Open Access
A Novel Shape Parameterization Approach
A Samareh Jamshid
- 01 May 1999
TL;DR: In this article, a novel parameterization approach for complex shapes suitable for a multidisciplinary design optimization application is presented, consisting of two basic concepts: (1) parameterizing the shape perturbations rather than the geometry itself and (2) performing the shape deformation by means of the soft objects animation algorithms used in computer graphics.
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Abstract: This paper presents a novel parameterization approach for complex shapes suitable for a multidisciplinary design optimization application. The approach consists of two basic concepts: (1) parameterizing the shape perturbations rather than the geometry itself and (2) performing the shape deformation by means of the soft objects animation algorithms used in computer graphics. Because the formulation presented in this paper is independent of grid topology, we can treat computational fluid dynamics and finite element grids in a similar manner. The proposed approach is simple, compact, and efficient. Also, the analytical sensitivity derivatives are easily computed for use in a gradient-based optimization. This algorithm is suitable for low-fidelity (e.g., linear aerodynamics and equivalent laminated plate structures) and high-fidelity analysis tools (e.g., nonlinear computational fluid dynamics and detailed finite element modeling). This paper contains the implementation details of parameterizing for planform, twist, dihedral, thickness, and camber. The results are presented for a multidisciplinary design optimization application consisting of nonlinear computational fluid dynamics, detailed computational structural mechanics, performance, and a simple propulsion module.
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Citations
Numerical Methods for Fluid-Structure Interaction — A Review
TL;DR: This article reviews representative numeri- cal methods based on conforming and non-conforming meshes that are currently avail- able for computing fluid-structure interaction problems, with an emphasis on some of the recent developments in the field.
Recent Improvements in Aerodynamic Design Optimization on Unstructured Meshes
Eric J. Nielsen,W. Kyle Anderson +1 more
- 08 Jan 2001
TL;DR: Recent improvements in an unstructured-grid method for large-scale aerodynamic design are presented, and a nearly linear speedup is demonstrated, and the consistency of the linearizations is shown to remain valid.
An implicit, exact dual adjoint solution method for turbulent flows on unstructured grids
TL;DR: An implicit algorithm for solving the discrete adjoint system based on an unstructured-grid discretization of the Navier–Stokes equations is presented, constructed such that an adjoint solution exactly dual to a direct differentiation approach is recovered at each time step, yielding a convergence rate which is asymptotically equivalent to that of the primal system.
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A Survey of Shape Parameterization Techniques
A Samareh Jamshid
- 22 Jun 1999
TL;DR: A survey of shape parameterization techniques for multidisciplinary optimization and highlights some emerging ideas on suitability criteria based on the efficiency, effectiveness, ease of implementation, and availability of analytical sensitivities for geometry and grids.
Using an Adjoint Approach to Eliminate Mesh Sensitivities in Computational Design
Eric J. Nielsen,Michael A. Park +1 more
TL;DR: In this paper, the effects of the mesh sensitivities can be accounted for through the solution of an adjoint problem equivalent in cost to a single mesh movement computation, followed by an explicit matrix-vector product scaling with the number of design variables and the resolution of the parameterized surface grid.
References
•Book
Concepts and Applications of Finite Element Analysis
Robert D. Cook,David S. Malkus,Michael E. Plesha,Robert J. Witt +3 more
- 01 Jan 1974
TL;DR: In this article, the authors present a formal notation for one-dimensional elements in structural dynamics and vibrational properties of a structural system, including the following: 1. Isoparametric Elements.
6.4K
Free-form deformation of solid geometric models
Thomas W. Sederberg,Scott R Parry +1 more
- 31 Aug 1986
TL;DR: A technique is presented for deforming solid geometric models in a free-form manner based on trivariate Bernstein polynomials, and provides the designer with an intuitive appreciation for its effects.
3.1K
Wing Design by Numerical Optimization
TL;DR: In this article, a study was conducted to assess the feasibility of performing computerized wing design by numerical optimization, which combined a full potential, inviscid aerodynamics code with a conjugate gradient optimization algorithm.
1.1K
Extended free-form deformation: a sculpturing tool for 3D geometric modeling
Sabine Coquillart
- 01 Sep 1990
TL;DR: The purpose of this research is to define a highly interactive and intuitive modeling technique for designers and stylists that can mimic traditional trades, such as sculpturing and moulding.