Abstract

This paper provides a brief qualitative description of some of the important ideas and features of the FUSE code, a newly developed hydrodynamics shock code based upon a Lagrangian treatment of material motion and deformation. The Lagrangian nature of the analysis allows it to proceed without the non-physical numerical diffusion of dissimilar materials across interfaces. The FUSE procedure is outlined together with brief descriptions of some of the new techniques by which the code avoids the adverse effects of large distortion on conventional Lagrangian codes. FUSE is capable of dealing with arbitrarily large deformations and motions of materials of any properly posed constitutive type. It can accurately represent wave propagation and transport phenomena simultaneously. Examples involve the high-explosive gas expansion resulting from explosions in water and soil. An important aspect of the new code is the nature of its discretization scheme. This scheme differs from the standard finite element approach in that the ‘nodes’ carry only acceleration/velocity information, but do not carry position or deformation data. These, instead, are carried at the element or cell centers only. Further, the laws of conservation of mass, momentum and energy are exactly satisfied (to the numerical accuracy of the computer) for the discretized system. A new scheme for treating shock fronts is also included in the code. Finally, the code utilizes an automatic time step subcycling scheme to accommodate large distortions with a minimum of computer time. The purpose of this paper is to briefly describe these new features of the FUSE scheme. In addition, a new boundary treatment used in FUSE as well as in some other codes is briefly outlined, and the relationship of this method for ‘non-reflecting boundaries’ to the solution of structure-medium interaction problems is examined. This paper is presented in the expectation that one or more of these techniques may be of interest to analysts working in a wide range of fields.

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