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Initial experimental and theoretical investigation of solar molten media methane cracking for hydrogen production

机译:太阳能熔融介质甲烷裂纹氢气生产的初步实验与理论研究

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Previous work assessed the fundamental technical and market risks associated with the development and deployment of solar fuels technology in Alberta. It identified methane cracking in solar-molten media as the hydrogen production technology featuring the best combination of technical risk, market acceptance, and breakthrough potential of all the techniques covered in the study. Alberta Innovates-Technology Futures (AITF) plans to advance the technology from a conceptual stage to a proof-of concept over a span of 4 years. The ultimate goal is to design, build and test a prototype solar receiver/reactor in a suitable solar simulator. The paper outlines the activities to date concerning the initial bench-scale testing of methane cracking in molten media at temperatures ranging from 1023 to 1373 K. The design and construction of an experimental apparatus used to establish the fundamental thermo-chemical performance of the process is presented, along with preliminary results and lessons from the first testing campaign. A transient, non-isothermal, preliminary mathematical model of a reacting bubble within the molten metal has been developed using MATLAB. The model accounts for the chemical reactions, diffusion of the gases in the bubble and heat transfer from the molten metal to the reacting gases. The model can be used to predict the minimum bubble residence time needed to achieve a given hydrogen yield. The simulation tool will be used to numerically estimate methane conversions in the reactor at various conditions.
机译:以前的工作评估了与Alberta在太阳能燃料技术的开发和部署相关的基本技术和市场风险。它确定了太阳能介质中的甲烷裂缝,因为氢气生产技术具有技术风险,市场验收和突破性潜力的最佳组合,在该研究中涵盖的所有技术。艾伯塔省创新 - 技术期货(AITF)计划在4年的跨度范围内从概念阶段推动技术到概念证明。最终目标是在合适的太阳能模拟器中设计,构建和测试原型太阳能接收器/反应器。本文概述了迄今为止熔融介质在1023至1373K的温度下熔融介质中甲烷裂纹的初始基准尺度测试的活动。用于建立该过程的基本热化学性能的实验装置的设计和结构是提出,以及第一次测试活动的初步结果和课程。熔融金属内的反应气泡的瞬态非等温初步数学模型已经使用MATLAB开发。该模型考虑了化学反应,气体在气泡中的扩散和从熔融金属到反应气体的热传递。该模型可用于预测实现给定氢产率所需的最小气泡停留时间。仿真工具将用于在各种条件下数值估计反应器中的甲烷转化。

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