Claims
- 1. An individual bound lateral shielded twisted pair data cable comprising:an insulated twisted pair cable, a shielding tape selected from the group consisting of a metal tape, a first composite tape having a non-metal base and a layer of metal on one side of said base, and a second composite tape having a non-metal base and a layer of metal on both sides of said base; said shielding tape being laterally wrapped with at least a 10% overlap around said individual twisted pair cable; a fabric or metal binder being wrapped around said shielding tape to provide a bound lateral shielded twisted pair cable; said shielding tape having a metal thickness of 0.33 to 2.00 mils; said shielding tape and binder being wrapped around said twisted pair at a tension to eliminate a substantial amount of the air and to leave a cross-sectional void area of less than 25% of the cross-sectional area of the shielded twisted pair cable to provide said bound lateral shielded twisted pair data cable; and to provide said bound lateral shielded twisted pair data cable with an adjusted to 20° C. standard impedance deviation of 4.5 or less when said standard deviation is calculated around a mean or average impedance of 50 to 200 ohms.
- 2. The cable of claim 1 wherein, said cable has a rating out to 1000 MHz., andsaid standard deviation is measured on a 328 ft. or longer cable with at least 350 frequency measurements taken from 1.0 to 1000 MHz and calculated around a mean or average impedance of 90 to 110 ohms.
- 3. The cable of claim 2 wherein said cross-sectional void area is less than 18%, and said shielding tape has a metal thickness of 0.75 to 1.25 mils.
- 4. The cable of claim 1 wherein,said cable has a rating out to 600 MHz, and said impedance deviation is measured on a 328 ft. or longer cable with at least 350 frequency measurements taken from 1.0 to 600 MHz and said standard impedance deviation is 3.5 or less and calculated around a mean or average impedance of 90 to 110 ohms.
- 5. The data cable of claim 3 wherein said cross-sectional void area is less than 18%, and said shielding tape has a metal thickness of 0.75 to 1.25 mils.
- 6. The cable of claim 1 further comprising at least four of said individually bound lateral shielded twisted pair cables,a jacket surrounding said at least four bound lateral shielded twisted pair cables to provide a high performance data cable; and said high performance data cable having an adjusted to 20° C. average standard impedance deviation of 4.5 or less when taken on a 328 ft. or longer said average standard impedance deviation is the average of the standard impedance deviation measured on each of said at least four bound lateral shielded twisted pair cables, the standard impedance deviation is measured on each of said at least four bound lateral shielded twisted pair cables with at least 350 frequency measurements taken and calculated around a mean or average impedance of 50 to 200 ohms.
- 7. The cable of claim 6 wherein said high performance data cable is rated at least out to 600 MHz, each of said at least four bound lateral shielded twisted pair cables has a cross-sectional void area of less than 18%,said high performance data cable has an adjusted to 20° C. average standard impedance deviation of 3.5 or less when taken on a 328 ft. or longer high performance data cable, the standard impedance deviation is measured on each of said at least four bound-shielded twisted pair cables with at least 350 frequency measurements from 1.0 to 600 MHz and calculated around a mean or average impedance of 90 to 110 ohms, and no single standard impedance deviation is greater than 6 from said mean or average impedance.
- 8. The cable of claim 6 wherein,high performance data cable is rated at least out to 1000 MHz, each of said at least four bound lateral shielded twisted pair cables has a cross-sectional void area of less than 18%, said high performance data cable has an adjusted to 20° C. average standard impedance deviation of 4.5 or less when taken on a 328 ft. or longer high performance data cable, the standard impedance deviation is measured on each of said at least four bound-shielded twisted pair cables with at least 350 frequency measurements from 1.0 to 1000 MHz and calculated around a mean or average impedance of 90 to 110 ohms, and no single standard impedance deviation is greater than 6 from said mean or average impedance.
- 9. The cable of claim 6 wherein, a temperature-resistant flame-retardantseparator tape surrounds said at least four bound lateral shielded twisted pair cables and is between said jacket and a cable core, and said jacket is a non-fluorinated polyolefin.
