AU2006203776B2 - Conduit insert for optical fiber cable - Google Patents

Conduit insert for optical fiber cable Download PDF

Info

Publication number
AU2006203776B2
AU2006203776B2 AU2006203776A AU2006203776A AU2006203776B2 AU 2006203776 B2 AU2006203776 B2 AU 2006203776B2 AU 2006203776 A AU2006203776 A AU 2006203776A AU 2006203776 A AU2006203776 A AU 2006203776A AU 2006203776 B2 AU2006203776 B2 AU 2006203776B2
Authority
AU
Australia
Prior art keywords
cable
innerduct
single strip
fabric material
assembly
Prior art date
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.)
Ceased
Application number
AU2006203776A
Other versions
AU2006203776A1 (en
Inventor
David Drew Morris
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Milliken and Co
Original Assignee
Milliken and Co
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Priority claimed from AU2003262489A external-priority patent/AU2003262489B2/en
Application filed by Milliken and Co filed Critical Milliken and Co
Priority to AU2006203776A priority Critical patent/AU2006203776B2/en
Publication of AU2006203776A1 publication Critical patent/AU2006203776A1/en
Application granted granted Critical
Publication of AU2006203776B2 publication Critical patent/AU2006203776B2/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Landscapes

  • Light Guides In General And Applications Therefor (AREA)

