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Local intelligent control in biological systems and industrial processes.

机译:生物系统和工业过程中的本地智能控制。

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Regulatory mechanisms in large scale systems typically involve a hierarchy of regulatory systems, be it in a biological organism or in an industrial process. This thesis focuses on two aspects of distributed or multilevel hierarchical control: (1) Analysis of the “local function” of each controller in the hierarchy. (2) Design of distributed controller network that provides required “global function”.; In this thesis, the first aspect is explored to delineate the previously unknown functional role of a local cardiac reflex in cardiovascular regulation in the rat. The local cardiac reflex hypothesis is that (i) small intensely fluorescent interneurons receive cardiac sensory inputs and then project to Principal Neurons (PNs); and (ii) selected PNs in specific locations and subserving specific functions receive discrete and extremely dense vagal input from the dorsal motor nucleus of the vagus and nucleus ambiguus. A nonlinear mathematical model for the local reflex has been developed from the anatomical experimental results and physiological data in the literature. Simulation analysis of the coherence between vagal input and arterial pressure indicates that robust nonlinear attenuation is an underlying principle in the local cardiac reflex function. Based on the parametric sensitivity studies, it is proposed that the robust modulation of specific phase-related characteristics of the cardiac cycle is the underlying mechanism of the nonlinear compensation.; In the chemical process industry, the second aspect of hierarchical control mentioned above is critical. The algorithmic scalability and the computational load on the central processor are key issues that render the centralized approach impractical for plantwide process systems. In contrast, a distributed control system can be formulated such that the resulting coordinating control network provides the specified “global function”, while overcoming the disadvantages of the centralized control. In this thesis, a scalable distributed state estimation and control algorithm has been developed for multi-rate plantwide systems. This methodology has been demonstrated in two separate case studies involving a simulated large scale industrial reaction separation system and a pulp mill process. The issues involved in the model decomposition for employing the distributed control algorithm are examined. The distributed algorithm is found to be scalable for application to plantwide processes.
机译:大型系统中的调节机制通常涉及调节系统的层次结构,无论是在生物有机体中还是在工业过程中。本文主要研究分布式或多层级控制的两个方面:(1)层次结构中每个控制器的``局部功能''分析。 (2)提供所需的“全局功能”的分布式控制器网络的设计;在本论文中,第一个方面被研究以描绘先前未知的局部心脏反射在大鼠心血管调节中的功能作用。局部心脏反射假说是(i)小型强荧光中间神经元接收心脏的感觉输入,然后投射到主要神经元(PNs); (ii)在特定位置并具有特定功能的选定PNs从迷走神经和歧义核的背运动核接收离散且极其密集的迷走神经输入。从解剖学实验结果和文献中的生理数据已经开发出用于局部反射的非线性数学模型。迷走神经输入和动脉压之间的相干性的仿真分析表明,强大的非线性衰减是局部心脏反射功能的基本原理。基于参数敏感性研究,提出对心动周期特定相位相关特征的鲁棒调制是非线性补偿的基本机制。在化学过程工业中,上述层次控制的第二个方面至关重要。中央处理器的算法可伸缩性和计算负荷是关键问题,这些问题使集中化方法不适用于整个工厂的过程系统。相反,可以制定一个分布式控制系统,使得最终的协调控制网络提供指定的“全局功能”,同时克服集中控制的缺点。本文针对多速率全厂系统开发了一种可扩展的分布式状态估计和控制算法。在涉及模拟的大规模工业反应分离系统和制浆厂工艺的两个单独的案例研究中已经证明了该方法。研究了采用分布式控制算法的模型分解中涉及的问题。发现该分布式算法是可扩展的,可应用于工厂范围的过程。

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