- 10. The cable of claim 6 wherein said high performance data cable is rated at least out to 600 MHz, each of said at least four bound lateral shielded twisted pair cables has a cross-sectional void area of less than 18%,said high performance data cable has an adjusted to 20° C. average standard impedance deviation of 3.5 or less when taken on a 328 ft. or longer high performance data cable, the standard impedance deviation is measured on each of said at least four bound-shielded twisted pair cables with at least 350 frequency measurements from 1.0 to 600 MHz and calculated around a mean or average impedance of 90 to 110 ohms, and no single standard impedance deviation is greater than 6 from said mean or average impedance. a temperature-resistant flame-retardant separator tape surrounds said at least four bound lateral shielded twisted pair cables and is between said jacket and a cable core, and said jacket is a non-fluorinated polyolefin.
- 11. The cable of claim 6 wherein, said high performance data cable is at least rated out to 1000 MHz, each of said at least four bound lateral shielded twisted pair cables has a cross-sectional void area of less than 18%,said high performance data cable has an adjusted to 20° C. average standard impedance deviation of 4.5 or less when taken on a 328 ft. or longer high performance data cable, the standard impedance deviation is measured on each of said at least four bound lateral shielded twisted pair cables with at least 350 frequency measurements from 1.0 to 1000 MHz and calculated around a mean or average impedance of 90 to 110 ohms, and no single standard impedance deviation is greater than 6 from said mean or average impedance. a temperature-resistant flame-retardant separator tape surrounds said at least four bound lateral shielded twisted pair cables and is between said jacket and a cable core, and said jacket is a non-fluorinated polyolefin.
- 12. A UL 910 plenum high performance data cable comprising a cable core containing at least four twisted pair cables, each of the said twisted pair cables being laterally shielded and bound to provide at least four bound lateral shielded twisted pair cables,a temperature-resistant flame retardant separator tape surrounds the at least four bound lateral shielded twisted pair cables, said separator tape being between said jacket and a cable core, and said jacket is a non-fluorinated polyolefin wherein said separator tape is wrapped around the twisted pair at a tension to eliminate a substantial amount of the air and to leave a cross sectional void area of less than 25% of the cross sectional area of the shielded twisted pair cables to provide the bound lateral shielded twisted pair cable and to provide the bound lateral shielded twisted pair cable with an adjusted 20° C. standard impedance deviation of 4.5 or less when said standard deviation is calculated around a mean or average impedance of 50 to 200 ohms.
- 13. The cable of claim 12 wherein said cable is at least rated out to at least 600 MHz, andsaid high performance data cable has an adjusted to 20° C. average standard impedance deviation of 3.5 or less when taken on a 328 ft. or longer high performance data cable, the standard impedance deviation is measured on each of said at least four pairs of cables with at least 350 frequency measurements from 1.0 to 600 MHz and calculated around a mean or average impedance of 90 to 110 ohms, and no single standard impedance deviation is greater than 6 from said mean or average impedance.
- 14. The cable of claim 12 wherein said cable is rated out to at least 1000 MHz,said high performance data cable has an adjusted to 20° C. average standard impedance deviation of 4.5 or less when taken on a 328 ft. or longer high performance data cable, the standard impedance deviation is measured on each of said at least four pairs of cables with at least 350 frequency measurements from 1.0 to 1000 MHz and calculated around a mean or average impedance of 90 to 110 ohms, and no single standard impedance deviation is greater than 6 from said mean or average impedance.
