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Tangle-Free Mesh Motion for Ablation SimulationsProblems involving mesh motion-which should not be mistakenly associated with moving mesh methods, a class of adaptive mesh redistribution techniques-are of critical importance in numerical simulations of the thermal response of melting and ablative materials. Ablation is the process by which material vaporizes or otherwise erodes due to strong heating. Accurate modeling of such materials is of the utmost importance in design of passive thermal protection systems ("heatshields") for spacecraft, the layer of the vehicle that ensures survival of crew and craft during re-entry. In an explicit mesh motion approach, a complete thermal solve is first performed. Afterwards, the thermal response is used to determine surface recession rates. These values are then used to generate boundary conditions for an a posteriori correction designed to update the location of the mesh nodes. Most often, linear elastic or biharmonic equations are used to model this material response, traditionally in a finite element framework so that complex geometries can be simulated. A simple scheme for moving the boundary nodes involves receding along the surface normals. However, for all but the simplest problem geometries, evolution in time following such a scheme will eventually bring the mesh to intersect and "tangle" with itself, inducing failure. This presentation demonstrates a comprehensive and sophisticated scheme that analyzes the local geometry of each node with help from user-provided clues to eliminate the tangle and enable simulations on a wide-class of difficult problem geometries. The method developed is demonstrated for linear elastic equations but is general enough that it may be adapted to other modeling equations. The presentation will explicate the inner workings of the tangle-free mesh motion algorithm for both two and three-dimensional meshes. It will show abstract examples of the method's success, including a verification problem that demonstrates its accuracy and correctness. The focus of the presentation will be on the algorithm; specifics on how the techniques may be used in spacecraft design will be not discussed.
Document ID
20150022313
Acquisition Source
Johnson Space Center
Document Type
Abstract
Authors
Droba, Justin
(Jacobs Technology, Inc. Houston, TX, United States)
Date Acquired
December 4, 2015
Publication Date
July 24, 2016
Subject Category
Fluid Mechanics And Thermodynamics
Numerical Analysis
Report/Patent Number
JSC-CN-34745
Report Number: JSC-CN-34745
Meeting Information
Meeting: Asia-Pacific Congress on Computational Mechanics (APCOM)
Location: Seoul
Country: Korea, Republic of
Start Date: July 24, 2016
End Date: July 29, 2016
Sponsors: Korean Society of Mechanical Engineers
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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