STRAY CURRENT MITIGATION ASSEMBLIES HAVING A CARBON CONDUCTION SUBASSEMBLY
20230294560 · 2023-09-21
Inventors
Cpc classification
B60M5/00
PERFORMING OPERATIONS; TRANSPORTING
B60M5/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A stray current mitigation assembly includes a carbon conduction subassembly configured to be embedded in a subsurface adjacent an electrically conductive structure. The carbon conduction subassembly includes a carbon fiber fabric layer and one or more conductive extensions electrically coupled to the carbon fiber fabric layer. The carbon fiber fabric layer is configured to capture stray current generated by the electrically conductive structure and the one or more conductive extensions are configured to carry captured stray current along a length of the one or more conductive extensions.
Claims
1. A stray current mitigation assembly comprising: a carbon conduction subassembly configured to be embedded in a subsurface adjacent an electrically conductive structure, wherein: the carbon conduction subassembly comprises a carbon fiber fabric layer and one or more conductive extensions electrically coupled to the carbon fiber fabric layer; the carbon fiber fabric layer is configured to capture stray current generated by the electrically conductive structure; and the one or more conductive extensions are configured to carry captured stray current along a length of the one or more conductive extensions.
2. The stray current mitigation assembly of claim 1, wherein the carbon fiber fabric layer comprises a first carbon fiber fabric layer and the carbon conduction subassembly further comprises a second carbon fiber fabric layer.
3. The stray current mitigation assembly of claim 2, wherein the one or more conductive extensions are positioned between the first carbon fiber fabric layer and the second carbon fiber fabric layer in contact with the first carbon fiber fabric layer and the second carbon fiber fabric layer.
4. The stray current mitigation assembly of claim 1, wherein the one or more conductive extensions contact the carbon fiber fabric layer.
5. The stray current mitigation assembly of claim 4, wherein the one or more conductive extensions are woven into the carbon fiber fabric layer.
6. The stray current mitigation assembly of claim 1, wherein the one or more conductive extensions comprise one or more metal wires.
7. The stray current mitigation assembly of claim 1, wherein the one or more conductive extensions comprise one or more metal mesh layers.
8. The stray current mitigation assembly of claim 1, wherein the one or more conductive extensions are electrically coupled to a power source.
9. The stray current mitigation assembly of claim 1, further comprising an insulation layer configured to be embedded in the subsurface below the carbon fiber fabric layer.
10. The stray current mitigation assembly of claim 9, further comprising a plurality of grate structures extending through the insulation layer and the carbon fiber fabric layer and intermittently positioned along a length of the carbon conduction subassembly.
11. A method of carrying stray current, the method comprising: capturing stray current from an electrically conductive structure with a carbon fiber fabric layer of a carbon conduction subassembly of a stray current mitigation assembly, wherein: the carbon conduction subassembly comprises one or more conductive extensions electrically coupled to the carbon fiber fabric layer; and the carbon conduction subassembly is embedded in a subsurface adjacent the electrically conductive structure; and carrying stray current along the one or more conductive extensions of the carbon conduction subassembly to a power source electrically coupled to the one or more conductive extensions.
12. The method of claim 11, further comprising an insulation layer embedded in the subsurface adjacent the carbon fiber fabric layer.
13. The method of claim 12, further comprising a plurality of grate structures extending through the insulation layer and the carbon fiber fabric layer and intermittently positioned along a length of the carbon conduction subassembly.
14. The method of claim 11, wherein the electrically conductive structure comprises an external electrically conductive structure.
15. The method of claim 11, wherein the electrically conductive structure comprises an embedded electrically conductive structure.
16. The method of claim 11, wherein the carbon fiber fabric layer comprises a first carbon fiber fabric layer and the carbon conduction subassembly further comprises a second carbon fiber fabric layer, and the one or more conductive extensions are positioned between the first carbon fiber fabric layer and the second carbon fiber fabric layer in contact with the first carbon fiber fabric layer and the second carbon fiber fabric layer.
17. The method of claim 11, wherein the one or more conductive extensions contact the carbon fiber fabric layer.
18. The method of claim 11, wherein the one or more conductive extensions comprise one or more metal wires, one or more metal mesh layers, or a combination thereof.
19. A stray current mitigation assembly comprising: a carbon conduction subassembly configured to be embedded in a subsurface adjacent an electrically conductive structure, wherein: the carbon conduction subassembly comprises a carbon fiber fabric layer and one or more conductive extensions; the one or more conductive extensions comprise at least one metal mesh layer in contact with the carbon fiber fabric layer; the carbon fiber fabric layer is configured to capture stray current generated by the electrically conductive structure; and the at least one metal mesh layer is electrically coupled to a power source such that the at least one metal mesh layer carries captured stray current from the carbon fiber fabric layer to the power source; and an insulation layer configured to be embedded in the subsurface adjacent the carbon fiber fabric layer such that the carbon fiber fabric layer is disposed between the insulation layer and the at least one metal mesh layer.
