1
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WO
WIPO (PCT)
Prior art keywords
layer
layers
conducting
cable
isolating
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PCT/DK2000/000069
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French (fr)
Inventor
Manfred DÄUMLING
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NKT Research Center AS
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NKT Research Center AS
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Filing date
Publication date
Application filed by NKT Research Center AS filed Critical NKT Research Center AS
Priority to JP2000600280A priority Critical patent/JP2002537632A/en
Priority to MXPA01008327A priority patent/MXPA01008327A/en
Priority to US09/890,624 priority patent/US6750399B1/en
Priority to EP00904861A priority patent/EP1163685A1/en
Priority to AU26584/00A priority patent/AU2658400A/en
Priority to PL00350188A priority patent/PL350188A1/en
Publication of WO2000049626A1 publication Critical patent/WO2000049626A1/en
Priority to NO20014028A priority patent/NO20014028L/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01BCABLES; CONDUCTORS; INSULATORS; SELECTION OF MATERIALS FOR THEIR CONDUCTIVE, INSULATING OR DIELECTRIC PROPERTIES
    • H01B12/00Superconductive or hyperconductive conductors, cables, or transmission lines
    • H01B12/02Superconductive or hyperconductive conductors, cables, or transmission lines characterised by their form
    • H01B12/06Films or wires on bases or cores
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01BCABLES; CONDUCTORS; INSULATORS; SELECTION OF MATERIALS FOR THEIR CONDUCTIVE, INSULATING OR DIELECTRIC PROPERTIES
    • H01B7/00Insulated conductors or cables characterised by their form
    • H01B7/30Insulated conductors or cables characterised by their form with arrangements for reducing conductor losses when carrying alternating current, e.g. due to skin effect
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01BCABLES; CONDUCTORS; INSULATORS; SELECTION OF MATERIALS FOR THEIR CONDUCTIVE, INSULATING OR DIELECTRIC PROPERTIES
    • H01B9/00Power cables
    • H01B9/04Concentric cables
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E40/00Technologies for an efficient electrical power generation, transmission or distribution
    • Y02E40/60Superconducting electric elements or equipment; Power systems integrating superconducting elements or equipment

