EP0477006A1 - A high impedance electrical cable and method of forming same - Google Patents

A high impedance electrical cable and method of forming same Download PDF

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Publication number
EP0477006A1
EP0477006A1 EP91308533A EP91308533A EP0477006A1 EP 0477006 A1 EP0477006 A1 EP 0477006A1 EP 91308533 A EP91308533 A EP 91308533A EP 91308533 A EP91308533 A EP 91308533A EP 0477006 A1 EP0477006 A1 EP 0477006A1
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EP
European Patent Office
Prior art keywords
conductors
conductor
surface portion
cable assembly
electrical
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Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
EP91308533A
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German (de)
French (fr)
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EP0477006B1 (en
Inventor
Richard F. Strauss
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ABB Installation Products Inc
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Thomas and Betts Corp
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Publication date
Priority claimed from US07/585,860 external-priority patent/US5091610A/en
Priority claimed from US07/585,858 external-priority patent/US5049215A/en
Application filed by Thomas and Betts Corp filed Critical Thomas and Betts Corp
Publication of EP0477006A1 publication Critical patent/EP0477006A1/en
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    • 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
    • H01B7/08Flat or ribbon cables
    • H01B7/0823Parallel wires, incorporated in a flat insulating profile
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01BCABLES; CONDUCTORS; INSULATORS; SELECTION OF MATERIALS FOR THEIR CONDUCTIVE, INSULATING OR DIELECTRIC PROPERTIES
    • H01B13/00Apparatus or processes specially adapted for manufacturing conductors or cables
    • H01B13/0006Apparatus or processes specially adapted for manufacturing conductors or cables for reducing the size of conductors or cables
    • 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
    • H01B7/0009Details relating to the conductive cores

