首页> 外文期刊>Journal of Dynamic Systems, Measurement, and Control >Dynamic Modelling and Control of Semifree-Piston Motion in a Rotary Diesel Generator Concept
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Dynamic Modelling and Control of Semifree-Piston Motion in a Rotary Diesel Generator Concept

机译:旋转柴油​​发电机概念中半自由活塞运动的动力学建模和控制

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A new semifree-piston rotary generator concept is modelled dynamically and reduced to a single equation for piston stroke motion. This new concept comprises a toroidal-segment piston and cylinder, which orbit on separate generator disks, coupled by a pair of torsion springs to form a balanced mass-elastic system capable of spin. Conventional cyclic combustion takes place in the cylinder causing resonant motion of the disks. A two-part control strategy is proposed and tested by simulation to address the multi-objectives of maximum mechanical power transfer, minimum peak generator torque, and accurate piston top dead center (TDC) position control. A Part I strategy initially assumes that the combustion gas pressure is a function of time only. This produces torque control that follows a stroke velocity feedback law, which maximizes power transfer and implicitly minimizes generator torque, at the same time as power generation. When stroke-dependent gas pressure is introduced, however, the Part I strategy creates an unstable self-excited nonlinear system. The Part II strategy is designed to control piston TDC position and stabilize the response. This uses proportional control of gas pressure rise, assumed possible through fuel injection control and in-cylinder pressure sensing. An ideal-air-standard-dual-combustion two-stroke cycle is then adopted for nonstochastic simulation purposes, excluding the effect of delays and coupled system dynamics. A study is undertaken of a nominal 1.42 l, 200 mm orbit-radius, constant-pressure-scavenged diesel design with three different spring stiffness values. By focusing near the minimum compression ratio for diesel, to give a lower bound on the possible ideal output power, control gains are found that produce stable motion with piston TDC position errors of less than 1%. The power range is from 16 kW to 336 kW, depending mainly on spring stiffness. Since the concept can also store significant kinetic energy, it is potentially attractive as a range-extender for electric vehicles.
机译:动态建模了一种新的半自由活塞式旋转发电机概念,并将其简化为一个用于活塞冲程运动的方程式。这个新概念包括一个环形段的活塞和气缸,它们在单独的发电机盘上运转,并通过一对扭力弹簧耦合,形成一个能够旋转的平衡的质量弹性系统。常规的循环燃烧在气缸中发生,从而引起磁盘的共振运动。提出了两部分控制策略,并通过仿真进行了测试,以解决最大机械动力传递,最小峰值发电机转矩以及精确的活塞上止点(TDC)位置控制的多目标问题。第一部分策略最初假设燃烧气体压力仅是时间的函数。这产生了遵循冲程速度反馈定律的转矩控制,该定律在发电的同时最大化了功率的传递,并隐含地最小化了发电机的转矩。但是,当引入与行程有关的气压时,第一部分策略会创建一个不稳定的自激非线性系统。第II部分策略旨在控制活塞TDC位置并稳定响应。这使用了比例的气压升高控制,假设通过燃油喷射控制和缸内压力感测可以实现。然后将理想空气标准双燃烧二冲程循环用于非随机模拟目的,排除延迟和耦合系统动力学的影响。研究了具有三个不同弹簧刚度值的标称值为1.42 l,200 mm轨道半径,恒压消除柴油的设计。通过集中于柴油的最小压缩比附近,以给出可能的理想输出功率的下限,发现控制增益可产生稳定的运动,且活塞TDC位置误差小于1%。功率范围从16 kW到336 kW,主要取决于弹簧刚度。由于该概念还可以存储大量动能,因此作为电动汽车的增程器可能具有吸引力。

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