Cable risers are used to supply power, for example, to multi-story building such as apartments or condominiums. For example, conductors may be placed in a vertical raceway and run to individual apartments. In some situations, due to gravitational forces, conductors within the vertical raceways may slip down the armor. For example, to stop this cable slippage, offsets may be used. Thus, the conventional strategy is to create horizontal offsets in the vertical raceway runs to stop slippage. This often causes problems because conventional systems create significant costs and time requirements for installing cable risers. In view of the foregoing, there is a need for methods and systems for providing vertical cable and raceways more optimally. Furthermore, there is a need for providing cable raceways with integral (i.e. built-in) support.
A system for providing cable support may be provided. The system may comprise a conductor core, a filler that may provide integral core support, and armor. The conductor core may comprise at least one conductor. The filler may be applied around at least a portion of the conductor core. The armor may be applied around at least a portion of the filler. The filler may apply a strong enough force on an exterior of the conductor core configured to keep the conductor core from slipping down an interior of the filler due to a gravitational force. In addition, the filler may apply a strong enough force on an interior of the armor configured to keep a combination of the conductor core and the filler from slipping down the interior of the armor due to the gravitational force.
It is to be understood that both the foregoing general description and the following detailed description are examples and explanatory only, and should not be considered to restrict the invention's scope, as described and claimed. Further, features and/or variations may be provided in addition to those set forth herein. For example, embodiments of the invention may be directed to various combinations and sub-combinations described in the detailed description.
The accompanying drawings, which are incorporated in and constitute a part of this disclosure, illustrate various embodiments of the present invention. In the drawings:
The following detailed description refers to the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the following description to refer to the same or similar elements. While embodiments of the invention may be described, modifications, adaptations, and other implementations are possible. For example, substitutions, additions, or modifications may be made to the elements illustrated in the drawings, and the methods described herein may be modified by substituting, reordering, or adding stages to the disclosed methods. Accordingly, the following detailed description does not limit the invention.
Consistent with embodiments of the invention, an armored cable with integral support may be provided. Embodiments of the invention may eliminate conventional cable offsets in vertical raceway cable installations by providing integral support between conductors and the armor. Consequently, the integral support may keep the conductors within the armor in a vertical raceway installation from slipping down due to gravitational forces. Accordingly, embodiments of the invention may reduce cable installation time and cost.
While as shown in
Filler 110 may comprise, but is not limited to, polyethylene, polyvinyl chloride (PVC), or nylon. A foaming agent, a material comprising micro-spheres, or other similar substances may be added to filler 110 before filler 110 is extruded onto conductor core 105. The foaming agent may be configured to create voids in filler 110. When filler 110 is compressed in a first direction (e.g. toward the center of system 100,) the voids (or micro-spheres) in filler 110 may tend to create an opposing force in filler 110 opposite the first direction. For example, after being extruded onto conductor core 105, filler 110 may have a “squeezing” force applied to its exterior by armor 115. With this squeezing force applied to filler 110, the voids (or micro-spheres) in filler 110 may be configured to cause filler 110 to: i) apply a strong enough force on the exterior of conductor core 105 to keep conductor core 105 from slipping down filler 110's interior due to gravitational forces on conductor core 105; and ii) apply a strong enough force on armor 115's interior to keep the combination of conductor core 105 and filler 110 from slipping down armor 115's interior due to the gravitational forces on conductor core 105 and filler 110. As stated above, micro-spheres added to the filler 110 may cause an effect similar to the voids created by the foaming agent. The micro-spheres may tend to be more evenly distributed in filler 110 than the voids.
Filler 110 may comprise, but is not limited to, a flexible PVC compound (e.g. SW1005) with 0.1% to 5% HC-01 foaming agent by weight. The foaming agent may be supplied by Bayer Corporation of 100 Bayer Road, Pittsburgh, Pa. 15205-9741. Furthermore, as stated above, micro-spheres may be combined with the flexible PVC compound instead of the foaming agent for example. The micro-spheres may comprise Expancel micro-spheres 930 MB 120 supplied by Expancel-AKZO NOBEL of 2240 Northmont Parkway, Duluth, Ga. 30096. The formulation using micro-spheres may comprise 0.5% 930 MB 120 to 99.5% SW1005 by weight. The range of Expancel micro-spheres used may vary, for example, between 0.1% and 5% by weight.
