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Discrete sensing and actuation in a simulation of frequency responsive loads

机译:模拟频率响应负载时的离散传感和驱动

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Loads acting autonomously on a local frequency signal can improve the response of a power system to sudden changes in supply, demand, or both. In this paper we address the use of load for regulating frequency by using feedback control. We extend prior research that focused on continuous proportional control, whereby one assumes that the load responds instantaneously, continuously, and in direct proportion to the changing frequency. However, sensors employed in any practical system have a finite sensitivity which introduces quantization effects into the control. As a result, a critical factor in the design of such a control is the relationship between the sensitivity of the sensor and the gain of the actuator. To study this issue, our model is constructed in two parts. The continuous dynamics of the power system is coupled to discrete event models of the sensors by state events that describe the detection points available to them. The quantized signals from the sensors are transformed by the actuators into discrete changes of load which, in turn, change the frequency and thereby complete the control loop. We illustrate the model with a scenario that involves a sudden, unanticipated change in load and the combined response of the control and power system to recover from the event.
机译:自主作用于本地频率信号的负载可以改善电力系统对供应,需求或两者突然变化的响应。在本文中,我们通过反馈控制解决了使用负载来调节频率的问题。我们扩展了以连续比例控制为重点的现有研究,据此,我们假设负载即时,连续且与变化的频率成正比地做出响应。但是,在任何实际系统中使用的传感器都具有有限的灵敏度,从而将量化效果引入到控件中。结果,在这种控制的设计中的关键因素是传感器的灵敏度与致动器的增益之间的关系。为了研究这个问题,我们的模型分为两个部分。电力系统的持续动态通过状态事件耦合到传感器的离散事件模型,状态事件描述了传感器可用的检测点。来自传感器的量化信号由执行器转换成负载的离散变化,继而改变频率,从而完成控制回路。我们以涉及突然的,意外的负载变化以及控制和电源系统从事件中恢复的组合响应的场景来说明该模型。

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