Description

AUSTRALIA
INO
;Z 1 Patents Act COMPLETE SPECIFICATION
(ORIGINAL)
Class Int. Class Application Number: Lodged: Complete Specification Lodged: Accepted: Published: Priority Related Art: Name of Applicant: Milliken Company Actual Inventor(s): David Drew Morris Address for Service and Correspondence: PHILLIPS ORMONDE FITZPATRICK Patent and Trade Mark Attorneys 367 Collins Street Melbourne 3000 AUSTRALIA 9 L c, Invention Title: CONDUIT INSERT FOR OPTICAL FIBER CABLE Our Ref: 781407 POF Code: 9595/9595 The following statement is a full description of this invention, including the best method of performing it known to applicant(s): -1- 6ooeq CONDUIT INSERT FOR OPTICAL FIBER CABLE This application is a divisional application of Australian Patent Application No. 2003262489, the entire contents of which are incorporated herein by reference.
Background of the Invention The present invention generally relates to tubular conduit of the type that might be employed for the housing of underground cables, such as fiber optic cable, coaxial cable, or the like. More particularly, the present invention relates to a partitioning device, which may be inserted into such a conduit such that the conduit is divided into separate areas. Specifically, the present invention is directed toward an elongated partitioning device which is flexible, such that it may be inserted into a conduit which is already in place, which may already have at least one cable positioned therein, and which may have turns, bends, or the like therein.
Cable, such as fiber optic communication cable, is often provided underground in great lengths, and may even extend for many miles. It is known in the art to bury the cable in the ground so that the area above ground is not cluttered with the cable and its respective support apparatus. Furthermore, by positioning the cable underground, it is more protected from the weather and other potentially damaging circumstances.
It is also known in the cable art to position the cable within a conduit in order to more fully protect the cable in the ground. The conduit is often formed from lengths of polyvinyl chloride tubing or the like, which is laid in the ground. A rope is then blown through the conduit, and the rope in turn is attached to one of the W.\Species'2003262489DIVSpccdoc communication cables. By pulling the rope, the cable is drawn through the conduit.
Once in place within the conduit, the cable is protected from damage which may be caused by weather, water and the like.
It has been found that certain rodents will sometimes gnaw through an underground conduit. Hence, much underground conduit is employed which has a diameter of two inches or more, which is large enough to impede damage from most rodents. While such conduit provides excellent protection for communication cable, there is also much unused or "dead" space within such a conduit. With the advent of fiber optic cables, which may be only a half-inch or less in diameter, there is even more dead space within an average conduit.
When a conduit is in place, it may be subsequently desired to run a second communications cable at the same location. As such, it would be desirable from a cost and time standpoint to make use of the dead space within an existing conduit, rather than lay a new length of conduit. However, it has been found that it is difficult to merely insert a second cable into a conduit which already contains a first cable. When a rope is blown into a conduit already containing a cable, or a second cable is "snaked" through the conduit, they are often impeded by the first cable, making it impossible to insert the second cable.
It has been suggested to provide a divider to be inserted into a conduit in order to separate the conduit into discrete sections, thus making insertion of the second cable easier. A problem has been encountered in that when conduit is placed over long distances, undulations will invariably occur therein. Also, planned curves, such as at W:\Specics\2003262489DIVSpec.doc underpasses or the like, will often be encountered rendering the placement of known dividers therein difficult, if not impossible.
A need exists therefore for a device to separate or partition a conduit, such as an underground communication cable conduit, into discrete sections. The device must be capable of being inserted into a conduit that is already in place, which may undulate over many miles, and which may have sharp turns therein. A need also exists for a partitioning device which will provide for improved use of the space within a conduit.
It should be noted that the discussion of the background to the invention herein is included to explain the context of the invention. This is not to be taken as an admission that any of the material referred to was published, known or part of the common general knowledge in Australia as at the priority date of any of the claims.
Summary of the Invention Viewed from one aspect, the present invention provides a cable receiving assembly comprising: a tubular conduit having an internal area for the housing of cables; a flexible elongated partitioning device disposed longitudinally within the internal area of the tubular conduit, the flexible elongated partitioning device including: a woven innerduct having a single strip of fabric material interconnected to itself so as to form at least one channel, the single strip of fabric material having monofilament polyester warp yarns running in the longitudinal direction of the flexible elongated partitioning device; and, a pull line disposed in the at least one channel of the woven innerduct.
