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The Multi-Purpose Airborne Sensor Carrier MASC-3 for Wind and Turbulence Measurements in the Atmospheric Boundary Layer

For atmospheric boundary-layer (ABL) studies, unmanned aircraft systems (UAS) can provide new information in addition to traditional in-situ measurements, or by ground- or satellite-based remote sensing techniques. The ability of fixed-wing UAS to transect the ABL in short time supplement ground-bas...

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Autores principales: Rautenberg, Alexander, Schön, Martin, zum Berge, Kjell, Mauz, Moritz, Manz, Patrick, Platis, Andreas, van Kesteren, Bram, Suomi, Irene, Kral, Stephan T., Bange, Jens
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6566615/
https://www.ncbi.nlm.nih.gov/pubmed/31109010
http://dx.doi.org/10.3390/s19102292
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author Rautenberg, Alexander
Schön, Martin
zum Berge, Kjell
Mauz, Moritz
Manz, Patrick
Platis, Andreas
van Kesteren, Bram
Suomi, Irene
Kral, Stephan T.
Bange, Jens
author_facet Rautenberg, Alexander
Schön, Martin
zum Berge, Kjell
Mauz, Moritz
Manz, Patrick
Platis, Andreas
van Kesteren, Bram
Suomi, Irene
Kral, Stephan T.
Bange, Jens
author_sort Rautenberg, Alexander
collection PubMed
description For atmospheric boundary-layer (ABL) studies, unmanned aircraft systems (UAS) can provide new information in addition to traditional in-situ measurements, or by ground- or satellite-based remote sensing techniques. The ability of fixed-wing UAS to transect the ABL in short time supplement ground-based measurements and the ability to extent the data horizontally and vertically allows manifold investigations. Thus, the measurements can provide many new possibilities for investigating the ABL. This study presents the new mark of the Multi-Purpose Airborne Sensor Carrier (MASC-3) for wind and turbulence measurements and describes the subsystems designed to improve the wind measurement, to gain endurance and to allow operations under an enlarged range of environmental conditions. The airframe, the capabilities of the autopilot Pixhawk 2.1, the sensor system and the data acquisition software, as well as the post-processing software, provide the basis for flight experiments and are described in detail. Two flights in a stable boundary-layer and a close comparison to a measurement tower and a Sodar system depict the accuracy of the wind speed and direction measurements, as well as the turbulence measurements. Mean values, variances, covariance, turbulent kinetic energy and the integral length scale agree well with measurements from a meteorological measurement tower. MASC-3 performs valuable measurements of stable boundary layers with high temporal resolution and supplements the measurements of meteorological towers and sodar systems.
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spelling pubmed-65666152019-06-17 The Multi-Purpose Airborne Sensor Carrier MASC-3 for Wind and Turbulence Measurements in the Atmospheric Boundary Layer Rautenberg, Alexander Schön, Martin zum Berge, Kjell Mauz, Moritz Manz, Patrick Platis, Andreas van Kesteren, Bram Suomi, Irene Kral, Stephan T. Bange, Jens Sensors (Basel) Article For atmospheric boundary-layer (ABL) studies, unmanned aircraft systems (UAS) can provide new information in addition to traditional in-situ measurements, or by ground- or satellite-based remote sensing techniques. The ability of fixed-wing UAS to transect the ABL in short time supplement ground-based measurements and the ability to extent the data horizontally and vertically allows manifold investigations. Thus, the measurements can provide many new possibilities for investigating the ABL. This study presents the new mark of the Multi-Purpose Airborne Sensor Carrier (MASC-3) for wind and turbulence measurements and describes the subsystems designed to improve the wind measurement, to gain endurance and to allow operations under an enlarged range of environmental conditions. The airframe, the capabilities of the autopilot Pixhawk 2.1, the sensor system and the data acquisition software, as well as the post-processing software, provide the basis for flight experiments and are described in detail. Two flights in a stable boundary-layer and a close comparison to a measurement tower and a Sodar system depict the accuracy of the wind speed and direction measurements, as well as the turbulence measurements. Mean values, variances, covariance, turbulent kinetic energy and the integral length scale agree well with measurements from a meteorological measurement tower. MASC-3 performs valuable measurements of stable boundary layers with high temporal resolution and supplements the measurements of meteorological towers and sodar systems. MDPI 2019-05-17 /pmc/articles/PMC6566615/ /pubmed/31109010 http://dx.doi.org/10.3390/s19102292 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rautenberg, Alexander
Schön, Martin
zum Berge, Kjell
Mauz, Moritz
Manz, Patrick
Platis, Andreas
van Kesteren, Bram
Suomi, Irene
Kral, Stephan T.
Bange, Jens
The Multi-Purpose Airborne Sensor Carrier MASC-3 for Wind and Turbulence Measurements in the Atmospheric Boundary Layer
title The Multi-Purpose Airborne Sensor Carrier MASC-3 for Wind and Turbulence Measurements in the Atmospheric Boundary Layer
title_full The Multi-Purpose Airborne Sensor Carrier MASC-3 for Wind and Turbulence Measurements in the Atmospheric Boundary Layer
title_fullStr The Multi-Purpose Airborne Sensor Carrier MASC-3 for Wind and Turbulence Measurements in the Atmospheric Boundary Layer
title_full_unstemmed The Multi-Purpose Airborne Sensor Carrier MASC-3 for Wind and Turbulence Measurements in the Atmospheric Boundary Layer
title_short The Multi-Purpose Airborne Sensor Carrier MASC-3 for Wind and Turbulence Measurements in the Atmospheric Boundary Layer
title_sort multi-purpose airborne sensor carrier masc-3 for wind and turbulence measurements in the atmospheric boundary layer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6566615/
https://www.ncbi.nlm.nih.gov/pubmed/31109010
http://dx.doi.org/10.3390/s19102292
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