Field of the Invention
The present invention relates generally to spool apparatus and methods of winding a length of cable and, more particularly, to spool apparatus including a flange with a layer of conformable material defining an inner face of the flange and methods of winding with the spool apparatus.
Technical Background
Conventional spools are known to include rigid flanges mounted to a drum of the spool. Methods of winding cable with the spool include winding the cable along multiple layers of windings wherein end windings of the layers of windings engage the rigid surfaces of the flanges. Such configurations are undesirable since winding of the cable from a first direction creating a first layer of windings to a second direction creating a second layer of stacked windings is triggered automatically when the cable encounters the rigid flange, despite whatever cable geometry of the underlying layer of windings is presented. Such conventional winding leads to undesired gaps between cable windings and/or undesired overlaps of cables along the layer of windings. As such, current spools with conventional rigid flanges do not provide for reversing the direction of winding at a selected position corresponding to a proper underlying cable layer geometry where the next winding of the stacked layer can easily fall into the underlying groove defined between underlying windings.
In a first aspect of the disclosure, a spool apparatus is configured to wind a length of cable. The spool apparatus comprises a drum extending along a central axis of the spool apparatus. The spool apparatus further includes a first flange mounted with respect to a first axial end portion of the drum. The first flange includes a first layer of conformable material defining an inner face of the first flange. The spool apparatus further includes a second flange mounted with respect to a second axial end portion of the drum. The second flange includes a second layer of conformable material defining an inner face of the second flange. A cylindrical storage area is defined between the inner face of the first flange, the inner face of the second flange and an outer peripheral surface of the drum. The first layer of conformable material is configured to conform the inner face of the first flange into a shape of a circumferential surface portion of a first end winding of cable wound within the cylindrical storage area in response to the first end winding of cable being pressed against the inner face of the first flange. The second layer of conformable material is configured to conform the inner face of the second flange into a shape of a circumferential surface portion of a second end winding of cable wound within the cylindrical storage area in response to the second end winding of cable being pressed against the inner face of the second flange.
In one example of the first aspect, the first layer of conformable material is configured to apply an inner axial force component to the first end winding of cable in a first direction of the central axis, and the second layer of conformable material is configured to apply an inner axial force component to the second end winding in second axial direction of the central axis that is opposite to the first axial direction.
In another example of the first aspect, each layer of conformable material is substantially resilient.
In still another example of the first aspect, each layer of conformable material has a compression deflection of 25% within a range of from about 34 kPa to about 345 kPa.
In yet another example of the first aspect, an outer peripheral inner edge of the conformable material comprises an outer beveled portion.
In a further example of the first aspect, the first flange comprises a first layer of substantially rigid material supporting the first layer of conformable material and the second flange comprises a second layer of substantially rigid material supporting the second layer of conformable material. For example, each layer of substantially rigid material includes an inner major surface facing an inward direction toward the cylindrical storage area. The first layer of conformable material includes an outer surface mounted to the inner major surface of the first layer of substantially rigid material. The second layer of conformable material includes an outer surface mounted to the inner major surface of the second layer of substantially rigid material.
In another example of the first aspect, a winding device is configured to permit winding of the length of cable on the outer peripheral surface of the drum in a first axial direction along the central axis to produce a first layer of windings, and further configured to cause the length of cable to begin winding in a second axial direction to produce a second layer of windings stacked on the first layer of windings in response to a first end winding of the first layer of windings reaching a selected position. For example, the winding device comprises a sensor configured to determine when the first end winding of the first layer of windings reaches the selected position.
The first aspect of the disclosure can be provided alone or in combination with one or more examples of the first aspect discussed above.
