2021 Annual Meeting
(317g) SPICE_ED: A Framework for Simultaneous Materials Screening and Process Synthesis for Extractive Distillation
Authors
Building block-based representation [6] of chemical process flowsheets was first used in developing the prototype design tool SPICE (Synthesis and Process Intensification of Chemical Enterprises) and was further modularized to specifically incorporate reactive distillation [7], membrane separation [8], and membrane reactors [9]. In this work, we introduce a new module SPICE_ED (SPICE involving Extractive Distillation). SPICE_ED specializes in systematic process synthesis, intensification, and optimization of ED columns and associated process configurations. SPICE_ED employs a mixed-integer nonlinear model (MINLP)-based equation-oriented design approach, where the conceptual decisions are represented using design building blocks. Based on user-defined specifications on feed (flow rates, composition, thermo-physical properties) and product purity and demand constraints, SPICE_ED performs automatic synthesis of optimal ED flowsheets. A key feature is the efficient prediction of fluid properties, phase equilibrium, and solvent-extraction phenomena using both rigorous and surrogate thermodynamic packages and detailed mathematical models e.g., equation-of-states (Peng Robinson or van der Waals) and Gamma-Phi method with NRTL model. Computational efficiencies are obtained by using reliable surrogate models (R2> 0.99) for thermodynamic and physical properties. This allows us to generate detailed configurations of ED columns considering appropriate feed inlet trays, boil-up, and reflux ratios, and side product stream trays. Furthermore, we can perform large-scale computational screening and selection of solvents, such as ionic liquids (ILs), for designing ED-based separation process involving azeotropic mixtures. In this context, SPICE_ED can be also used to generate structure-property-performance-process relationships mapping the entire range of solvent design space. We illustrate these capabilities by solving a simultaneous material selection and process design problem involving IL-based extractive distillation for hydrofluorocarbons (HFC) separation. Specifically, for the separation of R-410A, which is a refrigerant mixture of two HFCs (R-32 and R-125), SPICE_ED suggests an optimized process flowsheet that reduces the energy consumption by 65% from the base case flowsheet [11]. Additionally, the optimized process is environmentally sustainable as it emits 72% less indirect CO2.
References:
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