Akhil Arora, Ishan Bajaj, Shachit S. Iyer, M. M. Faruque Hasan
Index: 10.1016/j.compchemeng.2018.04.004
Full Text: HTML
A systematic design and synthesis framework for multi-step, multi-mode and periodic sorption-enhanced reaction processes (SERP) is presented. The formulated nonlinear algebraic and partial differential equation (NAPDE)-based model simultaneously identifies optimal SERP cycle configurations, design specifications and operating conditions. Key modeling contributions include a generalized boundary-condition formulation and a representation that enables the selection of discrete operation modes and flow directions using continuous pressure variables. A simulation-based constrained grey-box optimization strategy is employed to obtain optimal cycles and design parameters. The framework has been used for designing two SERP systems, namely sorption-enhanced steam methane reforming (SE-SMR) and sorption-enhanced water gas shift reaction (SE-WGSR), for maximizing hydrogen productivity and minimizing hydrogen-production cost. Specifically, a cyclic SE-SMR process is designed that obtains 95% pure hydrogen from natural gas with 35% higher productivity and 10.86% lower cost compared to existing small-scale, distributed systems. The developed synthesis framework can be applied for other applications too.
Deep convolutional neural network model based chemical proce...
2018-04-11 [10.1016/j.compchemeng.2018.04.009] |
Reactive Scheduling of Crude Oil using Structure Adapted Gen...
2018-04-03 [10.1016/j.compchemeng.2018.04.005] |
A CFD simulation study of boiling mechanism and BOG generati...
2018-04-03 [10.1016/j.compchemeng.2018.04.003] |
Optimization-based approach for maximizing profitability of ...
2018-04-03 [10.1016/j.compchemeng.2018.04.001] |
Computer aided chemical product design - ProCAPD & tailor-ma...
2018-04-01 [10.1016/j.compchemeng.2018.03.029] |
Home | MSDS/SDS Database Search | Journals | Product Classification | Biologically Active Compounds | Selling Leads | About Us | Disclaimer
Copyright © 2024 ChemSrc All Rights Reserved