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Joule-Heated Molten Regolith Electrolysis Reactor Concepts for Oxygen and Metals Production on the Moon and Mars

机译:在月球和火星上产生氧气和金属的焦耳加热熔融Regolith电解反应器概念

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摘要

The maturation of Molten Regolith Electrolysis (MRE) as a viable technology for oxygen and metals production on explored planets relies on the realization of the self-heating mode for the reactor. Joule heat generated during regolith electrolysis creates thermal energy that should be able to maintain the molten phase (similar to electrolytic Hall-Heroult process for aluminum production). Self-heating via Joule heating offers many advantages: (1) The regolith itself is the crucible material, it protects the vessel walls (2) Simplifies the engineering of the reactor (3) Reduces power consumption (no external heating) (4) Extends the longevity of the reactor. Predictive modeling is a tool chosen to perform dimensional analysis of a self-heating reactor: (1) Multiphysics modeling (COMSOL) was selected for Joule heat generation and heat transfer (2) Objective is to identify critical dimensions for first reactor prototype.
机译:作为在勘探行星上生产氧气和金属的可行技术,熔融雷格石电解(MRE)的成熟依赖于反应堆自热模式的实现。硬质合金电解过程中产生的焦耳热产生应能保持熔融相的热能(类似于铝生产的电解霍尔-赫鲁特工艺)。通过焦耳加热进行自我加热具有许多优点:(1)硬石膏本身就是坩埚材料,可以保护容器壁(2)简化反应堆的工程设计(3)降低功耗(无需外部加热)(4)扩展反应堆的寿命。预测建模是一种用于对自热反应堆进行尺寸分析的工具:(1)选择多物理场建模(COMSOL)进行焦耳生热和传热(2)目的是确定第一个反应堆原型的关键尺寸。

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