In a second aspect of the disclosure a spool of wound cable comprises a drum extending along a central axis of the spool of wound cable. The spool of wound cable further comprises a first flange mounted with respect to a first axial end portion of the drum. The first flange includes a first layer of conformable material defining an inner face of the first flange. The spool of wound cable further includes a second flange mounted with respect to a second axial end portion of the drum. The second flange includes a second layer of conformable material defining an inner face of the second flange. A cylindrical storage area is defined between the inner face of the first flange, the inner face of the second flange and an outer peripheral surface of the drum. A length of cable is wound within the cylindrical storage area to include at least one layer of windings extending between the first flange and the second flange. Each layer of windings includes a first end winding with the first layer of conformable material conforming the inner face of the first flange into a shape of a circumferential surface portion of at least one first end winding of the at least one layer of windings in response to the at least one first end winding being pressed against the inner face of the first flange. Each layer of windings includes a second end winding with the second layer of conformable material conforming the inner face of the second flange into a shape of a circumferential surface portion of at least one second end winding of the at least one layer of windings in response to the at least one second end winding being pressed against the inner face of the second flange.
In one example of the second aspect, the at least one layer of windings includes a plurality of stacked layers of windings with the first layer of conformable material conforming the inner face of the first flange into the shape of the circumferential surface portion of a plurality of first end windings of the plurality of stacked layers of windings in response to the plurality of first end windings being pressed against the inner face of the first flange. The second layer of conformable material conforms the inner face of the second flange into the shape of the circumferential surface portion of a plurality of second end windings of the plurality of stacked layers of windings in response to the plurality of second end windings being pressed against the inner face of the second flange.
In another example of the second aspect, the first layer of conformable material applies a first inner axial force component to the at least one first end winding in a first direction of the central axis while the second layer of conformable material applies a second inner axial force component to the at least one second end winding in a second direction of the central axis opposite to the first direction such that the at least one first end winding and the at least one second end winding are biased towards one another.
In yet another example of the second aspect, the first flange comprises a first layer of substantially rigid material supporting the first layer of conformable material and the second flange comprises a second layer of substantially rigid material supporting the second layer of conformable material. In one example, the first layer of substantially rigid material includes an inner major surface facing the cylindrical storage area, and the first layer of conformable material includes an outer surface mounted to the inner major surface, and the second layer of substantially rigid material includes an inner major surface facing the cylindrical storage area, and the second layer of conformable material includes an outer surface mounted to the inner major surface. In another example, the length of cable includes a diameter taken along a cross-section substantially perpendicular to an elongated axis of the cable, each layer of conformable material includes a thickness defined between the outer surface of the corresponding layer of conformable material and the inner face of the first flange, and the thickness of each layer of conformable material is less than or equal to about 70% of the diameter of the cable.
The second aspect of the disclosure can be provided alone or in combination with one or more examples of the second aspect discussed above.
In a third aspect, a method of winding a length of cable comprises the step of winding the length of cable onto an outer peripheral surface of a drum of a spool in a first axial direction to produce a first layer of windings. Winding the cable in the first axial direction continues to a selected position where a first end winding of the first layer of windings is pressed into an inner face of a first flange of the spool such that a first layer of conformable material of the first flange conforms the inner face of the first flange into a shape of a circumferential surface portion of the first end winding. The method then includes the step of winding the length of cable in a second axial direction opposite the first axial direction to produce a second layer of windings stacked on the first layer of windings.
In one example of the third aspect, the step of winding the cable provides a plurality of stacked layers of windings including the first layer and the second layer of windings. Each layer of stacked windings includes a first end winding, and the first layer of conformable material conforms the inner face of the first flange into a shape of the circumferential surface portion defined by a plurality of first end windings of the plurality of stacked layers of windings in response to the plurality of first end windings pressing against the inner face of the first flange. Each layer of stacked windings includes a second end winding, and a second layer of conformable material of a second flange of the spool conforms an inner face of the second flange into a shape of the circumferential surface portion defined by a plurality of second end windings of the plurality of stacked layers of windings in response to the plurality of second end windings pressing against the inner face of the second flange. In one example, the first layer of conformable material applies a first inner axial force component to each of the plurality of first end windings in a first axial direction while the second layer of conformable material applies a second inner axial force component to each of the plurality of second end windings in a second axial direction opposite to the first axial direction.
In yet another example of the third aspect, the method comprises the step of operating a winding device to begin winding the length of cable in the second axial direction once the first layer of windings reaches the selected position. For example, the method can include the step of determining the selected position based on feedback from the winding device.
The third aspect of the disclosure can be provided alone or in combination with one or more examples of the third aspect discussed above.