Definitions

  • This invention relates generally to high impeded electrical cable and also relates to a method of forming a high impedance cable having conductors being spaced at a given pitch.
  • Cable of this type typically includes a plurality of electrical conductors arranged in side-by-side spaced orientation. These conductors are surrounded by an insulative casing which electrically isolates each of the conductors.
  • each conductor measured by the cross-sectional area, dictates the amount of signal current that each conductor can carry.
  • the amount of signal current carried is directly proportional to the size of the conductor.
  • the impedance value of the cable is related, in part, to the spacing between adjacent conductors.
  • the greater the space between adjacent conductors i.e. the more insulating mass therebetween the greater the impedance value of the cable.
  • the present invention provides a method of forming an electrical cable assembly including providing a plurality of elongate electrical conductors having a substantially circular cross-sectional shape. One of the conductors is flattened along its length. The conductors are arranged so that the flattened portion of the one conductor is facing an adjacent conductor. An insulative casing is formed around the connectors to place the connectors in electrical isolation.
  • the present invention also provides an electrical cable assembly including a plurality of elongate electrical conductors and an insulative casing surrounding each of the conductors.
  • the conductors are arranged in side-by-side transversely spaced orientation.
  • the casing includes a major planar surface.
  • One of the conductors includes a flat surface portion which faces an adjacent one of the plural conductors.
  • the one conductor further includes a curved surface portion which faces the major planar surface to provide mass termination capabilities.
  • Figure 1 shows an extend of a conventional round conductor of the type used in accordance with the present invention.
  • Figure 2 shows schematically, the cross-sectional shape of the conductor of Figure 1.
  • Figure 3 shows, partially in section and partially schematically, a portion of a conventional flat multiconductor cable including round conductors of the type shown in Figure 1.
  • FIG. 4 shows schematically, an electrical conductor formed in accordance with the present invention.
  • Figure 5 shows, partially in section and partially schematically, a portion of an electrical cable of the present invention employing the conductor shown in Figure 4.
  • Conductor 10 is a solid round copper wire of conventional construction used to transmit electrical signals therealong.
  • Conductor 10 has a major longitudianl axis c and a circular cross-sectional shape as shown in Figure 2.
  • Typical wire sizes used in accordance with the present invention include American Wire Gage (AWG) sizes 26 through 30. Round conductors of these sizes have diameters d of between .010 inches and .016 inches. The cross-sectional areas of these conductors range between approximately 100 and 250 circular mils. Electrical resistance of a copper wire is inversely proportional to its cross-sectional area. Therefore, larger wires will have less resistance and can accordingly carry a greater amount of electrical signal therealong.
  • AMG American Wire Gage
  • Cable assembly 12 includes an electrically insulative casing 14 formed of extruded plastic such as polyvinyl chloride (PVC).
  • Casing 14 is generally flat having an upper planar surface 16 and a lower planar surface 18 substantially parallel thereto. While planar surfaces 16 and 18 are shown as flat, cable having undulating planar surfaces may also be employed. Cables of this type are commonly referred to as ribbon cables.
  • Conductors 10 are supported within casing 14 in electrical isolation. Conductors 10 are spaced from one another within casing 14 at a given pitch. Conductor pitch is defined by the distance between center line c of adjacent conductors 10. The pitch between conductors of flat ribbon cable is critical as ribbon cable is designed to be mass terminated to electrical connectors (not shown) having insulation displacing contacts fixedly supported in an insulative housing. the pitch of the cable must match the pitch of the connector. In Figure 3, the conductors are spaced at a pitch of P1. Since conductors 10 are of the round variety, the actual space between facing surfaces of adjacent conductors will be less than P1.
