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Pareto-optimal design and assessment of monolithic sponges as catalyst carriers for exothermic reactions

机译:帕累托 - 作为催化剂载体的整体海绵的优化设计与评估,用于放热反应

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摘要

Monolithic sponges combine low pressure losses and excellent heat transport properties and are consequently considered as promising catalyst carriers for fixed-bed reactors. Insights on how to design porosity and window size of monolithic sponges to resolve conflicting relations between low pressure losses, high thermal conductivities, and high space-time-yields (STY), i.e., a high catalyst inventory, are still unknown, especially at pilot or production scales. This study quantifies the outlined tradeoffs and assesses the potential of monolithic sponges as catalyst carriers compared to conventional packed beds of pellets. A state-of-the-art heterogeneous reactor model was applied in combination with a genetic multi-objective optimization algorithm to predict Pareto-optimal sets of sponge designs (max. STY, min. Delta p, Delta T-max = Delta T-tol). As example, the methanation of CO2 was chosen. The Pareto-optimal set of sponge designs shows that small windows are necessary to obtain high space-time-yields comparable to the ones of conventional packed beds. As a consequence, the expected low pressure loss cannot be achieved. Because of excellent heat transport properties, which are weakly dependent on the throughput, monolithic sponges however allow stable operation under varying gas loads. The results demonstrate that monolithic sponges will probably not replace packed pellet beds of pellets for the steady-state production of chemicals. Instead, they provide a competitive option for small-scale, decentralized production for example within chemical energy storage and CO2 utilization.
机译:单片海绵结合低压损失和优异的热传递性能,因此被认为是固定床反应器的承诺催化剂载体。关于如何设计整体海绵的孔隙度和窗口大小以解决低压损失,高热导流性和高空间产量(STY),即高催化剂库存之间的矛盾关系仍然不为人知,特别是在飞行员或生产尺度。该研究量化了概述的权衡,并评估了与常规包装的颗粒的常规包装床相比作为催化剂载体的整体海绵的潜力。最先进的异构反应堆模型与遗传多目标优化算法相结合,以预测静态的海绵设计套装(MAX。斯蒂,最小。Delta P,Delta T-Max≪ = Delta t-tol)。例如,选择CO 2的甲烷化。帕累托 - 最佳的海绵设计表明,需要小窗户获得与传统填充床中的高空时收益率相当。结果,无法实现预期的低压损失。由于优异的热传递性能,其弱依赖于产量,但是整体海绵允许在不同的气体载荷下稳定运行。结果表明,单片海绵可能不会取代用于稳态化学品的颗粒颗粒颗粒床。相反,它们为小型,分散的生产提供了竞争选择,例如化学能量存储和二氧化碳利用。

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