These and other features, aspects and advantages of the present invention are better understood when the following detailed description of the invention is read with reference to the accompanying drawings, in which:
The present invention will now be described more fully hereinafter with reference to the accompanying drawings in which example embodiments of the invention are shown. Whenever possible, the same reference numerals are used throughout the drawings to refer to the same or like parts. However, this invention may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. These example embodiments are provided so that this disclosure will be both thorough and complete, and will fully convey the scope of the invention to those skilled in the art.
By way of illustration purposes,
The drum 103 can further include an outer peripheral surface 107 that may comprise various shapes. For example, as shown in
As shown in
Referring back to
As shown in
As shown in
The first flange 109a and the second flange 109b are provided with a layer of conformable material defining an inner face of the respective flange. The figures illustrate both flanges 109a, 109b including respective layers 121a, 121b of conformable material although only one of the flanges may comprise a layer of conformable material in further examples. In the illustrated example, the first flange 109a includes a first layer 121a of conformable material defining the inner face 117a of the first flange 109a. The second flange 109b likewise includes a second layer 121b of conformable material defining the inner face 117b of the second flange 109b.
As shown in
The layer of conformable material, such as the first and second layer 121a, 121b of conformable material can be configured to apply an inner axial force component to the respective end winding of cable in a direction of the central axis 105. For example, as shown in
Various materials may be used to provide the layer of conformable material. For instance, various materials may be incorporated such that the first layer and second layer of conformable material are substantially flexible and resilient. As such, in some examples, the layer of conformable material may be capable of at least partially or entirely returning to its original shape after conforming to a shape of the circumferential surface portion of the end winding. Due to the resiliency of the conformable material, the conformable material may apply an axial force component to the cable due to the conformable material attempting to elastically return, or at least partially return, to its original shape.
Providing a resilient conformable material can also allow the spool apparatus to be recycled for subsequent use with a different cable that may have different dimensions. In one example, the resilient conformable material temporarily elastically deforms under pressure to allow the inner face to conform to the shape of the circumferential surface portion of the end winding. Still further, the resiliency of the conformable layer allows a reaction force comprising the above-referenced inner axial force to be applied to the end winding as the conformable material attempts to elastically return (e.g., partially or entirely) to its original shape.
In one example, the first and second layer of conformable material may comprise rubber, foam (e.g., foam rubber), or other materials or combinations of such materials. While open cell foam may be incorporated in some examples, closed cell foam may be provided to help resist liquids or other contaminants from loading the conformable material layer. In further examples, the layer of conformable material may be encapsulated or otherwise encased in a protective layer to avoid contamination from liquids or other debris. For instance, a layer of flexible plastic may encapsulate otherwise outer exposed portions of the conformable material that may otherwise be infiltrated by environmental contaminants.
As shown in the figures, the layer of conformable material may comprise a single layer of conformable material although laminated conformable materials may be provided in further examples. For example, the layer of conformable material may comprise a composite of multiple sub-layers of material integrated together as a laminate layer of conformable material.
In just some examples, the conformable material may have a density of from about 1 lb/ft3 (16 kg/m3) to about 10 lb/ft3 (160 kg/m3), such as from about 2 lb/ft3(32 kg/m3) to about 5 lb/ft3 (80 kg/m3).
In further examples, in addition or alternatively to the density of the material discussed above, the conformable material may have a compression deflection of 25% within various ranges. A compression deflection of 25% is the amount of pressure required to compress the conformable material by 25%. For example, referring to
In still further examples, in addition or alternative to one or both the density and compression deflection properties discussed above, the conformable material may have a compression set within various ranges. The compression set is a measure of the permanent deformation of the conformable material when the force is removed. The compression set can be calculated by an experiment where a 1.8 kN force is applied to the conformable material for a set temperature and time. Then the compression set can then be defined as the percentage of original thickness that is achieved after the force has been removed for 30 minutes. In such an example, the compression set can be calculated with the equation 100*(To−Tf)/To wherein (To) is the original thickness of the layer of conformable material and (Tf) is the final thickness of the layer of conformable material after testing.
