Dynamic response of spherical sandwich shells with metallic foam core under external air blast loading – Numerical simulation

The dynamic response of spherical sandwich shells with aluminum face sheets and aluminum foam core under external air blast loadings were investigated numerically by employing the LS-DYNA. To calibrate the numerical model, the experiments of cylindrical sandwich shells were modeled. And the numerica...

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Published inComposite structures Vol. 116; pp. 612 - 625
Main Authors Li, Wei, Huang, Guangyan, Bai, Yang, Dong, Yongxiang, Feng, Shunshan
Format Journal Article
LanguageEnglish
Published Elsevier Ltd 01.09.2014
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Abstract The dynamic response of spherical sandwich shells with aluminum face sheets and aluminum foam core under external air blast loadings were investigated numerically by employing the LS-DYNA. To calibrate the numerical model, the experiments of cylindrical sandwich shells were modeled. And the numerical results have a good agreement with the experiment data. The calibrated numerical model was used to simulate the dynamic response of spherical sandwich shells subjected to the external air blast loadings. It is found that the spherical sandwich shells have a better performance than that of the cylindrical sandwich shells in resisting the blast loadings. The structural dynamic response process has been divided into three specific stages and the deformation modes have been classified and discussed systematically. According to parametric studies, it is concluded that with the decrease of radius of curvature, increase of the thickness of foam core and face sheets and decrease of blast intensity, the blast-resistance is increasing obviously; keeping the thickness summation of front and back face sheet almost constant, a big thickness of front face sheet will improve the blast-resistance performance. These simulations findings can guide well the theoretical study and optimal design of spherical sandwich structures subjected to external blast loading.
AbstractList The dynamic response of spherical sandwich shells with aluminum face sheets and aluminum foam core under external air blast loadings were investigated numerically by employing the LS-DYNA. To calibrate the numerical model, the experiments of cylindrical sandwich shells were modeled. And the numerical results have a good agreement with the experiment data. The calibrated numerical model was used to simulate the dynamic response of spherical sandwich shells subjected to the external air blast loadings. It is found that the spherical sandwich shells have a better performance than that of the cylindrical sandwich shells in resisting the blast loadings. The structural dynamic response process has been divided into three specific stages and the deformation modes have been classified and discussed systematically. According to parametric studies, it is concluded that with the decrease of radius of curvature, increase of the thickness of foam core and face sheets and decrease of blast intensity, the blast-resistance is increasing obviously; keeping the thickness summation of front and back face sheet almost constant, a big thickness of front face sheet will improve the blast-resistance performance. These simulations findings can guide well the theoretical study and optimal design of spherical sandwich structures subjected to external blast loading.
Author Li, Wei
Bai, Yang
Huang, Guangyan
Dong, Yongxiang
Feng, Shunshan
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  fullname: Bai, Yang
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  fullname: Feng, Shunshan
  email: ssfeng@bit.edu.cn
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Keywords Sandwich shell
Numerical simulation
Metallic foam
Blast resistance
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Snippet The dynamic response of spherical sandwich shells with aluminum face sheets and aluminum foam core under external air blast loadings were investigated...
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SubjectTerms Aluminum base alloys
Blast resistance
Calibration
Computer simulation
Dynamic response
Foams
Mathematical models
Metallic foam
Numerical simulation
Sandwich shell
Shells
Title Dynamic response of spherical sandwich shells with metallic foam core under external air blast loading – Numerical simulation
URI https://dx.doi.org/10.1016/j.compstruct.2014.05.038
https://www.proquest.com/docview/1642295686
Volume 116
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