Notwithstanding, filler 110 may comprise or be augmented with any substance that (when filler 110 is squeezed) is, for example, capable of: i) applying a strong enough force on the exterior of conductor core 105 to keep conductor core 105 from sliding down filler 110's interior due to gravitational forces on conductor core 105; and ii) applying a strong enough force on the interior of armor 115 to keep the combination of conductor core 105 and filler 110 from slipping down armor 115's interior due to gravitational forces on conductor core 105 and filler 110.
Armor 115 may comprise any substance (e.g. metallic, non-metallic, electrically conductive, electrically semi-conductive, etc.) or construction capable of creating the aforementioned “squeezing” force applied to filler 110's exterior. For example, armor 115 may comprise a continuous strip having a width and being applied helically around filler 110. The continuous strip, for example, may be snuggly or tightly wrapped around filler 110. The continuous strip (e.g. metallic or non-metallic) may have a concave side facing filler 110. Concavities in the concave side may tend to be filled by portions of filler 110 when armor 115 squeezes filler 110. This concavity filling may aid filler 110 in applying the aforementioned force strong enough on the interior of the armor 115 to keep the combination of conductor core 105 and filler 110 from slipping down armor 115's interior due to gravitational forces on conductor core 105 and filler 110. Armor 115 may be, but is not limited to, welded corrugations or other assembly construction such as interlocked strip or braided stranding for example.
Consistent with embodiments of the invention, armored cable system 100 may be used in cable risers used to supply power, for example, to multi-story building such as apartments or condominiums. For example, armored cable system 100 may be placed in a substantially vertical raceway and run to individual apartments. Due to gravitational forces, conventional conductors within the vertical raceways may slip down the armor. However, consistent with embodiments of the invention, gravitational forces may not cause conductor core 105 to slip down armor 115 because armored cable system 100 may include integral support. This may be true even when armored cable system 100 (and thus conductor core 105) is in a substantial vertical altitude or position. This integral support may be created by filler 110 being “squeezed” by armor 115. With this squeezing force applied to filler 110, voids or micro-spheres in filler 110 may be configured to cause filler 110 to: i) apply a strong enough force on the exterior of conductor core 105 to keep conductor core 105 from slipping down filler 110's interior due to gravitational forces on conductor core 105; and ii) apply a strong enough force on armor 115's interior to keep the combination of conductor core 105 and filler 110 from slipping down armor 115's interior due to gravitational forces on conductor core 105 and filler 110.
Conductor core 605, though not so limited, may comprise a first conductor 620 and a second conductor 625. First conductor 620 and second conductor 625 may respectively include insulation layer 621 and insulation layer 626. Notwithstanding, conductor core 605 may include more or less conductors compared to the example shown in
Armor 615 may comprise any substance (e.g. metallic, non-metallic, electrically conductive, electrically semi-conductive, etc.) or construction capable of creating a “squeezing” force applied to filler 610's exterior. For example, armor 615 may comprise a continuous strip having a width and being applied helically around filler 610. The continuous strip, for example, may be snuggly or tightly wrapped around filler 610. The continuous strip may have a concave side facing filler 610. Concavities in the concave side facing filler 610 may tend to be filled by portions of filler 610 when armor 615 squeezes filler 610. As described in more detail below, when the aforementioned squeezing force is applied to filler 610 by armor 615, voids (or micro-spheres) in filler 610 may cause filler 610 to apply a strong enough force to ground wire 630 to create an electrical connection between ground wire 630 and armor 615 at point 635, for example.
As described above with respect to
Consistent with embodiments of the invention, when filler 610 is compressed (e.g. squeezed by armor 615 or otherwise compressed within armor 615) in a first direction (e.g. toward the center of system 600,) the voids (or micro-spheres) in filler 610 may tend to create an opposing force in filler 610 opposite the first direction. For example, after being extruded onto conductor core 605, filler 610 may have a squeezing force applied to its exterior by armor 615. With this squeezing force applied to filler 610 (e.g. toward the center of system 600,) the voids (or micro-spheres) in filler 610 may tend to create an opposing force in filler 610 opposite the first direction. Consequently, this opposing force may cause filler 610 to apply a strong enough force to ground wire 630 to create an electrical connection between ground wire 630 and armor 615. In other words, armor 615 may press against ground wire 630 on one side of ground wire 630 and filler 610 may press against ground wire 630 on a side opposing armor 615. Accordingly, ground wire 630 may snuggly contact armor 615 at at least point 635. Moreover, ground wire 630 may snuggly contact armor 615 at any number of points along system 600's longitudinal length and is not limited to contacting armor 615 at only point 635. In addition, ground wire 630 may contact armor 615 continuously along system 600's longitudinal length. When ground wire 630 and armor 615 are both electrically conductive (e.g. both being bare and metallic,) the aforementioned contact between ground wire 630 and armor 615 may create an electrical connection between ground wire 630 and armor 615.
