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通过实时中红外数字全息术对建筑物振动模式进行远程监测。

Remote monitoring of building oscillation modes by means of real-time Mid Infrared Digital Holography.

机构信息

Istituto Nazionale di Ottica-CNR, Firenze, Italy.

Dipartimento di Scienze della Terra, Università degli Studi di Firenze, Firenze, Italy.

出版信息

Sci Rep. 2016 Apr 1;6:23688. doi: 10.1038/srep23688.

Abstract

Non-destructive measurements of deformations are a quite common application of holography but due to the intrinsic limits in the interferometric technique, those are generally confined only to small targets and in controlled environment. Here we present an advanced technique, based on Mid Infrared Digital Holography (MIR DH), which works in outdoor conditions and provides remote and real-time information on the oscillation modes of large engineering structures. Thanks to the long wavelength of the laser radiation, large areas of buildings can be simultaneously mapped with sub-micrometric resolution in terms of their amplitude and frequency oscillation modes providing all the modal parameters vital for all the correct prevention strategies when the functionality and the health status of the structures have to be evaluated. The existing experimental techniques used to evaluate the fundamental modes of a structure are based either on seismometric sensors or on Ground-based Synthetic Aperture Radar (GbSAR). Such devices have both serious drawbacks, which prevent their application at a large scale or in the short term. We here demonstrate that the MIR DH based technique can fully overcome these limitations and has the potential to represent a breakthrough advance in the field of dynamic characterization of large structures.

摘要

非破坏性变形测量是全息术的一种常见应用,但由于干涉测量技术的固有限制,这些应用通常仅限于小目标和受控环境。在这里,我们提出了一种先进的技术,基于中红外数字全息术(MIR DH),它可以在户外条件下工作,并提供有关大型工程结构振动模式的远程实时信息。由于激光辐射的长波长,建筑物的大面积可以同时以亚微米分辨率进行映射,其幅度和频率振动模式提供了所有模态参数,这些参数对于评估结构的功能和健康状况时所有正确的预防策略都至关重要。用于评估结构基本模式的现有实验技术要么基于地震传感器,要么基于地基合成孔径雷达(GbSAR)。这些设备都存在严重的缺陷,这限制了它们在大规模或短期内的应用。我们在这里证明,基于 MIR DH 的技术可以完全克服这些限制,并有可能在大型结构的动态特性表征领域取得突破。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf8a/4817048/eeccf4f4a022/srep23688-f1.jpg

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