Modeling nonlinear moisture diffusion in inhomogeneous media

Journal Article (2017)
Author(s)

Liangbiao Chen (Lamar University)

Jiang Zhou (Lamar University)

Hsing-wei Chu (Lamar University)

Guo Qi Zhang (TU Delft - Electronic Components, Technology and Materials)

X.J. Fan (Lamar University)

Research Group
Electronic Components, Technology and Materials
Copyright
© 2017 Liangbiao Chen, Jiang Zhou, Hsing-wei Chu, Kouchi Zhang, Xuejun Fan
DOI related publication
https://doi.org/10.1016/j.microrel.2017.06.055
More Info
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Publication Year
2017
Language
English
Copyright
© 2017 Liangbiao Chen, Jiang Zhou, Hsing-wei Chu, Kouchi Zhang, Xuejun Fan
Research Group
Electronic Components, Technology and Materials
Volume number
75
Pages (from-to)
162-170
Reuse Rights

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Abstract

While moisture diffusion in microelectronic device and packaging has been studied for decades, the problems involving complex nonlinear moisture diffusion in multi-material assembly have not been fully studied. This paper has developed a general nonlinear diffusion model by adopting water activity, a continuous state variable, as the field variable. The generalized solubility is introduced, which is temperature- and water activity-dependent. The effective diffusivity is defined and derived in terms of generalized solubility and water activity. By comparing the water activity-based model with the existing various normalized models, the present theory can unify and generalize the current approaches. More importantly, the present model can solve both linear and nonlinear moisture diffusion in inhomogeneous material system without normalization. The commercial finite element software has been applied to solve the nonlinear generalized moisture diffusion problem using the analogy of water activity and temperature. A source code of user-defined subroutines in ABAQUS has been provided in the Appendix of the paper. The mathematical formulation and the numerical implementation method presented in this paper can be applied to any nonlinear sorption or diffusion problems in inhomogeneous material system.

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