Consistent with embodiments of the invention, filler 110 or filler 610 may be applied to conductor core 105 or conductor core 605 respectively in any manner and there application is not limited to extrusion. Furthermore, forces caused by filler 110 or filler 610 are not limited to being created by applying armor 115 or armor 615 to squeeze filler 110 or filler 610 respectively. These forces created in filler 110 or filler 610 may be created in any way. In addition, filler 110 and filler 610 may respectively electrically insulate conductor core 105 and conductor core 605 from armor 115 and armor 615. Furthermore, the construction of system 100 or system 600 is not limited to any sequence and the elements that make up system 100 or system 600 can be applied in any sequence.
While certain embodiments of the invention have been described, other embodiments may exist. Further, the disclosed methods' stages may be modified in any manner, including by reordering stages and/or inserting or deleting stages, without departing from the invention.
While the specification includes examples, the invention's scope is indicated by the following claims. Furthermore, while the specification has been described in language specific to structural features and/or methodological acts, the claims are not limited to the features or acts described above. Rather, the specific features and acts described above are disclosed as example for embodiments of the invention.
This application is a continuation application of U.S. patent application Ser. No. 12/814,595, filed on Jun. 14, 2010, now U.S. Pat. No. 8,697,996, which is a continuation application of U.S. patent application Ser. No. 12/046,488, filed on Mar. 12, 2008, now U.S. Pat. No. 7,754,969, which claims the benefit of U.S. Provisional Application No. 60/942,727, filed on Jun. 8, 2007, the disclosures of which are incorporated herein by reference in their entirety.
Number | Name | Date | Kind |
---|---|---|---|
1687013 | Frederickson | Oct 1928 | A |
1788483 | Frederickson | Jan 1931 | A |
1995407 | Walker | Mar 1935 | A |
2258687 | Peterson | Oct 1941 | A |
2308274 | Frederickson | Jan 1943 | A |
2866843 | Arman | Dec 1958 | A |
3023267 | Rubinstein et al. | Feb 1962 | A |
3032604 | Timmons | May 1962 | A |
3600500 | Schoemer et al. | Aug 1971 | A |
3660592 | Anderson | May 1972 | A |
3673315 | Lasley | Jun 1972 | A |
3829603 | Hansen et al. | Aug 1974 | A |
4081602 | Paniri et al. | Mar 1978 | A |
RE30194 | Bruno et al. | Jan 1980 | E |
4273806 | Stechler | Jun 1981 | A |
4368350 | Perelman | Jan 1983 | A |
4368613 | Sanchez | Jan 1983 | A |
4374299 | Kincaid | Feb 1983 | A |
4510346 | Bursch, Jr. et al. | Apr 1985 | A |
4956523 | Pawluk | Sep 1990 | A |
5191173 | Sizer et al. | Mar 1993 | A |
5192834 | Yamanishi et al. | Mar 1993 | A |
5212350 | Gebs | May 1993 | A |
5218167 | Gasque, Jr. | Jun 1993 | A |
5329065 | Marney et al. | Jul 1994 | A |
5350885 | Falciglia et al. | Sep 1994 | A |
5416268 | Ellis | May 1995 | A |
5672640 | Brauer | Sep 1997 | A |
5939668 | De Win | Aug 1999 | A |
6259019 | Damilo et al. | Jul 2001 | B1 |
6310295 | Despard | Oct 2001 | B1 |
6486395 | Temblador | Nov 2002 | B1 |
6491067 | Davenport et al. | Dec 2002 | B1 |
6566606 | Hazy et al. | May 2003 | B1 |
6624358 | Krabec et al. | Sep 2003 | B2 |
6906264 | Grant, Jr. et al. | Jun 2005 | B1 |
7166802 | Cusson et al. | Jan 2007 | B2 |
7309835 | Morrison et al. | Dec 2007 | B2 |
