World Journal of Mechanics

Volume 7, Issue 9 (September 2017)

ISSN Print: 2160-049X   ISSN Online: 2160-0503

Google-based Impact Factor: 0.91  Citations  

Computational Analysis of the Metal Free-Surface Instability, Fragmentation, and Ejecta under Shock

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DOI: 10.4236/wjm.2017.79021    855 Downloads   1,600 Views  Citations

ABSTRACT

We conducted numerical simulations of the related processes of interface instability, tensile fragmentation, and jetting resulting from four kinds of typical macro defect perturbations (chevron, sine wave, rectangle, and square) on a Cu free surface under a reflected shock wave when Cu impacts a solid wall at a speed of 2.5 km/s and found that, for the chevron and sine wave cases, the ejecta velocities of the head are 6.28 and 5.88 km/s, respectively. Some parts of the inner material are in a tensile state without any fragmentation, which is observed only in the main body of the material owing to the tension effect. Furthermore, for the other two initial perturbations (rectangle and square), the highest ejecta velocities may even reach 9.14 and 9.59 km/s, respectively. Fragmentation caused by multilayer spallation can be observed on a large scale in the Cu main body, and there are granules in the front area of the ejecta but the degree to which fragmentation occurs is much less in the Cu main body and there is a notable high-speed, low-density granule area in the ejecta head. Finally, we present a detailed analysis of the spatial distribution of the granules, ejecta mass, pressure, temperature, and grid convergence.

Share and Cite:

Bai, J. , Wang, T. , Xiao, J. , Wang, B. , Chen, H. , Du, L. , Li, X. and Wu, Q. (2017) Computational Analysis of the Metal Free-Surface Instability, Fragmentation, and Ejecta under Shock. World Journal of Mechanics, 7, 255-270. doi: 10.4236/wjm.2017.79021.

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