SEMI-SUBMERSIBLE WITH TRIANGULAR COLUMNS
20170313390 · 2017-11-02
Inventors
Cpc classification
B63B35/4413
PERFORMING OPERATIONS; TRANSPORTING
B63B2039/067
PERFORMING OPERATIONS; TRANSPORTING
B63B1/107
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
According to the invention a semi-submersible vessel including a semi-submersible platform body is provided. The semi-submersible platform body is adapted to float in a body of water wherein the platform body comprising a plurality of pontoons arranged together to form a triangular structure, a plurality of columns having a lower portion and an upper portion, the columns extending outwardly from each corner of the triangular structure, wherein each column is triangular. Further, the semi-submersible vessel includes a deck supported by the upper portion of the columns.
Claims
1. A semi-submersible platform body adapted to float in a body of water comprising: a plurality of pontoons arranged together to form a triangular structure; and a plurality of columns extending outwardly from each corner of the triangular structure, wherein each column is triangular.
2. The semi-submersible platform body of claim 1, wherein the triangular structure is an equilateral triangle.
3. The semi-submersible platform body of claim 1, wherein a transverse section of each column is an equilateral triangle.
4. The semi-submersible platform body of claim 1, wherein the triangular structure formed by the pontoons has an outer perimeter and an inner perimeter, wherein the inner perimeter defines an open recess.
5. The semi-submersible platform body of claim 1, wherein each pontoon has a first side, a second side, an upper edge and a lower edge, wherein the first side and the second side define a width of the pontoon.
6. The semi-submersible platform body of claim 5, wherein each face of the column is parallel to the first side and the second side of the pontoon.
7. The semi-submersible platform body of claim 5, wherein the corners of the triangular structure are rounded along the outer perimeter.
8. The semi-submersible platform body of claim 5, wherein the column covers half the width of the pontoon.
9. The semi-submersible platforms body of claim 5, wherein the column covers one-third the width of the pontoon.
10. A semi-submersible vessel, comprising: a platform body adapted to float in a body of water, the platform body comprising a plurality of pontoons arranged together to form a triangular structure; a plurality of columns having a lower portion and an upper portion, the columns extending outwardly from each corner of the triangular structure, wherein each column is triangular; and a deck supported by upper portion of the columns.
11. The vessel according to claim 10, wherein the triangular structure is an equilateral triangle.
12. The vessel according to claim 10, wherein a transverse section of the columns is an equilateral triangle.
13. The vessel according to claim 10, wherein the triangular structure formed by the pontoons has an outer perimeter and an inner perimeter, wherein the inner perimeter defines an open recess.
14. The vessel according to claim 13, wherein the corners of the triangular structure are rounded.
15. The vessel according to claim 10, wherein each pontoon has a first side, a second side, an upper edge and a lower edge, wherein the first side and the second side define a width or the pontoon.
16. The vessel according to claim 15, wherein each face of the column is parallel to the first side and the second side of the pontoon.
17. The vessel according to claim 15, wherein the column covers half the width of the pontoon.
18. The vessel according to claim 15, wherein the column covers one-third the width of the pontoon.
19. The vessel according to claim 10, wherein the columns have rounded corners along the upper portion.
20. The vessel according to claim 10, wherein a lower portion of the columns is coupled with the second side of the pontoons at the corners of the triangular structure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The present invention will be described in greater detail with references to the accompanying figure wherein;
[0010]
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION
[0015] The description of the embodiments and applications of the present invention is being done together with the accompanying drawings, which form a part hereof. The embodiments are described herein for illustrative purposes and are subject to many variations. It is understood that various omissions and substitutions of equivalents are contemplated as circumstances may suggest or render expedient, but are intended to cover the application or implementation without departing from the spirit or scope of the present invention. Further, it is to be understood that the phraseology and terminology employed herein are for the purpose of the description and should not be regarded as limiting.
[0016] The terms “a” and “an” herein do not denote a limitation of quantity, but rather denote the presence of at least one of the referenced item.
