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Publishing Language: Chinese

Ultimate strength prediction of I-core sandwich plate based on BP neural network

State Key Laboratory of Ocean Engineering, Shanghai Jiao Tong University, Shanghai 200240, China
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Abstract

Objectives

In view of the incomplete evaluation of the ultimate strength of I-core sandwich panels in the past, a BP artificial neural network method is proposed to quantitatively determine the influence of relevant parameters on the ultimate strength of I-core sandwich panels.

Methods

First, the ultimate strength of I-core sandwich panels under axial compression are investigated using the nonlinear finite element method. Second, a BP neural network is constructed to predict the ultimate strength of I-core sandwich panels with different plate slenderness ratios between longitudinal webs, plate slenderness ratios of webs and column slenderness ratio of one longitudinal web. Finally, a formula for predicting the ultimate strength of I-core sandwich panels using the artificial neural network weight and bias method is proposed.

Results

The mean square error MSE and correlation coefficient R of ultimate strength prediction using the BP neural network method are 0.001 2 and 0.981 8 respectively. The proposed neural network model has good prediction accuracy, and the maximum error is less than 10%.

Conclusions

This study can provide references for the application of I-core sandwich panels in hull structures.

CLC number: U661.43 Document code: A

References

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Chinese Journal of Ship Research
Pages 125-134

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Cite this article:
WEI Y, ZHONG Q, WANG D. Ultimate strength prediction of I-core sandwich plate based on BP neural network. Chinese Journal of Ship Research, 2022, 17(2): 125-134. https://doi.org/10.19693/j.issn.1673-3185.02335

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Received: 30 March 2021
Revised: 25 May 2021
Published: 06 April 2022
© 2022 Chinese Journal of Ship Research.