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Productivity Improvement in Xanthan Gum Fermentation Using Multiple Substrate Optimization

机译:利用多种底物优化技术提高黄原胶发酵的生产率

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A novel and more comprehensive formulation of the optimal control problem that reflects the operational requirements of a typical industrial fermentation has been proposed in this work. This formulation has been applied to a fed-batch bioreactor with three control variables, i.e., feed rates of carbon source, nitrogen source, and an oxygen source, to result in a 148.7% increase in product formation. Xanthan gum production using Xanthomonas campestris has been used as the model system for this optimization study, and the liquid-phase oxygen supply strategy has been used to supply oxygen to the fermentation. The formulated optimization problem has several constraints associated with it due to the nature of the system. A robust stochastic technique, differential evolution, has been used to solve this challenging optimization problem. The infinite dimensional optimization problem has been approximated to a finite dimensional one by control vector parametrization. The state constraints that are path constraints have been addressed by using penalty functions and by integrating them over the total duration to ensure a feasible solution. End point constraints on final working volume of the reactor and on the final residual concentrations of carbon and nitrogen sources have been included in the problem formulation. Further, the toxicity of the oxygen source, H_2O_2, has been addressed by imposing a constraint on its maximum usable concentration. In addition, the initial volume of the bioreactor contents and feed concentrations have been handled as decision variables, which has enabled a well-grounded choice for their values from the optimization procedure; adhoc values are normally used in the industry. All results obtained by simulation have been validated experimentally with good agreements between experimental and simulated values.
机译:在这项工作中,提出了一种新颖和更全面的最优控制问题的表述,该问题反映了典型工业发酵的操作要求。该制剂已被应用于具有三个控制变量即碳源,氮源和氧源的进料速率的分批补料生物反应器,以导致产物形成增加148.7%。使用Xanthomonas campestris的黄原胶生产已被用作该优化研究的模型系统,液相氧供应策略已被用于向发酵提供氧气。由于系统的性质,制定的优化问题具有与之相关的几个约束。一种强大的随机技术,即差分进化,已被用来解决这一具有挑战性的优化问题。通过控制矢量参数化,将无限维优化问题逼近为有限维问题。通过使用惩罚函数并通过在总持续时间内对它们进行积分来解决作为路径约束的状态约束,以确保可行的解决方案。问题配方中包括了对反应器最终工作体积以及碳和氮源最终残留浓度的终点约束。此外,氧源H_2O_2的毒性已通过对其最大可用浓度施加限制来解决。此外,生物反应器内容物的初始体积和进料浓度已作为决策变量处理,这使得从优化程序中有一个合理的选择即可。临时值通常在行业中使用。通过仿真获得的所有结果均已通过实验验证,实验值与仿真值之间具有良好的一致性。

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