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相关概念视频

Load-frequency control01:28

Load-frequency control

150
Load-frequency control (LFC) is vital for maintaining power system stability, ensuring that frequency and power flows remain within acceptable limits during load changes. Turbine-governor control eliminates rotor accelerations and decelerations following load changes. However, a steady-state frequency error persists when the change in the turbine-governor reference setting is zero. In an interconnected power system, each area agrees to export or import a scheduled amount of power through...
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Time and frequency -Domain Interpretation of Phase-lag Control01:21

Time and frequency -Domain Interpretation of Phase-lag Control

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Phase-lag controllers are widely used in control systems to improve stability and reduce steady-state errors. A dimmer switch controlling the brightness of a light bulb serves as a practical example of phase-lag control, gradually adjusting the bulb's brightness. Mathematically, phase-lag control or low-pass filtering is represented when the factor 'a' is less than 1.
Phase-lag controllers do not place a pole at zero, but instead influence the steady-state error by amplifying any...
88
Phase-lead and Phase-lag Controllers01:22

Phase-lead and Phase-lag Controllers

166
Understanding the working function of different types of controllers can be illustrated with practical analogies, such as adjusting a stereo's volume equalizer. Cranking up the bass involves a phase-lead controller, which functions as a high-pass filter, while increasing the treble uses a phase-lag controller, which acts as a low-pass filter. PD controllers, similar to high-pass filters, enhance the system's response to high-frequency components. PI controllers, akin to low-pass...
166
Design Example: Underdamped Parallel RLC Circuit01:17

Design Example: Underdamped Parallel RLC Circuit

284
Consider designing an oscillator circuit, a crucial component in various electronic devices and systems. The objective is to create an oscillator circuit with specific characteristics: a damped natural frequency of 4 kHz and a damping factor of 4 radians per second. To accomplish this, a parallel RLC circuit is employed, known for its ability to sustain oscillations at a resonant frequency. In this case, the damping factor is pivotal in achieving the desired performance.
Starting with a fixed...
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Time and frequency -Domain Interpretation of PI Control01:27

Time and frequency -Domain Interpretation of PI Control

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Proportional-Integral (PI) controllers are essential in many control systems to improve stability and performance. They are commonly used in everyday devices like thermostats to enhance system damping and reduce steady-state error. When the zero in the controller's transfer function is optimally placed, the system benefits significantly in terms of stability and accuracy.
Acting as a low-pass filter, the PI controller slows the system's response and extends settling times. This requires...
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Time and frequency -Domain Interpretation of Phase-lead Control01:24

Time and frequency -Domain Interpretation of Phase-lead Control

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Phase-lead controllers are commonly used in various control systems to enhance response speed and stability. Adjusting the brightness on a television screen offers a practical example of phase-lead control. When contrast is enhanced, a phase-lead controller is employed. Mathematically, phase-lead control is identified when the first parameter is smaller than the second.
The design of phase-lead control involves the strategic placement of poles and zeros to balance steady-state error and system...
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基于LMI的MPC设计应用于在不确定的参数下使用LC波器的单相PWM逆变器.

Cristiano Quevedo Andrea1, Edson Antonio Batista1, Luís Felipe da Silva Carlos Pereira1

  • 1Faculty of Engineering, Architecture and Urban Planning and Geography, Federal University of Mato Grosso do Sul, Campo Grande 79070-900, MS, Brazil.

Sensors (Basel, Switzerland)
|July 13, 2024
PubMed
概括

本研究介绍了单相PWM逆变器的预测控制方法,有效地管理波器电感率和负载电阻的不确定性,以获得稳定的正弦输出. 这种方法确保了强大的性能和准确的信号跟踪.

关键词:
在循环中的FPGA.线性矩阵不等式的不等式预测控制 预测控制 预测控制单相PWM逆变器的使用情况

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科学领域:

  • 电气工程 电气工程
  • 控制系统 控制系统
  • 电力电子 电力电子 电力电子

背景情况:

  • 单相PWM逆变器对于功率转换至关重要,但容易受到参数不确定性的影响.
  • 在不同的条件下 (电感,负载) 确保稳定而准确的正弦输出是一个关键的挑战.
  • 现有的控制方法可能在应对这些不确定性时难以稳定.

研究的目的:

  • 为单相PWM逆变器进行预测控制提出一种新的设计方法.
  • 为了解决波电感和输出负载电阻的参数不确定性.
  • 为了在逆变器输出处实现精确的正弦信号跟踪.

主要方法:

  • 使用基于回退视界原则的预测控制.
  • 使用线性矩阵不等式 (LMIs) 制定控制设计.
  • 采用凸起式编程技术,以高效和最佳的解决方案导出.

主要成果:

  • 基于LMI的模型预测控制 (MPC) 能够有效地跟踪形参考信号.
  • 拟议的方法证明了对输入电压和负载干扰的强有力的干扰排斥.
  • 使用MATLAB-Simulink和FPGA在循环中的模拟证实了控制系统的可行性和性能.

结论:

  • 基于LMI的MPC为控制具有参数不确定性的PWM逆变器提供了有效的解决方案.
  • 该方法确保了可靠的正弦形信号生成,尽管系统参数的变化.
  • 这种方法在实际应用中提高了单相逆变器的稳定性和性能.