按需制氢的氨裂解电气化:CFD建模

Hesam Maleki, Volfango Bertola
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引用次数: 0

摘要

本文研究了紧凑型宏观氨裂解反应器的设计、计算建模和热优化,通过增强热管理和非等温动力学分析,实现高效、可扩展和高转化率的氢气生产。采用计算流体动力学模拟的方法研究了平行板宏观反应器中氨分解的非等温行为,重点研究了优化热分布以提高反应器性能和保持结构紧凑的方法。这种方法解决了工业对氨高效、零碳制氢的需求,并为高通量吸热反应的热管理提供了实用和可扩展的设计解决方案。以一种商业催化剂为基础,确定了反应器的动力学参数,并进行了模拟,以求解质量和能量平衡方程,并模拟了反应流特性,包括物质摩尔分数和NH3转化率。对加热器和反应器段的温度梯度进行了全面的传热分析,旨在减少热点,改善内部热量分布。结果表明,优化后的系统加热板能够有效地提供所需的反应热量,减小了整个系统的温度梯度。增加加热器长度增强了表面接触,降低了热流密度,最大限度地减少了热点的形成。这种优化方法有望提高氨裂解反应器的高通量制氢性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electrification of ammonia cracking for on-demand hydrogen production: CFD modeling
This paper investigates the design, computational modeling, and thermal optimization of a compact macro-scale ammonia cracking reactor to enable efficient, scalable, and high-conversion hydrogen production through enhanced heat management and non-isothermal kinetic analysis. The non-isothermal behavior of ammonia decomposition in a parallel plates macro-scale reactor is investigated by means of computational fluid dyinamics simulations, focusing on the optimization of the heat distribution to enhance performance and maintain a compact design. This approach addresses industrial need for efficient, zero-carbon hydrogen production from ammonia, and provides practical and scalable design solutions for thermal management in high-throughput endothermic reactions. Kinetic parameters for the reactor were determined based on a commercial catalyst, and simulations were conducted to solve mass and energy balance equations and to model reacting flow properties, including species mole fractions and NH3 conversion rates. A comprehensive heat transfer analysis was conducted to evaluate temperature gradients in both the heater and the reactor sections, aiming to minimize hot spots and improve internal heat distribution. Results show the optimized heating plates of the system can efficiently provide the required reaction heat, reducing temperature gradients across the system. Increasing the heater length enhanced surface contact and lowered the heat flux, minimizing the formation of hot spots. This optimized approach holds promise for enhancing the ammonia cracking reactor performance for high-throughput hydrogen generation.
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