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在非结构切分网格的框架下,发展了一种基于Multi-Quadric插值的变形网格技术,结合CFD软件STAR-CCM+,采用SST湍流模型,并以VOF法进行自由液面的追踪,将该变形网格技术应用于带附体穿浪双体船的阻力预报中。分别以网格的拉伸变形和斜率变形实现了阻流板和尾楔的边界运动,计算了阻流板高度为4 mm、6 mm和8 mm以及尾楔角度为5°、10°和15°时的工况。计算结果表明,变形网格方法与固定网格方法取得了相同的精度;同试验值相比,在不同工况下变形网格最大平均误差约为6.67%,验证了其可行性。但是,相比于固定网格方法,变形网格方法的计算时耗最大可减少40%,因此采用该变形网格方法可极大地提高带可变形附体的船舶的阻力预报效率。 相似文献
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In marine engineering, appendages such as fin stabilizers and/or T-foils are made to rotate and to reduce the motion of ships.Research on the hydrodynamics of ships fitted with active appendages has significantly improved the design and control of such ships. However, most studies focus on fixed rather than rotating appendages, thereby ignoring the hydrodynamic unsteadiness of active appendages. To enhance the reliability and precision of the numerical simulations, we propose the use of overlapping grids for simulating advanced catamarans fitted with a pair of rotating T-foils under each bow. The fundamental purpose of the overlapping grid technique is to realize information exchange via regional overlap sharing in each subdomain of the computing domain, instead of using the method of boundary sharing, thus greatly alleviating the difficulty of generating the subdomain grid;moreover, the technique guarantees the quality of the subdomain grid. Within the main computational domain, a subdomain was allocated to accommodate the T-foil. Overlapping meshes near the interface between the two domains enable information flow during the simulation; the overlapping grids are updated at every iteration step because the subdomain rotates. The instantaneous trim and sinkage responses of the catamaran to the T-foil rotation were reproduced. From the moment the active T-foil stopped moving, there was no change in the ship's sailing attitude, indicating that the response was in real time. By comparing with EFD data, the numerical results showed reasonable agreement, indicating the feasibility and effectiveness of the technique in simulating the hydrodynamics of ships fitted with active appendages. 相似文献
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李晓文 李平 林壮College of Shipbuilding Engineering Harbin Engineering University 杨东梅 《船舶与海洋工程学报》2015,(1):39-45
The use of a glass-fiber reinforced composite in marine structures is becoming more common, particularly due to the potential weight savings. The mechanical response of the joint between a glass-fiber reinforced polymer(GRP) superstructure and a steel hull formed is examined and subsequently modified to improve performance through a combined program of modeling and testing. A finite-element model is developed to predict the response of the joint. The model takes into account the contact at the interface between different materials, progressive damage, large deformation theory, and a non-linear stress-strain relationship. To predict the progressive failure, the analysis combines Hashin failure criteria and maximum stress failure criteria. The results show stress response has a great influence on the strength and bearing of the joint. The Balsawood-steel interface is proved to be critical to the mechanical behavior of the joint. Good agreement between experimental results and numerical predictions is observed. 相似文献
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