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首页> 外文期刊>Journal of Dynamic Systems, Measurement, and Control >Linear Parameter-Varying Model of an Electro-Hydraulic Variable Valve Actuator for Internal Combustion Engines
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Linear Parameter-Varying Model of an Electro-Hydraulic Variable Valve Actuator for Internal Combustion Engines

机译:内燃机电液化阀致动器的线性参数变化模型

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摘要

This paper presents a novel linear parameter-varying (LPV) model of an electrohydraulic variable valve actuator (EHVVA)for internal combustion engines that is capable of continuously varying valve timing with dual-lift. The dual-lift is realized mechanically through a hydraulic lift control sleeve; valve opening (VO) terminal and. closing seating velocities are regulated using a top or bottom snubber; and opening and closing timings, as well as lift profile area, are controlled by the valve actuation timing and hydraulic supply pressure. First, nonlinear mathematical system model is developed based on the Newton's law, orifice flow equation, and fluid constitutive law, where the fluid dynamics of the actuation solenoid valve, actuation piston, passages, and orifices, that influence the engine valve profile, are considered in detail. Second, to have an LPV control-oriented model, the order of nonlinear model is reduced and subsequently transformed into an LPV model with minimal deviation by carefully considering the system nonlinearities, time delay, and lime-varying parameters. Calibration and validation experiments for both nonlinear and LPV models were performed on the test bench under different operational conditions. The key time-varying parameters, the time constant of the actuation piston top pressure and the discharge coefficient, are highly nonlinear as functions of temperature-sensitive fluid viscosity and are determined using the test data through the least-squares optimization. With the identified and. calibrated, model parameters, simulation results of both nonlinear and LPV models are in good agreement with the experimental ones under different operational conditions.
机译:本文提出了一种新的线性参数变化(LPV)模型,用于内燃机电液可变气门执行器(EHVVA),该执行器能够以双升程连续改变气门正时。双提升通过液压提升控制套筒机械实现;阀门开度(VO)端子和。使用顶部或底部缓冲器调节关闭座位的速度;开启和关闭正时以及提升剖面面积由阀门驱动正时和液压供应压力控制。首先,基于牛顿定律、孔板流动方程和流体本构关系建立了非线性数学系统模型,其中详细考虑了影响发动机气门轮廓的驱动电磁阀、驱动活塞、通道和孔板的流体动力学。其次,为了得到一个面向LPV控制的模型,通过仔细考虑系统的非线性、时滞和石灰变化参数,将非线性模型的阶数降低,然后转化为偏差最小的LPV模型。在不同操作条件下,在试验台上对非线性模型和LPV模型进行了标定和验证实验。作为温度敏感流体粘度的函数,关键时变参数(驱动活塞顶部压力的时间常数和流量系数)是高度非线性的,并通过最小二乘优化使用测试数据确定。与已识别的。在不同运行条件下,非线性模型和LPV模型的标定、模型参数和仿真结果与实验结果吻合良好。

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