Definitions

  • a cable a method of constructing a cable, and use of a cable
  • the present invention relates to a cable with at least one cable core having three or more conducting layers which are mutually separated by isolating layers, where said conducting layers include electrical conductors which are arranged helically with predetermined pitch angles, and in particular to an electrical cable with reduced AC loss.
  • the prior art discloses AC cables with at least one cable core having a number of conducting layers, which are mutually separated by isolating layers.
  • the conducting layers are normally formed by electrical conductors, which are arranged helically with predetermined pitch angles .
  • the innermost conductor which may be of superconducting material is normally wound spirally around a central former and hereby forms a conducting layer.
  • the other conducting layers which may also be of superconducting material are normally wound spirally around the isolating layers adapted to separate the conducting layers.
  • the number of conducting layers required depends on the desired use of the cable and on the current carrying capability of the tapes used.
  • the current distribution between the layers depends on the winding pitches, the layer radii, the layer thickness, and the resistivity of the layers of the conductors, as the inductance between the layers depends on the winding pitches. According to the prior art pitches are therefore varied from layer to layer in a given way. As a result the current will distribute more equally between the conducting layers resulting in reduced AC losses.
  • WO 96/39705 discloses a cable with a central carrier body around which electrical conductors are arranged helically with predetermined pitch angles in at least three conductor positions.
  • the pitch angles of the conductors in the individual conductor positions are selected such that they either increase or decrease in steps from position to position between a first value of the radial innermost conductor position and a second value of the radial outermost conductor position.
  • the object of the invention is to provide an AC cable with low AC-loss and which overcome the disadvantages of the state of the art cables.
  • the invention is based on the fact that the equations to be solved in order to design a cable of the above- mentioned type having reduced AC losses have been found to be very complex and cannot be solved analytically.
  • the equations include a plurality of coupled parameters making the system difficult to solve, i.e. when varying one parameter, one or more other parameters may also be affected.
  • the relation between some parameters can be explained e.g. the inductance is found to decrease as the radius of a conducting layer is increased, and the self-inductance of a conducting layer increases as the pitch angle increases. In cables not containing superconductors, layer resistance also plays a role.
  • At least one of said isolating layers has a thickness different from the thickness of at least one of the other isolating layers
  • At least one of said conducting layers has a thickness different from the thickness of at least one of the other conducting layers
  • At least one of said isolating layers includes material which is different from the material of at least one of the other isolating layers, or
  • At least one of said conducting layers includes material, which is different from the material of at least one of the other conducting layers.
  • a homogenous distribution of the current in the cable and thus a reduction of the AC losses in the cable is obtained.
  • a cable can be constructed having a single of the above-mentioned characteristics, two or more characteristics can be combined.
  • the desired homogenous distribution of the current in the cable can be obtained by varying one or more additional parameters, i.e. in addition to varying the winding pitches, the thickness of the isolating layers, the thickness of the conducting layers, the material of the isolating layers may be varied, and/or the material of the conducting layers may be varied.
  • the variation in winding pitches can be reduced whereby further improvement of the mechanical properties of the cable is obtained.
  • At least one of said isolating layers is thicker than the radial outermost of the neighbouring isolating layers.
  • at least one of said conducting layers is thicker than the radial outermost of the neighbouring conducting layers.
  • said thickness of said isolating layers and/or said conducting layers decrease in steps from layer to layer between a first value of the radial innermost isolating layer and a second value of the radial outermost isolating layer.
  • the resistivity of the conducting layer material increases in steps from layer to layer from a first value of the radial innermost conducting layer to a second value of the radial outermost conducting layer, i.e. the invention can be used in non-superconducting cables.
  • said conductors includes super-conducting material, i.e. the invention can be used in superconducting cables.
  • said super-conducting material is high-T c super-conducting material .
  • the invention also relates to a method of producing a cable of the above-mentioned type.
  • the present invention further relates to the use of a cable according to the invention as a power cable.
  • Figure 1 shows a schematic cross section view of the current carrying part of a cable according to the prior art
  • Figure 2 illustrates a first embodiment of the current carrying part of a cable according to the invention
  • Figure 3 illustrates a second embodiment of the current carrying part of a cable according to the invention
  • Figure 4 illustrates a third embodiment of the current carrying part of a cable according to the invention.
  • Figure 5 illustrates the winding pitch and the pitch angle of a conductor in a conducting layer of an electrical cable.
  • the cable is used as an AC power cable, e.g. an underground cable, or an overhead power line, e.g. as power lines for electrically driving vehicles such as trains.
  • the prior art discloses cables with at least one cable core having a number of conducting layers which are mutually separated by isolating layers, resistive layers, or reduced electrical contact surfaces.
  • the term isolating layer shall be read as isolating layers, resistive layers, or reduced electrical contact surfaces in this context.
  • the conducting layers are normally formed by electrical conductors which are arranged helically with predetermined pitch angles.
  • Figure 1 is a cross section view of a cable 1 according to the prior art and illustrates the structure of the cable 1.
  • the cable 1 includes a central former 2 around which an electrical conductor is arranged helically with a predetermined pitch angle.
  • the conductor hereby forms a conducting layer 3 which is adapted to carry an electrical current in the cable 1.
  • the shown cable 1 includes four conducting layers 3, 6, 9 and 12.
  • the conducting layers are mutually separated by so-called isolating layers 5, 8 and 11, i.e. conducting layers 3 and 6 are separated by the isolating layer 5, conducting layer 6 and 9 are separated by the isolating layer 8, and so forth.
  • the isolating layers have a given constant or an approximately constant thickness.
  • the other conducting layers 6, 9 and 12 also include conductors which are wound spirally around the isolating layers adapted to separate the conducting layer.
  • the number of conducting layers in the cable depends on the desired use of the cable and on the current carrying capability of the tapes used.
  • the winding pitch and the pitch angle of a conductor in a cable is illustrated in Figure 5.
  • the figure shows a cable 501 including a number of layers which is illustrated by the view to the left in the figure. To the right, the same cable 501 is shown.
  • the conductor 502 illustrates a conductor in a conducting layer of the cable 501.
  • WP shows the winding pitch of the conductor, i.e. the distance from the start to the end of a single winding, and the pitch angle.
  • the current distribution between the layers depends on the variation of the winding pitches of the conductors as the inductance between the layers depends on the winding pitches. According to the prior art the pitches are therefore varied from layer to layer in the following.
  • the pitch angles of the conductors in the conducting layers 3, 6, and 9 and 12 all have a given different value which is selected such that they either increase or decrease in steps from layer to layer between a first value of the radial innermost conducting layer, i.e. conducting layer 3, and a second value of the radial outermost conducting layer, i.e. conducting layer 9.
  • the current will distribute more equally between the individual conducting layers resulting in reduced AC losses compared to the losses in a similar known cable having an equal or approximately equal pitch in all layers.
  • the layer radii and/or the materials of the isolating layers or conductive layers is selected in to fulfil (at least approximately) the following inductance equation:
  • U__ is an inductance matrix
  • V__ and I x are the layer voltage and current
  • Aj . is the layer cross sectional area.
  • all the V__ are identical (the layers are in parallel) .
  • Ii/ j. are also identical. In practice, this is achieved by varying the winding pitches of the conducting layers and/or the layer radii and/or the materials of the isolating layers.
  • the pitch angles of the electrical conductors in the conducting layers are varied in the following way.
