WIND HANG OFF
20210351579 · 2021-11-11
Inventors
Cpc classification
F16G11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02G9/00
ELECTRICITY
H02G9/02
ELECTRICITY
International classification
Abstract
A wind hang off assembly and associated method secures an associated cable to an associated structure. The assembly includes a multi-part housing that when assembled forms first and second openings having cross-sectional dimensions that receive the associated cable therethrough at opposite, first and second ends. The openings communicate with an internal cavity. A multi-part insert receives the cable therethrough, and has an outer conformation dimensioned for receipt in the housing cavity and resists movement relative to the housing. Helical rods have an axial dimension received over an associated portion of the associated cable that is received in the housing. The assembly further includes a mounting member that operatively mounts the housing to the associated structure.
Claims
1. A wind hang off assembly for securing an associated cable to an associated structure, the assembly comprising: a multi-part housing that when assembled forms first and second openings having cross-sectional dimensions that receive the associated cable therethrough at opposite, first and second ends, the openings communicating with an internal cavity having at least a portion thereof with a larger cross-sectional dimension than the dimensions of the openings; a multi-part insert that when assembled forms a passage dimensioned to receive the cable therethrough, the insert having an outer conformation that is dimensioned for receipt in the housing cavity and resists movement relative to the housing; helical rods having an axial dimension received over an associated portion of the associated cable that is received in the housing; and a mounting member that operatively mounts the housing to the associated structure.
2. The assembly of claim 1 wherein the housing includes identical, first and second housing portions.
3. The assembly of claim 2 wherein the first and second housing portions are asymmetric along a longitudinal axis whereby the first housing portion and second housing portion matingly engage when oriented in longitudinal reverses directions relative to one another.
4. The assembly of claim 2 wherein the first and second housing portions when assembled encompass one-half the perimeter of the associated cable.
5. The assembly of claim 2 wherein the housing includes identical third and fourth housing portions.
6. The assembly of claim 5 wherein the third and fourth housing portions are asymmetric along a longitudinal axis whereby the third housing portion and the fourth housing portion matingly engage when oriented in longitudinal reverse direction relative to one another.
7. The assembly of claim 2 wherein the third and fourth housing portions when assembled encompass one-half the perimeter of the associated cable.
8. The assembly of claim 5 wherein the first, second, third, and further housing portions are identical.
9. The assembly of claim 1 wherein an inner surface portion includes a non-slip surface to limit movement of the insert relative to the housing.
10. The assembly of claim 1 wherein the mounting member includes a two-piece annular member received in one of first and second radial recesses in an outer surface of the housing to secure the assembly to the associated structure.
11. The assembly of claim 1 further comprising a nose portion at a first end of the housing, the nose portion having a tapered outer surface that increases in dimension from a terminal end thereof toward to the housing.
12. The assembly of claim 1 wherein the helical rods wrap a full circumference around the associated cable at either end of the housing.
13. The assembly of claim 1 wherein the helical rods wrap around the multi-part insert.
14. The assembly of claim 1 wherein the housing includes first and second connection regions at opposite ends thereof to join a nose portion at a first end of the housing and a bending strain relief member at a second end of the housing.
15. The assembly of claim 1 further comprising a joining member that engages the associated cable to exert pulling forces thereto.
16. A method of securing a subsea cable to an associated structure such as a platform, the method comprising: positioning first and second insert portions over an external region of the subsea cable; wrapping helical rods over the insert portions and the subsea cable; locating at least first and second housing portions over the helical rods and capturing the insert portions with the housing portions; and mounting first and second plate portions on the housing portions.
17. The method of claim 16 further comprising attaching a nose portion to a first end of the housing portions.
18. The method of claim 16 further comprising attaching a bending strain relief to a second end of the housing portions.
19. The method of claim 16 wherein the locating step includes securing identical first and second housing portions to each other by reversing a longitudinal orientation of the first housing portion relative to the second housing portion.
20. The method of claim 19 wherein the locating step includes securing identical third and fourth housing portions to each other, and to the first and second housing portions to complete the housing.
21. The method of claim 16 further comprising coating an interior portion of the housing with a grit-like material.
22. The method of claim 21 wherein the grit-like material is applied by plasma spraying.
23. The method of claim 21 wherein the coating step includes using grit particles sized between 100 and 400 μm.
24. The method of claim 21 wherein the grit is Al.sub.2O.sub.3.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0051] The following description with reference to the accompanying drawings is provided to assist in a comprehensive understanding of one or more embodiments of the present disclosure as defined by the claims and their equivalents. It includes various specific details to assist in that understanding but these are to be regarded as merely exemplary. Accordingly, those of ordinary skill in the art will recognize that various changes and modifications of the various embodiments described herein can be made without departing from the scope and spirit of the present disclosure. Various exemplary embodiments of the present disclosure are not limited to the specific details of different embodiments and should be construed as including all changes and/or equivalents or substitutes included in the ideas and technological scope of the appended claims. In describing the drawings, where possible similar reference numerals are used for similar elements.
[0052] The terms “include”, “have”, “may include”, or “may have” used in the present disclosure indicate the presence of disclosed corresponding functions, operations, elements, and the like, and do not limit additional one or more functions, operations, elements, and the like. In addition, it should be understood that the terms “include”, “including”, “have” or “having” used in the present disclosure are to indicate the presence of components, features, numbers, steps, operations, elements, parts, or a combination thereof described in the specification, and do not preclude the presence or addition of one or more other features, numbers, steps, operations, elements, parts, or a combination thereof.
[0053] The terms “or” or “at least one of A and/or B” used in the present disclosure include any and all combinations of words enumerated with them. For example, “A or B” or “at least one of A and/or B” mean including A, including B, or including both A and B.
