基于计算流体动力学的大型藻类局部模型水动力学分析

Ming Chen, S. Yim, D. Cox, Zhaoqing Yang, T. Mumford
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引用次数: 2

摘要

本文采用计算流体力学(CFD)方法建立了局部尺度的全非线性耦合流固耦合(FSI)模型。在该模型中,为了与已有的实验数据保持一致,将糖海带近似为一端为光滑等腰三角形的细长矩形,并建立了一端固定在恒流通道中的单个海带模型。模拟了几种不同的电流速度,并与文献中的实验数据进行了比较,验证了所得阻力和计算阻力系数。在前人的研究中,利用计算结构动力学(CSD)方法建立了一个全局尺度模型来模拟大型藻类养殖系统,指导系统配置设计。在全局尺度模型中,采用Morison方程计算水动力,简化了糖海带的运动学和动力学,将附着在长线上的海带群建模为具有相同长度和有效直径的细长结构,使其体积与真实物理系统一致。当采用一般水动力系数时,简化模型匹配了重量和浮力,但调整了水动力特性。因此,确定全局尺度模型的最优水动力系数,以更准确地获得水动力。然后应用验证的局部尺度模型确定简化糖藻模型的水动力系数,进行全局动力分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hydrodynamic Analysis of Macroalgae Local Model Using Computational Fluid Dynamics
In this article, a local scale, fully nonlinear coupled fluid-structural interaction (FSI) sugar kelp model has been developed using a computational fluid dynamics (CFD) method. In this model, to be consistent with available experimental data, the sugar kelp is approximated as elongated rectangles with smoothed isosceles triangles at the ends and a single kelp model with one end fixed in a channel with constant current model is developed. Several different current speeds are simulated, and the resulting drag forces and calculated drag coefficients are validated by comparison with experimental data from the literature. In a previous study, a global scale model was developed using a computational structural dynamics (CSD) method to simulate macroalgae farming system and guide the system configuration design. In the global scale model, the hydrodynamic forces are calculated using Morison’s equation and the kinematics and dynamics of the sugar kelp are simplified and the group of kelps attached to the long line is modeled as a slender structure with the same length and an effective diameter such that the volumes are consistent with the real physical system. This simplified model matches the weight and buoyancy but adjusting the hydrodynamic properties when the general hydrodynamic coefficients are employed. Therefore, optimal hydrodynamic coefficients used in global scale model were determined to obtain the hydrodynamic force more accurately. The validated local scale model is then be applied to determine the hydrodynamic coefficients of the simplified sugar kelp model for global dynamic analysis.
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