TY - GEN
T1 - Effect of Porosity on the Indentation Response of Polycrystalline Porous Sintered Silver
AU - Dong, Ruipeng
AU - Long, Xu
N1 - Publisher Copyright:
© The Author(s), under exclusive license to Springer Nature Switzerland AG 2026.
PY - 2026
Y1 - 2026
N2 - Sintered silver is widely used in power electronics packaging due to its excellent thermal and electrical properties, yet its inherent porosity significantly influences mechanical performance, particularly in terms of strength, deformation, and damage evolution. To systematically analyze these effects, numerical models with different porosities (10%, 20%, and 30%) are developed using a crystal plasticity finite element method (CPFEM). Pores are randomly distributed based on a Gaussian distribution to ensure a realistic spatial arrangement. The indentation response is evaluated by analyzing the load–displacement (P–h) curves, revealing that increasing porosity leads to a significant reduction in load-bearing capacity. Furthermore, the impact of pore distribution is examined by constructing models with different random pore configurations at a fixed porosity of 10%. The results indicate that variations in pore distribution have negligible influence on the macroscopic indentation response. Additionally, the orientation distribution function (ODF) analysis is conducted to assess grain orientation evolution during indentation, highlighting the pronounced influence of plastic deformation on crystallographic texture. The evolution of critical resolved shear stress (CRSS) and shear stress distribution further confirms the activation of slip systems during loading and the dominance of elastic recovery during unloading. Moreover, the contours of accumulated shear strain reveal strong strain localization around certain pores, indicating potential sites for crack initiation and subsequent propagation. The results of this study provide mechanistic insight into the deformation and damage behavior of porous polycrystalline metals and offer theoretical guidance for the microstructural optimization of sintered silver in high-reliability applications.
AB - Sintered silver is widely used in power electronics packaging due to its excellent thermal and electrical properties, yet its inherent porosity significantly influences mechanical performance, particularly in terms of strength, deformation, and damage evolution. To systematically analyze these effects, numerical models with different porosities (10%, 20%, and 30%) are developed using a crystal plasticity finite element method (CPFEM). Pores are randomly distributed based on a Gaussian distribution to ensure a realistic spatial arrangement. The indentation response is evaluated by analyzing the load–displacement (P–h) curves, revealing that increasing porosity leads to a significant reduction in load-bearing capacity. Furthermore, the impact of pore distribution is examined by constructing models with different random pore configurations at a fixed porosity of 10%. The results indicate that variations in pore distribution have negligible influence on the macroscopic indentation response. Additionally, the orientation distribution function (ODF) analysis is conducted to assess grain orientation evolution during indentation, highlighting the pronounced influence of plastic deformation on crystallographic texture. The evolution of critical resolved shear stress (CRSS) and shear stress distribution further confirms the activation of slip systems during loading and the dominance of elastic recovery during unloading. Moreover, the contours of accumulated shear strain reveal strong strain localization around certain pores, indicating potential sites for crack initiation and subsequent propagation. The results of this study provide mechanistic insight into the deformation and damage behavior of porous polycrystalline metals and offer theoretical guidance for the microstructural optimization of sintered silver in high-reliability applications.
KW - Crystal plasticity
KW - Indentation
KW - Orientation distribution function
KW - Polycrystalline porous sintered silver
UR - https://www.scopus.com/pages/publications/105046160276
U2 - 10.1007/978-3-032-11165-4_31
DO - 10.1007/978-3-032-11165-4_31
M3 - 会议稿件
AN - SCOPUS:105046160276
SN - 9783032111647
T3 - Mechanisms and Machine Science
SP - 483
EP - 495
BT - Computational and Experimental Simulations in Engineering - Proceedings of ICCES 2025
A2 - Feng, Xiqiao
A2 - Zhou, Kun
PB - Springer Science and Business Media B.V.
T2 - 31st International Conference on Computational and Experimental Engineering and Sciences, ICCES 2025
Y2 - 25 May 2025 through 29 May 2025
ER -