W:ASpecis\2003262489DIVSpcc.doc Viewed from another aspect, the present invention provides a cable assembly comprising: a tubular conduit having an internal area for the housing of cables; a woven innerduct disposed longitudinally within the internal area of the tubular conduit, the woven innerduct having a single strip of fabric material interconnected to itself so as to form at least one channel, the single strip of fabric material having monofilament polyester warp yarns running in the longitudinal direction of the woven innerduct; and, a cable disposed longitudinally within the at least one channel of the woven innerduct.
The present invention relates to a flexible innerduct structure configured to contain a cable within a conduit, and provides a woven innerduct having a single strip of flexible material interconnected to itself, the material having monofilament polyester warp yarns. The innerduct structure may include a pair of adjacent stripshaped layers of flexible material that are joined along their longitudinal edges to define a channel through which the cable can extend longitudinally through the innerduct structure between the layers. The adjacent layers may have differing widths between their longitudinal edges, whereby the wider layer bulges away from the narrower layer to impart an open configuration to the channel. Other features may relate to the material of which the innerduct structure is formed. Such features include the structure of the material, such as a woven structure, and further include properties such as melting point, tensile strength, elongation, coefficient of friction, crimp resistance and compression recovery.
W:Spccies2003262489DIVSpec.doc Brief Description of the Drawings Embodiments of the present invention are described below, as are conduit insert structures that embodiments of the present invention may be applied to. In the drawings: Fig. 1 is an isometric view of a first conduit insert apparatus; Fig. 2 is a cross-sectional view of the apparatus of Fig. 1; Fig. 3 is an isometric showing the apparatus of Fig. 1 within a conduit; Fig. 4 is a cross-sectional view of a further conduit insert apparatus; Fig. 5 is a partial view of an optical fiber cable that may be used in inserts; Fig. 6 is a schematic view of a strip of innerduct layer material; Fig. 7 schematically shows the apparatus of Fig. 4 on a test device; and Fig. 8 is a schematic view of another strip of innerduct layer material.
Description of Preferred Embodiments Referring now to the drawings, the reference number 10 represents an insert, which may be referred to as an innerduct, to be inserted in an optical fiber cable conduit 12. As shown in Fig. 3, a single innerduct 10 is shown in a conduit 12, but it should be understood that multiple innerducts like the innerduct 10 can be inserted in a conduit 12 depending on the diameter of the conduit 12. For example, it is contemplated that three such innerducts can be inserted in a 4" diameter conduit providing nine channels for the insertion of fiber optic cable.
Each innerduct 10 defines a plurality of channels 14 which are formed by interconnected layers of fabric 16, 18, 20 and 22, etc. In the innerduct shown, each W:ASpecics\2003262489 DI V S pcdoc innerduct 10 has three channels 14 formed by the above noted layers 16, 18, 20 and 22 which are interconnected at their opposite longitudinal side edge portions by having the edge portions 25 of the lower layer 16 overlap the edge portions of the other layers and, by sewing 24 or other suitable methods such as ultrasonic welding, connecting the layers 16, 18, 20 and 22 together.
The fabric material preferably is soft and pliable, allowing the innerduct 10 to be pulled through the conduit 12 without snagging or generating too much heat and also is diverse enough so that the cable in one channel 14 does not contact the cable in the next adjacent channel 14. To this end the layers 16, 18, 20 and 22 are 100% plain woven nylon fabrics having a 520 denier monofilament in both the warp and fill direction woven with a pick and end count of 38.5 which, when finished, has a 40 X pick and end count. The fabric has a weight of 6.0 oz. yd. It is understood that the monofilament denier can vary from 200 1000 denier and the pick and end could well be altered to provide the desired cover to prevent contact of the fiber optic cables.
As stated above, the preferred yarn is 520 denier nylon 6 monofilament but another yam, such as a 520 denier polyester, can be used so long as it has the desired characteristics.
The innerduct 10 is preferable constructed in the following manner. The fabric layers 16, 18, 20 and 22 are initially woven in long wide shapes and are cut along the warp direction into strips with the center strip 20 being the narrowest, the next adjacent strips 18 and 22 being wider, and the strip 16 being the widest so that when the strips 16-22 are mated and joined at their longitudinal edge portions the channels 14 will be formed by the bulging of the wider strips 16, 18 and 22. After the strips 16, W:\Specics\2003262489DIVSpec.doc 18, 20 and 22 have been cut they are laid in between each of the adjacent strips. Then the opposite longitudinal side edge portions 25 of the lower strip 16 are folded over those of the other strips and are sewn to form the innerduct 10 shown in Fig. 1.
