Is frictional heating needed to cause dramatic weakening of nanoparticle gouge during seismic slip? Insights from friction experiments with variable thermal evolutions

Publication date

2016-07-16

Authors

Yao, L.
Ma, S.
Niemeijer, Andre R.ORCID 0000-0003-3983-9308ISNI 0000000436376624
Shimamoto, T.
Platt, J.D.

Editors

Advisors

Supervisors

Document Type

Article

License

Abstract

To examine whether faults can be lubricated by preexisting and newly formed nanoparticles, we perform high-velocity friction experiments on periclase (MgO) nanoparticles and on bare surfaces of Carrara marble cylinders/slices, respectively. Variable temperature conditions were simulated by using host blocks of different thermal conductivities. When temperature rises are relatively low, we observe high friction in nano-MgO tests and unexpected slip strengthening following initial weakening in marble slice tests, suggesting that the dominant weakening mechanisms are of thermal origin. Solely the rolling of nanoparticles without significant temperature rise is insufficient to cause dynamic fault weakening. For nano-MgO experiments, comprehensive investigations suggest that flash heating is the most likely weakening mechanism. In marble experiments, flash heating controls the unique evolutions of friction, and the competition between bulk temperature rise and wear-induced changes of asperity contact numbers seems to strongly affect the efficiency of flash heating.

Keywords

Citation

Yao, L, Ma, S, Niemeijer, A R, Shimamoto, T & Platt, J D 2016, 'Is frictional heating needed to cause dramatic weakening of nanoparticle gouge during seismic slip? Insights from friction experiments with variable thermal evolutions', Geophysical Research Letters, vol. 43, no. 13, pp. 6852-6860. https://doi.org/10.1002/2016GL069053