  • the distance between tangent points T1 and T2 of side-by-side conductors 10′ and 10 ⁇ is S1, which is substantially less than P1.
  • the impedance value of an electrical cable is determined, in part, by the special separation between facing surfaces of adjacent conductors. As a mass of insulating material increases between adjacent conductors, the impedance value of the cable will correspondingly increase. Thus, as conductor size is increased and/or the pitch between conductors is decreased, the impedance value of the cable will drop.
  • the present invention provides a technique for placing conductors at a closer pitch without either decreasing conductor size or decreasing the impedance value of the cable.
  • Conductor 20 is formed from a conventional solid round conductor such as conductor 10 shown in Figure 1.
  • the round conductor 20 is passed through flattening rollers (not shown) to form flat surfaces 21 along the length thereof.
  • the rollers are of the type conventionally used in the metallic forming art to press flat surfaces on metallic objects. Rollers capable of such function are commercially available.
  • Flat surfaces 21 may be placed on conductor 20 either simultaneously or by separate forming steps. As shown in Figure 4, flat surfaces 21 are diametrically opposed and substantially parallel to one another.
  • An important feature of the present invention is that rather than cutting a flat surface on each diametrical side of conductor 20, the conductor is actually flattened in a manner such that opposed upper and lower rounded conductor surfaces 23 and 25 are outwardly deformed from their original condition. Thus, the cross-sectional area of conductor 20 does not change during formation. This permits the conductor to carry the same amount of signal current as was possible prior to the forming steps employed in the present invention.
  • upper and lower surfaces 23, 25 also substantially maintain their rounded configuration. This facilitates the ability to mass terminate cable assembly 22 (Fig. 5) with conventional electrical connectors having insulation displacing contacts (not shown).
  • Cable assembly 22 includes insulative casing 24 similar to casing 14 shown in Figure 3.
  • Casing 24 includes upper and lower major planar surfaces 26 and 28 respectively which support therebetween conductors 20.
  • Cable assembly 22 includes conductors 20 of the type shown in Figure 4.
  • Conductors 20 are arranged within casing 24 so that flattened surfaces 21 are substantially perpendicular to major planar surfaces 26 and 28 and center lines c line in a common plane.
  • Rounded surfaces 23 and 25 face major surfaces 26 and 28 respectively.
  • Cable assembly 22 is typically formed by extruding insulative casing 24 over conductors 20.
  • the conductors 20 of cable assembly 22 are spaced at a pitch P1 which is less than P2 the pitch of cable assembly 12 (Fig. 3). Since each of conductors 20 includes flattened surfaces 21, the distance S2 between facing flattened surfaces 21 of adjacent conductors 20′ and 20 ⁇ is not correspondingly reduced. Comparing cable assembly 12 shown in Figure 3, with cable assembly 22 of the present invention shown in Figure 5, this feature is illustrated. While the conductor pitch of the cable assembly 22 of the present invention has been reduced from P1 to P2, the actual spacing between facing surfaces of adjacent conductors remains substantially the same. That is, S1 ⁇ S2.
  • the impedance value of cable assembly 22 would be substantially similar to impedance value of cable assembly 12. Also, as mentioned above, since conductors 20 maintain the same cross-sectional area as conductors 10, the signal carrying capability of cable assembly 22 is not reduced.
  • the present invention employs multiple conductors, each identically formed to have diametrically opposed flattened surfaces 21.
  • conductors 20 may be formed to have only one flattened surface.
  • only selected ones of conductors 20 may be formed to have one or more flattened surfaces. This would permit the cable assembly 22 to have selected different impedance values as between various pairs of conductors.

