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基于 Monod 模型的微藻生长模型动力学参数的动态优化估计方法。

Dynamic Optimization Approach to Estimate Kinetic Parameters of Monod-Based Microalgae Growth Models.

机构信息

Department of Mathematics and Statistics, Faculty of Applied Sciences and Technology, Universiti Tun Hussein Onn Malaysia, Pagoh Educational Hub, Muar, Johor, Malaysia.

Department of Mechanical Engineering Technology, Faculty of Engineering Technology, Universiti Tun Hussein Onn Malaysia, Pagoh Educational Hub, Muar, Johor, Malaysia.

出版信息

Methods Mol Biol. 2022;2385:117-140. doi: 10.1007/978-1-0716-1767-0_6.

Abstract

The biomass concentration of microalgae growth in photobioreactor was predicted using the Monod-based growth models. Kinetic parameters such as maximum specific growth rate and saturation constant of light intensity were evaluated by nonlinear least squares methods that focused on minimizing the sum of squares error (SSE). The importance of good initial guess for the nonlinear least squares method was also discussed. The optimal control problem of the microalgae growth model was determined based on parameter sensitivity. Therefore, a dynamic optimization approach was used where an optimal input design method was formulated to obtain a control function of a problem. The dynamic state equations, additional state equations, cost function, and Hamiltonian function were used to establish a control function of microalgae growth in a photobioreactor. Hence, the biomass production of microalgae can be predicted using numerical methods such as the Taylor series method.

摘要

利用基于 Monod 的生长模型预测光生物反应器中微藻生长的生物量浓度。通过非线性最小二乘法评估动力学参数,如最大比生长速率和光强度饱和常数,该方法侧重于最小化平方和误差 (SSE)。还讨论了非线性最小二乘法中良好初始猜测的重要性。基于参数灵敏度确定了微藻生长模型的最优控制问题。因此,使用了动态优化方法,其中制定了最优输入设计方法以获得问题的控制函数。使用动态状态方程、附加状态方程、成本函数和哈密顿函数来建立光生物反应器中微藻生长的控制函数。因此,可以使用泰勒级数法等数值方法来预测微藻的生物量产量。

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