Claims
- 1. An electrical cable, comprising:at least one conductor; at least one shield encircling said at least one conductor, said at least one shield extending along a length of the electrical cable, each shield of said at least one shield comprising a first conductive layer separated electrically from at least a second conductive layer by at least one nonconductive layer, wherein each shield of said at least one shield is comprised of a first tape and a second tape, each of said first tape and said second tape comprising a nonconductive layer and a conductive layer, said at least one shield being arranged with said nonconductive layer of said first tape facing said conductive layer of said second tape; a first connection mechanism electrically connected to said first conductive layer; and at least a second connection mechanism electrically connected to said at least second conductive layer, each of said first and at least second connection mechanisms being in substantially continuous electrical contact with said first and at least second conductive layers of said at least one shield, respectively, and being electrically separated from other conductive layers of other shields and from other connection mechanisms, each of said first and at least second connection mechanisms and each of said first and at least second conductive layers in electrical contact therewith, respectively, comprising one electrode of a plurality of electrodes electrically connectable at an end of said electrical cable, wherein a first fold extends along a first overhang at a first end edge of said first tape, a second fold extends along a second overhang at a second end edge of said second tape, a third fold formed from said first tape first end edge overhangs extends at a position independent of said first end edge of said first tape, and a fourth fold formed from said second end edge overhang of said second tape extends at a position proximate said second end edge of said second tapes, wherein an outwardly facing conductive portion of said first fold at said first end edge of said first tape is in substantially continuous electrical contact with a portion of an inwardly-facing conductive portion of said conductive layer of said first tape at said first fold, thereby facilitating circumferential electrical continuity in said conductive layer proximate another end edge of said first tapes, wherein an outwardly facing conductive portion of said second fold at said second end edge of said second tape is in substantially continuous electrical contact with a portion of an inwardly-facing conductive portion of said conductive layer of said second tape at said second fold, thereby facilitating circumferential electrical continuity in said conductive layer proximate another edge of said second tapes, wherein said third fold at said first end edge of said first tape outwardly exposes an insulating surface of said first tape, thus electrically separating a conductive surface of said first tape from electrical contact with other conductive layers of other shields, wherein said fourth fold at said second end edge of said second tape outwardly exposes an insulating surface of said second tape, thus electrically separating a conductive surface of said second tape from electrical contact with said other conductive layers of said other shields, and wherein the first fold is separated from the third fold by a first predetermined distance, wherein the second fold is separated from the fourth fold by a second predetermined distance, and the first and third folds are separated from the second and fourth folds by a third predetermined distance.
- 2. The electrical cable of claim 1, wherein the first tape is offset from the second tape in at least one of the at least one shield, and wherein the nonconductive layer of the first tape provides an additional nonconductive clearance at an edge, and the nonconductive layer of the second tape provides an additional nonconductive clearance at another edge.
- 3. The electrical cable of claim 1, wherein the nonconductive layer extends beyond at least one edge of the conductive layer in at least one of the at least one shield, forming at least one overhang of nonconductive material, thereby providing an additional nonconductive clearance between the first and at least second conductive layers of the at least one of the at least one shield.
- 4. The electrical cable of claim 1, wherein at least one of the first conductive layer and the at least second conductive layer of at least one of the at least one shield includes a predetermined loss sufficient to control resonant length effects.
- 5. The electrical cable of claim 1, wherein at least one of the at least one nonconductive layer of at least one of the at least one shield includes a predetermined loss sufficient to control resonant length effects.
- 6. The electrical cable of claim 1, wherein the at least one shield includes one of a sputtering formed, chemical deposition formed, and vapor-deposition formed first and at least second conductive layers.
