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Optimal synthesis of energy efficiency improvement for NGLS indirect sequence fractionation unit

机译:NGLS间接序列分离装置能效改进的优化综合

摘要

Once natural gas liquids (NGLs) have been separated from natural gas stream, they are further separated into their component parts, or fractions, using a distillation process known as fractionation. Distillation is the primary separation process widely used in the natural gas processing. Although it has many advantages, the main drawback is its large energy requirement, which can significantly influence the overall plant profitability. Another question that needs to be answered here is there any systematic study and analysis to improve energy saving for the NGLs fractionation plant without having major modifications to the separation units, which is more practical to implement. The large energy requirement of these processes can be systematically reduced by determining the optimal sequence using driving force method. Therefore, the objective of this paper is to present the study and analysis of the energy saving improvement for the NGLs fractionation plant by using driving force method which will require only minor or less modifications to the separation units. Generally, the concept of driving force was applied in designing an energy efficient distillation column [Gani and Bek-Pedersen, 2004]. However, the concept has been extended its application in designing energy efficient distillation columns sequence [Mustafa et. al., 2014]. To perform the studies and analysis, the energy efficient NGLs fractionation plant methodology is developed. Basically, the methodology consists of four hierarchical steps. In the first step, the energy that is obtained from the base NGLs sequence will be used as guidance for the next step where the base NGLs sequence is developed from a simple and reliable short-cut method. In the second step, the energy efficiency in distillation column will be improved through driving force method where the optimum sequence will be determined in this step. In the third step, the optimum sequence was analyzed in term of energy analysis by using a simple and reliable shortcut method distillation column in Aspen HYSYS environment. In the final step, the comparison between the existing sequence and the optimum sequence by using driving force method will be done and at the same time the economic performance for the optimum sequence is also evaluated in this step. Then, the return of investment (ROI) will be calculated to make sure that the proposed modification to improve energy saving is practical. The capability of this methodology is tested in designing an optimal energy efficient distillation columns sequence of NGLs fractionation unit. The existing NGLs fractionation unit consists of nine compounds (methane, ethane, propane, i-butane, nbutane, i-pentane, n-pentane, n-hexane, n-heptane) with direct-splitter-direct sequence was simulated using a simple and reliable short-cut method within Aspen HYSYS environment. A total of 519.68 MW energy used to achieve 99.9% of product recovery. A new optimal sequence determined by driving force method was simulated using a short-cut method within Aspen HYSYS environment where a total of 376.60 MW of energy was used of the same product recovery. The results show that the maximum of 27.53 % energy reduction was able to achieve by changing the sequence suggested by the driving force method. It can be concluded that, the sequence determined by the driving force method is able to reduce energy used for NGLs fractionation. All of this findings show that the methodology is able to design energy efficient distillation columns for NGLs fractionation sequence in an easy, practical and systematic manner.
机译:将天然气液体(NGL)从天然气流中分离出来后,可使用称为分馏的蒸馏工艺将其进一步分离成其组成部分或馏分。蒸馏是天然气加工中广泛使用的主要分离工艺。尽管它具有许多优点,但主要缺点是需要大量能源,这可能会严重影响整个工厂的盈利能力。这里需要回答的另一个问题是,在不对分离装置进行重大修改的情况下,进行任何系统的研究和分析,以提高NGL分馏设备的节能效果,这是更实际的实施方法。通过使用驱动力方法确定最佳顺序,可以系统地减少这些过程的大量能源需求。因此,本文的目的是通过驱动力方法对NGL分离装置的节能改进进行研究和分析,该方法仅需对分离单元进行少量或较少的改动即可。通常,在设计节能型蒸馏塔时会采用驱动力的概念[Gani and Bek-Pedersen,2004]。但是,该概念已经扩展了其在设计节能蒸馏塔顺序中的应用[Mustafa等。等人,2014]。为了进行研究和分析,开发了节能NGLs分馏设备方法。基本上,该方法包括四个层次步骤。在第一步中,将从基本NGL序列中获得的能量用作下一步的指导,在下一步中,将通过简单可靠的快捷方法开发基本NGL序列。在第二步中,将通过驱动力方法提高蒸馏塔的能效,在该步骤中将确定最佳顺序。第三步,通过在Aspen HYSYS环境中使用简单可靠的捷径法蒸馏塔,在能量分析方面分析了最佳顺序。在最后一步中,将通过使用驱动力方法对现有序列和最佳序列进行比较,同时在此步骤中还将评估最佳序列的经济性能。然后,将计算投资回报(ROI),以确保所提出的改进节能措施的切实可行。在设计NGLs分馏装置的最佳节能蒸馏塔顺序时,测试了该方法的能力。现有的NGL分馏单元由九种化合物组成(甲烷,乙烷,丙烷,异丁烷,正丁烷,异戊烷,正戊烷,正己烷,正庚烷),使用简单的方法模拟了直接拆分的直接序列和在Aspen HYSYS环境中可靠的快捷方法。总共使用了519.68 MW的能源,可实现99.9%的产品回收率。在Aspen HYSYS环境中使用快捷方法模拟了由驱动力方法确定的新的最佳顺序,在该环境中,使用了376.60 MW的能量回收了相同的产品。结果表明,通过改变驱动力方法建议的顺序,最多可以实现27.53%的能耗降低。可以得出结论,由驱动力方法确定的顺序能够减少用于NGL分馏的能量。所有这些发现表明,该方法能够以简单,实用和系统的方式设计用于NGLs分馏序列的节能蒸馏塔。

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