  • the value of the pitch angles increases in steps from layer to layer between a first value in the radial innermost conducting layer to a second value in an intermediate conducting layer.
  • the intermediate conducting layer is a conducting layer located between the radial innermost of the conducting layers and the radial outermost of the conducting layers.
  • the value of the pitch angles decreases or remains substantially constant from layer to layer between the second value in the intermediate conducting layer and a third value in the outermost of the conducting layers.
  • the variation in pitch angles are not illustrated in a separate figure, but when referring to figure 1, the innermost conducting layer and the outermost conducting layer are denoted 3 and 12, respectively.
  • the intermediate layer may be the conducting layer 6 or the conducting layer 9.
  • Figure 2 illustrates another embodiment of a cable according to the invention.
  • the figure is a cross section view of a cable 15 having a central former 2 and three conducting layers 3, 6 and 9.
  • the conducting layers are mutually separated by isolating layers 16 and 18 as shown in the figure.
  • the isolating layers include mylar, polyamide, polyester, paper, polyester imprinted paper or semiconductor material, and may also include magnetic material.
  • the isolating layers 16 and 18 varies in thickness, that is, the thickness of the isolating layers decrease in steps from layer to layer between a first value of the radial innermost isolating layer and a second value of the radial outermost isolating layer.
  • the thickness of the isolating layers of the conductor By varying the thickness of the isolating layers of the conductor the inductance between the conducting layers are varied.
  • the current will distribute more equally between the conducting layers resulting in reduced AC losses.
  • the cable consists of 8 conducting layers.
  • the central former has an outer diameter of 35 mm, and the thickness for the superconducting tape with insulation is 0.23 mm.
  • Bi2223 is used as superconducting material and mylar is used as the isolating material.
  • the winding pitches are as follows. It is noted that negative pitches denote opposite winding directions of the conductor.
  • the thickness of the four innermost layers is constant and of the four outermost layers is constant. However, there has to be a gap of 0.12 mm between layers 4 and 5 in order to achieve equal currents in each layer and thus lowest losses at the critical current.
  • a second example shows a cable with four non-equidistant layers with almost equal winding pitches .
  • the radius given is the radius on which a superconducting tape of 0.18 mm thickness has to be wound.
  • the resulting cable has an almost homogeneous current distribution in the three outermost layers .
  • pitches are rather small and almost equal which improves the mechanical (bending) properties of the cable. Differential contraction of different layers is minimised.
  • the first winding (layer 8) is made into a diameter of 32 mm.
  • Mylar type with a thickness of 50 ⁇ m is used as layer insulation, and the superconducting tapes are about 0.2 mm thick. It is noted, that here is a specific pattern in the winding pitches - the outer layers have short winding pitches, and the inner layer have longer pitches, becoming constant for layers 7 and 8. Another example is shown below for a four layer cable with a central body.
  • the central body is made from aluminium, and the layers consist of tightly wound copper tapes with for example Mylar inter-layer insulation of 0.05 mm thickness.
  • the outer layers have short winding pitches, i.e. large pitch angles, and the inner layers have longer winding pitches, i.e. shorter pitch angles.
  • the layer thickness of the conducting layer decrease from the inside to the outside.
  • Another example of a copper cable is given below. In this case the outer diameter of the cable is 51 mm, and the body diameter is 21.8 mm - just like in the above-mentioned example.
  • the conductor layer thickness is approximately constant. It is noted that the symbol "oo" in the table indicates that the given conducting layer is solid.
  • the pattern of the winding pitches follows the same trends as seen before - short pitches on the outside, and long pitches on the inside layers.
  • the values of the pitches have been adjusted to account for the dimensions and the resistive component in the inductance equation, which is again approximately fulfilled.
  • a further improvement of the mechanical properties (torsional strength) of the cable can be achieved when the conductors of at least one of said conducting layers have reverse winding direction in respect to the conductors of at least one of the neighbouring conducting layers .
  • the variation of thickness of the isolating layers can be combined by a variation of pitch angle of the conducting layers, a well as a variation of the thickness of the conducting layers and/or their material.
  • the conductors may include high-T c superconducting materials, e.g. Y-Ba-Cu-O or (Bi,Pb)-Sr- Ca-Cu-O.
  • the conductors may also include low-T c superconducting materials, e.g. Nb-based superconducting materials.
  • the conductors may be conventional conductors.
  • the conductor may be formed as tapes, e.g. multi-filament superconducting tapes .
  • Figure 3 illustrates a further embodiment of a cable according to the invention.
  • the figure shows a cross section view of a cable 20 which include a central former 2 and four conducting layers 3, 6, 9 and 12.
  • the conducting layers are mutually separated by a first isolating layer 21, a second isolating layer 22, and a third isolating layer 23; see Figure 3.
  • the isolating layers all have the same thickness, but in contrast to the prior art cable shown in figure 1, the material of the isolating layers can vary from layer to layer, i.e. the first, second and third isolation layers 21, 22, 24 consist of a first, second and third isolating material, respectively. Magnetic materials may be included in some, but not all layers.
  • the materials of the isolating layers are selected in accordance with their magnetical properties.
  • a plurality of effects have influence on the current distribution in the cable, and according to the invention the magnetical properties of the isolating layers have been found to be one of these.
  • the magnetical susceptibility of the isolating layer separating two conducting layers effects the mutual inductance between the conducting layers.
  • the influence of the magnetical properties of the isolating layers can be explained using a simplified model. In general, the mutual inductance decreases as the magnetically susceptibility increases. Therefore, the current distribution between the conducting layers of a cable can be adjusted by selecting the materials of the isolating layers properly, i.e. an even current distribution and hereby a reduced AC loss can be obtained.
  • the magnetical susceptibility of the isolating layers vary in steps from layer to layer, e.g. from a first value of the innermost isolating layer to a second value - higher than the first value - of the outermost isolating layer.
  • Figure 4 illustrates a further embodiment of a cable according to the invention.
  • the figure shows a cross section view of a cable 25 which include a central former 2 and four conducting layers 3, 6, 9 and 12.
  • the conducting layers are mutually separated by a first, second and third isolating layer 26, 27 and 28; see Figure .
  • both the thickness of the isolating layers and the material of the isolating layers varies from layer to layer.
  • the thickness of the isolating layers 26, 27 and 28 decrease in steps from layer to layer between a first value of the radial innermost isolating layer 26 and a second value of the radial outermost isolating layer 28.
  • the material of the isolating layers can also vary from layer to layer, and may include magnetic materials.
  • the central former of a cable according to the invention can be formed of any isolating material, conventional conducting material, or superconducting material depending on the intended use of the cable.
  • the described principle of a cable having varying thickness of the individual isolating layers can also be used on cables without a central former.
  • a cable according to invention can include an arbitrary number of conducting layers.
  • the thickness of the isolating and conducting layers and the pitches can be varied arbitrarily.
  • one or more of the isolating layers consists of a number of layers.
  • such isolating layers - which may be called multi-layered isolating layers - can be composed of different materials giving the isolating layer a desired mechanical and/or electrical characteristics.
  • the desired reduction of the AC losses can be reached as a combination of the effect obtained by the variation of the thickness of the isolating layers and/or the isolating material.
  • pitches of the conducting layers may also be varied.
  • a cable of the described type can be a single core of a multi-core cable having one or more of similar cores and/or one or more of state of the art cable cores.
  • a cable core may also include a number of sub-cores which may or may not have structure of a core according to the invention.
  • the cable can include one or more non-concentric conducting and/or isolating layers. Further, one or more of the conducting and/or isolating layers can be formed to have an arbitrary shape, e.g. oval or approximately oval, elliptical or approximately elliptical.