[0054] Although the terms such as “first” and “second” used in the present disclosure may modify various elements of the different exemplary embodiments, these terms do not limit the corresponding elements. For example, these terms do not limit an order and/or importance of the corresponding elements, nor do these terms preclude additional elements (e.g., second, third, etc.). The terms may be used to distinguish one element from another element. For example, a first mechanical device and a second mechanical device all indicate mechanical devices and may indicate different types of mechanical devices or the same type of mechanical device. For example, a first element may be named a second element without departing from the scope of the various exemplary embodiments of the present disclosure, and similarly, a second element may be named a first element.
[0055] It will be understood that, when an element is mentioned as being “connected” or “coupled” to another element, the element may be directly connected or coupled to another element, or there may be an intervening element between the element and another element. To the contrary, it will be understood that, when an element is mentioned as being “directly connected” or “directly coupled” to another element, there is no intervening element between the element and another element.
[0056] The terms used in the various exemplary embodiments of the present disclosure are for the purpose of describing specific exemplary embodiments only and are not intended to limit various exemplary embodiments of the present disclosure. As used herein, the singular forms are intended to include the plural forms as well, unless the context clearly indicates otherwise.
[0057] All of the terms used herein including technical or scientific terms have the same meanings as those generally understood by an ordinary skilled person in the related art unless they are defined otherwise. The terms defined in a generally used dictionary should be interpreted as having the same meanings as the contextual meanings of the relevant technology and should not be interpreted as having inconsistent or exaggerated meanings unless they are clearly defined in the various exemplary embodiments.
[0058] Turning initially to
[0059] The details of the assembly 100 are more particularly illustrated in
[0060] Once the insert 110a, 10b is assembled around the cable C, helical rods or armor wires 120, are positioned in place over the external surface of the jacket of the cable C and over the insert 110. Preferably the insert 110 is generally centered within the axial longitudinal length of the helical rods 120. The helical rods 120 exert an outer gripping force on the cable C. Preferably, the entire circumference of the cable jacket is encompassed by a set of helical rods 120. Further, it is preferred that the helical rods 120 have a length that allows the rods to extend from opposite ends of the housing, and more preferably from the outer terminal ends of either a lead-in cone and bending strain relief structure that are located at opposite, axial ends of the assembly 100 and as will be described below.
[0061] Once the insert 110, and the helical rods 120 are positioned on the cable, a multipart housing 130 is positioned over the insert and the helical rods. Preferably, the housing 130 is formed from at least two housing portions (first housing portion 130a and second housing portion 130b when each housing portion covers approximately one half the perimeter of the cable C, insert 110, and helical rods 120). In a preferred arrangement, four housing portions 130a, 130b, 130c, 130d are provided where each covers approximately one fourth of the perimeter of the cable C. Each housing portion is identical to the other housing portions. By reversing the end-to-end orientation of alternate housing portions 130, the housing portions can be fastened together to assemble a full housing about the outer perimeter of the cable, insert, and helical rods. As particularly illustrated in
[0062] As is also evident in
[0063] The external surface of the assembled housing portions preferably have four recesses 140, 142, 144, 146 that are axially spaced apart and circumferentially continuous. A first recess 140 is provided for adding a flexible bending strain relief 150 (
[0064] The assembly 100 described up to this point may be completed in advance at a desired location along the axial length of the cable C. The gripping device 102 shown in connection with
[0065] In summary, this cable retention apparatus and method was designed for securing large cables used in a vertical, out of water application and thereby permanently attaching the cable to the entrance tube of the structure, i.e., a wind turbine, offshore platform, or similar structure. The outer gripping of the cable C with helical armor rods 120 received over the outer jacket of the cable allows the assembly to be pre-installed on shore without stripping or preparing the cable. The present assembly is then similarly pulled with a Kellems grip or other suitable gripping or pulling structure 102 and once inside the wind turbine platform, the locking plates 170 are easily and quickly attached around the housing 130 to complete the assembly 100 and provide a secure connection of the subsea cable C to the structure S. The external helical or armor rods 120 also provide additional bend protection from ocean water cable movements.
[0066] Additional modifications are illustrated in
[0067] Gaskets can also be provided between the metal housing parts for additional sealing such as shown on the planar end faces of the multi-part or split mounting plate (
[0068] A segmented split BSR or one piece longer split BSR could be used along the bottom of the housing as an option.
[0069] The BSR and lead-in cone can be molded from a thermally conductive urethane/other material that eliminates heat being trapped by the normally insulating properties of the commonly used urethanes. The thermally conductive urethane/other material has thermal conductive improvers and modifiers such as boron nitride, alumina or other similar additives not normally found in these urethanes. Thermal conductivity is improved while advantageously maintaining electrical insulation.
[0070] An electrically conductive material could also be used as well as making the BSR segments from metal.
[0071] Additional weight can also be removed from select components such as illustrated in the mounting plate illustrated in
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[0073] The resulting structure exhibits superior corrosion resistance through the judicious use of stainless steel or Duplex. The structure can be assembled to the cable prior to pulling it into a J-tube. Exterior helical reinforcing rods and additional protection against bending and also cooperate with remainder structure to provide high load capacity. Using the exterior stainless steel rods will provides the desired bend protection while the split flinch mount allows the assembly to be pulled into position and then quickly fastened. An epoxy-less sealed gasket construction also reduces installation time, as does the elimination of installing the helical reinforcing rods while at the turbine.
[0074] This written description uses examples to describe the disclosure, including the best mode, and also to enable any person skilled in the art to make and use the disclosure. Other examples that occur to those skilled in the art are intended to be within the scope of the invention if they have structural elements that do not differ from the same concept, or if they include equivalent structural elements with insubstantial differences.