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Outer approximation algorithm with physical domain reduction for computer-aided molecular and separation process design

机译:具有物理域约简的外近似算法,用于计算机辅助分子和分离过程设计

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摘要

Integrated approaches to the design of separation systems based on computer-aided molecular and process design (CAMPD) can yield an optimal solvent structure and process conditions. The underlying design problem, however, is a challenging mixed integer nonlinear problem, prone to convergence failure as a result of the strong and nonlinear interactions between solvent and process. To facilitate the solution of this problem, a modified outer-approximation (OA) algorithm is proposed. Tests that remove infeasible regions from both the process and molecular domains are embedded within the OA framework. Four tests are developed to remove subdomains where constraints on phase behavior that are implicit in process models or explicit process (design) constraints are violated. The algorithm is applied to three case studies relating to the separation of methane and carbon dioxide at high pressure. The process model is highly nonlinear, and includes mass and energy balances as well as phase equilibrium relations and physical property models based on a group-contribution version of the statistical associating fluid theory (SAFT-γ Mie) and on the GC+ group contribution method for some pure component properties. A fully automated implementation of the proposed approach is found to converge successfully to a local solution in 30 problem instances. The results highlight the extent to which optimal solvent and process conditions are interrelated and dependent on process specifications and constraints. The robustness of the CAMPD algorithm makes it possible to adopt higher-fidelity nonlinear models in molecular and process design.
机译:基于计算机辅助分子和工艺设计(CAMPD)的分离系统设计的集成方法可以产生最佳的溶剂结构和工艺条件。但是,潜在的设计问题是一个具有挑战性的混合整数非线性问题,由于溶剂和过程之间强烈的非线性相互作用,容易导致收敛失败。为了便于解决该问题,提出了一种改进的外部逼近算法。从过程域和分子域中删除不可行区域的测试都嵌入到OA框架中。开发了四个测试以删除违反了过程模型中隐含的阶段行为约束或显式过程(设计)约束的子域。该算法适用于三个案例研究,涉及高压下甲烷和二氧化碳的分离。过程模型是高度非线性的,包括质量和能量平衡以及相平衡关系和物理性质模型,这些模型基于统计缔合流体理论的组贡献版本(SAFT-γMie)和基于GC +的组贡献方法一些纯组件属性。我们发现,在30个问题实例中,该方法的全自动实施已成功收敛到本地解决方案。结果强调了最佳溶剂和工艺条件相互关联的程度,并且取决于工艺规范和约束条件。 CAMPD算法的鲁棒性使得在分子和过程设计中采用更高保真度的非线性模型成为可能。

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