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  • Superconductors And Manufacturing Methods Therefor (AREA)
  • Communication Cables (AREA)

Abstract

The invention relates to a cable and to a method of constructing a cable with at least one cable core having three or more conducting layers which are mutually separated by isolating layers, resistive layers, or reduced electrical contact surfaces. The conducting layers include electrical conductors, which are arranged helically with predetermined pitch angles. According to the invention, the predefined pitch angles increase in steps from layer to layer from the radial innermost conducting layer to an intermediate conducting layer located between the radial innermost conducting layer, and said predefined pitch angles remain substantially constant or decrease in steps from layer to layer from said intermediate conducting layer to the radial outermost conducting layer. As a result, an even current distribution and hereby a reduced AC loss is obtained. The invention further relates to the use of an AC cable according to the invention as a power cable.

Description

A cable, a method of constructing a cable, and use of a cable
The present invention relates to a cable with at least one cable core having three or more conducting layers which are mutually separated by isolating layers, where said conducting layers include electrical conductors which are arranged helically with predetermined pitch angles, and in particular to an electrical cable with reduced AC loss.
When using electrical power cables it is generally desirable to obtain as low power loss as possible. Cables adapted to have low losses are known from the prior art. The prior art discloses AC cables with at least one cable core having a number of conducting layers, which are mutually separated by isolating layers. The conducting layers are normally formed by electrical conductors, which are arranged helically with predetermined pitch angles .
The innermost conductor which may be of superconducting material is normally wound spirally around a central former and hereby forms a conducting layer. Likewise, the other conducting layers which may also be of superconducting material are normally wound spirally around the isolating layers adapted to separate the conducting layers. The number of conducting layers required depends on the desired use of the cable and on the current carrying capability of the tapes used.
The current distribution between the layers depends on the winding pitches, the layer radii, the layer thickness, and the resistivity of the layers of the conductors, as the inductance between the layers depends on the winding pitches. According to the prior art pitches are therefore varied from layer to layer in a given way. As a result the current will distribute more equally between the conducting layers resulting in reduced AC losses.
WO 96/39705 discloses a cable with a central carrier body around which electrical conductors are arranged helically with predetermined pitch angles in at least three conductor positions. The pitch angles of the conductors in the individual conductor positions are selected such that they either increase or decrease in steps from position to position between a first value of the radial innermost conductor position and a second value of the radial outermost conductor position.
Even though the AC cables according to the prior art are found to be useful, they have the drawback that quite large variations of the winding pitches are required in order to obtain an equal current distribution. Furthermore, in practice, it is difficult to produce cables with these large variations in pitches.
The object of the invention is to provide an AC cable with low AC-loss and which overcome the disadvantages of the state of the art cables.
This object is achieved by a cable with at least one cable core having three or more conducting layers which are mutually separated by isolating layers, where said conducting layers include electrical conductors which are arranged helically with predetermined pitch angles, in which said predefined pitch angles increase in steps from layer to layer from the radial innermost conducting layer to an intermediate conducting layer located between the radial innermost conducting layer and the radial outermost conducting layer, and said predefined pitch angles remain substantially constant or decrease in steps from layer to layer from said intermediate conducting layer to the radial outermost conducting layer.
Hereby, a homogenous distribution of the current in the cable and thus a reduction of the AC losses in the cable is obtained. Further, a cable having less variations of the winding pitches compared to cables of the prior art can be obtained. This is of interest as strongly varying pitches lead to differential thermal contraction of the different layers during cool-down of the cable. Further, small variation of the pitches between the layers is desirable as these result in beneficial mechanical properties of the cable.
The invention is based on the fact that the equations to be solved in order to design a cable of the above- mentioned type having reduced AC losses have been found to be very complex and cannot be solved analytically. The equations include a plurality of coupled parameters making the system difficult to solve, i.e. when varying one parameter, one or more other parameters may also be affected. When using a simplified model, the relation between some parameters can be explained e.g. the inductance is found to decrease as the radius of a conducting layer is increased, and the self-inductance of a conducting layer increases as the pitch angle increases. In cables not containing superconductors, layer resistance also plays a role. In practice it has been found that a homogenous current distribution can be obtained over the cross section of a cable of the above- mentioned type when designing the cable according to the invention, and hereby the above-mentioned advantages are obtained. The object of the invention can also be achieved by a cable in which:
• at least one of said isolating layers has a thickness different from the thickness of at least one of the other isolating layers,
• at least one of said conducting layers has a thickness different from the thickness of at least one of the other conducting layers,
• at least one of said isolating layers includes material which is different from the material of at least one of the other isolating layers, or
• at least one of said conducting layers includes material, which is different from the material of at least one of the other conducting layers.
Hereby, a homogenous distribution of the current in the cable and thus a reduction of the AC losses in the cable is obtained. Even though a cable can be constructed having a single of the above-mentioned characteristics, two or more characteristics can be combined. Hereby, an increased degree of freedom when designing a cable of the above-mentioned type is obtained, as the desired homogenous distribution of the current in the cable can be obtained by varying one or more additional parameters, i.e. in addition to varying the winding pitches, the thickness of the isolating layers, the thickness of the conducting layers, the material of the isolating layers may be varied, and/or the material of the conducting layers may be varied. As a result, the variation in winding pitches can be reduced whereby further improvement of the mechanical properties of the cable is obtained.
In a preferred embodiment at least one of said isolating layers is thicker than the radial outermost of the neighbouring isolating layers. In another preferred embodiment at least one of said conducting layers is thicker than the radial outermost of the neighbouring conducting layers.
In accordance with a further embodiment said thickness of said isolating layers and/or said conducting layers decrease in steps from layer to layer between a first value of the radial innermost isolating layer and a second value of the radial outermost isolating layer.
In a preferred embodiment, the resistivity of the conducting layer material increases in steps from layer to layer from a first value of the radial innermost conducting layer to a second value of the radial outermost conducting layer, i.e. the invention can be used in non-superconducting cables.
