Computational fluid dynamics-based hull form optimization using approximation method

With the rapid development of the computational technology, computational fluid dynamics (CFD) tools have been widely used to evaluate the ship hydrodynamic performances in the hull forms optimization. However, it is very time consuming since a great number of the CFD simulations need to be performe...

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Main Authors: Shenglong Zhang, Baoji Zhang, Tahsin Tezdogan, Leping Xu, Yuyang Lai
Format: Article
Language:English
Published: Taylor & Francis Group 2018-01-01
Series:Engineering Applications of Computational Fluid Mechanics
Subjects:
Online Access:http://dx.doi.org/10.1080/19942060.2017.1343751
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spelling doaj-addba94c4abd4ab8a93e4976f0d4cfba2020-11-24T23:02:36ZengTaylor & Francis GroupEngineering Applications of Computational Fluid Mechanics1994-20601997-003X2018-01-01121748810.1080/19942060.2017.13437511343751Computational fluid dynamics-based hull form optimization using approximation methodShenglong Zhang0Baoji Zhang1Tahsin Tezdogan2Leping Xu3Yuyang Lai4Merchant Marine College, Shanghai Maritime UniversityCollege of Ocean Environment and Engineering, Shanghai Maritime UniversityUniversity of StrathclydeMerchant Marine College, Shanghai Maritime UniversityBeijing Soyotec Co., Ltd.With the rapid development of the computational technology, computational fluid dynamics (CFD) tools have been widely used to evaluate the ship hydrodynamic performances in the hull forms optimization. However, it is very time consuming since a great number of the CFD simulations need to be performed for one single optimization. It is of great importance to find a high-effective method to replace the calculation of the CFD tools. In this study, a CFD-based hull form optimization loop has been developed by integrating an approximate method to optimize hull form for reducing the total resistance in calm water. In order to improve the optimization accuracy of particle swarm optimization (PSO) algorithm, an improved PSO (IPSO) algorithm is presented where the inertia weight coefficient and search method are designed based on random inertia weight and convergence evaluation, respectively. To improve the prediction accuracy of total resistance, a data prediction method based on IPSO-Elman neural network (NN) is proposed. Herein, IPSO algorithm is used to train the weight coefficients and self-feedback gain coefficient of ElmanNN. In order to build IPSO-ElmanNN model, optimal Latin hypercube design (Opt LHD) is used to design the sampling hull forms, and the total resistance (objective function) of these hull forms are calculated by Reynolds averaged Navier–Stokes (RANS) method. For the purpose of this article, this optimization framework has been employed to optimize two ships, namely, the DTMB5512 and WIGLEY III, and these hull forms are changed by arbitrary shape deformation (ASD) technique. The results show that the optimization framework developed in this study can be used to optimize hull forms with significantly reduced computational effort.http://dx.doi.org/10.1080/19942060.2017.1343751Hull forms optimizationapproximate methodIPSO-Elman neural networkoptimal Latin hypercube designarbitrary shape deformation
collection DOAJ
language English
format Article
sources DOAJ
author Shenglong Zhang
Baoji Zhang
Tahsin Tezdogan
Leping Xu
Yuyang Lai
spellingShingle Shenglong Zhang
Baoji Zhang
Tahsin Tezdogan
Leping Xu
Yuyang Lai
Computational fluid dynamics-based hull form optimization using approximation method
Engineering Applications of Computational Fluid Mechanics
Hull forms optimization
approximate method
IPSO-Elman neural network
optimal Latin hypercube design
arbitrary shape deformation
author_facet Shenglong Zhang
Baoji Zhang
Tahsin Tezdogan
Leping Xu
Yuyang Lai
author_sort Shenglong Zhang
title Computational fluid dynamics-based hull form optimization using approximation method
title_short Computational fluid dynamics-based hull form optimization using approximation method
title_full Computational fluid dynamics-based hull form optimization using approximation method
title_fullStr Computational fluid dynamics-based hull form optimization using approximation method
title_full_unstemmed Computational fluid dynamics-based hull form optimization using approximation method
title_sort computational fluid dynamics-based hull form optimization using approximation method
publisher Taylor & Francis Group
series Engineering Applications of Computational Fluid Mechanics
issn 1994-2060
1997-003X
publishDate 2018-01-01
description With the rapid development of the computational technology, computational fluid dynamics (CFD) tools have been widely used to evaluate the ship hydrodynamic performances in the hull forms optimization. However, it is very time consuming since a great number of the CFD simulations need to be performed for one single optimization. It is of great importance to find a high-effective method to replace the calculation of the CFD tools. In this study, a CFD-based hull form optimization loop has been developed by integrating an approximate method to optimize hull form for reducing the total resistance in calm water. In order to improve the optimization accuracy of particle swarm optimization (PSO) algorithm, an improved PSO (IPSO) algorithm is presented where the inertia weight coefficient and search method are designed based on random inertia weight and convergence evaluation, respectively. To improve the prediction accuracy of total resistance, a data prediction method based on IPSO-Elman neural network (NN) is proposed. Herein, IPSO algorithm is used to train the weight coefficients and self-feedback gain coefficient of ElmanNN. In order to build IPSO-ElmanNN model, optimal Latin hypercube design (Opt LHD) is used to design the sampling hull forms, and the total resistance (objective function) of these hull forms are calculated by Reynolds averaged Navier–Stokes (RANS) method. For the purpose of this article, this optimization framework has been employed to optimize two ships, namely, the DTMB5512 and WIGLEY III, and these hull forms are changed by arbitrary shape deformation (ASD) technique. The results show that the optimization framework developed in this study can be used to optimize hull forms with significantly reduced computational effort.
topic Hull forms optimization
approximate method
IPSO-Elman neural network
optimal Latin hypercube design
arbitrary shape deformation
url http://dx.doi.org/10.1080/19942060.2017.1343751
work_keys_str_mv AT shenglongzhang computationalfluiddynamicsbasedhullformoptimizationusingapproximationmethod
AT baojizhang computationalfluiddynamicsbasedhullformoptimizationusingapproximationmethod
AT tahsintezdogan computationalfluiddynamicsbasedhullformoptimizationusingapproximationmethod
AT lepingxu computationalfluiddynamicsbasedhullformoptimizationusingapproximationmethod
AT yuyanglai computationalfluiddynamicsbasedhullformoptimizationusingapproximationmethod
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