POROUS-STRUCTURE DEVICE FOR SUPPRESSING WAVE RUN-UP AND DESIGN METHOD THEREOF
20200346722 ยท 2020-11-05
Assignee
Inventors
- Longfei Xiao (Shanghai, CN)
- Zhichao Fang (Shanghai, CN)
- Haobo Li (Shanghai, CN)
- Yufeng Kou (Shanghai, CN)
- Mingyue Liu (Shanghai, CN)
- Handi Wei (Shanghai, CN)
- Guocheng Zhao (Shanghai, CN)
Cpc classification
B63B1/107
PERFORMING OPERATIONS; TRANSPORTING
B63B35/44
PERFORMING OPERATIONS; TRANSPORTING
B63B39/005
PERFORMING OPERATIONS; TRANSPORTING
B63B2017/009
PERFORMING OPERATIONS; TRANSPORTING
B63B2035/442
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A porous-structure device includes a semi-submersible platform consisting of four columns, two pontoons, two horizontal supports and a deck. Fillets on middle portions of the columns have a square section, a radius of the fillets, close to the deck and the pontoons, of the columns is gradually decreased to 0, a porous device is disposed outside each column and is formed by combining and connecting four single components, and each single component is formed by combining and connecting a plurality of porous laminated plates and a plurality of connecting pieces. The parameters, such as the pore type, porosity, number of layers, interlayer spacing and installation height, of the porous laminated plates are set according to the wave characteristics in different sea areas.
Claims
1. A porous-structure device for suppressing wave run-up, the porous-structure device comprising a marine platform consisting of four columns, two pontoons, four horizontal supports and a deck, wherein fillets on middle portions of the columns have a square section, and a radius of the fillets, close to the deck and the pontoons, of the columns is gradually decreased to 0; two sliding grooves are concavely and vertically formed in each of four sides of each of the columns, and connecting blocks are slidably arranged in the sliding grooves; a porous device is disposed outside each of the columns and is formed by combining and connecting four single components, and each of the single components is formed by combining and connecting a plurality of porous laminated plates and a plurality of connecting pieces; and a plurality of through holes penetrate through surfaces of the porous laminated plates, the plurality of porous laminated plates are arranged in parallel, 45 internal unfilled corners are formed at ends of two sides of each of the porous laminated plates, and the four single components are arrayed in a square shape to form the porous device and are disposed outside each of the columns.
2. The porous-structure device for suppressing wave run-up according to claim 1, wherein the marine platform is a semi-submersible platform.
3. The porous-structure device for suppressing wave run-up according to claim 1, wherein the porous laminated plates and the connecting pieces are all made of steel.
4. The porous-structure device for suppressing wave run-up according to claim 1, wherein the porous laminated plates are of a plate-like structure, the connecting pieces are of a strip-shaped structure, and the plurality of connecting pieces are welded between every two adjacent of the porous laminated plates.
5. The porous-structure device for suppressing wave run-up according to claim 1, wherein fixing plates are connected to upper ends of the single components through the connecting pieces, and each of the fixing plates has two first screwed-connection holes penetrating therethrough; and two connecting lugs protrude on each of four sides of a top portion of each of the columns, each of the connecting lugs has a second screwed-connection hole penetrating therethrough, and each of the connecting blocks has a third screwed-connection hole penetrating therethrough; the first screwed-connection holes, the second screwed-connection holes and the third screwed-connection holes are mutually matched; and the connecting lugs, the connecting blocks and the fixing plates are fastened with bolts to ensure that the porous-structure device is fixed at high positions of the columns and is located below the deck.
6. The porous-structure device for suppressing wave run-up according to claim 4, wherein inner walls of the first screwed-connection holes, the second screwed-connection holes and the third screwed-connection holes are of a threaded structure.
7. The porous-structure device for suppressing wave run-up according to claim 1, wherein adapter plates are welded to ends of inner sides of the porous laminated plates of the single components, and the adapter plates are triangular and have arc notches matched with the fillets of the columns.
