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An adaptive inner iterative pressure-based algorithm for steady and unsteady incompressible flows

  • Xi'an Jiaotong University

Research output: Contribution to journalArticlepeer-review

Abstract

Purpose: Pressure-based methods have been demonstrated to be powerful for solving many practical problems in engineering. In many pressure-based methods, inner iterative processes are proposed to get efficient solutions. However, the number of inner iterations is set empirically and kept fixed during the whole computation for different problems, which is overestimated in some computations but underestimated in other computations. This paper aims to develop an algorithm with adaptive inner iteration processes for steady and unsteady incompressible flows. Design/methodology/approach: In this work, with the use of two different criteria in two inner iterative processes, a mechanism is proposed to control inner iteration processes to make the number of inner iterations vary during computing according to different problems. By doing so, adaptive inner iteration processes can be achieved. Findings: The adaptive inner iterative algorithm is verified to be valid by solving classic steady and unsteady incompressible problems. Results show that the adaptive inner iteration algorithm works more efficient than the fixed inner iteration one. Originality/value: The algorithm with adaptive inner iteration processes is first proposed in this paper. As the mechanism for controlling inner iteration processes is based on physical meaning and the feature of iterative calculations, it can be used in any methods where there exist inner iteration processes. It is not limited for incompressible flows. The performance of the adaptive inner iteration processes in compressible flows is conducted in a further study.

Original languageEnglish
Pages (from-to)2003-2024
Number of pages22
JournalInternational Journal of Numerical Methods for Heat and Fluid Flow
Volume30
Issue number4
DOIs
StatePublished - 16 Apr 2020

Keywords

  • Adaptive inner iterative processes
  • Efficiency
  • Incompressible flows

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