The innerduct 10 is manufactured in long lengths for insertion in previously installed conduits 12. Each layer 16-22 is formed in a correspondingly long length by stitching or otherwise joining successive strips of the fabric material together end to end. Pull lines 26, which are preferably woven plastic tapes or plastic ropes, are tied to the optical fiber cables (not shown) at one end and are pulled through the channels 14 by grasping and pulling the lines 26 at the other end. The pull lines 26 are preferably placed over the layers 16, 18 and 20 before the layers 16-22 are overlapped and joined at their longitudinal edge portions.
As shown for example in Fig. 3, a single innerduct 10 is inserted in a conduit 12 having an inner diameter of The strip-shaped fabric layer 20 is 3" wide, the layers 18 and 22 are 4" wide, and the layer 16 is 6" wide. The width of the narrowest layer is thus less than the inner diameter of the conduit 12. This helps to minimize frictional engagement of the innerduct 10 with the conduit 12 when the innerduct 10 is being pulled through the conduit 12.
The above described innerduct is readily manufactured and provides a structure which allows optical fiber cables to be pulled through without snagging or excessive heat build-up due to friction and does not allow contact or alternation losses between adjacent fiber optic cables in other channels of the insert.
A flexible innerduct structure 100 comprising an embodiment of the invention is shown in Fig. 4. Like the innerduct structure 10 of Fig. 1, the innerduct structure W:\Species\2003262489DlVSpecdoc 100 comprises strip-shaped layers of flexible woven material 102, 104, 106 and 108 that are joined along their longitudinal edge portions 110, 112, 114 and 116, respectively, by stitching 118. Each pair of adjacent layers defines a respective cable channel 121, 123 or 125. The layers in each pair have differing widths between their
INO
longitudinal edges such that the wider layer in the pair bulges away from the narrower layer. This imparts open configurations to the channels 121, 123 or 125.
(NO
As in the innerduct 10, the open configurations of the channels 121, 123 and 125 in the innerduct 100 facilitate insertion of cables longitudinally through the channels 121, 123 and 125 by the use of respective pull lines 131, 133 and 135. This is because the spacing between the layers 102-108 helps to prevent them from being pulled along with the cables, and thus helps to prevent bunching-up of the innerduct 100 within the conduit under the influence of the cable and pull lines 131-135 moving longitudinally through the channels 121, 123 and 125.
As described above, the cross section of the innerduct 10 is defined by separate strips of fabric material that are interconnected at their longitudinal edge portions to define overlying layers 16, 18, 20 and 22. As shown in Fig. 4, the overlying layers 102, 104, 106 and 108 of the innerduct 100 also are interconnected at their longitudinal edge portions, but are defined by folded sections of a single strip 140 of fabric material. Two, three, four (Fig. 2) or more strips could be used to define overlying layers. Each strip is one of a plurality of successive strips that are joined together end to end to provide the innerduct with a length that may extend, for example, from three to four miles.
W:Species\2003262489 DIV Spec.doc Fig 5 is a schematic partial view of an optical fiber cable 150 that may be installed in an innerduct. The cable 150 includes a plastic sheath 152 containing a bundle of optical fibers 154. Preferably, each layer of the innerduct that receives the cable 150 is formed of a flexible plastic material that is specified with reference to the plastic sheath 152 so as to have a melting temperature not lower than, and most preferably higher than, the melting temperature of the plastic sheathing material. This helps to ensure that sliding friction will not cause the cable 150 to burn through the innerduct when the cable 150 is being pulled longitudinally through the innerduct. In accordance with this feature, innerduct layers may be formed of nylon 6 so as to have a melting temperature of about 220 degrees C.
The resistance to cable burn-through can also be specified with reference to a pull line duct cutting test substantially similar to the test known as the Bellcore pull line duct cutting test. In accordance with this feature, the innerduct layer material may be specified such that a 0.25 diameter polypropylene rope will not burn through a test sample of the innerduct structure when pulled through the test sample at 100 feet per minute and 450 pounds tension for at least 90 seconds.
The innerduct layer material may further be specified with reference to the material of which the pull lines are formed. In accordance with this feature, the layer material and the pull line material may have respective values of elongation percentage that are substantially equal for a given tensile load. If elongation of the innerduct differs substantially from that of a pull line, one of those structures may lag relative to the other when they are pulled together through a conduit in which they are to be installed together. The elongation percentages of the layer material and the pull W:ASpccies\2003262489DIVS ec.doc line material are preferably not greater than about 75 percent at a peak tensile load, just prior to tensile failure, and are preferably within the range of about 15 to about 60 percent. A more preferred range extends from about 25 to about 40 percent.