In another example, compression set can be calculated by compressing the conformable material to 25% of its original thickness for a set temperature and time. The compression set can then be defined as the percentage of original thickness that is achieved after the force has been removed for 30 minutes. In such an example, the compression set can be calculated with the original thickness (To) of the layer of conformable material, the final thickness (Tf) after testing and the thickness (Tt) of the layer of conformable material as 100*(To−Tf)/(To−Tt). In one example, the compression set achieved by one or both of the tests set forth above can be within a range of from about 0% to about 40% such as from about 10% to about 30% such as from about 15% to about 25%.
Some example layers of conformable material can be fabricated, for example, from viscoelastic polyurethane foam, low-resilience polyurethane foam (LRPu), Sorbothane® foam available from Sorbothane, Inc of Kent, Ohio, Neoprene, polychloroprene, polyether foam available from Foamex Innovations, Sinomax® foam available from Sinomax, foam available under product numbers XLP10022, XLP100180 and XLP10019 available from the Nott Company located in Princeton Minn., foam available from NCFI Polyurethanes, foam available from Domfoam International, or other foams.
The properties of example materials are listed below.
For example, in some embodiments the density of the foam is at least about 1.5 lb/ft3 to provide sufficient resistance to compression for purposes disclosed herein, and/or the density is no more than 8 lb/ft3 so as to provide sufficient flexibility. In some embodiments, the compression pressure for 25% deflection of the foam is at least 5 psi and/or no more than 40 psi, such as when compressing at a rate of 5% per second.
Optionally, the first flange and/or the second flange may comprise a layer of substantially rigid material. For example, as shown in
Substantially rigid material of the layer of substantially rigid material can include materials with a shear modulus of greater than or equal to 10 GPa. For example, the material can comprise wood having a shear modulus of 13 GPa, aluminum with a shear modulus of at least 24 GPa, steel with a shear modulus of 77 GPa or other substantially rigid materials.
Moreover, the conformable material of the layer of conformable material may have a shear modulus of less than about 0.1 GPa. For example, the conformable material may have a shear modulus of rubber having a shear modulus of 0.0003 GPa. In further examples, the conformable material and the rigid material may be selected such that the shear modulus of the conformable material is an order of 4-5 magnitude less than the shear modulus of the substantially rigid material. For example, if the rigid material comprises wood (G=13 GPa) and the conformable material comprises rubber (G=0.0003 GPa), the conformable material is an order of magnitude of between 4-5 less than the rigid material.
As shown in the example embodiment, the first layer 123a of substantially rigid material includes a thickness defined between an outer major surface 125a and an inner major surface 127a. The inner major surface 127a faces the inward direction 119a toward the cylindrical storage area 115. The first layer 121a of conformable material includes an outer surface 129a mounted to the inner major surface 127a of the first layer 123a of substantially rigid material. Likewise, the second layer 123b of substantially rigid material includes a thickness defined between an outer major surface 125b and an inner major surface 127b. The inner major surface 127b faces the inward direction 119b toward the cylindrical storage area 115. The second layer 121b of conformable material includes an outer surface 129b mounted to the inner major surface 127b of the second layer 123b of substantially rigid material. In one example, the layer of conformable material is mounted by an adhesive to the layer of substantially rigid material although fastening mechanisms may be provided in further examples. For instance, an existing spool may be retrofitted to include the layers of conformable material that may be mounted, for example, by adhesive to the existing substantially rigid flanges of the spool.
A method of winding a length of cable 711 will now be described. The method includes the step of providing the spool apparatus 100 with the spool 101 including the drum 103 extending along the central axis 105 of the spool apparatus. The first flange 109a is mounted with respect to the first axial end portion 111a of the drum and the second flange 109b is mounted with respect to the second axial end portion 111b of the drum 103. The spool apparatus includes the cylindrical storage area 115 defined between the inner face 117a of the first flange 109a, the inner face 117b of the second flange 109b and the outer peripheral surface 107 of the drum 103. As discussed above, the first flange 109a includes the first layer 121a of conformable material defining the inner face 117a of the first flange 109a and the second flange 109b includes the second layer 121b of conformable material defining the inner face 117b of the second flange 109b.
