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Performances of PMMA-Based Optical Fiber Bragg Grating Sensor in Extended Temperature Range
Wei Zhang
*
,
David J. Webb
*
Corresponding author for this work
Aston Institute of Photonic Technologies (AiPT)
College of Engineering and Physical Sciences
Aston University
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peer-review
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Keyphrases
Controlled Temperature
33%
Environmental Chamber
33%
Excellent Sensitivity
33%
Extended Temperature Range
100%
Good Linearity
33%
High Temperature
33%
Humidity
66%
Humidity Sensing
66%
Humidity Sensitivity
33%
Nonlinear Response
33%
Optical Fiber Bragg Grating
100%
Optical Fiber Bragg Grating Sensor
100%
Refractive Index
33%
Temperature Sensing
33%
Temperature-humidity Index
66%
Engineering
Experimental Result
16%
Extended Temperature Range
100%
Fiber Bragg Grating
50%
Fiber Optics
100%
Fibre Bragg Grating Sensor
100%
Humidity Sensitivity
16%
Nonlinear Response
16%
Refractive Index
16%
Refractivity
16%
Relative Humidity
33%
Test Chamber
16%
Material Science
Fiber Bragg Grating
100%
Glass Fiber
100%
Poly Methyl Methacrylate
100%
Refractive Index
16%
Physics
Critical Temperature
33%
Fiber Bragg Grating
100%
Glass Fiber
100%
Refractivity
16%
Theoretical Model
16%