- 7. An electrical cable, comprising:at least one conductor; at least one shield encircling the at least one conductor, the at least one shield extending along a length of the electrical cable, each of the at least one shield comprising: a first non-conductive layer; a first conductive layer formed on the first non-conductive layer to form a first layer of each of the at least one shield; at least a second non-conductive layer; at least a second conductive layer formed on the at least second non-conductive layer to form a second layer of each of the at least one shield, wherein the first conductive layer is electrically separated from the at least second conductive layer by the at least second non-conductive layer, and wherein the first conductive layer and the at least second conductive layer face inwardly toward the at least one conductor; a first fold extending along a first end edge of the first layer; a second fold extending along a second end edge of the first layer; a third fold extending along a first end edge of the at least second layer; and a fourth fold extending along a second end edge of the at least second layer, wherein an outwardly-facing portion of the first fold is in substantially continuous electrical contact with a portion of the inwardly-facing first conductive layer at the first fold, thereby facilitating circumferential electrical continuity in the first conductive layer, wherein an inwardly-facing portion of the second fold is in substantially continuous contact with a portion of an outwardly-facing first non-conductive layer at the second fold, wherein an outwardly-facing portion of the third fold is in substantially continuous electrical contact with a portion of the inwardly-facing at least second conductive layer at the third fold, thereby facilitating circumferential electrical continuity in the at least second conductive layer, wherein an inwardly-facing portion of the fourth fold is in substantially continuous contact with a portion of an outwardly-facing at least second non-conductive layer at the fourth fold, wherein the first fold is separated from the second fold by a first predetermined distance, wherein the third fold is separated from the fourth fold by a second predetermined distance, and wherein the first and second folds are separated from the third and fourth folds by a third predetermined distance; a first connection mechanism electrically connected to the first conductive layer; and at least a second connection mechanism electrically connected to the at least second conductive layer, wherein the first connection mechanism and the at least second connection mechanism are in substantially continuous electrical contact with the first conductive layer and the at least second conductive layer, respectively, and electrically separated from each other and other connection mechanisms, and wherein the first connection mechanism and the first conductive layer in electrical contact therewith comprise a first electrode of a plurality of electrodes and the at least second connection mechanism and the at least second conductive layer in electrical contact therewith comprise a second electrode of the plurality of electrodes, wherein each of the plurality of electrodes is electrically connectable at an end of the electrical cable.
- 8. The electrical cable according to claim 7, comprising:an insulating jacket extending along the length of the electrical cable and encircling the at least one conductor, the at least one shield, and the first and at least second connection mechanisms.
- 9. The electrical cable of claim 7, wherein the at least one conductor is grouped into two or more bundles of conductors, with each bundle of conductors being encircled by at least one shield.
- 10. The electrical cable of claim 9, wherein each bundle of the two or more bundles is encircled by two or more shields.
- 11. The electrical cable of claim 9, wherein each bundle of the two or more bundles is encircled by one shield and wherein all of the bundles are encircled by another shield.
- 12. The electrical cable of claim 7, wherein at least one of the first non-conductive layer and at least second non-conductive layer includes a predetermined loss sufficient to control resonant length effects.
- 13. The electrical cable of claim 7, wherein the plurality of electrodes are electrically insulated from one another.
- 14. The electrical cable of claim 7, wherein, when the plurality of electrodes form opposing plate connections, the plurality of electrodes comprises at least one distributed capacitor.
- 15. The electrical cable of claim 7, wherein when the at least one shield is arranged such that a first group of at least one conductive layers is electrically connected at an electrical cable end, and at least a second disjoint group of adjacent at least one conductive layers is electrically connected at another electrical cable end, the at least second disjoint group being electrically separated from said first group and from other disjoint groups, the at least one shield comprises a blocking capacitor.
- 16. The electrical cable of claim 7, wherein at least one of the first conductive layer and the at least second conductive layer of at least one of the at least one shield includes a predetermined loss sufficient to control resonant length effects.
- 17. The electrical cable of claim 7, wherein the first nonconductive layer extends beyond at least one edge of the first conductive layer of at least one of the at least one shield, and wherein the at least second nonconductive layer extends beyond at least one edge of the at least second conductive layer of the at least one of the at least one shield.
- 18. The electrical cable of claim 7, wherein the first conductive layer is offset from the at least second conductive layer of at least one of the at least one shield, forming at least one overhang of nonconductive material, the at least one overhang of nonconductive material providing an additional nonconductive clearance between the first conductive layer and the at least second conductive layer of the at least one of the at least one shield.
- 19. The electrical cable of claim 18, wherein the at least one overhang of nonconductive material are formed by removing conductive portions from at least one of the first conductive layer and at least second conductive layer of the at least one of the at least one shield by a removal process, including etching.
- 20. The electrical cable of claim 7, wherein the at least one shield includes one of a sputtering formed, chemical deposition formed, and vapor-deposition formed first and at least second conductive layers.
