A continuously variable displacement mechanism, which is composed of a hydraulic control valve with mechanical-positional feedback to camshaft, was designed for changing the displacement of traditional camshaft connec...A continuously variable displacement mechanism, which is composed of a hydraulic control valve with mechanical-positional feedback to camshaft, was designed for changing the displacement of traditional camshaft connecting-rod low speed high torque (LSHT) hydraulic motor continuously. The new type of continuously variable displacement mechanism is simple and easy to be made. The structure and principle of a continuously variable displacement mechanism was introduced. The mathematic model of the continuously variable displacement mechanism was set up and its static and dynamic characteristics were analyzed with the help of computer simulation. It can be seen that the cam ring on camshaft of the traditional LSHT hydraulic motor can stop at any position between minimum and maximum eccentricity, according to an input fluid pressure signal. And it can also stay anywhere stably through self-adjusting. Besides, it can work stabilized when load impact or oil leakage exists.展开更多
以液压型风力发电机组为研究对象,研究液压型机组低电压穿越控制问题。结合风电机组低电压穿越要求和液压型风力发电机组工作原理,提出一种比例节流阀开口度与变量马达摆角双变量联合控制的低电压穿越的控制方法。建立机组的数学模型,...以液压型风力发电机组为研究对象,研究液压型机组低电压穿越控制问题。结合风电机组低电压穿越要求和液压型风力发电机组工作原理,提出一种比例节流阀开口度与变量马达摆角双变量联合控制的低电压穿越的控制方法。建立机组的数学模型,基于能量耗散原理和动态面控制方法构造低电压穿越双变量控制器。依托30 k VA液压型风力发电机组半物理仿真实验台进行仿真和实验研究,实现了低电压穿越过程中机组液压系统传输功率和输出转速的高精度控制,为液压型机组的低电压穿越控制的进一步研究奠定基础。展开更多
文摘A continuously variable displacement mechanism, which is composed of a hydraulic control valve with mechanical-positional feedback to camshaft, was designed for changing the displacement of traditional camshaft connecting-rod low speed high torque (LSHT) hydraulic motor continuously. The new type of continuously variable displacement mechanism is simple and easy to be made. The structure and principle of a continuously variable displacement mechanism was introduced. The mathematic model of the continuously variable displacement mechanism was set up and its static and dynamic characteristics were analyzed with the help of computer simulation. It can be seen that the cam ring on camshaft of the traditional LSHT hydraulic motor can stop at any position between minimum and maximum eccentricity, according to an input fluid pressure signal. And it can also stay anywhere stably through self-adjusting. Besides, it can work stabilized when load impact or oil leakage exists.
文摘以液压型风力发电机组为研究对象,研究液压型机组低电压穿越控制问题。结合风电机组低电压穿越要求和液压型风力发电机组工作原理,提出一种比例节流阀开口度与变量马达摆角双变量联合控制的低电压穿越的控制方法。建立机组的数学模型,基于能量耗散原理和动态面控制方法构造低电压穿越双变量控制器。依托30 k VA液压型风力发电机组半物理仿真实验台进行仿真和实验研究,实现了低电压穿越过程中机组液压系统传输功率和输出转速的高精度控制,为液压型机组的低电压穿越控制的进一步研究奠定基础。