期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
AANC次级通道建模方法 被引量:4
1
作者 杨浩 吴亚锋 +1 位作者 王春云 储妮晟 《噪声与振动控制》 CSCD 北大核心 2011年第3期33-36,共4页
次级通道建模是自适应主动噪声控制(AANC)系统的一个关键问题。应用一种基于时间扩展脉冲(TSP)信号的脉冲响应测量方法。TSP信号具有脉冲能量分布于一段时间的特性,将其作为被测系统的激励,再将其响应信号中的分散能量聚集,即可重构得... 次级通道建模是自适应主动噪声控制(AANC)系统的一个关键问题。应用一种基于时间扩展脉冲(TSP)信号的脉冲响应测量方法。TSP信号具有脉冲能量分布于一段时间的特性,将其作为被测系统的激励,再将其响应信号中的分散能量聚集,即可重构得到系统的脉冲响应函数。该方法被应用于AANC的次级通道建模,仿真和实验分别得到20dB和14dB的降噪效果。研究结果表明,该方法实现简单易行,结果准确可靠,非常适用于实际的ANC工程实验。 展开更多
关键词 声学 时间扩展脉冲 主动噪声控制 次级通道 仿真
下载PDF
Ultrafast laser-scanning time-stretch imaging at visible wavelengths 被引量:1
2
作者 Jiang-Lai Wu Yi-Qing Xu +9 位作者 Jing-Jiang Xu Xiao-Ming Wei Antony CS Chan Anson HL Tang Andy KS Lau Bob MF Chung Ho Cheung Shum Edmund Y Lam Kenneth KY Wong Kevin K Tsia 《Light(Science & Applications)》 SCIE EI CAS CSCD 2016年第1期303-312,共10页
Optical time-stretch imaging enables the continuous capture of non-repetitive events in real time at a line-scan rate of tens of MHz—a distinct advantage for the ultrafast dynamics monitoring and high-throughput scre... Optical time-stretch imaging enables the continuous capture of non-repetitive events in real time at a line-scan rate of tens of MHz—a distinct advantage for the ultrafast dynamics monitoring and high-throughput screening that are widely needed in biological microscopy.However,its potential is limited by the technical challenge of achieving significant pulse stretching(that is,high temporal dispersion)and low optical loss,which are the critical factors influencing imaging quality,in the visible spectrum demanded in many of these applications.We present a new pulse-stretching technique,termed free-space angular-chirpenhanced delay(FACED),with three distinguishing features absent in the prevailing dispersive-fiber-based implementations:(1)it generates substantial,reconfigurable temporal dispersion in free space(41 ns nm^(−1))with low intrinsic loss(o6 dB)at visible wavelengths;(2)its wavelength-invariant pulse-stretching operation introduces a new paradigm in time-stretch imaging,which can now be implemented both with and without spectral encoding;and(3)pulse stretching in FACED inherently provides an ultrafast all-optical laser-beam scanning mechanism at a line-scan rate of tens of MHz.Using FACED,we demonstrate not only ultrafast laser-scanning time-stretch imaging with superior bright-field image quality compared with previous work but also,for the first time,MHz fluorescence and colorized time-stretch microscopy.Our results show that this technique could enable a wider scope of applications in high-speed and high-throughput biological microscopy that were once out of reach. 展开更多
关键词 optical time-stretch imaging pulse stretching ultrafast laser scanning
原文传递
上一页 1 下一页 到第
使用帮助 返回顶部