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High-precision intermode beating electro-optic distance measurement for mitigation of atmospheric delays

High-precision electro-optic distance measurement (EDM) is essential for deformation monitoring. Although sub-ppm instrumental accuracy is already feasible with state-of-the-art commercial technology, the practically attainable accuracy on distances over more than a few hundred meters is limited by...

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Autores principales: Ray, Pabitro, Salido-Monzú, David, Wieser, Andreas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: De Gruyter 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10077955/
http://dx.doi.org/10.1515/jag-2022-0039
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author Ray, Pabitro
Salido-Monzú, David
Wieser, Andreas
author_facet Ray, Pabitro
Salido-Monzú, David
Wieser, Andreas
author_sort Ray, Pabitro
collection PubMed
description High-precision electro-optic distance measurement (EDM) is essential for deformation monitoring. Although sub-ppm instrumental accuracy is already feasible with state-of-the-art commercial technology, the practically attainable accuracy on distances over more than a few hundred meters is limited by uncertainties in estimating the integral refractive index along the propagation path, which often results in measurement errors of several ppm. This paper presents a new instrumental basis for high-accuracy multispectral EDM using an optical supercontinuum to enable dispersion-based inline refractivity compensation. Initial experiments performed on two spectrally filtered bands of 590 and 890 nm from the supercontinuum show measurement precision better than 0.05 mm over 50 m for an acquisition time of around 3 ms on the individual bands. This represents a comparable performance to our previously reported results on 5 cm by over a range of 3 orders of magnitude longer, which can still be improved by increasing the acquisition time. The preliminary results indicate a relative accuracy of about 0.1 mm at 50 m on each wavelength. Improvement is possible by calibration and by implementing a self-reference scheme that mitigates slow drifts caused by power-to-phase coupling. The results reported herein thus indicate that the presented approach can be further developed for achieving sub-ppm accuracy of refractivity compensated distance measurements on practically useful ranges and under outdoor conditions.
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spelling pubmed-100779552023-04-07 High-precision intermode beating electro-optic distance measurement for mitigation of atmospheric delays Ray, Pabitro Salido-Monzú, David Wieser, Andreas J Appl Geod Article High-precision electro-optic distance measurement (EDM) is essential for deformation monitoring. Although sub-ppm instrumental accuracy is already feasible with state-of-the-art commercial technology, the practically attainable accuracy on distances over more than a few hundred meters is limited by uncertainties in estimating the integral refractive index along the propagation path, which often results in measurement errors of several ppm. This paper presents a new instrumental basis for high-accuracy multispectral EDM using an optical supercontinuum to enable dispersion-based inline refractivity compensation. Initial experiments performed on two spectrally filtered bands of 590 and 890 nm from the supercontinuum show measurement precision better than 0.05 mm over 50 m for an acquisition time of around 3 ms on the individual bands. This represents a comparable performance to our previously reported results on 5 cm by over a range of 3 orders of magnitude longer, which can still be improved by increasing the acquisition time. The preliminary results indicate a relative accuracy of about 0.1 mm at 50 m on each wavelength. Improvement is possible by calibration and by implementing a self-reference scheme that mitigates slow drifts caused by power-to-phase coupling. The results reported herein thus indicate that the presented approach can be further developed for achieving sub-ppm accuracy of refractivity compensated distance measurements on practically useful ranges and under outdoor conditions. De Gruyter 2023-04-25 2023-01-04 /pmc/articles/PMC10077955/ http://dx.doi.org/10.1515/jag-2022-0039 Text en © 2022 the author(s), published by De Gruyter, Berlin/Boston https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License.
spellingShingle Article
Ray, Pabitro
Salido-Monzú, David
Wieser, Andreas
High-precision intermode beating electro-optic distance measurement for mitigation of atmospheric delays
title High-precision intermode beating electro-optic distance measurement for mitigation of atmospheric delays
title_full High-precision intermode beating electro-optic distance measurement for mitigation of atmospheric delays
title_fullStr High-precision intermode beating electro-optic distance measurement for mitigation of atmospheric delays
title_full_unstemmed High-precision intermode beating electro-optic distance measurement for mitigation of atmospheric delays
title_short High-precision intermode beating electro-optic distance measurement for mitigation of atmospheric delays
title_sort high-precision intermode beating electro-optic distance measurement for mitigation of atmospheric delays
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10077955/
http://dx.doi.org/10.1515/jag-2022-0039
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