8. A design method of the porous-structure device for suppressing wave run-up according to claim 1, the design method comprising the following steps: S1: brief summary of test preparations, wherein the preparation includes preparing a water pool having a length of 50 m, a width of 40 m and a depth of 10 m and configured with a liftable false bottom to simulate any water depths from 0 m to 9.8 m for a test, wherein two multi-unit wave generation systems are separately configured on two sides of the water pool, and a ship-type semi-submersible platform including four columns, two pontoons and a box-like deck is used as a test model, wherein fillets on middle portions of the columns have a square section, and a radius of the fillets close to the deck and the pontoons is gradually decreased to 0; S2: comprehensively considering all factors such as sizes of the semi-submersible platform, dimensions of a marine engineering deep pool, a simulation capacity of a marine environment and a measuring range of measurement instruments used in the test, determining a scale ratio 2 (real value:model value) of the model adopted in the test to be 60, comparing and analyzing a pore performance of the platform before installation of additional porous structures on the columns and a pore performance of the platform after installation of the additional porous structures on the columns in five wave environments, and then determining parameters of the porous structures; S3: designing sizes of the porous structures based on the platform, wherein the designing includes according to a draft of the platform, a height of the columns and a height of a lower deck, determining a total number of the porous laminated plates to be 10, an interlayer spacing (distance between theoretical lines) between the porous laminated plates to be 0.6 m, a distance from an installation height of a bottommost porous laminated plate to a baseline to be 30.5 m, and a distance from a topmost porous laminated plate to the lower deck to be 0.6 m; wherein sizes of corresponding models are as follows: the interlayer spacing is 10 mm, and the distance from the topmost porous laminated plate to the lower deck is 10 mm; under a survival load condition, a distance from bottom surfaces of the additional porous structures to a calm water line is 11 m, so that interaction with waves is basically avoided, and a hydrodynamic performance of the platform in normal operation will not be affected; a thickness value of the additional porous structures on the columns is 10% of a width of the columns, and comprehensively considering a height and thickness distribution of typical run-up water jets along the columns, wherein 10% of the width of the columns of the platform model is 1.825 m; as for a four-column gravity-type platform, a typical thickness of wave run-up water flows along surfaces of the columns close to the lower deck is about 1 m-1.5 m; and under the comprehensive considerations, the thickness of the additional porous structures on the columns is set to 1.5 m, and a corresponding model value is 25 mm; and S4: determining parameters of the porous laminated plates, wherein the determination includes comprehensively considering a machining process of the additional structure models, material strength and porosity, setting a dimension of pores to 5.5 mm*3.5 mm, wherein an edge spacing between the pores in a width direction is 2 mm; and in a thickness direction, the pores are arrayed in four rows, an edge spacing between the pores is 2.2 mm, and an overall porosity is about 41.1%.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The accompanying drawings are included to provide a further understanding of the disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the disclosure and, together with the description, serve to explain the principles of the disclosure.
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DESCRIPTION OF THE EMBODIMENTS
[0038] To gain a better understanding of the technical means, creative features, purposes and effects of the invention, the invention is further expounded below in conjunction with the accompanying drawings and specific embodiments.
[0039] As shown in
[0040] A porous device 5 is disposed outside each column 1 and is formed by combining and connecting four single components, and each single component is formed by combining and connecting a plurality of porous laminated plates 61 and a plurality of connecting pieces 62.
[0041] A plurality of through holes penetrate through the surfaces of the porous laminated plates 61, the plurality of porous laminated plates 61 are arranged in parallel, and 45 internal unfilled corners are formed at the ends of two sides of each porous laminated plate 61. The four single components 6 are arrayed in a square shape to form the porous device 5 and are disposed outside the column 1.
[0042] Preferably, the porous laminated plates 61 and the connecting pieces 62 are all made of steel.
[0043] Preferably, the porous laminated plates 61 are of a plate-like structure, the connecting pieces 62 are of a strip-shaped structure, and the plurality of connecting pieces 62 are welded between every two adjacent porous laminated plates 61.
[0044] Preferably, fixing plates 63 are connected to the upper ends of the single components 6 through the connecting pieces 62, and two first screwed-connection holes penetrate through the surface of each fixing plate 63.