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  • Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Insulated Conductors (AREA)
  • Coupling Device And Connection With Printed Circuit (AREA)
  • Multi-Conductor Connections (AREA)

Abstract

An electrical cable assembly includes a plurality of round electrical conductors. One of the conductors (20) is flattened along a longitudinal surface portion (21). The conductors are arranged in side-by-side transversely spaced position with the flattened portion (21) of the one conductor (20) facing an adjacent conductor (20). An insulative casing (24) is extruded about the conductors and includes a major planar surface (26) permitting mass termination to a connector. The one conductor (20) includes a curved surface (23) portion which faces the major planar surface (26).

Description

    FIELD OF THE INVENTION
  • This invention relates generally to high impeded electrical cable and also relates to a method of forming a high impedance cable having conductors being spaced at a given pitch.
  • BACKGROUND OF THE INVENTION
  • Flat multiconductor ribbon cable is used extensively in the electronics industry, especially in the computer field. Cable of this type typically includes a plurality of electrical conductors arranged in side-by-side spaced orientation. These conductors are surrounded by an insulative casing which electrically isolates each of the conductors.
  • Several factors affect the quality and reliability of these cables. The size of each conductor, measured by the cross-sectional area, dictates the amount of signal current that each conductor can carry. The amount of signal current carried is directly proportional to the size of the conductor.
  • In addition, the impedance value of the cable is related, in part, to the spacing between adjacent conductors. In cables having similar dielectric constants, the greater the space between adjacent conductors (i.e. the more insulating mass therebetween) the greater the impedance value of the cable.
  • It is desirable to construct a cable which is capable of carrying high signal currents while also having a high impedance value. Thus, cable having large conductors and ample spacing between adjacent conductors would be ideal. However, in the modern computer environment, a cable assembly of this construction is not practical. In fact, the current state of the computer industry is to require smaller cable, i.e. cable with conductors spaced at a smaller pitch, while maintaining the high signal carrying capabilities of the cable as well as the high impedance value. However, when spacing conductors at a smaller pitch, the insulating mass between facing surfaces of adjacent conductors is reduced. This results in lowering the impedance value of the cable. Side-by-side round conductors, typically used in cables of this type, when spaced at a small pitch, would result in the facing curved surfaces of adjacent conductors being in close proximity. This would cause the impedance value to be lowered beyond tolerability.
  • The art has seen the use of rectangular conductors in flat multiconductor cable assemblies which permit the conductors to be placed on a smaller pitch while maintaining more insulating mass between facing surfaces of adjacent conductors. However, rectangular conductors are difficult to form and are more expensive than conventional round conductors. Further, in most computer applications, mass cable termination to insulation displacing contacts of electrical connectors is desired. Rectangular conductors are inherently difficult to mass terminate in this matter.
  • It is therefore desirable to provide a flat multiconductor electrical cable which permits spacing of electrical conductors at a reduced pitch while maintaining a high degree of signal transmission and a high impedance value.
  • SUMMARY OF THE INVENTION
  • It is an object of the present invention to provide an improved multiconductor electrical cable.
  • It is a further object of the invention to form an electrical cable where conductors may be spaced at a small pitch while maintaining high signal carrying capabilities and sufficient insulation between adjacent conductors.
  • In the efficient attainment of these and other objects, the present invention provides a method of forming an electrical cable assembly including providing a plurality of elongate electrical conductors having a substantially circular cross-sectional shape. One of the conductors is flattened along its length. The conductors are arranged so that the flattened portion of the one conductor is facing an adjacent conductor. An insulative casing is formed around the connectors to place the connectors in electrical isolation.
  • The present invention also provides an electrical cable assembly including a plurality of elongate electrical conductors and an insulative casing surrounding each of the conductors. The conductors are arranged in side-by-side transversely spaced orientation. The casing includes a major planar surface. One of the conductors includes a flat surface portion which faces an adjacent one of the plural conductors. The one conductor further includes a curved surface portion which faces the major planar surface to provide mass termination capabilities.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • Figure 1 shows an extend of a conventional round conductor of the type used in accordance with the present invention.
  • Figure 2 shows schematically, the cross-sectional shape of the conductor of Figure 1.
  • Figure 3 shows, partially in section and partially schematically, a portion of a conventional flat multiconductor cable including round conductors of the type shown in Figure 1.
  • Figure 4 shows schematically, an electrical conductor formed in accordance with the present invention.
  • Figure 5 shows, partially in section and partially schematically, a portion of an electrical cable of the present invention employing the conductor shown in Figure 4.
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • Referring to Figure 1 and 2, an electrical conductor 10, used in accordance with the present invention is shown. Conductor 10 is a solid round copper wire of conventional construction used to transmit electrical signals therealong. Conductor 10 has a major longitudianl axis c and a circular cross-sectional shape as shown in Figure 2.
