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Multi-Methodology Modeling and Design of Lithium-Air Cells With Aqueous Electrolyte

机译:含电解质的锂空气电池的多方法建模与设计

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Metal-air batteries are being investigated as alternative to state-of-the-art lithium-ion batteries for mobile and stationary applications due to their higher specific energy and potentially lower cost. Modeling and simulation techniques allow a better understanding and improvement of the complex mechanisms and properties of metal-air batteries. We present simulation results of a lithium-air (Li/O_2) battery with aqueous alkaline (LiOH) electrolyte using three different methodologies, (ⅰ) Lattice-Boltzmann modeling on the porous electrode scale, (ⅱ) multi-physics continuum modeling on the single-cell scale and (ⅲ) system simulation of a Li/O_2-battery-powered electric vehicle. Different cell designs (porous separator, stirred separator, and redox-flow design) are investigated in order to quantitatively assess their performance. Virtual aqueous lithium-air batteries yielded high specific energy (up to 755 Wh/kg), but considerably uncompetitive specific power, which prohibit the use in battery electric vehicles at the present stage of development.
机译:由于金属空气电池具有更高的比能量和可能更低的成本,它们正在研究替代用于移动和固定应用领域的最新锂离子电池。建模和仿真技术可以更好地理解和改进金属空气电池的复杂机制和性能。我们使用三种不同的方法展示了使用碱性(LiOH)电解质水溶液的锂-空气(Li / O_2)电池的仿真结果,(ⅰ)多孔电极规模的Lattice-Boltzmann建模,(ⅱ)多孔电极规模的多物理场连续模型Li / O_2电池供电的电动汽车的单电池规模和(ⅲ)系统仿真。为了定量评估其性能,研究了不同的电池设计(多孔隔板,搅拌隔板和氧化还原流设计)。虚拟含水锂空气电池产生高的比能(高达755 Wh / kg),但是比功率却极不具有竞争力,这在目前的开发阶段禁止在电池电动汽车中使用。

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