For example, nylon 6 is a preferred material and has an elongation of about 40 percent at a peak tensile load. Polyester is another preferred material and has an elongation of about 25 percent at a peak tensile load.
Other features of an innerduct may relate to the tensile strength of the innerduct layer material. In an innerduct construction, each layer may have a longitudinal tensile strength of at least about 12.5 pounds per inch of width. The longitudinal tensile strength of each layer may be within the range of about 12.5 to about 300 pounds per inch of width, and more preferably is within the range of about to about 250 pounds per inch of width. However, the longitudinal tensile strength of each layer is most preferably within the range of about 100 to about 200 pounds per inch of width. For example, each layer 102, 104, 106 and 108 in the innerduct 100 may be formed of a woven fabric having both warp and fill yarns formed of nylon 6, with a longitudinal tensile strength of about 150 pounds per inch of width.
The interconnected layers should together provide the innerduct structure, as a whole, with a longitudinal tensile strength of at least about 90 pounds, but may provide a longitudinal tensile strength within the range of about 50 to about 5,000 pounds. A more preferred range is from about 125 to 4,500 pounds, and a range of about 1,250 to about 4,000 pounds is most preferable.
Fig. 6 is a schematic view of a strip 160 of woven innerduct fabric material that may be used in an innerduct. The strip has warp yams 162 extending along its W:Species\2003262489DIVSpec.doc length and has fill yarns 164 extending across its width. The fill yarns 164 are flexible but have a degree of rigidity or a resistance to crimping that helps the wider layers of the innerduct to retain their bulged condition relative to the adjacent narrower layers, as shown for example in Fig. 4, without being crimped or creased inward toward the adjacent narrower layers. Such crimping or creasing is of less concern in the longitudinal direction of the layers. Therefore, the warp yarns 162 of Fig. 6 may have a crimp resistance that is less than the crimp resistance of the fill yarns 164. Such is the case in the preferred embodiment of the strip 160 in which the warp yarns 162 are formed of polyester, which has a first crimp resistance, and the fill yarns 164 are formed of nylon 6, which has a second, greater crimp resistance. Polyester is preferably used for the warp yarns 162 so as to minimize the elongation differential with the pull lines, which also are preferably formed of polyester.
The crimp resistance can be expressed in terms of the crimp recovery angle.
The crimp recovery angle is a measure of the degree to which a sample of the material returns toward a flat unfolded condition after having once been folded 180 degrees about a fold line in accordance with AATCC method 66. For example, a particular innerduct layer material constructed in accordance with the invention may have heatset polyester warp yarns and nylon 6 fill yarns. That material was found to have a crimp recovery angle of 70 degrees in the warp direction and 135 degrees in the fill direction.
A similar material with greige polyester rather than heatset polyester was found to have a crimp recovery angle of 50 degrees in the warp direction and 125 degrees in the fill direction. A material having heat set polyester yarns in both the warp and fill directions was found to have a crimp recovery angle of 90 degrees in the warp W:\Spccies\2003262489DIVSpc.do c direction and 75 degrees in the fill direction. A similar material having only greige nylon yarns in both the warp and fill directions is found to have a crimp recovery angle 130 degrees in the warp direction and 120 degrees in the fill direction.
The innerduct layer material should be rigid enough to resist collapsing upon itself or bunching up under the influence of the pull lines and cables, but also should be flexible enough to be pulled easily through turns and undulation in the duct in which it is installed. The INDA IST90.3 test procedure is a method of determining the rigidity of the innerduct layer material. In this procedure, a test sample of flexible material is laid out over a slotted surface. A blade is then used to force the material through the slot. The results are expressed in terms of the applied force. A strip of innerduct layer material extending longitudinally across the slot will be forced to bend along a transversely extending fold line. Such a strip will preferably have rigidity test results within the range of about 950 to about 1,750 grams. A strip of innerduct layer material extending transversely across the slot will be forced to bend about a longitudinally extending fold line, and will preferably have rigidity test results within the range of about 150 to about 750 grams. The strip of innerduct layer material will thus have a lesser rigidity across its width. The correspondingly greater degree of flexibility across its width helps to avoid creasing and thereby helps the wider layers of the innerduct to retain their bulged condition relative to the adjacent narrower layers, as described above with reference to Fig. 4. For example, the strip 160 (Fig. 6) of woven innerduct fabric material has fill yarns 164 that are formed of nylon 6. Such yarns are found to have rigidity test results within the range of about 350 to about 550 W:\Species"2003262489D1VSpecdoc grams. The warp yarns 162 are formed of polyester. Such yarns are found to have rigidity test results within the range of about 1, 250 to about 1,450 grams.
