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Control of PDE-ODE cascades with Neumann interconnections

机译:用Neumann互连控制PDE-ODE级联

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摘要

We extend several recent results on full-state feedback stabilization and state estimation of PDE-ODE cascades, where the PDEs are either of heat type or of wave type, from the previously considered cases where the interconnections are of Dirichlet type, to interconnections of Neumann type. The Neumann type interconnections constrain the PDE state to be subject to a Dirichlet boundary condition at the PDE-ODE interface, and employ the boundary value of the first spatial derivative of the PDE state to be the input to the ODE. In addition to considering heat-ODE and wave-ODE cascades, we also consider a cascade of a diffusion-convection PDE with an ODE, where the convection direction is "away" from the ODE. We refer to this case as a PDE-ODE cascade with "counter-convection." This case is not only interesting because the PDE subsystem is unstable, but because the control signal is subject to competing effects of diffusion, which is in both directions in the one-dimensional domain, and counter-convection, which is in the direction that is opposite from the propagation direction of the standard delay (transport PDE) process. We rely on the diffusion process to propagate the control signal through the PDE towards the ODE, to stabilize the ODE.
机译:我们将PDE-ODE级联的全状态反馈稳定和状态估计的最新结果扩展到先前考虑的互连为Dirichlet类型的情况,其中PDE为热类型或波类型,其中先前的互连是Dirichlet类型的情况,类型。诺伊曼型互连将PDE状态约束为在PDE-ODE接口处经受Dirichlet边界条件,并采用PDE状态的一阶空间导数的边界值作为ODE的输入。除了考虑热ODE和波ODE的级联,我们还考虑了扩散对流PDE与ODE的级联,其中对流方向“远离” ODE。我们称这种情况为“反对流”的PDE-ODE级联。这种情况不仅很有趣,因为PDE子系统不稳定,而且因为控制信号受到一维域的两个方向的扩散和反对流(两个方向)的竞争作用。与标准延迟(传输PDE)过程的传播方向相反。我们依靠扩散过程将控制信号通过PDE传播到ODE,以稳定ODE。

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