In another preferred embodiment that said conductors includes super-conducting material, i.e. the invention can be used in superconducting cables. For example, said super-conducting material is high-Tc super-conducting material .
The invention also relates to a method of producing a cable of the above-mentioned type.
The present invention further relates to the use of a cable according to the invention as a power cable.
The present invention will now be described more fully with reference to the drawings, in which
Figure 1 shows a schematic cross section view of the current carrying part of a cable according to the prior art, Figure 2 illustrates a first embodiment of the current carrying part of a cable according to the invention,
Figure 3 illustrates a second embodiment of the current carrying part of a cable according to the invention,
Figure 4 illustrates a third embodiment of the current carrying part of a cable according to the invention, and
Figure 5 illustrates the winding pitch and the pitch angle of a conductor in a conducting layer of an electrical cable.
Generally, it is desirable to obtain as low power loss as possible in electrical cables, e.g. when the cable is used as an AC power cable, e.g. an underground cable, or an overhead power line, e.g. as power lines for electrically driving vehicles such as trains.
The prior art discloses cables with at least one cable core having a number of conducting layers which are mutually separated by isolating layers, resistive layers, or reduced electrical contact surfaces. The term isolating layer shall be read as isolating layers, resistive layers, or reduced electrical contact surfaces in this context. The conducting layers are normally formed by electrical conductors which are arranged helically with predetermined pitch angles.
Figure 1 is a cross section view of a cable 1 according to the prior art and illustrates the structure of the cable 1. The cable 1 includes a central former 2 around which an electrical conductor is arranged helically with a predetermined pitch angle. The conductor hereby forms a conducting layer 3 which is adapted to carry an electrical current in the cable 1. s can be seen from the figure, the shown cable 1 includes four conducting layers 3, 6, 9 and 12. The conducting layers are mutually separated by so-called isolating layers 5, 8 and 11, i.e. conducting layers 3 and 6 are separated by the isolating layer 5, conducting layer 6 and 9 are separated by the isolating layer 8, and so forth. The isolating layers have a given constant or an approximately constant thickness.
The other conducting layers 6, 9 and 12 also include conductors which are wound spirally around the isolating layers adapted to separate the conducting layer. The number of conducting layers in the cable depends on the desired use of the cable and on the current carrying capability of the tapes used.
The winding pitch and the pitch angle of a conductor in a cable is illustrated in Figure 5. The figure shows a cable 501 including a number of layers which is illustrated by the view to the left in the figure. To the right, the same cable 501 is shown. A conductor 502, which is wound around a given layer in the cable, is also shown in the figure. The conductor 502 illustrates a conductor in a conducting layer of the cable 501. In the figure WP shows the winding pitch of the conductor, i.e. the distance from the start to the end of a single winding, and the pitch angle.
The current distribution between the layers depends on the variation of the winding pitches of the conductors as the inductance between the layers depends on the winding pitches. According to the prior art the pitches are therefore varied from layer to layer in the following. The pitch angles of the conductors in the conducting layers 3, 6, and 9 and 12 all have a given different value which is selected such that they either increase or decrease in steps from layer to layer between a first value of the radial innermost conducting layer, i.e. conducting layer 3, and a second value of the radial outermost conducting layer, i.e. conducting layer 9. As a result the current will distribute more equally between the individual conducting layers resulting in reduced AC losses compared to the losses in a similar known cable having an equal or approximately equal pitch in all layers.
According to the invention the layer radii and/or the materials of the isolating layers or conductive layers is selected in to fulfil (at least approximately) the following inductance equation:
V =MU ^ + RI, for ^ = ^ and V, = V, 9 dt ' A, A, '
Where U__ is an inductance matrix, and V__ and Ix are the layer voltage and current, and Aj. is the layer cross sectional area. By definition all the V__ are identical (the layers are in parallel) . As indicated it is desirable to achieve a cable in which Ii/ j. are also identical. In practice, this is achieved by varying the winding pitches of the conducting layers and/or the layer radii and/or the materials of the isolating layers. Some examples are given below.
It is noted that the high AC loss of the cables having approximately equal pitch in all layers is due to the fact that the current concentrates in the outer layers of the cable. This leads to losses that are virtually identical to the ones found in a solid tube conductor of the dimensions of the cable. The drawback of cables according to the prior art is the quite large variations of winding pitches which are required to obtain a desired equalization of the current distribution. Cables having these large pitch variations are often technically unrealisable. In addition, strongly varying pitches may not be desirable as they lead to differential thermal contraction of the different layers during cool-down or warm-up of the cable. Further, small variation of the pitches between the layers as well as small pitches are desirable as these result in beneficial mechanical properties of the cable.
According to the invention, the pitch angles of the electrical conductors in the conducting layers are varied in the following way. The value of the pitch angles increases in steps from layer to layer between a first value in the radial innermost conducting layer to a second value in an intermediate conducting layer. The intermediate conducting layer is a conducting layer located between the radial innermost of the conducting layers and the radial outermost of the conducting layers. Furthermore, the value of the pitch angles decreases or remains substantially constant from layer to layer between the second value in the intermediate conducting layer and a third value in the outermost of the conducting layers. The variation in pitch angles are not illustrated in a separate figure, but when referring to figure 1, the innermost conducting layer and the outermost conducting layer are denoted 3 and 12, respectively. The intermediate layer may be the conducting layer 6 or the conducting layer 9.
Figure 2 illustrates another embodiment of a cable according to the invention. The figure is a cross section view of a cable 15 having a central former 2 and three conducting layers 3, 6 and 9. The conducting layers are mutually separated by isolating layers 16 and 18 as shown in the figure. For example, the isolating layers include mylar, polyamide, polyester, paper, polyester imprinted paper or semiconductor material, and may also include magnetic material.
In the shown embodiment of a cable according to the invention, the isolating layers 16 and 18 varies in thickness, that is, the thickness of the isolating layers decrease in steps from layer to layer between a first value of the radial innermost isolating layer and a second value of the radial outermost isolating layer. By varying the thickness of the isolating layers of the conductor the inductance between the conducting layers are varied. By performing a suitable selection of the thickness of the individual isolating layers of the cable the current will distribute more equally between the conducting layers resulting in reduced AC losses. Below, two examples of cables according to the invention are given.
In a first example the cable consists of 8 conducting layers. The central former has an outer diameter of 35 mm, and the thickness for the superconducting tape with insulation is 0.23 mm. In the shown example, Bi2223 is used as superconducting material and mylar is used as the isolating material. The winding pitches are as follows. It is noted that negative pitches denote opposite winding directions of the conductor.
