SUPPRESSION ELEMENT FOR VORTEX VIBRATIONS
20220307327 ยท 2022-09-29
Inventors
Cpc classification
E21B17/10
FIXED CONSTRUCTIONS
B63B2021/504
PERFORMING OPERATIONS; TRANSPORTING
E21B17/1078
FIXED CONSTRUCTIONS
International classification
Abstract
By mutually interconnected specimens of a suppression element (100) according to the invention, there can be formed a strong and reliable construction of a tube around a tubular element. The suppression element (100) has a first fin structure (141) which is extending helically along a portion (121) of a first longitudinal edge (121, 131, 131 A, 131B), and a second fin structure (142) which is extending helically along a portion (122) of an opposite second longitudinal edge (122, 132, 132 A, 132B). In said tube, first fin structures and second fin structures of the various suppression elements are lying helically in-line relative to one another for effectively reducing vortex induced vibrations. The suppression elements (100, 200, 300, 400) are compactly stackable relative to one another.
Claims
1. A suppression element for vortex vibrations, wherein: the suppression element has a longitudinal direction, as well as a circumferential direction around a reference axis which is parallel to the longitudinal direction, and wherein the suppression element has an inner side and an opposite outer side, wherein the inner side has a concave shape in the circumferential direction and the outer side has a convex shape in the circumferential direction, and wherein the suppression element on both ends in the longitudinal direction has a first end edge and an opposite second end edge, and wherein the suppression element on both ends in the circumferential direction has a first longitudinal edge and an opposite second longitudinal edge; the suppression element is configured for partly enveloping, in the circumferential direction, a tubular element, in such manner that the suppression element with the inner side is facing the tubular element for forming, in operation, a tube segment, which is extending co-axially round said reference axis, and which can co-axially envelope the tubular element all round as a result of a pre-determined number of at least two specimens of the suppression element being mutually interconnected in the circumferential direction, wherein the tube segment in the longitudinal direction has an overall length which is equal to the overall length of the suppression element in the longitudinal direction, and wherein said tube segment is configured for forming, in operation, a tube around the tubular element as a result of multiple specimens of said tube segment being mutually interconnected in the longitudinal direction; and the suppression element comprises a fin structure, which on said outer side is protruding at least in radial direction relative to said reference axis, and which is configured for reducing, in operation, vorticity shedding at the downstream side of the tubular element; wherein: the first longitudinal edge comprises at least one first fin longitudinal edge portion, wherein the at least one first fin longitudinal edge portion is extending helically around said reference axis; the fin structure comprises a first fin structure, which is extending along the at least one first fin longitudinal edge portion, and which on said outer side at the at least one first fin longitudinal edge portion is protruding in said radial direction for said reducing of said vorticity shedding; the second longitudinal edge comprises at least one second fin longitudinal edge portion, wherein the at least one second fin longitudinal edge portion is extending helically around said reference axis; the fin structure comprises a second fin structure, which is extending along the at least one second fin longitudinal edge portion, and which on said outer side at the at least one second fin longitudinal edge portion is protruding in said radial direction for said reducing of said vorticity shedding; and the at least one first fin longitudinal edge portion and the at least one second fin longitudinal edge portion of the suppression element are configured such that, for each pair of, in the circumferential direction, mutually adjacent suppression elements of said tube segment, the at least one first fin longitudinal edge portion of one suppression element of said pair and the at least one second fin longitudinal edge portion of the other suppression element of said pair are lying helically in line relative to one another.
2. The suppression element according to claim 1, wherein: the first longitudinal edge comprises at least one first non-fin longitudinal edge portion, along which said first fin structure is not extending; the second longitudinal edge comprises at least one second non-fin longitudinal edge portion, along which said second fin structure is not extending; the at least one first non-fin longitudinal edge portion and the at least one second non-fin longitudinal edge portion of the suppression element are configured such that, for each pair of, in the circumferential direction, mutually adjacent suppression elements of said tube segment, the at least one first non-fin longitudinal edge portion of one suppression element of said pair and the at least one second non-fin longitudinal edge portion of the other suppression element of said pair are mutually adjacent.
3. The suppression element according to claim 2, wherein said being mutually adjacent of said at least one first non-fin longitudinal edge portion of one suppression element of said pair and the at least one second non-fin longitudinal edge portion of the other suppression element of said pair, as seen in perpendicular projection relative to the longitudinal direction, occurs at least between two respective first fin longitudinal edge portions of said one suppression element of said pair.
