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Design, development, and modeling of a continuous simulated moving-bed ion-exclusion process for the separation of acid and sugar.

机译:用于分离酸和糖的连续模拟移动床离子排斥过程的设计,开发和建模。

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Current concern for the environment and anticipated future shortages of fossil fuels has inspired research into the use of cellulosic waste materials as fuel sources. One option is to hydrolyze the cellulosic materials into sugar that can be fermented into fuel grade alcohol. This research demonstrates the efficient separation of the sugar from the acid used for hydrolysis.; A simulated moving bed ion exclusion chromatography system was constructed for the continuous separation of the components in an aqueous feed solution of sucrose and sulfuric acid. A system of 18 columns was arrayed about a central manifold system. Each column was packed with approximately 820 mL of porous cationic exchange resin. The system was designed for the flexibility to use fluid recycle loops and unrestricted placement of all inlet and outlet streams. Monitoring and control functions were performed using a Camile 2000 process controller integrated with a custom-built control computer. The aqueous feed solution, usually containing 10 wt.% sucrose and 10 wt.% sulfuric acid, was generally introduced into the system at a rate of roughly 2 L/hr. Approximately 4 L/hr of water was used to elute materials through the separation system. The unoptimized separation system allowed greater than 95% recovery of the feed sucrose in an exit stream containing 8.8 wt.% sucrose and 98% recovery of the feed acid in a second exit stream containing 5 wt.% acid. The system has been successfully operated with 2 of the 7 resins evaluated for use in the system using 2k factorial experimental design in fixed-bed tests. The screening studies including model equations for the ion exclusion separation process are reported here.; A numerical simulation model of the process has been developed and tested using experimental data from the system arrayed with both 18 and 9 columns. The model allows study of the continuous separation process and provides a low-cost test bed for optimization studies. The numerical simulation model was used in conjunction with statistical experimental design techniques to probe the optimum operating conditions, including the selection of the simulated flow rate and the number of columns needed in each zone.
机译:当前对环境的关注以及预期的未来矿物燃料的短缺已经激发了对使用纤维素废料作为燃料源的研究。一种选择是将纤维素材料水解为糖,然后将其发酵成燃料级酒精。这项研究表明糖可以有效地从用于水解的酸中分离出来。构建了模拟移动床离子排阻色谱系统,用于在蔗糖和硫酸的进料水溶液中连续分离组分。一个18列的系统围绕一个中央歧管系统排列。每个柱填充约820mL的多孔阳离子交换树脂。该系统的设计具有灵活性,可以灵活地使用流体循环回路,并且可以不受限制地放置所有入口和出口物流。使用与定制控制计算机集成的Camile 2000过程控制器执行监视和控制功能。通常以大约2L /小时的速率将通常含有10重量%的蔗糖和10重量%的硫酸的进料水溶液引入系统中。大约4 L / hr的水用于通过分离系统洗脱物料。未优化的分离系统允许在包含8.8重量%蔗糖的出口物流中回收大于95%的原料蔗糖,并且在包含5重量%酸的第二出口物流中回收大于98%的原料酸。该系统已成功运行,使用固定床测试中的2 k 析因实验设计评估了用于该系统的7种树脂中的2种。筛选研究包括离子排斥分离过程的模型方程。已经开发了该过程的数值模拟模型,并使用来自以18和9列排列的系统的实验数据进行了测试。该模型允许研究连续分离过程,并为优化研究提供了低成本的试验台。数值模拟模型与统计实验设计技术结合使用,以探测最佳操作条件,包括选择模拟流速和每个区域所需的塔数。

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