- 15. A method of preparing an individual bound lateral twisted pair data cable comprising:providing a twisted pair cable having an insulation selected from the group consisting of foamed or non-foamed fluorocopolymer and polyolefin; laterally wrapping said twisted pair cable with a metal shielding tape to provide a lateral shielded twisted pair cable with at least a 10% overlap of said shielding tape and said shielding tape having a metal thickness of 0.33 to 2.00 mils, and said shielding tape being selected from the group consisting of a metal tape, a first composite tape having a non-metal base and a layer of metal on one side of said base, and a second composite tape having a non-metal base and a layer of metal on both sides of said base; wrapping said lateral shielded twisted pair cable with a fabric or metal binder to provide a bound lateral shielded twisted pair cable; and wrapping the lateral metal shield and binder at a tension to provide said bound lateral shielded twisted pair cable with an adjusted to 20° C. standard impedance deviation of 4.5 or less when said standard impedance deviation is measured on a 328 ft. or longer cable with at least 350 frequency measurements being taken and the standard impedance being calculated around a mean or average impedance of 50 to 200 ohms.
- 16. The method of claim 15 wherein said shielding tape has a metal thickness of 0.75 to 1.25 mils,wrapping and binding the twisted pair cables so that said cross-sectional void area is less than 18%, and said cable having a rating out to 600 MHz, said at least 350 frequency measurements are taken from 1.0 to 600 MHz, and said standard deviation is 3.5 or less and calculated around a mean or average impedance of 90 to 110 ohms and no single deviation is greater than 6 from said mean or average impedance.
- 17. The method of claim 15 wherein said shielding tape has a metal thickness of 0.75 to 1.25 mils, wrapping and binding the twisted pair cables so that said cross-sectional void area is less than 18%, and said cable having a rating out to 1000 MHz,said at least 350 frequency measurements taken from 1.0 to 1000 MHz, and said standard deviation is 4.5 or less and calculated around a mean or average impedance of 90 to 110 ohms and no single deviation is greater than 6 from said mean or average impedance.
- 18. The method of claim 15 further comprising bundling at least four of said bound lateral shielded twisted pair cables, extruding a jacket over the at least four individually bound lateral shielded twisted pair bundled cables to provide a high performance data cable, andselecting said at least four individually bound lateral shielded twisted pair cables to provide said high performance data cable with a rating out to 600 MHz, an average standard impedance deviation of 3.5 or less when taken on a 328 ft. or longer high performance data cable wherein a standard impedance deviation is measured on each of said at least four bound lateral shielded twisted pair cables with at least 350 frequency measurements and taken and calculated around a mean or average impedance of 90 to 110 ohms, and said average standard impedance deviation is the average of said standard impedance deviation measured on all of said at least four bound lateral shielded twisted pair cables.
- 19. The method of claim 18 further comprising prior to extruding the jacket, wrapping a heat-resistant flame-retardant separator tape around at least four bound lateral shielded twisted pair cables such that the temperature-resistant flame-retardant separator tape is between said jacket and a cable core, andsaid jacket is a non-fluorinated polyolefin.
- 20. The method of claim 15 further comprising bundling at least four of said individually bound lateral shielded twisted pair cables,extruding a jacket over the at least four bound lateral shielded twisted pair bundled cables to provide a high performance data cable, and selecting said at least four bound lateral shielded twisted pair cables to provide said high performance data cable with a rating out to 1000 MHz, an average standard impedance deviation of 4.5 or less taken when on a 328 ft. or longer high performance data cable wherein a standard impedance deviation is measured on each of said at least four bound lateral shielded twisted pair cables with at least 350 frequency measurements and taken and calculated around a mean or average impedance of 90 to 110 ohms, and said average standard impedance deviation is the average of said standard impedance deviation measured on all of said at least four bound lateral shielded twisted pair cables.
- 21. The method of claim 20 further comprising prior to extruding the jacket, wrapping said heat-resistant flame-retardant tape around said at least four bound lateral shielded twisted pair cables such that the temperature-resistant flame-retardant separator tape surrounds is between said jacket and a cable core, andsaid jacket is a non-fluorinated polyolefin.
Parent Case Info
This application is a 371 of PCT/US00/16344, filed Jun. 14, 2000 and claims the benefit of provisional application 60/144,998, filed Jul. 22, 1999.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US00/16344 |
|
WO |
00 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO01/08167 |
2/1/2001 |
WO |
A |
US Referenced Citations (9)
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/144998 |
Jul 1999 |
US |