Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1510668 | Energy Procedia | 2014 | 10 Pages |
Abstract
In this paper, we apply an advanced equation-based flowsheet optimization framework to design these cryogenic separations systems. The key advantage of this approach is the ability to use state-of-the-art nonlinear optimization solvers that are capable of considering 100,000+ variables and constraints. This allows for multi-variable optimization of these cryogenic separations systems and their accompanying multi-stream heat exchangers. The effectiveness of this approach is demonstrated in two case studies. The optimized ASU designs requires 0.196 kWh/kg of O2, which are similar to a “low energy” design from American Air Liquide and outperforms other academic studies. Similarly, the optimized CPU requires 18% less specific separation energy than an academic reference case. Pareto (sensitivity) curves for the ASU and CPU systems are also presented. Finally, plans to apply the framework to simultaneously optimize an entire oxycombustion process are discussed.
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Physical Sciences and Engineering
Energy
Energy (General)
Authors
Alexander W. Dowling, Cheshta Balwani, Qianwen Gao, Lorenz T. Biegler,