Paper
31 August 2000 Optimization of an optical device for low-frequency electric field measurement
M. Passard, Christine Barthod, M. Fortin, Christine Galez, J. Bouillot
Author Affiliations +
Proceedings Volume 4074, Applications of Optical Fiber Sensors; (2000) https://doi.org/10.1117/12.397906
Event: Symposium on Applied Photonics, 2000, Glasgow, United Kingdom
Abstract
The conventional measurement systems for low frequency (50 - 60 Hz) high electric fields measurement currently lay on active metallic probes which can disturb the measured electric field. The present study concerns an optical device using a LiNbO3 crystal, which is known to be electrooptic, as sensing medium. The experimental set-up uses two electrodes to create the electric field to be measured. The principle of measurement implements the electrooptical effect in the crystal without any contacting electrode and is based on the classical static method in which the polarization of light is analyzed after going through the crystal. In order to minimize thermo-optical effects, the light beam propagates along the optical axis and the electric field is applied perpendicularly to the beam. Thanks to an excellent agreement between simulation with Finite Element Method and experiment, the shape of the crystal and its protection ring are optimized. The crystal used here has a regular octagonal section (radius #1.5 mm) and a length of 8 mm.
© (2000) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
M. Passard, Christine Barthod, M. Fortin, Christine Galez, and J. Bouillot "Optimization of an optical device for low-frequency electric field measurement", Proc. SPIE 4074, Applications of Optical Fiber Sensors, (31 August 2000); https://doi.org/10.1117/12.397906
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Cited by 2 scholarly publications.
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KEYWORDS
Crystals

Electrodes

Sensors

Electro optics

Electric field sensors

Finite element methods

Optical components

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