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Abstract
This paper proposes a variable timestep-strategy that can speed up the peridynamic modeling of thermomechanical cracking in both homogeneous and heterogeneous materials. A piecewise continuous time-step variation function is incorporated into the peridynamic framework that dynamically adjusts the time-step size, which ranges from a small value to a maximum value that remains below the critical stable time-step. The advantages of this variable timestep strategy are threefold: (1) The exceptional computational efficiency of this approach is mainly manifested in enabling peridynamic simulation that is 20 times faster compared to that employing a constant time step; (2) Taking advantage of the proposed method, both two- and three-dimensional peridynamic modeling of thermomechanical deformation and crack propagation has been demonstrated to be of great accuracy and robustness; (3) Facilitated with this variable timestep strategy, we achieve a remarkable advancement in peridynamics to capture intricate 3D crack patterns with complex topological structures in homogeneous specimens subjected to water quenching. Furthermore, the effects of the temperature difference, specimen geometrical configurations and the initial water entry velocity on the crack patterns of the specimens under water quenching are systematically explored. © 2023 Elsevier B.V. All rights reserved.
Original language | English |
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Article number | 116577 |
Journal | Computer Methods in Applied Mechanics and Engineering |
Volume | 418 |
Issue number | Part B |
Online published | 11 Nov 2023 |
DOIs | |
Publication status | Published - 5 Jan 2024 |
Funding
The authors acknowledge the supports provided by the Research Grants Council of the Hong Kong Special Administrative Region, China (Project No. 9043135, CityU 11202721, and Project No. 8730079, C1014-22G).
Research Keywords
- Heterogeneous materials
- Homogeneous materials
- Peridynamic modeling
- Thermomechanical cracking
- Variable timestep
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Dive into the research topics of 'A coupled 3D thermo-mechanical peridynamic model for cracking analysis of homogeneous and heterogeneous materials'. Together they form a unique fingerprint.Projects
- 2 Active
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CRF: An Upcycling Solution to the Paradox of Clean Energy Development
LIEW, K. M. (Principal Investigator / Project Coordinator), DAI, J. (Co-Principal Investigator) & ZHANG, X. (Co-Principal Investigator)
30/06/23 → …
Project: Research
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GRF: Fire Resistance and Mechanical Performance of Laminated Glass Facades Subject to A Down-Flowing Water Film
LIEW, K. M. (Principal Investigator / Project Coordinator), KODUR, V. K. (Co-Investigator) & Sun, J. (Co-Investigator)
1/01/22 → …
Project: Research