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Design, Modeling, and Control of a Camless Valve Actuation System With Internal Feedback

机译:具有内部反馈的无凸轮阀致动系统的设计,建模和控制

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This paper presents the modeling and control design of a new fully flexible engine valve actuation system, which is an enabler for camless engines. Unlike existing electromechanical or servo-actuated electrohydraulic valve actuation systems, precise valve motion control is achieved using a very stiff hydromechanical internal-feedback mechanism. The entire feedback mechanism is built into the physical design of the system. The external control only activates or deactivates the feedback mechanism in real time using simple two-state valves. This helps reduce the system cost, and thus enables mass production. The trajectory of the closed-loop system is purely dependent on the design parameters of the internal-feedback system. A mathematical model of the system has been developed and validated with experimental results from a prototype system. The “area-schedule” is identified as the most critical design feature, which affects the trajectory of the closed-loop system and, therefore, needs to be designed systematically to optimize the performance of the system as well as improve its robustness. By treating this feature as the feedback-control variable, the design problem is transformed into a nonlinear optimal control problem and solved numerically using dynamic programming. The effectiveness of the proposed design procedure is verified with case studies.
机译:本文介绍了新型全柔性发动机气门致动系统的建模和控制设计,该系统是无凸轮发动机的促成因素。与现有的机电或伺服电动液压阀门致动系统不同,使用非常坚固的液压机械内部反馈机构可实现精确的阀门运动控制。整个反馈机制内置于系统的物理设计中。外部控件仅使用简单的二态阀实时激活或停用反馈机制。这有助于降低系统成本,从而实现批量生产。闭环系统的轨迹完全取决于内部反馈系统的设计参数。已经开发了系统的数学模型,并通过原型系统的实验结果对其进行了验证。 “区域计划”被认为是最关键的设计特征,它影响闭环系统的轨迹,因此,需要系统地进行设计,以优化系统的性能并提高其鲁棒性。通过将此特征作为反馈控制变量,设计问题被转化为非线性最优控制问题,并使用动态编程进行数值求解。案例研究验证了所提出的设计程序的有效性。

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