4.5 Article

Internal displacement and strain measurement using digital volume correlation: a least-squares framework

期刊

MEASUREMENT SCIENCE AND TECHNOLOGY
卷 23, 期 4, 页码 -

出版社

IOP Publishing Ltd
DOI: 10.1088/0957-0233/23/4/045002

关键词

digital volume correlation; sub-voxel; internal deformation measurement; tricubic interpolation

资金

  1. National Natural Science Foundation of China (NSFC) [11002012, 11172026]
  2. China Aerospace Science and Technology Innovation Fund Project [CASC201101]
  3. Specialized Research Fund for the Doctoral Program of Higher Education [20101102120015]
  4. Scientific Research Foundation for Returned Overseas Chinese Scholars
  5. Fundamental Research Funds for the Central Universities

向作者/读者索取更多资源

As a novel tool for quantitative 3D internal deformation measurement throughout the interior of a material or tissue, digital volume correlation (DVC) has increasingly gained attention and application in the fields of experimental mechanics, material research and biomedical engineering. However, the practical implementation of DVC involves important challenges such as implementation complexity, calculation accuracy and computational efficiency. In this paper, a least-squares framework is presented for 3D internal displacement and strain field measurement using DVC. The proposed DVC combines a practical linear-intensity-change model with an easy-to-implement iterative least-squares (ILS) algorithm to retrieve 3D internal displacement vector field with sub-voxel accuracy. Because the linear-intensity-change model is capable of accounting for both the possible intensity changes and the relative geometric transform of the target subvolume, the presented DVC thus provides the highest sub-voxel registration accuracy and widest applicability. Furthermore, as the ILS algorithm uses only first-order spatial derivatives of the deformed volumetric image, the developed DVC thus significantly reduces computational complexity. To further extract 3D strain distributions from the 3D discrete displacement vectors obtained by the ILS algorithm, the presented DVC employs a pointwise least-squares algorithm to estimate the strain components for each measurement point. Computer-simulated volume images with controlled displacements are employed to investigate the performance of the proposed DVC method in terms of mean bias error and standard deviation error. Results reveal that the present technique is capable of providing accurate measurements in an easy-to-implement manner, and can be applied to practical 3D internal displacement and strain calculation.

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