Tezzele Marco, Salmoiraghi Filippo, Mola Andrea, Rozza Gianluigi
Mathematics Area, mathLab, SISSA, International School of Advanced Studies, via Bonomea 265, 34136 Trieste, Italy.
Adv Model Simul Eng Sci. 2018;5(1):25. doi: 10.1186/s40323-018-0118-3. Epub 2018 Sep 10.
We present the results of the first application in the naval architecture field of a methodology based on active subspaces properties for parameter space reduction. The physical problem considered is the one of the simulation of the hydrodynamic flow past the hull of a ship advancing in calm water. Such problem is extremely relevant at the preliminary stages of the ship design, when several flow simulations are typically carried out by the engineers to assess the dependence of the hull total resistance on the geometrical parameters of the hull, and others related with flows and hull properties. Given the high number of geometric and physical parameters which might affect the total ship drag, the main idea of this work is to employ the active subspaces properties to identify possible lower dimensional structures in the parameter space. Thus, a fully automated procedure has been implemented to produce several small shape perturbations of an original hull CAD geometry, in order to exploit the resulting shapes and to run high fidelity flow simulations with different structural and physical parameters as well, and then collect data for the active subspaces analysis. The free form deformation procedure used to morph the hull shapes, the high fidelity solver based on potential flow theory with fully nonlinear free surface treatment, and the active subspaces analysis tool employed in this work have all been developed and integrated within SISSA as open source tools. The contribution will also discuss several details of the implementation of such tools, as well as the results of their application to the selected target engineering problem.
我们展示了一种基于活动子空间属性的参数空间缩减方法在船舶工程领域的首次应用结果。所考虑的物理问题是模拟在静水中前进的船体周围的水动力流。在船舶设计的初步阶段,这个问题极为重要,此时工程师通常会进行多次流场模拟,以评估船体总阻力对船体几何参数以及其他与流场和船体特性相关参数的依赖性。鉴于可能影响船舶总阻力的几何和物理参数数量众多,这项工作的主要思路是利用活动子空间属性来识别参数空间中可能存在的低维结构。因此,已实施了一个全自动程序,对原始船体CAD几何形状进行多次小的形状扰动,以便利用所得形状并运行具有不同结构和物理参数的高保真流场模拟,然后收集用于活动子空间分析的数据。用于变形船体形状的自由形式变形程序、基于势流理论并采用完全非线性自由表面处理的高保真求解器以及本工作中使用的活动子空间分析工具,均已作为开源工具在SISSA中开发并集成。本文还将讨论这些工具实现的几个细节,以及它们应用于选定目标工程问题的结果。