Figure imgf000012_0001
The thickness of the four innermost layers is constant and of the four outermost layers is constant. However, there has to be a gap of 0.12 mm between layers 4 and 5 in order to achieve equal currents in each layer and thus lowest losses at the critical current.
A second example shows a cable with four non-equidistant layers with almost equal winding pitches . The radius given is the radius on which a superconducting tape of 0.18 mm thickness has to be wound.
Figure imgf000013_0001
It is noted that the resulting cable has an almost homogeneous current distribution in the three outermost layers .
It is further noted that the pitches are rather small and almost equal which improves the mechanical (bending) properties of the cable. Differential contraction of different layers is minimised.
One example of a winding pattern in a superconducting cable that approximately fulfils the inductance equation is shown below. In this case, the first winding (layer 8) is made into a diameter of 32 mm.
Figure imgf000013_0002
Mylar type with a thickness of 50 μm is used as layer insulation, and the superconducting tapes are about 0.2 mm thick. It is noted, that here is a specific pattern in the winding pitches - the outer layers have short winding pitches, and the inner layer have longer pitches, becoming constant for layers 7 and 8. Another example is shown below for a four layer cable with a central body. The central body is made from aluminium, and the layers consist of tightly wound copper tapes with for example Mylar inter-layer insulation of 0.05 mm thickness.
Figure imgf000014_0001
The same kind of trend in the winding pattern is visible as in the superconducting cable - the outer layers have short winding pitches, i.e. large pitch angles, and the inner layers have longer winding pitches, i.e. shorter pitch angles. It is noted that in this cable the layer thickness of the conducting layer decrease from the inside to the outside. Another example of a copper cable is given below. In this case the outer diameter of the cable is 51 mm, and the body diameter is 21.8 mm - just like in the above-mentioned example. The conductor layer thickness is approximately constant. It is noted that the symbol "oo" in the table indicates that the given conducting layer is solid.
Figure imgf000014_0002
Again, the pattern of the winding pitches follows the same trends as seen before - short pitches on the outside, and long pitches on the inside layers. The values of the pitches have been adjusted to account for the dimensions and the resistive component in the inductance equation, which is again approximately fulfilled.
A further improvement of the mechanical properties (torsional strength) of the cable can be achieved when the conductors of at least one of said conducting layers have reverse winding direction in respect to the conductors of at least one of the neighbouring conducting layers .
As was seen above the variation of thickness of the isolating layers can be combined by a variation of pitch angle of the conducting layers, a well as a variation of the thickness of the conducting layers and/or their material.
It is noted that the conductors may include high-Tc superconducting materials, e.g. Y-Ba-Cu-O or (Bi,Pb)-Sr- Ca-Cu-O. The conductors may also include low-Tc superconducting materials, e.g. Nb-based superconducting materials. Or, the conductors may be conventional conductors. It is further noted that the conductor may be formed as tapes, e.g. multi-filament superconducting tapes .
Figure 3 illustrates a further embodiment of a cable according to the invention. The figure shows a cross section view of a cable 20 which include a central former 2 and four conducting layers 3, 6, 9 and 12. The conducting layers are mutually separated by a first isolating layer 21, a second isolating layer 22, and a third isolating layer 23; see Figure 3.
In the shown embodiment the isolating layers all have the same thickness, but in contrast to the prior art cable shown in figure 1, the material of the isolating layers can vary from layer to layer, i.e. the first, second and third isolation layers 21, 22, 24 consist of a first, second and third isolating material, respectively. Magnetic materials may be included in some, but not all layers.
According to the invention the materials of the isolating layers are selected in accordance with their magnetical properties. As mentioned previously, a plurality of effects have influence on the current distribution in the cable, and according to the invention the magnetical properties of the isolating layers have been found to be one of these. The magnetical susceptibility of the isolating layer separating two conducting layers effects the mutual inductance between the conducting layers. The influence of the magnetical properties of the isolating layers can be explained using a simplified model. In general, the mutual inductance decreases as the magnetically susceptibility increases. Therefore, the current distribution between the conducting layers of a cable can be adjusted by selecting the materials of the isolating layers properly, i.e. an even current distribution and hereby a reduced AC loss can be obtained. In one embodiment, the magnetical susceptibility of the isolating layers vary in steps from layer to layer, e.g. from a first value of the innermost isolating layer to a second value - higher than the first value - of the outermost isolating layer.
Figure 4 illustrates a further embodiment of a cable according to the invention. The figure shows a cross section view of a cable 25 which include a central former 2 and four conducting layers 3, 6, 9 and 12. The conducting layers are mutually separated by a first, second and third isolating layer 26, 27 and 28; see Figure . In this embodiment both the thickness of the isolating layers and the material of the isolating layers varies from layer to layer. As can be seen from the figure, the thickness of the isolating layers 26, 27 and 28 decrease in steps from layer to layer between a first value of the radial innermost isolating layer 26 and a second value of the radial outermost isolating layer 28. As mentioned, the material of the isolating layers can also vary from layer to layer, and may include magnetic materials.
It should be noted that the central former of a cable according to the invention can be formed of any isolating material, conventional conducting material, or superconducting material depending on the intended use of the cable. The described principle of a cable having varying thickness of the individual isolating layers can also be used on cables without a central former.
Further, it should be noted that a cable according to invention can include an arbitrary number of conducting layers. Likewise, the thickness of the isolating and conducting layers and the pitches can be varied arbitrarily.
In another embodiment of the invention one or more of the isolating layers consists of a number of layers. Hereby, such isolating layers - which may be called multi-layered isolating layers - can be composed of different materials giving the isolating layer a desired mechanical and/or electrical characteristics.
It is further noted, that the desired reduction of the AC losses can be reached as a combination of the effect obtained by the variation of the thickness of the isolating layers and/or the isolating material. In addition, pitches of the conducting layers may also be varied.
Although preferred embodiments of the present invention have been described and shown, the invention is not restricted to those. It may also be embodied in other ways within the sub ect-matter defined in the following claims. For example, the same principle can be used in multi-core cables, i.e. a cable of the described type can be a single core of a multi-core cable having one or more of similar cores and/or one or more of state of the art cable cores. A cable core may also include a number of sub-cores which may or may not have structure of a core according to the invention. As an other example, the cable can include one or more non-concentric conducting and/or isolating layers. Further, one or more of the conducting and/or isolating layers can be formed to have an arbitrary shape, e.g. oval or approximately oval, elliptical or approximately elliptical.

