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Quantifying Unmanned Undersea Vehicle Range Improvement Enabled by Aluminum-Water Power System

机译:量化铝水动力系统对无人水下航行器航程的改进

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Aluminum is an attractive energy storage material for underwater propulsion because of its high density and strongly exothermic reaction with seawater. However, the degree to which an aluminum-seawater power system could outperform other systems has remained unknown because of uncertainties about volume and energy costs associated with the balance of plant This work addresses this problem by developing a thermodynamic model for a complete Rankine-cycle propulsion system based on the aluminum-seawater reaction and combining this with a scaling methodology for inferring the system's effective energy density. The results show that replacing battery-based power systems with aluminum combustion based ones could increase range/endurance by factors of four to ten over competing technologies. Overall system efficiency is maximized by adjusting the water mass flow to fuel mass flow ratio so as to control the temperature and quantity of steam. Although increasing the amount of combustion byproduct, hydrogen, improves the performance of the turbine, the thermodynamic cost of compressing the hydrogen can be very high. As a result, developing a compact device for achieving an isothermal compression of waste hydrogen is necessary to fully realize the energy density advantage of the aluminum fuel.
机译:铝由于其高密度和与海水的强烈放热反应,是用于水下推进的有吸引力的储能材料。但是,由于与电厂平衡相关的体积和能源成本的不确定性,铝-海水发电系统的性能优于其他系统的程度仍然未知。这项工作通过开发用于完整兰金循环推进的热力学模型解决了这个问题。该系统基于铝-海水反应,并将其与缩放方法相结合,以推断系统的有效能量密度。结果表明,与基于竞争的技术相比,以铝燃烧为基础的电池供电系统可以将续航时间/续航力提高四到十倍。通过调节水的质量流量与燃料的质量流量之比,从而控制蒸汽的温度和数量,可以使整个系统的效率最大化。尽管增加燃烧副产物氢的量可以改善涡轮机的性能,但是压缩氢的热力学成本可能非常高。结果,需要开发紧凑的装置以实现废氢的等温压缩,以充分实现铝燃料的能量密度优势。

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