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相关概念视频

Time and frequency -Domain Interpretation of Phase-lead Control01:24

Time and frequency -Domain Interpretation of Phase-lead Control

86
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...
86
Phase-lead and Phase-lag Controllers01:22

Phase-lead and Phase-lag Controllers

172
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...
172
Time and frequency -Domain Interpretation of Phase-lag Control01:21

Time and frequency -Domain Interpretation of Phase-lag Control

99
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...
99
Directional Relays01:25

Directional Relays

118
Directional relays, essential for managing unidirectional fault currents, enhance the safety and efficiency of power systems. On power lines equipped with directional relays, faults downstream (to the right) of the current transformer typically cause the fault current to lag the bus voltage by approximately 90 degrees, known as the forward direction. In contrast, upstream (left-side) faults may result in the fault current leading the bus voltage by nearly 90 degrees, termed the reverse...
118
Design Example01:23

Design Example

331
The innovation of touch-tone telephony revolutionized the telecommunications industry by replacing the traditional rotary dial with a dual-tone multi-frequency (DTMF) signaling system. This system uses a matrix-style keypad with buttons arranged in four rows and three columns, creating 12 distinct signals each assigned to a pair of frequencies. Each button press results in a simultaneous generation of two sinusoidal tones – one from a low-frequency group (697 to 941 Hz) and one from a...
331
Line Protection with Impedance Relays01:27

Line Protection with Impedance Relays

82
Coordinating time-delay overcurrent relays in complex radial systems and directional overcurrent relays in multi-source transmission loops can be challenging. Impedance relays address these issues by responding to the voltage-to-current ratio, specifically measuring the apparent impedance of a line. These relays become more sensitive during faults as current increases and voltage decreases, thereby reducing the apparent impedance.
Under normal conditions, low load currents keep the measured...
82

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相关实验视频

Updated: Jul 10, 2025

Real-Time DC-dynamic Biasing Method for Switching Time Improvement in Severely Underdamped Fringing-field Electrostatic MEMS Actuators
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在动态环境中研究和实施调节开关信号相位对齐系统.

Ke Xue1, Tao Yu1, Yanlin Sui1

  • 1Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, China.

Sensors (Basel, Switzerland)
|November 25, 2023
PubMed
概括

这项研究引入了一种用于引力波检测的电容传感器中精确相位对齐的新方法. 该技术确保从动态测试质量运动中准确地提取信号,这对任务成功至关重要.

关键词:
电容传感器是一种传感器.惯性传感器 惯性传感器阶段对齐调整阶段对齐

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科学领域:

  • 太空物理空间物理学
  • 引力波检测引力波探测器
  • 传感器技术 传感器技术

背景情况:

  • 电容传感器是太空引力波任务的关键惯性传感器,提供惯性参考.
  • 这些传感器使用交流感应和同步调节来测量测试质量 (TM) 位置,但动态TM运动使相位对齐复杂化.

研究的目的:

  • 为电容传感器开发和实施一种方法,在动态环境中实现调节开关信号的精确相位对齐.
  • 为了应对引力波探测任务中测试质量的悬浮状态所带来的挑战.

主要方法:

  • 提出了一种新的方法,包括调整调节开关信号阶段,并计算与交流感应信号的相差.
  • 开发了一种测量和评估相位偏差的方法.
  • 在FPGA平台上实现了一个自动相位系统,并在六脚脚PI控制台平台上进行了测试.

主要成果:

  • 该系统在静态环境中实现了精确的相位对齐,相位偏差为0.1394半径.
  • 在模拟的动态环境中,系统保持了精确的相位对齐,相位偏差为0.1395半径.

结论:

  • 开发的自动相位对齐系统有效地解决了用于引力波检测的电容传感器中动态环境的挑战.
  • 该系统表现出高精度和稳定性,确保在太空任务中可靠的惯性传感性能.