- 21. An electrical cable, comprising:a plurality of conductors, wherein the plurality of conductors is organized into a plurality of subsets of conductors; a plurality of shields, wherein each of the plurality of shields encircles a subset of the plurality of subsets of conductors, each of the plurality of shields extending along a length of the electrical cable, wherein each of the plurality of shields comprises: a first non-conductive layer; a first conductive layer formed on the first non-conductive layer to form a first layer of each of the plurality of shields; at least a second non-conductive layer; at least a second conductive layer formed on the at least second non-conductive layer to form a second layer of each of the plurality of shields, wherein the first conductive layer is electrically separated from the at least second conductive layer by the at least second non-conductive layer, and wherein the first conductive layer and the at least second conductive layer face inwardly toward the subset of the plurality of conductors; a first fold extending along a first end edge of the first layer; a second fold extending along a second end edge of the first layer; a third fold extending along a first end edge of the at least second layer; and a fourth fold extending along a second end edge of the at least second layer, wherein an outwardly-facing portion of the first fold is in substantially continuous electrical contact with a portion of the inwardly-facing first conductive layer at the first fold, thereby facilitating circumferential electrical continuity in the first conductive layer, wherein an inwardly-facing portion of the second fold is in substantially continuous contact with a portion of an outwardly-facing first non-conductive layer at the second fold, wherein an outwardly-facing portion of the third fold is in substantially continuous electrical contact with a portion of the inwardly-facing at least second conductive layer at the third fold, thereby facilitating circumferential electrical continuity in the at least second conductive layer, wherein an inwardly-facing portion of the fourth fold is in substantially continuous contact with a portion of an outwardly-facing at least second non-conductive layer at the fourth fold, wherein the first fold is separated from the second fold by a first predetermined distance, wherein the third fold is separated from the fourth fold by a second predetermined distance, and wherein the first and second folds are separated from the third and fourth folds by a third predetermined distance; wherein each of the plurality of subsets of conductors comprises: a first connection mechanism electrically connected to the first conductive layer; and at least a second connection mechanism electrically to the at least second conductive layer, wherein the first connection mechanism and the at least second connection mechanism are in substantially continuous electrical contact with the first conductive layer and the at least second conductive layer, respectively, and electrically separated from each other and other connection mechanisms, wherein the first connection mechanism and the first conductive layer in electrical contact therewith comprise a first electrode of a plurality of electrodes and the at least second connection mechanism and the at least second conductive layer in electrical contact therewith comprise a second electrode of the plurality of electrodes, and wherein each of the electrodes from each of the plurality of subsets of conductors is electrically connectable at an end of the electrical cable.
- 22. The electrical cable according to claim 21, comprising:an insulating jacket extending along the length of the electrical cable and encircling the plurality of conductors, the plurality of shields, and the first and at least second connection mechanisms of the plurality of subsets of conductors.
- 23. The electrical cable of claim 21, wherein at least one of the first non-conductive layer and at least second non-conductive layer of each of the plurality of shields includes a predetermined loss sufficient to control resonant length effects.
- 24. The electrical cable of claim 21, wherein the plurality of electrodes are electrically insulated from one another.
- 25. The electrical cable of claim 21, wherein, when the plurality of electrodes from at least one of the plurality of subsets of conductors form opposing plate connections, the plurality of electrodes from the at least one of the plurality of subsets of conductors comprises at least one distributed capacitor.
- 26. The electrical cable of claim 21, wherein when the plurality of shields is arranged such that a first group of at least one conductive layers from at least one of the subsets of conductors is electrically connected at an electrical cable end, and at least a second disjoint group of adjacent at least one conductive layers from at least one of the subsets of conductors is electrically connected at another electrical cable end, the at least second disjoint group being electrically separated from said first group and from other disjoint groups, the plurality of shields comprises a blocking capacitor.
- 27. The electrical cable of claim 21, wherein at least one of the first conductive layer and the at least second conductive layer of at least one of the plurality of shields includes a predetermined loss sufficient to control resonant length effects.
- 28. The electrical cable of claim 21, wherein the first nonconductive layer extends beyond at least one edge of the first conductive layer of at least one of the plurality of shields, and wherein the at least second nonconductive layer extends beyond at least one edge of the at least second conductive layer of the at least one of the plurality of shields.
- 29. The electrical cable of claim 21, wherein the first conductive layer is offset from the at least second conductive layer of at least one of the plurality of shields, forming at least one overhang of nonconductive material, the at least one overhang of nonconductive material providing an additional nonconductive clearance between the first conductive layer and the at least second conductive layer of the at least one of the plurality of shields.
- 30. The electrical cable of claim 29, wherein the at least one overhang of nonconductive material are formed by removing conductive portions from at least one of the first conductive layer and at least second conductive layer of the at least one of the plurality of shields by a removal process, including etching.
- 31. The electrical cable of claim 21, wherein the plurality of shields include one of a sputtering formed, chemical deposition formed, and vapor-deposition formed first and at least second conductive layers.
Parent Case Info
This application claims priority under 35 U.S.C. §119(e) to U.S. Provisional Application No. 60/205,247, filed on May 19, 2000.
US Referenced Citations (31)
Foreign Referenced Citations (2)
| Number |
Date |
Country |
| 0 860 836 |
Feb 1997 |
EP |
| 0860836 |
Aug 1998 |
EP |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/205247 |
May 2000 |
US |