Aspects of Signal Processing in Laser Vibrometry and their Embedded-Realisation on FPGA with NI-LabVIEW

M. Holzer, F. Mohr
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引用次数: 5

Abstract

The most common approach in today's interferometric laser vibrometry is the so called heterodyne technique. This about 20 year-old method works with two optical beams with two different optical frequencies that are lead over separate ways and, after one of them has interacted with the vibrating target, are superimposed on optical detectors to produce interference signals [1] However, this concept requires expensive optical components such as a Bragg Cell or a Zeeman-Laser. In order to reduce the manufacturing cost of an interferometic laser vibrometer we persecute a strategy which reduces the optical complexity for the prize of higher signal processing demand. Based on the fact that today highly integrated signal processing hardware such as DSPs (Digital Signal Processors) FPGAs or ASICs solutions are much less expensive than in the past, this so called HWSHD (Homodyne With Synthetic Heterodyne Demodulation) strategy is therefore competitive to the classical usage of expensive optical components in the heterodyne concept. This paper will, after a brief introduction into the homodyne vibrometer concept, describe the idea and realisation aspects of the signal processing algorithm by usage of NI-LabVIEWs FPGA Module.
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激光振动测量中信号处理的几个方面及其在NI-LabVIEW FPGA上的嵌入式实现
在当今干涉激光测振中最常见的方法是所谓的外差技术。这种大约有20年历史的方法使用两种不同光学频率的光束,通过不同的方式引线,在其中一种与振动目标相互作用后,叠加在光学探测器上产生干涉信号[1]。然而,这种概念需要昂贵的光学元件,如布拉格细胞或塞曼激光器。为了降低干涉式激光测振仪的制造成本,为了满足更高的信号处理要求,我们提出了一种降低光学复杂度的策略。基于这样一个事实,今天高度集成的信号处理硬件,如dsp(数字信号处理器)fpga或asic解决方案比过去便宜得多,这种所谓的HWSHD(带合成外差解调的Homodyne)策略因此与外差概念中昂贵的光学元件的经典使用竞争。本文在简要介绍纯差式测振仪概念的基础上,阐述了利用NI-LabVIEWs FPGA模块实现信号处理算法的思想和实现方面。
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