Claims

P a t e n t C l a i m s :
1. A cable with at least one cable core having three or more conducting layers which are mutually separated by isolating layers, where said conducting layers include electrical conductors which are arranged helically with predetermined pitch angles, c h a r a c t e r i z e d in that said predefined pitch angles increase in steps from layer to layer from the radial innermost conducting layer to an intermediate conducting layer located between the radial innermost conducting layer and the radial outermost conducting layer, and said predefined pitch angles remain substantially constant or decrease in steps from layer to layer from said intermediate conducting layer to the radial outermost conducting layer.
2. A cable according to claim 1, c h a r a c t e r i z e d in that a least one of said isolating layers has a thickness different from the thickness of at least one of the other isolating layers.
3. A cable according to claim 1 or 2, c h a r a c t e r i z e d in that at least one of said conducting layers has a thickness different from the thickness of at least one of the other conducting layers.
4. A cable according to one or more of claims 1-3, c h a r a c t e r i z e d in that at least one of said isolating layers is thicker than the radial outermost of the neighbouring isolating layers.
5. A cable according to one or more of claims 1-4, c h a r a c t e r i z e d in that at least one of said conducting layers is thicker than the radial outermost of the neighbouring conducting layers.
6. A cable according to one or more of claims 1-5, c h a r a c t e r i z e d in that said thickness of said isolating layers decrease in steps from layer to layer between a first value of the radial innermost isolating layer and a second value of the radial outermost isolating layer.
7. A cable according to one or more of claims 1-6, c h a r a c t e r i z e d in that said thickness of said conducting layers decrease in steps from layer to layer between a first value of the radial innermost conducting layer and a second value of the radial outermost conducting layer.
8. A cable according to one or more of claims 1-7, c h a r a c t e r i z e d in that at least one of said isolating layers includes material which is different from the material of at least one of the other isolating layers.
9. A cable according to claim 8, c h a r a c t e r i z e d in that the magnetical susceptibility of the isolating layers varies from layer to layer.
10. A cable according to one or more of the preceding claims, c h a r a c t e r i z e d in that at least one of said conducting layers includes material which is different from the material of at least one of the other conducting layers.
11. A cable according to claim 10, c h a r a c t e r i z e d in that the resistivity of the conducting layer material increases in steps from layer to layer from a first value of the radial innermost counducting layer to a second value of the radial outermost conducting layer.
12. A cable according to one or more of claims 1-10, c h a r a c t e r i z e d in that said conductors includes super-conducting material.
13. A cable according to claim 12, c h a r a c t e r i z e d in that said super-conducting material is high-T super-conducting material.
14. A method of constructing a cable with at least one cable core having three or more conducting layers which are mutually separated by isolating layers, where said conducting layers include electrical conductors which are arranged helically with predetermined pitch angles c h a r a c t e r i z e d in that said predefined pitch angles are selected to increase in steps from layer to layer from the radial innermost conducting layer to an intermediate conducting layer located between the radial innermost conduction layer and the radial outermost conduction layer, and said predefined pitch angles are selected to remain substantially constant or decrease in steps from layer to layer from said intermediate conducting layer to said radial outermost conducting layer.
15. A method according to claim 14, c h a r a c t e r i z e d in that the thickness of at least one of said isolating layers is selected to be different from the thickness of at least one of the other isolating layers .
16. A method according to claim 14 or 15, c h a r a c t e r i z e d in that the thickness of at least one of said conducting layers is selected to be different from the thickness of at least one of the other conducting layers.
17. A method according to one or more of claims 14-16, c h a r a c t e r i z e d in that the material of at least one of said isolating layers is selected to be different from the material of at least one of the other isolating layers.
18. A method according to one or more of claims 14-17, c h a r a c t e r i z e d in that the material of at least one of said conducting layers is selected to be different from the material of at least one of the other conducting layers.
19. Use of cable according to any one of the preceding claims as an AC power cable, an overhead line, or a drive cable for an electrically driving vehicle.
PCT/DK2000/000069 1999-02-19 2000-02-21 A cable, a method of constructing a cable, and use of a cable Ceased WO2000049626A1 (en)

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JP2000600280A JP2002537632A (en) 1999-02-19 2000-02-21 Cables, how to configure the cables, and how to use the cables
MXPA01008327A MXPA01008327A (en) 1999-02-19 2000-02-21 A cable, a method of constructing a cable, and use of a cable.
US09/890,624 US6750399B1 (en) 1999-02-19 2000-02-21 Cable, a method of constructing a cable, and use of a cable
EP00904861A EP1163685A1 (en) 1999-02-19 2000-02-21 A cable, a method of constructing a cable, and use of a cable
AU26584/00A AU2658400A (en) 1999-02-19 2000-02-21 A cable, a method of constructing a cable, and use of a cable
PL00350188A PL350188A1 (en) 1999-02-19 2000-02-21 A cable, a method of constructing a cable, and use of a cable
NO20014028A NO20014028L (en) 1999-02-19 2001-08-17 Cable, how to build a cable, and using a cable

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Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1117104A3 (en) * 2000-01-13 2002-11-27 Sumitomo Electric Industries, Ltd. Superconducting cable and method of analyzing the same
EP1174887A3 (en) * 2000-07-21 2003-02-05 The Furukawa Electric Co., Ltd. Superconducting cable for alternating current
EP2333788A3 (en) * 2009-12-11 2012-06-20 Showa Aircraft Industry Co., Ltd. High frequency electric wire

