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Operating pressure sensitivity of distillation-control structure consequences

机译:操作压力的敏感性distillation-control结构影响

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The influence of pressure variations upon distillation operation does not seem to be well-understood in the open literature, because contradicting statements concerning the importance of pressure control on binary distillation are found. To minimize energy consumption, it is recommended to operate columns at minimum pressure; however, even if column pressure is controlled, instability may still occur when both product purities are controlled in a decentralized control structure. In this paper, operating pressure sensitivity is classified according to the pressure sensitivity of the vapor-liquid equilibrium (VLE) relationship for the mixture being separated. Operating pressure sensitivity is shown to become significant at high internal flow rates. It is furthermore shown that this sensitivity may lead to a situation where different values of the internal flow rate may produce the same product purity, which commonly is labeled "input multiplicity" of the separation. This input multiplicity is shown to occur through a theoretical analysis combined with simulation of the case study and an extended series of experiments. The input multiplicity can be explained by two opposing effects from varying internal flows: the first comes from the well-understood effect of changing the slope of the operating lines, whereas the second is due to the effect of pressure on the VLE relationship. Understanding the input multiplicity or, rather, the pressure sensitivity is relevant for efficient exploitation of the separation capacity of the column through proper control structure selection, i.e., for determination of where to place sensors in a distillation column for controlling pressure. It is shown that the distillation column is most efficiently utilized by controlling the pressure at the column bottom/top for a negative/positive-pressure-sensitive mixture. It is furthermore concluded that controlling the column pressure at the proper end of the column may be crucial to column stability when both product purities are controlled in a decentralized control structure. In an experimental verification, it is demonstrated that, for separating a mildly negative-pressure-sensitive mixture, the distillation column separation capacity is most efficiently exploited when controlling the column pressure at the bottom of the distillation column. For the investigated mixture, it is shown that a 20% higher capacity may be obtained at a lower energy requirement. Thus, a significantly (20%) lower energy expenditure per produced unit is realized through the improved control structure, when compared to conventional control of the column pressure at the top of the distillation column.
机译:压力变化的影响蒸馏操作似乎并不是在开放的文学很好理解,因为说脏话有关压力控制在二进制的重要性蒸馏。消费,建议操作列在最低压力;压力控制,可能仍然不稳定发生在这两个产品纯度控制在分散控制结构。纸,操作压力敏感性分类根据压力灵敏度气液平衡(1)混合物的分离的关系。成为显示操作压力敏感性重大内部流率高。而且证明,这种敏感性可能领先不同的值的情况内部流量可能产生相同的产品纯洁,这通常是贴上了“输入分离的多重性”。多样性是通过一个发生理论分析与模拟相结合案例研究和一系列扩展的实验。解释为两个对立的影响不同内部流程:首先来自于易于理解的影响变化的斜率操作,而第二个是由于氢呋喃压力的影响关系。理解输入的多样性,或者相反,压力敏感性有关高效的分离能力开发通过适当的控制结构的列选择,即在哪里的决心位置传感器在蒸馏塔控制压力。蒸馏塔是最有效的利用通过控制压力在列底部和顶部负面/ positive-pressure-sensitive混合物。此外认为控制吗压力适当的列的列可能是至关重要的,当两列稳定产品纯度的控制分散控制结构。实验验证,证明了温和,对于分离negative-pressure-sensitive混合物,蒸馏塔的分离能力有效地利用当控制列底部的蒸馏压力列。一个能力可能会获得一个高出20%较低的能量需求。每个生产单位(20%)较低的能量消耗实现了通过改进控制结构,相比传统的控制列的顶部的压力蒸馏塔。

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