  • Typical wire sizes used in accordance with the present invention include American Wire Gage (AWG) sizes 26 through 30. Round conductors of these sizes have diameters d of between .010 inches and .016 inches. The cross-sectional areas of these conductors range between approximately 100 and 250 circular mils. Electrical resistance of a copper wire is inversely proportional to its cross-sectional area. Therefore, larger wires will have less resistance and can accordingly carry a greater amount of electrical signal therealong.
  • Referring now to Figure 3, a plurality of conductors 10 are arranged in an electrical cable assembly 12. Cable assembly 12 includes an electrically insulative casing 14 formed of extruded plastic such as polyvinyl chloride (PVC). Casing 14 is generally flat having an upper planar surface 16 and a lower planar surface 18 substantially parallel thereto. While planar surfaces 16 and 18 are shown as flat, cable having undulating planar surfaces may also be employed. Cables of this type are commonly referred to as ribbon cables.
  • Conductors 10 are supported within casing 14 in electrical isolation. Conductors 10 are spaced from one another within casing 14 at a given pitch. Conductor pitch is defined by the distance between center line c of adjacent conductors 10. The pitch between conductors of flat ribbon cable is critical as ribbon cable is designed to be mass terminated to electrical connectors (not shown) having insulation displacing contacts fixedly supported in an insulative housing. the pitch of the cable must match the pitch of the connector. In Figure 3, the conductors are spaced at a pitch of P₁. Since conductors 10 are of the round variety, the actual space between facing surfaces of adjacent conductors will be less than P₁.
  • As shown in Figure 3, the distance between tangent points T₁ and T₂ of side-by-side conductors 10′ and 10˝ is S₁, which is substantially less than P₁. The impedance value of an electrical cable is determined, in part, by the special separation between facing surfaces of adjacent conductors. As a mass of insulating material increases between adjacent conductors, the impedance value of the cable will correspondingly increase. Thus, as conductor size is increased and/or the pitch between conductors is decreased, the impedance value of the cable will drop.
  • The present invention provides a technique for placing conductors at a closer pitch without either decreasing conductor size or decreasing the impedance value of the cable.
  • Referring to Figure 4, an electrical conductor formed in accordance with the present invention is shown. Conductor 20 is formed from a conventional solid round conductor such as conductor 10 shown in Figure 1. The round conductor 20 is passed through flattening rollers (not shown) to form flat surfaces 21 along the length thereof. The rollers are of the type conventionally used in the metallic forming art to press flat surfaces on metallic objects. Rollers capable of such function are commercially available. Flat surfaces 21 may be placed on conductor 20 either simultaneously or by separate forming steps. As shown in Figure 4, flat surfaces 21 are diametrically opposed and substantially parallel to one another.
  • An important feature of the present invention is that rather than cutting a flat surface on each diametrical side of conductor 20, the conductor is actually flattened in a manner such that opposed upper and lower rounded conductor surfaces 23 and 25 are outwardly deformed from their original condition. Thus, the cross-sectional area of conductor 20 does not change during formation. This permits the conductor to carry the same amount of signal current as was possible prior to the forming steps employed in the present invention.
  • Additionally, upper and lower surfaces 23, 25 also substantially maintain their rounded configuration. This facilitates the ability to mass terminate cable assembly 22 (Fig. 5) with conventional electrical connectors having insulation displacing contacts (not shown).
  • Referring to Figure 5, a cable assembly 22 of the present invention is shown. Cable assembly 22 includes insulative casing 24 similar to casing 14 shown in Figure 3. Casing 24 includes upper and lower major planar surfaces 26 and 28 respectively which support therebetween conductors 20. Cable assembly 22 includes conductors 20 of the type shown in Figure 4. Conductors 20 are arranged within casing 24 so that flattened surfaces 21 are substantially perpendicular to major planar surfaces 26 and 28 and center lines c line in a common plane. Rounded surfaces 23 and 25 face major surfaces 26 and 28 respectively. Cable assembly 22 is typically formed by extruding insulative casing 24 over conductors 20.
  • The conductors 20 of cable assembly 22 are spaced at a pitch P₁ which is less than P₂ the pitch of cable assembly 12 (Fig. 3). Since each of conductors 20 includes flattened surfaces 21, the distance S₂ between facing flattened surfaces 21 of adjacent conductors 20′ and 20˝ is not correspondingly reduced. Comparing cable assembly 12 shown in Figure 3, with cable assembly 22 of the present invention shown in Figure 5, this feature is illustrated. While the conductor pitch of the cable assembly 22 of the present invention has been reduced from P₁ to P₂, the actual spacing between facing surfaces of adjacent conductors remains substantially the same. That is, S₁ ≈ S₂.
  • As the amount of insulating mass between facing surfaces of adjacent conductors 20′ and 20˝ remains the same, the impedance value of cable assembly 22 would be substantially similar to impedance value of cable assembly 12. Also, as mentioned above, since conductors 20 maintain the same cross-sectional area as conductors 10, the signal carrying capability of cable assembly 22 is not reduced.
  • The present invention, as shown in Figure 5, employs multiple conductors, each identically formed to have diametrically opposed flattened surfaces 21. However, it is contemplated that conductors 20 may be formed to have only one flattened surface. Also, it is contemplated that only selected ones of conductors 20 may be formed to have one or more flattened surfaces. This would permit the cable assembly 22 to have selected different impedance values as between various pairs of conductors.
  • Various changes to the foregoing described and shown structures would now be evident to those skilled in the art. Accordingly, the particularly disclosed scope of the invention is set forth in the following claims.

