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Process Safety Aspects in Water-Gas-Shift (WGS) Catalytic Membrane Reactors Used for Pure Hydrogen Production

机译:用于纯氢气生产的水液移(WGS)催化膜反应器的过程安全方面

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The syngas produced by coal gasification processes can be utilized in Pd-based water gas shift membrane reactors for the production of pure H2. Pd/Alloy composite membrane reactors exhibit comparative advantages over traditional packed bed reactors such as simultaneous reaction/separation in one compact unit and increased reaction yields. Furthermore, the development of comprehensive process intensification strategies could further enhance membrane reactor performance resulting in a substantially smaller and functional, inherently safer, environmentally friendlier and more energy efficient process. A systematic non-isothermal modeling framework under both steady state and dynamic/transient conditions for a catalytic high temperature water-gas shift reaction in a Pd-based membrane reactor has been developed to characterize the dynamic behavior of the process system at various operating conditions from a process safety standpoint. In particular, various reaction conditions as well as key process variables such as feed temperature and flow rate, catalyst loading, driving force for H2 permeation are considered as they are critically related to various safety aspects in the operation of a Pd-based membrane reactor. Within the proposed framework, process parameters and operating conditions which may induce hazards and compromise process safety are identified, analyzed and characterized. Finally, the proposed approach is evaluated through detailed simulation studies in an illustrative case study involving a real Pd-based membrane reactor used for pure hydrogen production and separation that exhibits complex behavior over a wide operating regime.
机译:由煤的气化过程中产生的合成气可在基于Pd的水煤气变换膜反应器用于生产纯H 2的被利用。的Pd /合金复合膜反应器表现出比传统的填充床反应器比较的优点,例如同时反应/在一个紧凑的单元分离和增加反应产率。此外,综合过程强化策略的发展可以进一步增强导致显着更小和功能,固有安全,环境友好的,更节能的过程膜反应器的性能。一种用于在基于Pd的膜反应器的催化的高温水煤气变换反应既稳态和动态/瞬态条件下的系统性非等温建模框架已经形成在从各种操作条件来表征过程系统的动态行为流程安全的角度来看。特别地,各种反应条件以及关键工艺变量如进料温度和流速,催化剂负载,驱动为H2渗透力被​​认为是因为它们是在一个基于Pd的膜反应器的操作极为相关的各种安全方面。在拟议的框架,这可能引起的危害和妥协过程安全工艺参数和操作条件被识别,分析和表征。最后,所提出的方法是通过涉及用于纯氢气生产和分离一个真正基于Pd的膜反应器中的说明性情况下,研究的详细仿真研究评估表现出在宽的操作状态复杂的行为。

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