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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Solubility Optimal System for Supercritical Fluid Extraction Based on a New Nonlinear Temperature-Pressure Decoupling Model Constructed with Unequal-Interval Grey Optimal Models and Peng-Robinson Models
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Solubility Optimal System for Supercritical Fluid Extraction Based on a New Nonlinear Temperature-Pressure Decoupling Model Constructed with Unequal-Interval Grey Optimal Models and Peng-Robinson Models

机译:基于新型非线性温度 - 压力去耦模型的超临界流体提取溶解度最优系统,由不等间隔灰色最佳模型和彭罗宾逊模型构建

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摘要

This paper presents a new solubility optimal system to improve the efficiency of supercritical fluid extraction (SFE). The major contribution is a nonlinear temperature-pressure decoupling model constructed with unequal-interval grey optimal models (UEIGOMs) and Peng-Robinson models (PRMs). The linear parts of temperature and pressure process can be constructed with UEIGOM, respectively. The nonlinear parts of temperature and pressure process can be described by PRMs, respectively. The whole nonlinear model cannot be input-output decoupled resulting from the singularity of decoupling matrix for PRM. This problem on input-output nondecoupling can be transformed to the problem on disturbance decoupling for a class of MIMO nonlinear systems. Therefore, the whole nonlinear coupling model can be disturbance decoupled. Furthermore, solubility optimal method is presented in the paper; it can calculate the optimal pressure according to the given temperature, namely, optimal working points, to maximize solubility for SFE process. The feasibility, effectiveness, and practicality of the proposed nonlinear temperature-pressure decoupling model constructed with UEIGOMs and PRMs are verified by SFE experiments in biphenyl. Experiments using the designed solubility optimal system are carried out to demonstrate the effectiveness in control scheme, simplicity in structure, and flexibility in implementation for the proposed solubility optimal system based on a new nonlinear temperature-pressure coupling model constructed with UEIGOMs and PRMs.
机译:本文介绍了一种新的溶解度最佳系统,以提高超临界流体提取(SFE)的效率。主要贡献是由不等间隔灰色最佳模型(UEIGOMS)和PENG-ROBINSON模型(PRMS)构建的非线性温度压力去耦模型。温度和压力过程的线性部分可以分别用ueigom构建。温度和压力过程的非线性部分可以分别由PRMS描述。整个非线性模型不能输入 - 由PRM去耦矩阵的奇异性解耦。输入输出不合耦合的这个问题可以转换为一类MIMO非线性系统的干扰解耦问题。因此,整个非线性耦合模型可以扰动去耦。此外,本文提出了溶解度最佳方法;它可以根据给定温度,即最佳工作点计算最佳压力,以最大化SFE过程的溶解度。通过联苯的SFE实验验证了用UEIGOMS构建的所提出的非线性温度去耦模型的可行性,有效性和实用性。采用设计溶解度最佳系统的实验进行了展示了控制方案的有效性,结构简单,实现了基于用UEIGOM和PRMS构建的新的非线性温度 - 压力耦合模型的提出的溶解度最佳系统。

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