Co-linear common-path shearography with a zero-approaching shear amount and separate control of the spatial carrier for single-shot phase measurement

Author:

Gao ShuaiORCID,Xiong Wenze,Shao Qi1,Huang Pengfei,Feng Yingjie,Shi Pengyuan,Xiong Jianxuan,Koch Alexander W.2,Lu Yifan1,Wang ShengjiaORCID

Affiliation:

1. Harbin Institute of Technology

2. Technical University of Munich

Abstract

A co-linear common-path shearography is proposed with spatial phase shift for single-shot phase measurement. The co-linear common-path configuration brings an enhanced robustness and stability of the measuring system, because the two laterally sheared interfering object waves propagate essentially along the same path, which cancels out the disturbance and noise in surroundings. Two functional features, which break through the limitations in conventional co-linear common-path shearography, are proposed and implemented, namely the zero-approaching shear amount and the separate control of the spatial carrier. Seldom shearography configured by co-linear common-path structure possesses with these two features, because the linearly aligned optics restricts the control parameters in regards to the shear amount and the spatial carrier. In the proposed scheme, an intermediate real image plane is created in the linearly aligned light path to address the issue of zero-approaching shear amount. A 4-f imaging system is embedded with an aperture in between to implement a separate control of the spatial carrier. The zero-approaching shear amount provides the sufficiently small shear to make sure the strain or slope field of complex deformation is resolvable. Meanwhile, the separate control of the spatial carrier further guarantees a well-distributed spatial frequency spectrum when the required zero-approaching shear amount is configured.

Funder

Natural Science Foundation of Heilongjiang Province

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Young Elite Scientists Sponsorship Program by CAST

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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