无凸轮发动机电磁气门的非线性调节

S. Gennaro, B. Castillo-Toledo, M. D. Benedetto
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引用次数: 3

摘要

传统的内燃机使用机械凸轮轴来控制进排气门的开启和关闭。升气门外形的设计是为了在发动机的各种工况要求之间达到一个很好的折衷。原则上,无凸轮配气机构在任何发动机条件下都能达到最优。在这种情况下,电磁阀提供了一个有趣的解决方案,尽管在将其引入生产之前仍有一些相关的开放性问题需要解决。事实上,为了消除噪声和避免损坏机械部件,控制规范要求阀门与约束(通常是阀座)之间的冲击速度足够低,从而实现“软着陆”。在本文中,将软着陆问题转化为升力阀型线的调节问题,通过施加阀位置跟踪期望参考,同时拒绝建模干扰。参考和干扰都是由一个自治系统产生的,通常称为外系统。确定了以跟踪误差归零和干扰抑制为特征的子流形。最后,利用状态反馈方法解决了该流形上系统轨迹的镇定问题
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nonlinear Regulation of Electromagnetic Valves for Camless Engines
Conventional internal combustion engines use mechanical camshafts to command the opening and closing phases of the intake and exhaust valves. The lift valve profile is designed to reach a good compromise among various requirements of the engine operating conditions. In principle, optimality in every engine condition can be attained by camless valve trains. In this context, electromagnetic valves offer an interesting solution, although there are still some relevant open problems to be solved before they can be introduced in production. In fact, to eliminate acoustic noises and avoid damages to mechanical components, the control specifications require sufficiently low impact velocities between the valve and the constraints (typically the valve seat), so that "soft-landing" is obtained. In this paper, the soft-landing problem is translated into a regulation problem for the lift valve profile, by imposing that the valve position tracks a desired reference, while the modeled disturbances are rejected. Both reference and disturbance are generated by an autonomous system, usually called exosystem. The submanifold characterized by the zeroing of the tracking error and the rejection of the disturbance, is determined. Finally, the stabilization problem of the system trajectory on this manifold is solved using state feedback
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