Title :
Performance of a high-voltage DC amplifier for electrostatic levitation applications
Author :
Han, Feng-Tian ; Gao, Zhong-Yu ; Wang, Yong-Liang
Author_Institution :
Dept. of Precision Instrum. & Mechanology, Tsinghua Univ., Beijing, China
Abstract :
High-voltage amplifiers as a means of amplifying the low-output voltage signals of the feedback controllers to the suspension voltages typically in the kilovolts range are often required for electrostatic force generation in electrostatic levitation. This paper proposes a high-voltage do amplifier including an amplitude modulator, a power amplifier, a step-up transformer, a pair of peak detectors, and a voltage feedback channel to stabilize the amplifier outputs in an effort to provide high suspension voltage and fast dynamic response. Since the various carrier frequencies have virtually no effect on the power consumption of the do amplifier by filtering out the high-frequency carrier components with peak detectors while keeping the input signal unaffected, satisfactory dynamic performance can be achieved by choosing a sufficiently high carrier frequency. The operating principle of the dc amplifier is analyzed, followed by an experimental performance evaluation and discussion for electrostatic levitation applications. The experimental results demonstrate the superiority of the high-voltage do amplifier over classical ac amplifiers in terms of dynamic response, force-voltage coefficient, voltage ripple, power consumption, and long-time stability using a carrier frequency of 30 kHz and the closed-loop control scheme.
Keywords :
DC amplifiers; DC transformers; amplitude modulation; circuit feedback; dynamic response; electric fields; electrostatic devices; high-voltage techniques; power amplifiers; power consumption; amplitude modulator; carrier frequencies; carrier frequency; closed-loop control scheme; dc amplifier; dynamic performance; dynamic response; electrostatic force generation; electrostatic levitation applications; fast dynamic response; feedback controllers; force-voltage coefficient; high-voltage DC amplifier; input signal; long-time stability; low-output voltage signals; peak detectors; power amplifier; power consumption; step-up transformer; suspension voltages; voltage feedback channel; voltage ripple; Adaptive control; Amplitude modulation; Detectors; Electrostatic levitation; Energy consumption; Force feedback; Frequency; High power amplifiers; Output feedback; Signal generators;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2003.819664