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首页> 外文期刊>Journal of Dynamic Systems, Measurement, and Control >Obtaining Frequency-Domain Volterra Models From Port-Based Ordinary Differential Equations
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Obtaining Frequency-Domain Volterra Models From Port-Based Ordinary Differential Equations

机译:从基于端口的常微分方程获得频域Volterra模型

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A frequency-domain Volterra model (FVM) is a nonlinear representation obtained when the multivariable Laplace transform is applied to a sum of multidimensional convolution integrals of increasing order. Two classes of FVMs can be identified. The first class of FVM is the Volterra transfer function (VTF) which has been recognized as a useful tool for nonlinear systems modeling and simulation. The second class of FVM is the Volterra dynamic model (VDM) which has been used in the modular assembly and condensation of port-based nonlinear models. Since physical nonlinear systems are frequently modeled using ordinary differential equations (ODEs), it is of significant value to derive their equivalent FVM representations from a corresponding ODE. Even though methods to obtain VTFs for multiple-input, multiple-output (MIMO) nonlinear ODEs are available, a general procedure to obtain the two classes of FVMs does not exist. In this work, a methodology to obtain the two classes of FVMs from port-based nonlinear ODEs is explained. Two cases are shown. In the first case, the ODEs do not include cross product nonlinearities. In the second case, cross products are included. An example is presented to clarify the idea, and the time response obtained from the nonlinear ODE model is compared to its corresponding third order VTF and its linearized model.
机译:频域Volterra模型(FVM)是将多变量Laplace变换应用于升序的多维卷积积分之和时获得的非线性表示。可以识别两类FVM。 FVM的第一类是Volterra传递函数(VTF),该函数已经被认为是用于非线性系统建模和仿真的有用工具。 FVM的第二类是Volterra动态模型(VDM),该模型已用于基于端口的非线性模型的模块化组装和压缩。由于物理非线性系统经常使用常微分方程(ODE)进行建模,因此从相应的ODE导出等效FVM表示具有重要价值。即使可以获得用于多输入,多输出(MIMO)非线性ODE的VTF的方法,但不存在获取两类FVM的通用过程。在这项工作中,解释了从基于端口的非线性ODE中获得两类FVM的方法。显示了两种情况。在第一种情况下,ODE不包含叉积非线性。在第二种情况下,包括交叉产品。给出一个例子来阐明这个想法,并将从非线性ODE模型获得的时间响应与其对应的三阶VTF及其线性化模型进行比较。

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