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Smoothed particle hydrodynamics(SPH) for modeling fluid-structure interactions 被引量:23
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作者 Moubin Liu Zhilang Zhang 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS CSCD 2019年第8期1-38,共38页
Fluid-structure interaction(FSI) is a class of mechanics-related problems with mutual dependence between the fluid and structure parts and it is observable nearly everywhere, in natural phenomena to many engineering s... Fluid-structure interaction(FSI) is a class of mechanics-related problems with mutual dependence between the fluid and structure parts and it is observable nearly everywhere, in natural phenomena to many engineering systems. The primary challenges in developing numerical models with conventional grid-based methods are the inherent nonlinearity and timedependent nature of FSI, together with possible large deformations and moving interfaces. Smoothed particle hydrodynamics(SPH) method is a truly Lagrangian and meshfree particle method that conveniently treats large deformations and naturally captures rapidly moving interfaces and free surfaces. Since its invention, the SPH method has been widely applied to study different problems in engineering and sciences, including FSI problems. This article presents a review of the recent developments in SPH based modeling techniques for solving FSI-related problems. The basic concepts of SPH along with conventional and higher order particle approximation schemes are first introduced. Then, the implementation of FSI in a pure SPH framework and the hybrid approaches of SPH with other grid-based or particle-based methods are discussed. The SPH models of FSI problems with rigid, elastic and flexible structures, with granular materials, and with extremely intensive loadings are demonstrated. Some discussions on several key techniques in SPH including the balance of accuracy, stability and efficiency, the treatment of material interface, the coupling of SPH with other methods, and the particle regularization and adaptive particle resolution are provided as concluding marks. 展开更多
关键词 smoothed PARTICLE hydrodynamics(SPH) fluid-structure interaction(FSI) computational fluid dynamics(CFD) computational solid dynamics(csd)
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基于径向点插值方法的柔性螺旋桨气动弹性模拟
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作者 张宇 王晓亮 《上海交通大学学报》 EI CAS CSCD 北大核心 2020年第9期924-934,共11页
为研究柔性螺旋桨的气动弹性效应和推进性能,以成熟的计算流体力学和计算固体力学软件为平台,建立径向点插值方法(RPIM)以完成网格节点的位移传递,由虚位移原理辅助完成载荷传递的螺旋桨气动弹性分析框架.该方法可以避免生成奇异的插值... 为研究柔性螺旋桨的气动弹性效应和推进性能,以成熟的计算流体力学和计算固体力学软件为平台,建立径向点插值方法(RPIM)以完成网格节点的位移传递,由虚位移原理辅助完成载荷传递的螺旋桨气动弹性分析框架.该方法可以避免生成奇异的插值矩阵,具有数值稳定性,适用于任意分布的节点,且能保证在数据传递过程中不发生能量损耗.流场网格更新通过Delaunay映射方法实现.研究结果表明:在所设置的工况中,桨叶沿来流方向的最大变形量可达桨叶半径的9.4%,旋转平面内的变形量约为来流方向上的52.1%;变形会使螺旋桨的迎风面受到更大的正压力,进而导致柔性螺旋桨产生比刚性螺旋桨更高的推力和扭矩,其最大改变量分别为7.2%和9.9%;气动弹性效应基本不会对推进效率产生影响.综上,在螺旋桨处于大推力、低速工况下时,气动弹性效应对推进性能有较大的影响,能够在基本维持原有效率不变的情况下提高推力. 展开更多
关键词 径向点插值方法 气动弹性 柔性螺旋桨 Delaunay映射 计算流体力学 计算固体力学
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