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The interaction of near-wall turbulence with compliant tensegrity fabrics: Modeling, simulation, and optimization.

机译:近壁湍流与柔顺张力织物的相互作用:建模,仿真和优化。

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摘要

This work focuses on the modeling, simulation, and optimization of a novel type of compliant surface, a tensegrity fabric, for the possible reduction of the drag caused by an overlying turbulent flow.; The spatially-periodic tensegrity fabric is modeled with an extension of the tensegrity dynamics software developed by Skelton et al., who also designed the plate-class tensegrity structures used in this work. To account for the skin friction and pressure forces on the tensegrity structure, a simple tessellation is used.; The spatially-periodic turbulent flow is modeled with direct numerical simulation. To account for the effect of the interface motion on the flow, a 3D time-dependent coordinate transformation is adopted to map the deformed flow domain to a regular domain. When formulating the Navier-Stokes equation governing the flow in moving coordinates, both the contravariant form and the Cartesian form are considered. The former needs special care in the time differentiation of the momentum vector, and is discussed separately in the tensor framework. The latter is computationally less expensive and is thus used in the bulk of our simulations.; A significant influence of the compliant surface on the statistics of the near-wall turbulence is found in simulations at Re tau = 150, which show that, when the structure's stiffness and damping are low, the interface forms streamwise-traveling waves which significantly increase both drag and turbulent kinetic energy.; To exploit the (yet unexplored) large design flexibility of the tensegrity fabric, we have significantly refined a recently-developed direct search method, called the surrogate management framework (SMF), which is suitable for static optimization problems such as the present, in which the cost function is both non-differentiable and expensive to evaluate. Our refinements of the SMF focus on the use of n-dimensional extrapolations of the body-centered cubic (BCC) and face-centered cubic (FCC) crystalline structures as the underlying lattice during the optimization, rather than the default Cartesian mesh. These lattices both cover the parameter space and distribute the vectors of the minimal positive basis more uniformly than the Cartesian mesh, thus provide significantly improved convergence when used as the underlying lattice in pattern search algorithms.
机译:这项工作集中在新型柔性表面(张力织物)的建模,仿真和优化上,以尽可能减少由上覆湍流引起的阻力。空间周期的张力结构是由Skelton等人开发的张力动力学软件的扩展建模的,Skelton等人还设计了这项工作中使用的板级张力结构。为了解决在张力结构上的皮肤摩擦和压力,使用了简单的镶嵌。利用直接数值模拟对空间周期湍流进行建模。为了考虑界面运动对流的影响,采用了3D时间相关坐标变换来将变形的流域映射到规则域。在制定用于控制移动坐标系中的流动的Navier-Stokes方程时,必须同时考虑反形式和笛卡尔形式。前者在动量矢量的时间微分中需要特别注意,并在张量框架中单独讨论。后者在计算上较便宜,因此在我们的大部分仿真中都使用了后者。在Re tau = 150的模拟中发现了顺应性表面对近壁湍流统计的重大影响,这表明,当结构的刚度和阻尼较低时,界面会形成沿河道行进的波,这会显着增加阻力和湍动能。为了利用Tensegrity结构的(尚未开发的)较大的设计灵活性,我们对最近开发的直接搜索方法(称为代理管理框架(SMF))进行了显着改进,该方法适用于诸如当前这样的静态优化问题。成本函数不可微且评估成本高。我们对SMF的改进集中在优化过程中,使用体心立方(BCC)和面心立方(FCC)晶体结构的n维外推作为基础晶格,而不是默认的笛卡尔网格。这些格子既覆盖了参数空间,又比笛卡尔网格更均匀地分布了最小正基的向量,因此当在模式搜索算法中用作底层格子时,可以显着提高收敛性。

著录项

  • 作者

    Luo, Haoxiang.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 152 p.
  • 总页数 152
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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