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Nonlinear Mathematical Modeling in Pneumatic Servo Position Applications

机译:气动伺服位置应用中的非线性数学建模

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This paper addresses a new methodology for servo pneumatic actuators mathematical modeling and selection from the dynamic behavior study in engineering applications. The pneumatic actuator is very common in industrial application because it has the following advantages: its maintenance is easy and simple, with relatively low cost, self-cooling properties, good power density (power/dimension rate), fast acting with high accelerations, and installation flexibility. The proposed fifth-order nonlinear mathematical model represents the main characteristics of this nonlinear dynamic system, as servo valve dead zone, air flow-pressure relationship through valve orifice, air compressibility, and friction effects between contact surfaces in actuator seals. Simulation results show the dynamic performance for different pneumatic cylinders in order to see which features contribute to a better behavior of the system. The knowledge of this behavior allows an appropriate choice of pneumatic actuator, mainly contributing to the success of their precise control in several applications.
机译:本文针对伺服气动执行器的数学建模和工程应用中动态行为研究的选择提出了一种新方法。气动执行器在工业应用中非常普遍,因为它具有以下优点:维护简便,成本相对较低,具有自冷却特性,功率密度(功率/尺寸比)好,加速快,作用快以及安装灵活性。拟议的五阶非线性数学模型代表了该非线性动力学系统的主要特征,如伺服阀死区,通过阀孔的气流压力关系,空气可压缩性以及执行器密封件接触面之间的摩擦效应。仿真结果显示了不同气缸的动态性能,以查看哪些功能有助于改善系统性能。对这种行为的了解允许对气动执行器进行适当的选择,这主要是在多种应用中成功实现了其精确控制的成功。

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