The coefficient of friction also can be specified for the innerduct layer material, and the innerduct layer material preferably has a dry static coefficient of friction, based on high density polyethylene on the material with a longitudinal line of action, within the range of about 0.010 to about 0.500. This range is more preferably from about 0.025 to about 0.250, and is preferably from about 0.035 to about 0.100.
For example, a woven innerduct layer having polyester warp yams and nylon 6 fill yarns was found to have a dry static coefficient of friction, based on high density polyethylene on the material with a longitudinal line of action, of 0.064. A similar material having heat set polyester warp yarns had a corresponding coefficient of friction of 0.073. A material having heat set polyester yarns in both the warp and fill directions had a corresponding coefficient of friction of 0.090, and a material having nylon 6 greige yam in both the warp and fill directions had a corresponding coefficient of friction of 0.067. These coefficients of friction differed for transversely directed lines of action on the four foregoing materials and were, respectively, 0.085, 0.088, 0.110, and 0.110. The dynamic or sliding coefficients of friction for these materials, again based on high density polyethylene on the material with a longitudinal line of action, were found to be 0.063, 0.56, 0.058, and 0.049, respectively. The transverse counterparts to these dynamic values were 0.064, 0.067, 0.078, and 0.075, respectively. Although these tested values of sliding coefficient of friction are most preferred, an innerduct may have broader ranges such as the range from about 0.0050 W:ASpeois\2003262489DI VSp.doc to about 0.1250, as well as an intermediate range of about 0.0075 to about 0.0625, and a narrower range of about 0.0100 to about 0.0250.
Additional features of an innerduct may relate to the open configurations of the channels in the innerduct structures. Preferably, in addition to the differing widths of the adjacent layers, an innerduct comprises a material property of the layers that contributes to the open configurations of the channels defined by and between the layers. This material property of the layers is a spring-like resilience that enables the innerduct structure to maintain a freestanding condition such as, for example, the condition in which the innerduct structure 100 is shown in Fig. 7. When the innerduct 100 is fully flattened against the surface 200 by an actuator 202 under the influence of an applied test force F, it will preferably rebound fully or substantially fully to its original freestanding condition as the force F is relieved upon retraction of the actuator 202. By "fully flattened" it is meant that the wider layers 104, 106 and 108 are deflected toward and against the narrowest layer 102 until the applied test force F reaches a peak level at which no further compression will occur without damage to the innerduct 100. This fully flattened condition will include folds between overlapping plies of the wider layers 104, 106 and 108. Preferably, the innerduct 100, will not undergo a next subsequent compression in the same manner under the influence of a peak applied test force that is less than about 85 to 100 percent of the previous peak applied test force. This indicates the correspondingly high degree to which the innerduct tends to retain an open configuration for passage of cables through the cable channels.
W:\Specis\2003262489DIVSxc.dc Fig. 8 is a view similar to Fig. 6 showing an alternative strip 200 of innerduct layer material. Like the strip 160 shown in Fig. 6, the strip 200 comprises a woven structure having warp yarns 202 and fill yarns 204. The strip 200 further comprises a barrier 206 that blocks air from flowing through the strip 200 between the warp yarns 202 and the fill yarns 204. Such impervious strips enable a cable to be blown through the innerduct structure without a loss of pneumatic pressure that could otherwise result from the passage of air outward through layers.
Impervious strips could be used to define all of the layers of the innerduct structure, but would more preferably be used to define the outermost layers of the innerduct structure. For example, a pair of strips like the strip 200 could be used to define the outermost layers 16 and 22 of the innerduct structure 10 described above. A single strip like the strip 200 could be used to define all of the layers 102-108 of the innerduct structure 100 described above. In the embodiment shown in Fig. 8, the barrier 206 is a thin layer of plastic material that is bonded to the yarns 202 and 204 in a heat lamination process. If a plastic air barrier like the layer 206 is included in the innerduct structure at a location facing inward of a cable channel, it is preferably formed of a plastic material having a melting temperature that is not less than the melting temperature of the plastic sheathing material on the cable that is to be blown through the channel.
The invention has been described with reference to preferred embodiments.
Those skilled in the art will perceive improvements, changes and modifications. Such improvements, changes and modifications are intended to be within the scope of the claims.
W:\Spcics\2003262489DIVSpccdc

