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EFFECTIVE USE OF DP-PSA GAS SEPARATION TECHNOLOGY

机译:有效使用DP-PSA气体分离技术

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Based on the analysis of Dual Piston Pressure Swing Adsorption (DP-PSA) technology, in which only one adsorber is used, the possibility of a significant reduction in energy costs for gas mixture separation is been demonstrated. A mathematical model of a DP-PSA system for the separation of gas mixtures is described. Using this mathematical model, optimization of parameters of the DP-PSA system was carried out to produce oxygen from air. The concentration of production oxygen was chosen as the objective function. The optimized parameters were the phase shift angle of piston movement and the ratio of volumes displaced by the pistons. The optimum phase of piston movement in the cylinder filled with air is 51° ahead of the phase of piston movement in the cylinder filled with production oxygen. In this case, the concentration of oxygen at the outlet from the unit reaches 94.7 %. The optimal ratio of volumes displaced by the pistons turned out to be 1.0. The wave approach was used to analyze and calculate the periodic adsorption processes, as well as simulate DP-PSA systems.
机译:基于双活塞压力摆吸吸(DP-PSA)技术的分析,在其中使用一个吸附剂,已经证明了对气体混合物分离的能量成本显着降低的可能性。描述了用于分离气体混合物的DP-PSA系统的数学模型。使用该数学模型,进行了DP-PSA系统的参数的优化以产生来自空气的氧气。选择生产氧的浓度作为目标函数。优化的参数是活塞运动的相移角度和活塞移位的量的比率。在填充有生产氧气的气缸中的活塞运动的相位之前,填充空气的气缸中的活塞运动的最佳相位是51°。在这种情况下,从该单元的出口处的氧气浓度达到94.7%。活塞移位的量的最佳比率为1.0。波方法用于分析和计算周期性吸附过程,以及模拟DP-PSA系统。

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