Distributed optical sensing for monitoring strain evolution during mechanical testing of composite laminates

A Distributed fiber Optical Sensor (DOS) was embedded inside and attached to the surface of a multi-directional continuous fiber composite laminate coupon, along with the traditional foil of Strain Gages (SG) and Digital Image Correlation (DIC), to compare the DOS measure strain response to traditio...

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Main Authors: Jung-Ting Tsai, Joshua S. Dustin, Jan-Anders Mansson
Format: Article
Language:English
Published: Elsevier 2021-04-01
Series:Polymer Testing
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S014294182100026X
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spelling doaj-a4af6bd11b494250ba393b700b93063d2021-03-22T12:34:42ZengElsevierPolymer Testing0142-94182021-04-0196107076Distributed optical sensing for monitoring strain evolution during mechanical testing of composite laminatesJung-Ting Tsai0Joshua S. Dustin1Jan-Anders Mansson2School of Materials Engineering, Purdue University, 701 West Stadium Avenue, West Lafayette, IN, 47907, United States; Manufacturing Design Lab, Purdue University, 1105 Challenger Av., Suite 400, West Lafayette, IN, 47906, United StatesManufacturing Design Lab, Purdue University, 1105 Challenger Av., Suite 400, West Lafayette, IN, 47906, United StatesSchool of Materials Engineering, Purdue University, 701 West Stadium Avenue, West Lafayette, IN, 47907, United States; School of Aeronautics and Astronautics and Chemical Engineering, Purdue University, 701 West Stadium Avenue, West Lafayette, IN, 47907, United States; School of Chemical Engineering, Purdue University, 701 West Stadium Avenue, West Lafayette, IN, 47907, United States; Manufacturing Design Lab, Purdue University, 1105 Challenger Av., Suite 400, West Lafayette, IN, 47906, United States; Corresponding author. School of Materials Engineering, Purdue University, 701 West Stadium Avenue, West Lafayette, IN, 47907, United States.A Distributed fiber Optical Sensor (DOS) was embedded inside and attached to the surface of a multi-directional continuous fiber composite laminate coupon, along with the traditional foil of Strain Gages (SG) and Digital Image Correlation (DIC), to compare the DOS measure strain response to traditional strain acquisition methods. Tensile and bending tests were performed on an Open Hole composite laminate coupon to study different modes of loading and the performance of the DOS in the presence of a strain gradient. Tensile test results show good agreement between the SG, the DIC, and the DOS strain measurements in the region far from the strain concentration. Near the hole, the DOS repeatably measured the strain concentration during tensile and bending tests. The DOS was able to measure the residual strain in the composite laminate coupon through the hole-drilling method. Finite Element Analysis was performed to obtain the theoretical distribution of axial strain along the locations corresponding to the physical placement of the DOS in the coupon. As the results indicate, the DOS readings agree well with the theoretical results for the strain distribution in the test coupons. The results obtained during these evaluations provide confidence that the DOS strain measurement method and equipment are a robust strain acquisition option with the capability to overcome some of the limitations of the traditional foil SG and DIC methods.http://www.sciencedirect.com/science/article/pii/S014294182100026XFunctional compositesFinite element analysis (FEA)Optical microscopyNon-destructive testing
collection DOAJ
language English
format Article
sources DOAJ
author Jung-Ting Tsai
Joshua S. Dustin
Jan-Anders Mansson
spellingShingle Jung-Ting Tsai
Joshua S. Dustin
Jan-Anders Mansson
Distributed optical sensing for monitoring strain evolution during mechanical testing of composite laminates
Polymer Testing
Functional composites
Finite element analysis (FEA)
Optical microscopy
Non-destructive testing
author_facet Jung-Ting Tsai
Joshua S. Dustin
Jan-Anders Mansson
author_sort Jung-Ting Tsai
title Distributed optical sensing for monitoring strain evolution during mechanical testing of composite laminates
title_short Distributed optical sensing for monitoring strain evolution during mechanical testing of composite laminates
title_full Distributed optical sensing for monitoring strain evolution during mechanical testing of composite laminates
title_fullStr Distributed optical sensing for monitoring strain evolution during mechanical testing of composite laminates
title_full_unstemmed Distributed optical sensing for monitoring strain evolution during mechanical testing of composite laminates
title_sort distributed optical sensing for monitoring strain evolution during mechanical testing of composite laminates
publisher Elsevier
series Polymer Testing
issn 0142-9418
publishDate 2021-04-01
description A Distributed fiber Optical Sensor (DOS) was embedded inside and attached to the surface of a multi-directional continuous fiber composite laminate coupon, along with the traditional foil of Strain Gages (SG) and Digital Image Correlation (DIC), to compare the DOS measure strain response to traditional strain acquisition methods. Tensile and bending tests were performed on an Open Hole composite laminate coupon to study different modes of loading and the performance of the DOS in the presence of a strain gradient. Tensile test results show good agreement between the SG, the DIC, and the DOS strain measurements in the region far from the strain concentration. Near the hole, the DOS repeatably measured the strain concentration during tensile and bending tests. The DOS was able to measure the residual strain in the composite laminate coupon through the hole-drilling method. Finite Element Analysis was performed to obtain the theoretical distribution of axial strain along the locations corresponding to the physical placement of the DOS in the coupon. As the results indicate, the DOS readings agree well with the theoretical results for the strain distribution in the test coupons. The results obtained during these evaluations provide confidence that the DOS strain measurement method and equipment are a robust strain acquisition option with the capability to overcome some of the limitations of the traditional foil SG and DIC methods.
topic Functional composites
Finite element analysis (FEA)
Optical microscopy
Non-destructive testing
url http://www.sciencedirect.com/science/article/pii/S014294182100026X
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