Investigation of Failure Processes in Porous Battery Substrates: Part II—Simulation Results and Comparisons
- 1 October 1999
- journal article
- Published by ASME International in Journal of Engineering Materials and Technology
- Vol. 121 (4) , 514-523
- https://doi.org/10.1115/1.2812409
Abstract
Models are presented for the evolution of transport and mechanical properties of nickel-metal hydride (NiMH) battery substrates. In the first paper in this series (Wang et al., 1999), conductive losses and enhancement of mechanical properties in these materials were quantified experimentally. These were qualitatively shown to be related to observed morphological changes in the substrate materials. Here, an evolution hypothesis for changes in these structures is presented, along with a simplified approximation of the real material microstructure (porous fiber/powder nickel network) with a tractable simulation geometry (porous fiber networks). Transport and mechanics models are then compared with experimental results, with stochastically-arranged fibers approximated as conductive beams connected by elastic torsion springs. Both quantitative and qualitative agreement are found with the models. Limitations of the approaches proposed are also discussed, along with the consequences of the simplifications of geometry for analysis.Keywords
This publication has 17 references indexed in Scilit:
- Mechanics of Stochastic Fibrous NetworksJournal of Thermoplastic Composite Materials, 1998
- A hybrid numerical method for high contrast conductivity problemsJournal of Computational and Applied Mathematics, 1997
- Micromechanically based stochastic finite elementsFinite Elements in Analysis and Design, 1993
- Measurement and analysis of a model dual-conductivity medium using a generalised effective-medium theoryJournal of Physics C: Solid State Physics, 1988
- Computer study of the percolation threshold in a two-dimensional anisotropic system of conducting sticksPhysical Review B, 1983
- Percolation and conductivity: A computer study. IPhysical Review B, 1974
- Percolation and ConductionReviews of Modern Physics, 1973
- Studies in Nonwoven FabricsTextile Research Journal, 1964
- Percolation processesMathematical Proceedings of the Cambridge Philosophical Society, 1957
- The elasticity and strength of paper and other fibrous materialsBritish Journal of Applied Physics, 1952