As shown in
As discussed above, the winding device 305 can include force sensors 313a, 313b to facilitate determining when the selected position is achieved to begin winding in the opposite direction. In addition or alternatively, the winding device 305 may include optical or proximity sensors 319a, 319b may be provided to help determine when the selected position is achieved. The optical or proximity sensors 319a, 319b may be placed in operable communication with the controller 311 to facilitate operation of the winding device. Alternative to the winding device, an operator may manually feed the cable and make a visual or other sensory determination as to when the cable has achieved the selected position. The selected position can be the position where the winding of cable can easily drop into a groove between windings of the layer of windings underlying a stacked layer of windings.
As shown in
Likewise, if provided, the second layer 121b of conformable material may also conform to the inner face of the second flange into a shape of a circumferential surface portion of a second end winding of cable stored within the cylindrical storage area in response to the second end winding pressing against the inner face of the second flange.
As shown in
The layer of conformable material can also cooperate with the change in direction of winding (e.g., automatic change, manual change, etc.) at the appropriate time when the selected position is achieved. For example, in some embodiments, the length of cable 711 can wind in the first axial direction 301 until the cable presses sufficiently against the inner face 117a such that the layer of conformable material gradually conforms the inner face 117a to conform to a shape of a circumferential surface portion until a sufficient force is obtained based on sufficient embedding of the end winding 109a of cable within the first flange 109a. Winding can then manually or automatically continue by winding another layer of windings along the second axial direction 501. The layers can be formed sequentially as the length of cable winds along the first and second axial directions 301, 501.
Once the method of winding is complete, a spool apparatus of wound cable 601 is provided as shown in
As such, the at least one layer of windings can include a plurality of stacked layers of windings such as the second layer 503 of windings stacked on the first layer 401 of windings shown in
The conformable layer of material can allow embedding of end windings with in the flanges to help properly seat the layers of cable in a compact fashion. Indeed, due to the resiliency of the conformable layer, lateral forces may be applied resulting from the elasticity of the material attempting to at least partially return to its or original shape to help compress the windings together to eliminate unwanted gaps between the windings of cable. Moreover, interaction with the conformable material layer can allow the winding device to automatically reverse direction of the cable to provide well defined layers of windings. As shown in
Still further, in one example, as shown in
Providing the first flange and the second flange with the layer of conformable material can help efficiently wind cable of various diameters on a common spool. As such, a single spool may be provided for successfully winding a wide range of cable diameters. Indeed, the cable may wind and the conformable material may deflect sufficiently such that a desired number of windings is achieved along the layer of windings. As such, the spool may accommodate slight variations in length of the winding layer depending on the diameter of the cable such that the optimal length is achieved by an integer number of cable windings. Moreover, the layer of conformable material can help mend any inconsistencies in optimal flange configurations that may otherwise be compromised by wear and tear on the flanges. Indeed, conventional substantially rigid flanges may become dented or otherwise damaged that may interfere with optimal winding of the cable. However, the layer of conformable material can help mend any damage to the flanges as an optimal winding can still be achieved due to the elasticity of the conformable material. As such, the layer of conformable material can help address configurations where flanges are not square azimuthally and radially relative to the drum and/or dented and damaged that may otherwise create non-regular widths between the flanges. Winding procedures can be improved by providing a construction that overcomes the shortcomings of flange rigidness and non-uniformity as well as varied cable diameter by allowing each winding of a stacked layer of windings to be properly seated within a corresponding underlying groove defined between windings of the underlying layer of windings.
It will be apparent to those skilled in the art that various modifications and variations can be made to the present invention without departing from the spirit and scope of the invention. Thus, it is intended that the present invention cover the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents.
This application is a continuation of International Application No. PCT/US14/56469, filed on Sep. 9, 2014, which claims the benefit of priority under 35 U.S.C. §119 to U.S. Provisional Application Ser. No. 61/883,281 filed on Sep. 27, 2013, the contents of which are relied upon and incorporated herein by reference in their entirety.
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Number | Date | Country | |
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20160194177 A1 | Jul 2016 | US |
Number | Date | Country | |
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61883281 | Sep 2013 | US |
Number | Date | Country | |
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Parent | PCT/US2014/056469 | Sep 2014 | US |
Child | 15071768 | US |