7432446 | Orfin et al. | Oct 2008 | B2 |
7469470 | Cusson et al. | Dec 2008 | B2 |
7754969 | Kummer et al. | Jul 2010 | B2 |
7880089 | Herrin | Feb 2011 | B1 |
8664532 | Herrin | Mar 2014 | B1 |
8697996 | Kummer et al. | Apr 2014 | B2 |
20080302554 | Kummer et al. | Dec 2008 | A1 |
20100252299 | Kummer et al. | Oct 2010 | A1 |
Number | Date | Country |
---|---|---|
525826 | Jun 1956 | CA |
2067451 | Dec 1990 | CN |
2181733 | Nov 1994 | CN |
1195359 | Oct 1998 | CN |
2559079 | Jul 2003 | CN |
2632818 | Aug 2004 | CN |
1588564 | Mar 2005 | CN |
1 075 181 | Feb 1960 | DE |
197 19 410 | Nov 1997 | DE |
0382557 | Sep 1990 | EP |
2 762 438 | Oct 1998 | FR |
351881 | Jul 1931 | GB |
54-14138 | Feb 1979 | JP |
5-28845 | Feb 1993 | JP |
6-96618 | Apr 1994 | JP |
11-232934 | Aug 1999 | JP |
Entry |
---|
Carmin J. Scotti, Literature Search Report, Dec. 19, 2005, 38 pgs. |
David Johnson, Search Report, Apr. 13, 2005, 12 pgs. |
International Search Report dated Sep. 10, 2008 cited in Application No. PCT/US2008/063846. |
Underwriters Laboratories Inc., UL4, Standard for Safety, Armored Cable, Nov. 4, 1998, 35 pgs. |
Underwriters Laboratories Inc., UL 1569, Metal-Clad Cables, May 25, 2005, 58 pgs. |
National Fire Protection Association, NFPA 70 National Electrical Code, 1999 Edition, Article 100, 250, 333, 334, 517, 65 pgs. |
Underwriters Laboratories Inc., UL 1569, Metal-Clad Cables, Oct. 10, 2005, 70 pgs. |
Powers, Jr., The Basics of Power Cable, Cement Industry Technical Conference, 1994, XXXVI Conference Record, 36th IEEE, pp. 37-45, (May 29-Jun. 2, 1994). |
Hartwell, Abstract: Wiring Methods for Patient Care Areas, EC & M: Electrical Construction and Maintenance, vol. 93(4), pp. 82-83, Elsevier, Inc. (2008). |
Jenks et al., Performance of Bare Aluminum Wire as Armoring Material for Submarine Cables, IEEE Transactions on Power Apparatus and Systems, vol. 82(66), pp. 379-382 (Jun. 1963). |
Temblador, New Form of Type MC Cable Crosses Application Boundaries, IAEI News, pp. 83-89, Sep.-Oct. 2006. |
Copending U.S. Appl. No. 12/985,875, filed Jan. 6, 2011 entitled “Metal-Clad Cable Assembly”. |
U.S. Official Action dated Oct. 13, 2009, in U.S. Appl. No. 12/139,249, filed on Jun. 13, 2008, 16 pages. |
U.S. Official Action dated Mar. 27, 2013, in U.S. Appl. No. 12/985,875, 17 pages. |
Mexican Office Action dated Nov. 5, 2010 cited in Application No. MX/a/2009/013141. |
Mexican Second Office Action dated Jul. 8, 2011 cited in Application No. MX/a/2009/013141. |
Mexican Third Office Action dated Feb. 3, 2012 cited in Application No. MX/a/2009/013141; 4 pages. |
Chinese First Office Action dated Apr. 21, 2011 cited in Application No. 200880012907.2. |
Translation of Chinese Second Office Action dated Apr. 19, 2012 cited in Application No. 200880012907.2; 6 pages. |
Chinese Office Action dated Oct. 31, 2012 cited in Application No. 200880012907.2, 5 pages. |
Chase Wire & Cable Materials Product Data Sheet. Chase & Sons C1033 Separator Tape; 1 page. |
Chase Wire & Cable Materials Product Data Sheet. Chase & Sons C1024 Separator Tape; 1 page. |
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20140166336 A1 | Jun 2014 | US |
Number | Date | Country | |
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60942727 | Jun 2007 | US |
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Parent | 12814595 | Jun 2010 | US |
Child | 14187596 | US | |
Parent | 12046488 | Mar 2008 | US |
Child | 12814595 | US |