Claims (19)

1. A cable receiving assembly comprising: a tubular conduit having an internal area for the housing of cables; a flexible elongated partitioning device disposed longitudinally within the internal area of the tubular conduit, the flexible elongated partitioning device including: a woven innerduct having a single strip of fabric (N Smaterial interconnected to itself so as to form at least one channel, the single strip of fabric material having monofilament polyester warp yams running in the longitudinal direction of the flexible elongated partitioning device; and, a pull line disposed in the at least one channel of the woven innerduct.
2. The cable receiving assembly of claim 1, wherein the monofilament polyester warp yars are heat set.
3. The cable receiving assembly of claim 1, wherein the single strip of fabric material further includes polyester fill yars, and wherein the warp and the fill yarns are heat set.
4. The cable receiving assembly of claim 1 or 2, wherein the single strip of fabric material further includes monofilament nylon fill yars. The cable receiving assembly of any preceding claim, wherein the monofilament polyester warp yars have a denier from 200 to 1000 denier.
W:\Species\2003262489DIVSpcc.doc
6. The cable receiving assembly of any preceding claim, wherein the woven innerduct has a bias for remaining open.
7. The cable receiving assembly of any preceding claim, wherein the single strip of fabric material further includes fill yarns, and wherein the warp yarns have a crimp resistance that is less than that of the fill yarns.
8. The cable receiving assembly of any preceding claim, wherein the single strip of fabric material of the woven innerduct is interconnected to itself so as to form a plurality of channels.
9. The cable receiving assembly of claim 8, wherein the flexible elongated partitioning device further includes a pull line in each of the plurality of channels in the woven innerduct.
The cable receiving assembly of any preceding claim, wherein the fabric material of the woven innerduct and the fabric material of the pull line have respective values of elongation percentage that are substantially equal for a given tensile load.
11. A cable assembly comprising: a tubular conduit having an internal area for the housing of cables; a woven innerduct disposed longitudinally within the internal area of the tubular conduit, the woven innerduct having a single strip of fabric material interconnected to itself so as to form at least one channel, the single strip of fabric W:Sp .cics\2003262489DIVSpc.doc material having monofilament polyester warp yars running in the longitudinal direction of the woven innerduct; and, a cable disposed longitudinally within the at least one channel of the woven innerduct.
12. The cable assembly of claim 11, wherein the monofilament polyester warp yams are heat set.
13. The cable assembly of claim 11, wherein the single strip of fabric material further includes polyester fill yams, and wherein the warp and the fill yams are heat set.
14. The cable assembly of claim 11 or 12, wherein the single strip of fabric material further includes monofilament nylon fill yams.
15. The cable assembly of any one of claims 11 to 14, wherein the monofilament polyester warp yars have a denier from 200 to 1000 denier.
16. The cable assembly of any one of claims 11 to 15, wherein the woven innerduct has a bias for remaining open.
17. The cable assembly of any one of claims 11 to 16, wherein the single strip of fabric material further includes fill yams, and wherein the warp yars have a crimp resistance that is less than that of the fill yams.
W:\Spccies\2003262489DIVSpec.doc S18. The cable assembly of any one of claims 11 to 17, wherein the single strip of Sfabric material of the woven innerduct is interconnected to itself so as to form a plurality of channels.
19. The cable assembly of claim 18, wherein the woven innerduct further includes a cable in each of the plurality of channels. IO The cable assembly of any one of claims 11 to 19, wherein the cable includes a sheath and wherein the fabric material of the woven innerduct has a melting point not lower than the melting point of the sheath of the cable. W:\Species\2003262489DIVSpec.doc
AU2006203776A 1999-09-22 2006-08-30 Conduit insert for optical fiber cable Ceased AU2006203776B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
AU2006203776A AU2006203776B2 (en) 1999-09-22 2006-08-30 Conduit insert for optical fiber cable