4. The suppression element according to claim 2, wherein said being mutually adjacent of said at least one first non-fin longitudinal edge portion of one suppression element of said pair and the at least one second non-fin longitudinal edge portion of the other suppression element of said pair, as seen in perpendicular projection relative to the longitudinal direction, occurs at least between two respective second fin longitudinal edge portions of said other suppression element of said pair.
5. The suppression element according to claim 1, wherein the suppression element comprises a positioning structure, which is configured for positioning of suppression elements of said tube, said suppression elements being mutually adjacent in the longitudinal direction, in fixed mutually staggered positions in the circumferential direction, in such manner that, for each pair of, in the longitudinal direction, mutually adjacent tube segments of said tube, each time the at least one first fin longitudinal edge portions and the at least one second fin longitudinal edge portions of the suppression elements of one tube segment of said pair mutually are lying helically in line relative to first and second fin longitudinal edge portions of the other tube segment of said pair.
6. A stack comprising at least two mutually stacked suppression elements according to claim 1, wherein the stack comprises at least a first suppression element and a second suppression element, which are directly stacked relative to one another, and wherein the first suppression element with its inner side is facing the second suppression element, and wherein the second suppression element with its outer side is facing the first suppression element.
7. A tube segment comprising at least two suppression elements according to claim 1 in said pre-determined number for forming the tube segment, wherein the at least two suppression elements have a common longitudinal direction and a common circumferential direction, and wherein the at least two suppression elements are mutually interconnected in the circumferential direction, and wherein the tube segment in the longitudinal direction has an overall length which is equal to the overall length of each suppression element in the longitudinal direction, and wherein said tube segment is configured for forming in operation a tube as a result of multiple specimens of said tube segment being mutually interconnected in the longitudinal direction.
8. A tube comprising at least two tube segments according to claim 7, wherein the at least two tube segments are mutually interconnected in the longitudinal direction.
Description
[0029] In the following, the invention is further elucidated with reference to a non-limiting embodiment and with reference to the schematic figures in the attached drawing, in which the following is shown.
[0030]
[0031]
[0032]
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[0034]
[0035]
[0036]
[0037] The reference signs used in the above-mentioned figures are referring to the above-mentioned parts and aspects of the invention, as well as to related parts and aspects, in the following manner
TABLE-US-00001 โ1 tube โ7 tensioning strap โ10 tubular element 11, 12 tube segment 100 suppression element 101 inner side 102 outer side 107 tensioning strap groove 111 first end edge 111A, 111B positioning structure 112 second end edge 112A, 112B positioning structure 121 first fin longitudinal edge portion 131, 131A, 131B first non-fin longitudinal edge portion 122 second fin longitudinal edge portion 132, 132A, 132B second non-fin longitudinal edge portion 141 first fin structure 142 second fin structure C circumferential direction L longitudinal direction R reference axis
[0038] Furthermore in
[0039] Based on the above introductory description, including the brief description of the drawing figures, and based on the above explanation of the reference signs used in the drawing, the shown examples of
[0040]
[0041]
[0042] The suppression elements 100, 200, 300, 400, 500, 600 of the tube 1 are held together by a number of tensioning straps 7. These tensioning straps 7 are mounted in tensioning strap grooves of the suppression elements.
[0043]
[0044] In the situation of
[0045]
[0046] In the situation of
[0047] In
[0048] Likewise in
[0049] Likewise in the situation of
[0050]
[0051] It is remarked that the above-mentioned examples of embodiments do not limit the invention, and that various alternatives are possible within the scope of the appended claims. It is furthermore remarked that parenthesized reference signs used in the claims are not to be construed as limiting features of a claim concerned.
[0052] For example various variations are possible in the shapes, dimensions and materials of a suppression element according to the invention. If, for example, a suppression element according to the invention comprises said positioning structure, then, instead of the shown combination of the first slide-in portion 111A, the insert portion 111B, the recess 112A and the second slide-in portion 112B, various other embodiments of a positioning structure of a suppression element according to the invention are possible.
[0053] A suitable material for manufacturing a suppression element according to the invention is for example a foamed plastic, and more in particular a polyethene (PE). Because of this, the element not only is lightweight, but it can also be manufactured from recycled plastic, which is environment-friendly. Another suitable material is polypropylene (PP). Such a material has good shape-retaining properties, also at high temperatures, and can for example be applied to pipings through which a fluid is transported under increased temperature.
[0054] These and similar alternatives are deemed to fall within the scope of the invention as defined in the appended claims.