TY - JOUR
T1 - Shape optimization for blended-wing–body underwater glider using an advanced multi-surrogate-based high-dimensional model representation method
AU - Zhang, Ning
AU - Wang, Peng
AU - Dong, Huachao
AU - Li, Tianbo
N1 - Publisher Copyright:
© 2019 Informa UK Limited, trading as Taylor & Francis Group.
PY - 2020/12/1
Y1 - 2020/12/1
N2 - To deal with shape optimization for the blended-wing-body underwater glider (BWBUG), a multi-surrogate-based optimization method using high-dimensional model representation with a score-based infill criterion (MSIC-HDMR) is presented. In this algorithm, multiple surrogate models are constructed to alleviate the prediction uncertainty. A score-based infill criterion is proposed to obtain new samples and a reduced space is used to improve accuracy of the optimization results. Simultaneously, mean square errors of the individual surrogate models for infill points are calculated to determine which surrogate is suitable for the component terms. 20 numerical examples are used to verify the practicability of the proposed MSIC-HDMR, and the results show that the proposed algorithm has remarkable performance on all the test problems. Finally, the optimization method based on MSIC-HDMR is applied to shape optimization of the BWBUG, and the lift-to-drag ratio of the BWBUG is improved by 3.3009% with the proposed MSIC-HDMR.
AB - To deal with shape optimization for the blended-wing-body underwater glider (BWBUG), a multi-surrogate-based optimization method using high-dimensional model representation with a score-based infill criterion (MSIC-HDMR) is presented. In this algorithm, multiple surrogate models are constructed to alleviate the prediction uncertainty. A score-based infill criterion is proposed to obtain new samples and a reduced space is used to improve accuracy of the optimization results. Simultaneously, mean square errors of the individual surrogate models for infill points are calculated to determine which surrogate is suitable for the component terms. 20 numerical examples are used to verify the practicability of the proposed MSIC-HDMR, and the results show that the proposed algorithm has remarkable performance on all the test problems. Finally, the optimization method based on MSIC-HDMR is applied to shape optimization of the BWBUG, and the lift-to-drag ratio of the BWBUG is improved by 3.3009% with the proposed MSIC-HDMR.
KW - blended-wing–body underwater glider
KW - high-dimensional model representation
KW - Multi-surrogate-based
KW - score-based infill criterion
KW - shape optimization
UR - http://www.scopus.com/inward/record.url?scp=85076922733&partnerID=8YFLogxK
U2 - 10.1080/0305215X.2019.1694674
DO - 10.1080/0305215X.2019.1694674
M3 - 文章
AN - SCOPUS:85076922733
SN - 0305-215X
VL - 52
SP - 2080
EP - 2099
JO - Engineering Optimization
JF - Engineering Optimization
IS - 12
ER -