Dimension reduction in heterogeneous parametric spaces with application to naval engineering shape design problems

被引:21
作者
Tezzele M. [1 ]
Salmoiraghi F. [1 ]
Mola A. [1 ]
Rozza G. [1 ]
机构
[1] Mathematics Area, mathLab, SISSA, International School of Advanced Studies, via Bonomea 265, Trieste
基金
欧盟地平线“2020”; 欧洲研究理事会;
关键词
Active subspaces; BEM; Free form deformation; Parametric studies; Reduction in parameter space; Response surface method;
D O I
10.1186/s40323-018-0118-3
中图分类号
学科分类号
摘要
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 mathLab 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. © 2018, The Author(s).
引用
收藏
相关论文
共 46 条
[31]  
Mola A., Heltai L., Desimone A., Et al., Ship sinkage and trim predictions based on a CAD interfaced fully nonlinear potential model, The 26Th International Ocean and Polar Engineering Conference, 3, pp. 511-518, (2016)
[32]  
Morrall A., ITTC Model-Ship Correlation Line Values of Frictional Resistance Coefficient, (1957)
[33]  
Olivieri A., Pistani F., Avanzini A., Stern F., Penna R., Towing tank experiments of resistance, sinkage and trim, boundary layer, wake, and free surface flow around a naval combatant insean 2340 model, DTIC Document, (2001)
[34]  
Pinkus A., Ridge functions, 205, (2015)
[35]  
Pygem: Python Geometrical Morphing
[36]  
Rozza G., Koshakji A., Quarteroni A., Free form deformation techniques applied to 3D shape optimization problems, Commun Appl Ind Math, 4, pp. 1-26, (2013)
[37]  
Salmoiraghi F., Ballarin F., Corsi G., Mola A., Tezzele M., Rozza G., Advances in geometrical parametrization and reduced order models and methods for computational fluid dynamics problems in applied sciences and engineering: Overview and perspectives, Proceedings of the VII European Congress on Computational Methods in Applied Sciences and Engineering, 1, 5-10, pp. 1013-1031, (2016)
[38]  
Salmoiraghi F., Ballarin F., Heltai L., Rozza G., Isogeometric analysis-based reduced order modelling for incompressible linear viscous flows in parametrized shapes, Adv Model Simul Eng Sci, 3, 1, (2016)
[39]  
Salmoiraghi F., Scardigli A., Telib H., Rozza G., Free-form deformation, mesh morphing and reduced-order methods: Enablers for efficient aerodynamic shape optimisation, Int J Comput Fluid Dyn, (2018)
[40]  
Sederberg T.W., Parry S.R., Free-form deformation of solid geometric models, ACM SIGGRAPH Computer Graphics, 20, pp. 151-160, (1986)