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Multifidelity design guided by topology optimization
- Source :
- Structural and Multidisciplinary Optimization. 61:1071-1085
- Publication Year :
- 2019
- Publisher :
- Springer Science and Business Media LLC, 2019.
-
Abstract
- In this study, we present a framework based on the concept of multifidelity design optimization with the purpose of indirectly solving complex—computationally heavy and/or unstable—topology optimization problems. Our primary idea is to divide an original topology optimization problem into two types of subproblems for low-fidelity optimization and high-fidelity evaluation. To realize this idea, artificial design parameters, which we refer to as seeding parameters, are incorporated into the low-fidelity optimization problem for generating various patterns of topology-optimized candidates. The low-fidelity optimization problem is deliberately formulated as an easily solvable one by decreasing the nonlinearity of the original physical phenomena. Notably, selecting valid seeding parameters in the low-fidelity optimization problem is essential for employing the proposed framework. The aim of high-fidelity evaluation is to obtain a satisfactory solution using a high-fidelity analysis model, which considers the nonlinearity of the original physical phenomena, from the data set of the topology-optimized candidates, via the design of experiments. We apply the proposed framework to two case studies of isothermal and thermal turbulent flow problems, and discuss its efficacy as an alternative strategy for solving complex topology optimization problems.
- Subjects :
- Mathematical optimization
Control and Optimization
Optimization problem
Computer science
Design of experiments
Topology optimization
0211 other engineering and technologies
02 engineering and technology
Computer Graphics and Computer-Aided Design
Computer Science Applications
Data set
Nonlinear system
020303 mechanical engineering & transports
0203 mechanical engineering
Control and Systems Engineering
Physical phenomena
Topology optimization problem
Software
021106 design practice & management
Alternative strategy
Subjects
Details
- ISSN :
- 16151488 and 1615147X
- Volume :
- 61
- Database :
- OpenAIRE
- Journal :
- Structural and Multidisciplinary Optimization
- Accession number :
- edsair.doi...........7975dee4977e827a31b1b2e9ff3b1e56