Claims (10)

  1. A method of forming an electrical cable assembly comprising the steps of:
       providing a first elongate electrical conductor having a substantially circular cross-section;
       flattening a first surface portion of said first conductor along its length;
       providing a second elongate electrical conductor;
       arranging said first conductor in transversely spaced disposition adjacent said second conductor with said flattened first surface portion of first conductor facing said second conductor; and
       forming an insulative casing over said first and second conductors to place said conductors in mutual electrical isolation.
  2. A method of claim 1 including the steps of flattening a second surface portion of said first conductor along its length, said first flattened surface portion being spaced from and substantially parallel to said second flattened surface portion.
  3. A method of Claim 1 or Claim 2 wherein said second conductor has a substantially circular cross-section and further including the step of flattening a first surface portion of said second conductor along its length.
  4. A method of claim 3 wherein said arranging step further includes arranging said first and second conductors such that said flattened first surface portions of said first and second conductors are in facing disposition.
  5. A method of any one of Claims 1 to 4 wherein said forming step includes extruding said insulative casing over said first and second conductors.
  6. An electrical cable assembly comprising:
       a plurality of elongate electrical conductors; and
       an elongate electrically insulative casing continuously surrounding each of said conductors and supporting said conductors in side-by-side, electrically insulated, transversely spaced arrangement, said casing including a first major planar surface;
       one of said conductors including a first flat surface portion facing and adjacent one of said conductors and a first curved surface portion facing said first major planar surface.
  7. An electrical cable assembly of claim 6 wherein said casing includes a second major planar surface spaced from and substantially parallel to said first major planar surface and wherein said conductors are supported between said planar surfaces.
  8. An electrical cable assembly of Claim 6 or claim 7 wherein said one conductor includes a second flat surface portion spaced from and substantially parallel to said first flat surface portion.
  9. An electrical cable assembly of any one of Claims 6 to 8 wherein said one conductor includes a second curved surface portion facing said second major planar surface.
  10. An electrical cable assembly of any one of Claims 6 to 9 wherein said adjacent one of said conductors includes a first flat surface portion facing said flat surface portion of said one conductor.
EP19910308533 1990-09-19 1991-09-18 A high impedance electrical cable and method of forming same Expired - Lifetime EP0477006B1 (en)

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
US07/585,860 US5091610A (en) 1990-09-19 1990-09-19 High impedance electrical cable
US585858 1990-09-19
US585860 1990-09-19
US07/585,858 US5049215A (en) 1990-09-19 1990-09-19 Method of forming a high impedance electrical cable

Publications (2)

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EP0477006A1 true EP0477006A1 (en) 1992-03-25
EP0477006B1 EP0477006B1 (en) 1996-03-06

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CA (1) CA2051505C (en)
DE (1) DE69117631T2 (en)
ES (1) ES2086494T3 (en)

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WO2012030365A1 (en) * 2010-08-31 2012-03-08 3M Innovative Properties Company High density shielded electrical cable and other shielded cables, systems, and methods
US8466365B2 (en) 2010-08-31 2013-06-18 3M Innovative Properties Company Shielded electrical cable
US8492655B2 (en) 2010-08-31 2013-07-23 3M Innovative Properties Company Shielded electrical ribbon cable with dielectric spacing
US8575491B2 (en) 2010-08-31 2013-11-05 3M Innovative Properties Company Electrical cable with shielding film with gradual reduced transition area
US8658899B2 (en) 2009-06-19 2014-02-25 3M Innovative Properties Company Shielded electrical cable
US8859901B2 (en) 2010-09-23 2014-10-14 3M Innovative Properties Company Shielded electrical cable
US9119292B2 (en) 2010-08-31 2015-08-25 3M Innovative Properties Company Shielded electrical cable in twinaxial configuration
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GB336784A (en) * 1928-10-20 1930-10-23 Siemens Ag Trunk cable with compensating condensers
FR1404549A (en) * 1964-05-20 1965-07-02 Trefimetaux Metallic braid, its manufacture and products equipped with this braid
US3558803A (en) * 1969-08-26 1971-01-26 Revere Copper & Brass Inc Magnet strip conductor

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Publication number Priority date Publication date Assignee Title
GB336784A (en) * 1928-10-20 1930-10-23 Siemens Ag Trunk cable with compensating condensers
FR1404549A (en) * 1964-05-20 1965-07-02 Trefimetaux Metallic braid, its manufacture and products equipped with this braid
US3558803A (en) * 1969-08-26 1971-01-26 Revere Copper & Brass Inc Magnet strip conductor

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Also Published As

Publication number Publication date
CA2051505C (en) 1995-07-04
CA2051505A1 (en) 1992-03-20
DE69117631D1 (en) 1996-04-11
EP0477006B1 (en) 1996-03-06
ES2086494T3 (en) 1996-07-01
DE69117631T2 (en) 1996-07-18

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