Families Citing this family (28)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE60333109D1 (en) * 2002-08-01 2010-08-05 Southwire Co Termination for a triaxial superconducting cable
JP4609638B2 (en) * 2004-12-06 2011-01-12 住友電気工業株式会社 DC superconducting cable design system
US20070210479A1 (en) * 2006-03-13 2007-09-13 Mcintyre Leo P Cable manufacturing method
CN101322198B (en) * 2006-04-28 2011-06-08 松下电工株式会社 Feeder for high frequency current
US7255602B1 (en) 2006-11-02 2007-08-14 Hamilton Sundstrand Corporation Shielding for electrical cable assemblies
EP2150961A1 (en) * 2007-06-04 2010-02-10 NKT Cables Ultera A/S A power cable comprising hts tape(s)
WO2009000269A2 (en) 2007-06-22 2008-12-31 Nkt Cables Ultera A/S A superconducting element joint, a process for providing a superconducting element joint and a superconducting cable system
US8594756B2 (en) * 2007-06-22 2013-11-26 Nkt Cables Ultera A/S Superconducting element joint, a process for providing a superconducting element joint and a superconducting cable system
US20120062345A1 (en) * 2008-09-27 2012-03-15 Kurs Andre B Low resistance electrical conductor
WO2011039602A1 (en) * 2009-09-30 2011-04-07 パナソニック電工株式会社 Power supply line for high-frequency current, manufacturing method for same, and power supply line holding structure
US9602168B2 (en) 2010-08-31 2017-03-21 Witricity Corporation Communication in wireless energy transfer systems
KR20120105843A (en) * 2011-03-16 2012-09-26 엘에스전선 주식회사 Power cable for high frequency
US9449739B2 (en) * 2012-10-16 2016-09-20 The Boeing Company High power, high frequency power cable
CN103781208B (en) * 2012-10-17 2016-04-20 昆山渝榕电子有限公司 The conductive structure of heater
US10043599B2 (en) * 2015-04-24 2018-08-07 Sumitomo Electric Industries, Ltd. Multi-core cable
DE102015216276B4 (en) * 2015-08-26 2022-06-15 Jolanta SWIATOWSKA Single core cable with a seal against moisture ingress and a return core
US20170117603A1 (en) * 2015-10-21 2017-04-27 Pulse Biosciences, Inc. Very high voltage coaxial cable design for matching system impedance with minimal cable cross section
DE102016202071A1 (en) * 2016-02-11 2017-08-17 Siemens Aktiengesellschaft Electrical conductor for an electric machine with increased power-to-weight ratio and electrical component for the electric machine
CN110911046B (en) * 2019-12-11 2025-01-28 广东电网有限责任公司 A current-limiting high-temperature superconducting cable
US12412681B2 (en) 2020-02-24 2025-09-09 University Of Houston System Hybrid round superconductor wires using Nb—Ti filaments
US12027290B2 (en) 2021-11-24 2024-07-02 Caterpillar Inc. Radial and axial interface between conductor rod and work machine
US11881653B2 (en) 2021-11-24 2024-01-23 Caterpillar Inc. System and method for positioning a conductive rod powering a work machine
US11923632B2 (en) 2021-11-24 2024-03-05 Caterpillar Inc. Terminal assembly for conductor rod having multiple degrees of freedom
US11855379B2 (en) 2021-11-24 2023-12-26 Caterpillar Inc. Slidable nested conductors
US11688973B2 (en) 2021-11-24 2023-06-27 Caterpillar Inc. Connector assembly for conductor rod having multiple degrees of freedom
US11859370B2 (en) 2021-11-24 2024-01-02 Caterpillar Inc. Multi-tiered interface between conductor rod and work machine
US11894631B2 (en) 2021-11-24 2024-02-06 Caterpillar Inc. Concentric conductor
CN114999730B (en) * 2022-06-30 2025-02-25 中国科学院合肥物质科学研究院 A high-current high-temperature superconducting conductor based on a central skeleton of a twisted cable structure

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3730966A (en) * 1971-01-21 1973-05-01 Gen Electric Cryogenic cable
EP0623937A2 (en) * 1993-05-07 1994-11-09 Sumitomo Electric Industries, Ltd. High TC superconducting cable conductor employing oxide superconductor
WO1996039705A1 (en) * 1995-06-06 1996-12-12 Siemens Aktiengesellschaft A.c. cable with stranded electrical conductors

Family Cites Families (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR1490519A (en) 1966-04-12 1967-08-04 Comp Generale Electricite Cryoconductive for three-phase lines
GB1285442A (en) * 1969-08-11 1972-08-16 Central Electr Generat Board Improvements in or relating to electrical conductors using superconducting material
FR2309986A1 (en) * 1975-04-23 1976-11-26 Kernforschung Gmbh Ges Fuer MULTI-FILAMENT SUPPRACONDUCTOR CABLE
DE2541792C2 (en) 1975-09-19 1983-12-22 kabelmetal electro GmbH, 3000 Hannover Electric low-temperature cable or pipe arrangement for the transmission of deep-frozen liquids or gases
FI58408C (en) * 1978-08-18 1981-01-12 Nokia Oy Ab ISOLERAD HOEGSPAENNINGSKABEL
JPH01122510A (en) * 1987-11-06 1989-05-15 Hitachi Ltd Superconducting cable
DE19520587A1 (en) * 1995-06-06 1996-12-12 Siemens Ag AC cable with two concentric conductor arrangements made of stranded single conductors
US6397454B1 (en) * 1996-09-26 2002-06-04 American Superconductor Corp. Decoupling of superconducting elements in high temperature superconducting composites
JPH10312718A (en) * 1997-05-12 1998-11-24 Sumitomo Electric Ind Ltd Superconducting cable conductor
KR20010092758A (en) * 1998-12-24 2001-10-26 지아네시 피에르 지오반니 Superconducting cable
CA2357019A1 (en) * 1998-12-24 2000-07-06 Pirelli Cavi E Sistemi S.P.A. Superconducting cable
US6552260B2 (en) 2000-01-13 2003-04-22 Sumitomo Electric Industries, Ltd. Superconducting cable and method of analyzing the same
JP2002100249A (en) * 2000-07-21 2002-04-05 Furukawa Electric Co Ltd:The Superconducting cable for AC

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3730966A (en) * 1971-01-21 1973-05-01 Gen Electric Cryogenic cable
EP0623937A2 (en) * 1993-05-07 1994-11-09 Sumitomo Electric Industries, Ltd. High TC superconducting cable conductor employing oxide superconductor
WO1996039705A1 (en) * 1995-06-06 1996-12-12 Siemens Aktiengesellschaft A.c. cable with stranded electrical conductors

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1117104A3 (en) * 2000-01-13 2002-11-27 Sumitomo Electric Industries, Ltd. Superconducting cable and method of analyzing the same
US6552260B2 (en) 2000-01-13 2003-04-22 Sumitomo Electric Industries, Ltd. Superconducting cable and method of analyzing the same
EP1174887A3 (en) * 2000-07-21 2003-02-05 The Furukawa Electric Co., Ltd. Superconducting cable for alternating current
EP2333788A3 (en) * 2009-12-11 2012-06-20 Showa Aircraft Industry Co., Ltd. High frequency electric wire

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