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The improvements observed will be discussed and the results kinetically modelled using a rate equation approach.
The measured critical loads are predicted using a rate dependent slow crack growth (RDEASCG) model.
pH-rate profiles were explained by using a rate law which assumed acid-catalyzed hydrolysis of protonated and unprotonated ACV.
Depth-dependent retention was described using a rate coefficient that is a power-law function of distance.
The initial charge capacity is 2404 mAhg−1 using a rate of C/2, and the initial discharge capacity is 1040 mAhg−1 yielding a 1st cycle efficiency of 43.3%; this is attributed to the SEI formation.
Here, we describe landslide motion using a rate- and state-dependent frictional model that incorporates a nonlocal stress balance to account for the elastic response to gradients in slip.
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Using a rate-and-state friction model, we show that effective normal stress is temporally variable on the fault, and support this using seismic observations.
Models are generated using a rate-based algorithm which excludes species from the model based on reaction fluxes.
The simulations are done using a rate-dependent crystal plasticity model for large deformations formulated within a thermodynamic framework.
Explicit consideration of mass transfer using a rate-based approach is found to be critical when mass-transfer driving force is very low.
Closed-form analytical and numerical solutions were obtained using a rate-sensitive crystal plasticity model together with the full-constraint Taylor theory.
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