20. The stray current mitigation assembly of claim 19, further comprising a plurality of grate structures extending through the insulation layer, the carbon fiber fabric layer, and the at least one metal mesh layer and intermittently positioned along a length of the carbon conduction subassembly.
21. The stray current mitigation assembly of claim 1, wherein the one or more conductive extensions are electrically coupled to a power source via rail or other conductive structure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The embodiments set forth in the drawings are illustrative and exemplary in nature and not intended to limit the subject matter defined by the claims. The following detailed description of the illustrative embodiments can be understood when read in conjunction with the drawings, where like structure is indicated with like reference numerals and in which:
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
DETAILED DESCRIPTION
[0016] Embodiments described herein include those directed to a stray current mitigation assembly comprising a carbon conduction subassembly that includes at least one carbon fiber fabric layer and one or more conductive extensions electrically coupled to a layer of at least one carbon fiber fabric (also referred to herein as “the at least one carbon fiber fabric layer”). The one or more conductive extensions comprise a conductive material that may be physically coupled to the carbon fiber fabric layer or disposed adjacent and in contact with the carbon fiber fabric layer. The one or more conductive extensions are positioned along the length of the carbon fiber fabric layer and provide an electrical pathway for stray current captured by the carbon fiber fabric layer. In operation, the material of the carbon fiber fabric may capture stray current and the one or more conductive extensions may carry the stray current to a power source, such as a traction power substation, or to the conductive structure from which the stray current leaks, along which it eventually returns to a power source. By carrying stray current back to a power source, the conductive extensions prevent or substantially diminish stray current from leaking out along other unintended paths. Various embodiments of the stray current mitigation system, and the operation of the stray current mitigation system, are described in more detail herein. As appropriate, reference numerals will be used consistently throughout the drawings to refer to the same or like parts.
[0017] Referring now to
[0018] In some embodiments, the electrically conductive structure 20 comprises an external electrically conductive structure 22, such as a railway 24 (
[0019] The one or more conductive extensions 114 may comprise a conductive metal, such as copper, silver, gold, zinc, nickel, platinum, conductive alloys, and the like. The one or more conductive extensions 114 may extend along the length of the carbon conduction subassembly 110, electrically coupled to the carbon fiber fabric layer 112. In some embodiments, the conductive extensions 114 comprise metal wires extending along the length of the carbon conduction subassembly 110. Exemplary conductive wires include copper wires, aluminum wires, or other metal wires. An example copper wire includes 18/1 copper stranded wire. In other embodiments, the conductive extensions 114 may comprise a metal mesh, such as a copper mesh or an aluminum mesh, as shown in
[0020] As shown in
[0021] As shown in
[0022] Referring to
[0023] Referring again to
[0024] Referring again to
[0025] As shown in
[0026] Embodiments described herein are include a stray current mitigation assembly comprising a carbon conduction subassembly that includes at least one carbon fiber fabric layer for capturing stray current and one or more conductive extensions for carrying stray current captured by the carbon fiber fabric layer to a power source, e.g., a traction power substation to prevent stray current from leaking out along other unintended paths. The stray current mitigation assembly further comprises an insulation layer disposed below the carbon conduction subassembly to prevent stay current and water leaking to the surrounding earth. The stray current mitigation assembly provides an effective, easy to install system for mitigating stray current for a variety of electrically conductive structures, such as railways and pipelines.
[0027] Reference herein to a variable being a “function” of a parameter or another variable is not intended to denote that the variable is exclusively a function of the listed parameter or variable. Rather, referring to a variable that is a “function” of a listed parameter is open-ended such that the variable may be a function of a single parameter or a plurality of parameters.
[0028] Recitation herein of “at least one” component, element, etc., should not be used to create an inference that the alternative use of the articles “a” or “an” should be limited to a single component, element, etc.
[0029] Recitation herein of a component being “configured” in a particular way, to embody a particular property, or function in a particular manner, are structural recitations, as opposed to recitations of intended use. More specifically, reference herein to the manner in which a component is “configured” denotes an existing physical condition of the component and, as such, is to be taken as a definite recitation of the structural characteristics of the component.
[0030] Having described the subject matter of the present disclosure in detail and by reference to specific embodiments thereof, the various details disclosed herein should not be taken to suggest that these details relate to elements that are essential components of the various embodiments described herein, even in cases where a particular element is illustrated in each of the drawings that accompany the present description. Further, modifications and variations in structure and arrangement are possible without departing from the scope of the present disclosure, including, but not limited to, embodiments defined in the appended claims. More specifically, although some aspects of the present disclosure might be described as preferred or particularly advantageous, the present disclosure is not necessarily limited to such arrangements, features, or structure.
[0031] Where any of the following claims utilizes the term “wherein” as a transitional phrase, the term is an open-ended transitional phrase used to introduce a recitation of a series of characteristics of the structure, and should be interpreted in like manner as the more commonly used open-ended preamble term “comprising.