2007
Authors
Frazao, O; Caldas, P; Araujo, FM; Ferreira, LA; Santos, JL;
Publication
OPTICS LETTERS
Abstract
A novel in-fiber modal interferometer is presented that is based on a nonadiabatic biconical fused taper that couples light between the cladding and the core, combined with the Fresnel reflection at the fiber end. It is observed that the returned light from this fiber structure shows a channeled spectrum similar to that of a two-wave Michelson interferometer. The application of this device as a fiber optic flowmeter sensor is demonstrated. 2007 (c) Optical Society of America.
2007
Authors
Frazao, O; Viegas, J; Caldas, P; Santos, JL; Araujo, FM; Ferreira, LA; Farahi, F;
Publication
OPTICS LETTERS
Abstract
A novel Mach-Zehnder interferometer based on a fiber multimode interference structure combined with a long-period fiber grating (LPG) is proposed. The multimode interference is achieved through the use of a MMF section spliced between two single-mode fibers, with a length adjusted to couple a fraction of light into the cladding modes. A LPG placed after the MMF couples light back into the fiber core, completing the Mach-Zehnder interferometer. This novel configuration was demonstrated as a bending sensor. (c) 2007 Optical Society ofAmerica.
2007
Authors
Jorge, PAS; Martins, MA; Trindade, T; Santos, JL; Farahi, F;
Publication
SENSORS
Abstract
Recent advances in the application of semiconductor nanocrystals, or quantum dots, as biochemical sensors are reviewed. Quantum dots have unique optical properties that make them promising alternatives to traditional dyes in many luminescence based bioanalytical techniques. An overview of the more relevant progresses in the application of quantum dots as biochemical probes is addressed. Special focus will be given to configurations where the sensing dots are incorporated in solid membranes and immobilized in optical fibers or planar waveguide platforms.
2007
Authors
Rego, G; Falate, R; Ivanov, O; Santos, JL;
Publication
APPLIED OPTICS
Abstract
A compact sensor based on step-changed are-induced long-period fiber gratings was implemented to discriminate between temperature and strain. The proposed sensor consists of a single long-period grating with two sections written consecutively in the SMF-28 fiber using the electric are discharge technique. The two sections have the same period but different fabrication parameters. The operation of the sensor relies on the existence of a difference between the values of temperature and strain sensitivity of two neighboring resonances observed in the spectrum of the step-changed grating. The temperature and strain resolutions obtained for the sensor are 0.2 degrees C and 35 mu epsilon, respectively. (c) 2007 Optical Society of America.
2007
Authors
Moreira, PMGP; Frazao, O; Tavares, SMO; de Figueiredo, MAV; Restivo, MT; Santos, JL; de Castro, PMST;
Publication
MEASUREMENT SCIENCE & TECHNOLOGY
Abstract
The paper presents the application of temperature acquisition systems integrating thermocouples, a thermographic camera and fibre Bragg grating (FBG) sensors in gas metal arc welding (GMAW) process, MIG ( metal inert gas) welding type. Efficient procedures to use FBG sensors and thermocouples were developed. The paper presents and compares measurements made in welded plates of aluminium alloy 6082-T6. Tests were performed in both plate surfaces and good agreement between the three techniques was found.
2007
Authors
Falate, R; Frazao, O; Rego, G; Ivanov, OV; Kalinowski, HJ; Fabris, JL; Santos, JL;
Publication
MEASUREMENT SCIENCE & TECHNOLOGY
Abstract
This work shows the changes of bending curvature sensitivity when the same long- period fibre grating has different phase shifts. From the knowledge that the coupling constant is reduced as curvature increases, we theoretically and experimentally assess the possibility that the bend sensitivity follows the grating spectrum evolution during the point- to-point fabrication technique. We also show that control of bend sensitivity can be applied to the simultaneous measurement of bend and temperature.
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