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
US09/400778 1999-09-22
AU2003262489A AU2003262489B2 (en) 1999-09-22 2003-11-25 Conduit insert for optical fiber cable
AU2006203776A AU2006203776B2 (en) 1999-09-22 2006-08-30 Conduit insert for optical fiber cable

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
AU2003262489A Division AU2003262489B2 (en) 1999-09-22 2003-11-25 Conduit insert for optical fiber cable

Publications (2)

Publication Number Publication Date
AU2006203776A1 AU2006203776A1 (en) 2006-09-21
AU2006203776B2 true AU2006203776B2 (en) 2007-12-13

Family

ID=37074513

Family Applications (1)

Application Number Title Priority Date Filing Date
AU2006203776A Ceased AU2006203776B2 (en) 1999-09-22 2006-08-30 Conduit insert for optical fiber cable

Country Status (1)

Country Link
AU (1) AU2006203776B2 (en)

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3911200A (en) * 1973-01-15 1975-10-07 Sun Chemical Corp Electrical cable housing assemblies
US4862922A (en) * 1983-01-18 1989-09-05 The Bentley-Harris Manufacturing Company Abrasion resistant sleeve for flat substrates
US4929478A (en) * 1988-06-17 1990-05-29 The Bentley-Harris Manufacturing Company Protective fabric sleeves
US5027864A (en) * 1985-05-21 1991-07-02 Arnco Corporation Tubular apparatus for transmission cable
US5413149A (en) * 1991-11-05 1995-05-09 The Bentley-Harris Manufacturing Company Shaped fabric products and methods of making same
US5442136A (en) * 1992-07-02 1995-08-15 Allen; Jerry L. Method of installation of partitioning device for a tubular conduit
US5789711A (en) * 1996-04-09 1998-08-04 Belden Wire & Cable Company High-performance data cable
US5969295A (en) * 1998-01-09 1999-10-19 Commscope, Inc. Of North Carolina Twisted pair communications cable
US6178278B1 (en) * 1997-11-13 2001-01-23 Alcatel Indoor/outdoor dry optical fiber cable

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3911200A (en) * 1973-01-15 1975-10-07 Sun Chemical Corp Electrical cable housing assemblies
US4862922A (en) * 1983-01-18 1989-09-05 The Bentley-Harris Manufacturing Company Abrasion resistant sleeve for flat substrates
US5027864A (en) * 1985-05-21 1991-07-02 Arnco Corporation Tubular apparatus for transmission cable
US4929478A (en) * 1988-06-17 1990-05-29 The Bentley-Harris Manufacturing Company Protective fabric sleeves
US5413149A (en) * 1991-11-05 1995-05-09 The Bentley-Harris Manufacturing Company Shaped fabric products and methods of making same
US5442136A (en) * 1992-07-02 1995-08-15 Allen; Jerry L. Method of installation of partitioning device for a tubular conduit
US5789711A (en) * 1996-04-09 1998-08-04 Belden Wire & Cable Company High-performance data cable
US6178278B1 (en) * 1997-11-13 2001-01-23 Alcatel Indoor/outdoor dry optical fiber cable
US5969295A (en) * 1998-01-09 1999-10-19 Commscope, Inc. Of North Carolina Twisted pair communications cable

Also Published As

Publication number Publication date
AU2006203776A1 (en) 2006-09-21

Similar Documents

Publication Publication Date Title
US7319802B2 (en) Conduit insert for optical fiber cable
US6876797B2 (en) Fire resistant conduit insert for optical fiber cable
US20060215979A1 (en) Method of dividing a conduit using an innerduct structure
AU2006203776B2 (en) Conduit insert for optical fiber cable
AU2003262489B2 (en) Conduit insert for optical fiber cable

Legal Events

Date Code Title Description
FGA Letters patent sealed or granted (standard patent)
MK14 Patent ceased section 143(a) (annual fees not paid) or expired