[0045] Two connecting lugs 64 protrude on each of the four sides of the top of each column 1, each connecting lug 64 has a second screwed-connection hole penetrating through the connecting lug 64, each connecting block 7 has a third screwed-connection hole penetrating through the connecting block 7, and the first screwed-connection holes, the second screwed-connection holes and the third screwed-connection holes are mutually matched. The connecting lugs 64, the connecting blocks 7 and the fixing plates 63 are fastened with bolts.
[0046] Preferably, the inner walls of the first screwed-connection holes, the second screwed-connection holes and the third screwed-connection holes are of a threaded structure.
[0047] Preferably, adapter plates 65 are welded to the ends of the inner sides of the porous laminated plates 61 of the single components 6, the adapter plates 65 are triangular and have arc notches matched with the fillets of the columns 1, and every two adjacent adapter plates are welded together.
[0048] A design method of the porous-structure device for suppressing wave run-up comprises the following steps.
[0049] S1: Brief summary of test preparations. A test water pool adopted for this design has a length of 50 m, a width of 40 m and a depth of 10 m and is configured with a liftable false bottom to simulate any water depths from 0 m to 9.8 m. Two multi-unit wave generation systems are separately configured on two sides of the water pool, and the arrangement of the water pool is shown in
[0050] S2: Under comprehensive consideration of the factors such as the sizes of the semi-submersible platform, the dimensions of the marine engineering deep pool, the simulation capacity of a marine environment and the measuring range of measurement instruments used in this test, the scale ratio 2 (real value:model value) of the model adopted in this test is determined to be 60, and a principal dimension table and a weight parameter table of the model are separately shown by
[0051] S3: The sizes of the porous structures are designed based on the platform. According to the draft of the platform, the height of the columns and the height of the lower deck, the total number of the porous laminated plates is determined to be 10, the interlayer spacing (spacing between theoretical lines) is 0.6 m, the distance from the installation height of the bottommost porous laminated plate to a baseline is 30.5 m, and the distance from the topmost porous laminated plate to the lower deck is 0.6 m. The sizes of corresponding models are as follows: the interlayer spacing is 10 mm, and the distance from the topmost porous laminated plate to the lower deck is 10 mm. Under a survival load condition, the distance from the bottom surfaces of the additional porous structures to a calm water line is 11 m, so that the interaction with waves is basically avoided, and the hydrodynamic performance of the platform in normal operation will not be affected. The thickness of the additional porous structures on the columns may be 10% of the width of the columns, and under comprehensive consideration of the height and thickness distribution of typical run-up water jets along the columns, 10% of the width of the columns of the platform model is 1.825 m. Moreover, as for a four-column gravity-type platform, the typical thickness of wave run-up water flows along the surfaces of the columns close to the lower deck is about 1 m-1.5 m. Under the abovementioned comprehensive consideration of these two points, the thickness of the additional porous structures on the columns is set to 1.5 m, and a corresponding model value is 25 mm. As shown in
[0052] In a preferred embodiment, each single component comprises 10 porous laminated plates, the interlayer spacing between the porous laminated plates is 0.6 m, the distance from the installation height of the bottommost porous laminated plate to the baseline is 30.5 m, the distance from the topmost porous laminated plate to the deck is 0.6 m, and the distance from the bottom surfaces of the porous devices to the calm water line is 11 m. According to the fact that the typical thickness of column run-up water flows close to the deck is 1 m-1.5 m, and the thickness of the porous laminated plates is determined to be 1.5 m. The dimension of the pores of the porous laminated plates is 5.5 mm*3.5 mm, and the edge spacing between the pores in the width direction is 2 mm. In the thickness direction, the pores are arrayed in four rows, and the edge spacing between the pores is 2.2 mm.
[0053] The basic principle, principal characteristics and advantages of the invention are illustrated and described above. Those skilled in the art would appreciate that the invention is not limited to the above embodiments, the above embodiments and the description in the specification are merely for explaining the principle of the invention, and different transformations and improvements made to the invention without departing from the spirit and scope of the invention should also fall within the protection scope of the invention. The protection scope of the invention is defined by the appended claims and equivalents thereof.