4.4 Article

Thermo-mechanical coupling particle simulation of three-dimensional large-scale non-isothermal problems A comprehensive upscale theory

Journal

ENGINEERING COMPUTATIONS
Volume 34, Issue 5, Pages 1551-1571

Publisher

EMERALD GROUP PUBLISHING LTD
DOI: 10.1108/EC-04-2016-0135

Keywords

Particle simulation method; Upscale theory; 3D non-isothermal problems; Scaling methodology; Thermo-mechanical coupling

Funding

  1. National Natural Science Foundation of China [51641905]
  2. Natural Science Foundation of Hunan Province [2017JJ3290]
  3. Scientific Research Foundation of Education Department of Hunan Province [17C1540]
  4. Open Research Fund of Hunan Key Laboratory of Geomechanics and Engineering Safety [16GES07]

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Purpose -The main purpose of this paper is to present a comprehensive upscale theory of the thermo-mechanical coupling particle simulation for three-dimensional (3D) large-scale non-isothermal problems, so that a small 3D length-scale particle model can exactly reproduce the same mechanical and thermal results with that of a large 3D length-scale one. Design/methodology/approach -The objective is achieved by following the scaling methodology proposed by Feng and Owen (2014). Findings -After four basic physical quantities and their similarity-ratios are chosen, the derived quantities and its similarity-ratios can be derived from its dimensions. As the proposed comprehensive 3D upscale theory contains five similarity criteria, it reveals the intrinsic relationship between the particle-simulation solution obtained from a small 3D length-scale (e.g. a laboratory length-scale) model and that obtained from a large 3D length-scale (e.g. a geological length-scale) one. The scale invariance of the 3D interaction law in the thermo-mechanical coupled particle model is examined. The proposed 3D upscale theory is tested through two typical examples. Finally, a practical application example of 3D transient heat flow in a solid with constant heat flux is given to illustrate the performance of the proposed 3D upscale theory in the thermo-mechanical coupling particle simulation of 3D large-scale non-isothermal problems. Both the benchmark tests and application example are provided to demonstrate the correctness and usefulness of the proposed 3D upscale theory for simulating 3D non-isothermal problems using the particle simulation method. Originality/value -The paper provides some important theoretical guidance to modeling 3D large-scale non-isothermal problems at both the engineering length-scale (i.e. the meter-scale) and the geological lengthscale (i.e. the kilometer-scale) using the particle simulation method directly.

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