DocumentCode
26013
Title
Temperature and Strain Measurements With Fiber Bragg Gratings Embedded in Stainless Steel 316
Author
Havermann, Dirk ; Mathew, Jinesh ; MacPherson, William N. ; Maier, Robert R. J. ; Hand, Duncan P.
Author_Institution
Inst. of Photonics & Quantum Sci., Heriot-Watt Univ., Edinburgh, UK
Volume
33
Issue
12
fYear
2015
fDate
June15, 15 2015
Firstpage
2474
Lastpage
2479
Abstract
Single-mode optical fibers with thin nickel coatings (outer diameter ~350 μm) are successfully embedded into stainless steel (SS) 316 components using bespoke laser-based additive manufacturing technology. In our approach, we manufacture SS 316 components using selective laser melting, incorporating U-shaped grooves with dimensions suitable to hold nickel-coated optical fibers. Coated optical fibers containing fiber Bragg gratings for strain monitoring and temperature sensing are placed in the groove. The embedding is completed by melting subsequent powder layers on top of the fibers. Cross-sectional microscopy analysis of the fabricated components, together with analysis of the Bragg gratings behavior during fabrication indicates a strong substance-to-substance bond between coated fiber and added SS 316 material. Temperature and strain cycling of the embedded sensors demonstrates the ability of gratings to survive the embedding process, and act as sensing elements in harsh environments. In situ strain and temperature measurements from within the component are demonstrated for high dynamic stress levels and elevated temperatures (<;400 °C).
Keywords
Bragg gratings; antireflection coatings; fibre optic sensors; intelligent sensors; laser sintering; nickel; optical fibre fabrication; stainless steel; strain measurement; temperature measurement; Bragg grating behavior; Ni; SS 316 components; U-shaped grooves; cross-sectional microscopy analysis; elevated temperatures; embedded sensors; fiber Bragg gratings; harsh environments; high dynamic stress levels; laser-based additive manufacturing technology; nickel-coated optical fibers; powder layers; selective laser melting; sensing elements; single-mode optical fibers; size 350 mum; stainless steel 316 components; strain cycling; strain measurements; strain monitoring; substance-to-substance bond; temperature cycling; temperature measurements; temperature sensing; Coatings; Fiber gratings; Optical fibers; Steel; Temperature measurement; Temperature sensors; Bragg gratings; embedded fiber sensors; laser melting; laser sintering; optical fiber sensors; stainless steel; strain sensors; temperature sensors;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2014.2366835
Filename
6945802
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