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Optimal Temperature and pH Control for a Batch Simultaneous Saccharification and Co-Fermentation Process

机译:分批同时糖化和发酵过程的最佳温度和pH控制

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摘要

Crisp and fuzzy optimization approaches were applied to design an optimal temperature and pH control policy for a batch process of simultaneous saccharification and co-fermentation (SSCF) for ethanol production from lignocellulose, using the enzyme and recombinant strain Zymomonas mobilis ZM (pZB5). To determine an optimal temperature and pH control policy, we applied the Arrhenius relationship to each rate constant to express the temperature and pH effects in the kinetic model for both saccharification and fermentation. The goal of the optimal design was to determine the optimal temperature, pH value, initial lignocellulosic concentration, and fermentation time for maximizing the ethanol productivity under the constraints of the follow-up separation specifications. The interactive crisp and fuzzy optimization methods were applied to solve the trade-off optimization problems for obtaining a compromised design. The fuzzy goal attainment approach obtained a compromised design more flexibly than did the crisp optimization. We also compared the performances for batch and fed-batch SSCF, and used various composition proportions for the batch SSCF to determine a series of optimal designs for the fuzzy goal attainment problem. Batch SSCF was slightly more effective than fed-batch fermentation, and spruce exhibited the maximum productivity because of its higher cellulose and lower hemicellulose contents compared with those of other sources.
机译:应用脆性和模糊优化方法,为酶和重组发酵单胞菌发酵单胞菌ZM(pZB5)从木质纤维素生产糖化和共发酵(SSCF)的分批过程设计了最佳温度和pH控制策略。为了确定最佳的温度和pH控制策略,我们将Arrhenius关系应用于每个速率常数,以在糖化和发酵动力学模型中表达温度和pH的影响。最佳设计的目标是确定最佳温度,pH值,初始木质纤维素浓度和发酵时间,以在后续分离规范的约束下最大限度地提高乙醇的生产率。应用交互式的脆性和模糊优化方法来解决折衷优化问题,以获得折衷的设计。模糊目标达成方法比清晰的优化方法更灵活地获得了折衷的设计。我们还比较了批处理和补料分批SSCF的性能,并针对批处理SSCF使用了各种成分比例来确定针对模糊目标达成问题的一系列最佳设计。间歇式SSCF比分批补料发酵更有效,由于与其他来源相比,云杉具有较高的纤维素和较低的半纤维素含量,因此其产量最高。

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