[0017]
[0018] Referring now to
[0019] Although
[0020] In accordance with aspects of the present invention, the columns 24, 26, 28 are triangular in shape. More particularly, the transverse cross-section of the columns 24, 26, 28 is an equilateral triangle. In the illustrated embodiment, the triangular structure 30 is an equilateral triangle formed by three pontoons 32, 32, 36 arranged together. The triangular structure 30 includes an outer perimeter and an inner perimeter such that the inner perimeter of the triangular structure defines an open recess 40, as illustrated in
[0021] More particularly, each pontoon 32, 34, 36 in the triangular structure 30 has a first side 32a, 34a, 36a a second side 32b, 34b, 36b, an upper edge 32c, 34c, 36c and a lower edge 32d, 34d, 36d, wherein the first side 32a, 34a, 36a and the second side 32b, 34b, 36b define a width W of the pontoon. The three pontoons are arranged such that the triangular structure 30 is formed as illustrated in
[0022] It may be noted, that the columns 24, 26, 28 include a lower portion 24a, 26a, 28a and an upper portion 24b, 26b, 28b wherein the upper portion 24b, 26b, 28b is adapted to support the platform deck 50 (as shown in
[0023] As previously noted, each column 24, 26, 28 has three faces, a first face 24c, 26c, 28c, a second face 24d, 26d, 28d and a third face 24e, 26e, 28e, preferably of equal length forming an equilateral triangle. The first face 24c, 26c, 28c and the second face 24d, 26d, 28d are subjected to current [low from the water body and third face 24e, 26e, 28e perpendicular to the current flow of the water body.
[0024] In the presently contemplated configuration, the first face 24c, 26c, 28c of the column is parallel to the first side 32a and the second side 32b of the first pontoon 32. The second face 24d, 26d, 28d of the column is parallel to the first side 34a and the second side 34b of the second pontoon 34, and the third face 24e, 26e, 28e of the column is parallel to the first side 36a and the second side 36b of the third pontoon 36 respectively. Furthermore, the faces of the column are rounded at the vertices at the upper portion 24b, 26b, 28b of the columns 24, 26, 28.
[0025] In accordance with aspects of the present invention, the columns 24, 26, 28 are attached to the triangular structure 30 as depicted. The columns 24, 26, 28 may be attached using welding or any other technique useful in attaching the columns 24, 26, 28 to the triangular structure 30.
[0026] Turning now to
[0027] It may be noted that the triangular columns 24, 26, 28 may be arranged such that they cover at least a portion of the width W of the pontoons 32, 34, 36. As previously noted, the width W of the pontoon 32, 34, 36 is the difference between the first side 32a, 34a, 36a and the second side 32b, 34b, 36b of the pontoon 32, 34, 36.
[0028] Referring now to
[0029] The graph 60 shows the heave response or heave motion, which may be defined as the movement of a vessel in vertical direction (Z-direction) for a given wave height, against a range of wave periods. As may be appreciated, wave energy is typically located in 10 seconds to 20 seconds range period. It is desirable to have a lower motion for the vessel during this range. As can be seen from the graph, the semi-submersible 10 according to the invention has lower heave motion when compared with the conventional semi-submersible having four columns.
[0030] As an example from the graph 60, it may be inferred that for a 1 meter wave height at 14 seconds the triangular platform will move 1 m*0.265=0.265 m (if the wave height was 2 meter then 2 times 0.265). For that same wave the conventional semi-submersible will move 1 m* 0.339 =0.339 m. Although, from the example it may seem like a small amount of movement but for wave heights around 14 meters to 17 meters, the difference between the conventional semi-submersible and the triangular semi-submersible is substantial.
[0031] Embodiments of the present invention as described hereinabove have several advantages over the conventional semi-submersibles. The configuration of the semi-submersible vessel and the platform body minimizes the water plane area which in turn results in minimizing the hull motion and further provides stability to ensure that the platform body can be used for performing the same operations as by conventional square column semi-submersibles. The present invention also minimizes drag force induced by wave motions due to the rounded edges of the triangular structure and the triangular columns.
[0032] Additionally, the equilateral triangle shape of the columns aligned with the pontoons provides good structural continuity thereby minimizing the amount of material used such as steel and provides improved constructability. Furthermore, the present invention reduces heave motions as compared to the conventional semi-submersibles.
[0033] Another advantage of the present invention is that the triangular columns reduce VIM response compared to the conventional circular, rectangular or polygonal shaped columns. The current flow around the two faces of triangular columns according to the invention does not produce vortices as in the conventional semi-submersible because the water flowing around the outside of the column does not shed vortices due to the third face of the triangular column remaining perpendicular to the current flow, which in turn does not allow the vortices to attach to the column resulting in reduction in VIM due to the inability of vortices to shed from the column's third face.
[0034] The foregoing descriptions of specific embodiments of the present invention have been presented for purposes of illustration and description. They are not intended to be exhaustive or to limit the present invention to the precise forms disclosed, and obviously many modifications and variations are possible in light of the above teaching. The exemplary embodiment was chosen and described in order to best explain the principles of the present invention and its practical application, to thereby enable others skilled in the art to best utilize the present invention and various embodiments with various modifications as are suited to the particular use contemplated.