Competing forces in liquid metal electrodes and batteries
arXiv:1711.01795 · doi:10.1016/j.jpowsour.2017.12.042
Abstract
Liquid metal batteries are proposed for low-cost grid scale energy storage. During their operation, solid intermetallic phases often form in the cathode and are known to limit the capacity of the cell. Fluid flow in the liquid electrodes can enhance mass transfer and reduce the formation of localized intermetallics, and fluid flow can be promoted by careful choice of the locations and topology of a battery's electrical connections. In this context we study four phenomena that drive flow: Rayleigh-Bénard convection, internally heated convection, electro-vortex flow, and swirl flow, in both experiment and simulation. In experiments, we use ultrasound Doppler velocimetry (UDV) to measure the flow in a eutectic PbBi electrode at 160°C and subject to all four phenomena. In numerical simulations, we isolate the phenomena and simulate each separately using OpenFOAM. Comparing simulated velocities to experiments via a UDV beam model, we find that all four phenomena can enhance mass transfer in LMBs. We explain the flow direction, describe how the phenomena interact, and propose dimensionless numbers for estimating their mutual relevance. A brief discussion of electrical connections summarizes the engineering implications of our work.
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Cited by in corpus (5)
- Modeling discontinuous potential distributions using the finite volume method, and application to liquid metal batteries
- Layer coupling between solutal and thermal convection in liquid metal batteries
- Anode-metal drop formation and detachment mechanisms in liquid metal batteries
- Effects of current distribution on mass transport in the positive electrode of a liquid metal battery
- Transient behaviour of electrovortex flow in a cylindrical container