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Optimized Design of the SGA-WZ Strapdown Airborne Gravimeter Temperature Control System

The temperature control system is one of the most important subsystems of the strapdown airborne gravimeter. Because the quartz flexible accelerometer based on springy support technology is the core sensor in the strapdown airborne gravimeter and the magnet steel in the electromagnetic force equilib...

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Autores principales: Cao, Juliang, Wang, Minghao, Cai, Shaokun, Zhang, Kaidong, Cong, Danni, Wu, Meiping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4721702/
https://www.ncbi.nlm.nih.gov/pubmed/26633407
http://dx.doi.org/10.3390/s151229781
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author Cao, Juliang
Wang, Minghao
Cai, Shaokun
Zhang, Kaidong
Cong, Danni
Wu, Meiping
author_facet Cao, Juliang
Wang, Minghao
Cai, Shaokun
Zhang, Kaidong
Cong, Danni
Wu, Meiping
author_sort Cao, Juliang
collection PubMed
description The temperature control system is one of the most important subsystems of the strapdown airborne gravimeter. Because the quartz flexible accelerometer based on springy support technology is the core sensor in the strapdown airborne gravimeter and the magnet steel in the electromagnetic force equilibrium circuits of the quartz flexible accelerometer is greatly affected by temperature, in order to guarantee the temperature control precision and minimize the effect of temperature on the gravimeter, the SGA-WZ temperature control system adopts a three-level control method. Based on the design experience of the SGA-WZ-01, the SGA-WZ-02 temperature control system came out with a further optimized design. In 1st level temperature control, thermoelectric cooler is used to conquer temperature change caused by hot weather. The experiments show that the optimized stability of 1st level temperature control is about 0.1 °C and the max cool down capability is about 10 °C. The temperature field is analyzed in the 2nd and 3rd level temperature control using the finite element analysis software ANSYS. The 2nd and 3rd level temperature control optimization scheme is based on the foundation of heat analysis. The experimental results show that static accuracy of SGA-WZ-02 reaches 0.21 mGal/24 h, with internal accuracy being 0.743 mGal/4.8 km and external accuracy being 0.37 mGal/4.8 km compared with the result of the GT-2A, whose internal precision is superior to 1 mGal/4.8 km and all of them are better than those in SGA-WZ-01.
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spelling pubmed-47217022016-01-26 Optimized Design of the SGA-WZ Strapdown Airborne Gravimeter Temperature Control System Cao, Juliang Wang, Minghao Cai, Shaokun Zhang, Kaidong Cong, Danni Wu, Meiping Sensors (Basel) Article The temperature control system is one of the most important subsystems of the strapdown airborne gravimeter. Because the quartz flexible accelerometer based on springy support technology is the core sensor in the strapdown airborne gravimeter and the magnet steel in the electromagnetic force equilibrium circuits of the quartz flexible accelerometer is greatly affected by temperature, in order to guarantee the temperature control precision and minimize the effect of temperature on the gravimeter, the SGA-WZ temperature control system adopts a three-level control method. Based on the design experience of the SGA-WZ-01, the SGA-WZ-02 temperature control system came out with a further optimized design. In 1st level temperature control, thermoelectric cooler is used to conquer temperature change caused by hot weather. The experiments show that the optimized stability of 1st level temperature control is about 0.1 °C and the max cool down capability is about 10 °C. The temperature field is analyzed in the 2nd and 3rd level temperature control using the finite element analysis software ANSYS. The 2nd and 3rd level temperature control optimization scheme is based on the foundation of heat analysis. The experimental results show that static accuracy of SGA-WZ-02 reaches 0.21 mGal/24 h, with internal accuracy being 0.743 mGal/4.8 km and external accuracy being 0.37 mGal/4.8 km compared with the result of the GT-2A, whose internal precision is superior to 1 mGal/4.8 km and all of them are better than those in SGA-WZ-01. MDPI 2015-12-01 /pmc/articles/PMC4721702/ /pubmed/26633407 http://dx.doi.org/10.3390/s151229781 Text en © 2015 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons by Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Cao, Juliang
Wang, Minghao
Cai, Shaokun
Zhang, Kaidong
Cong, Danni
Wu, Meiping
Optimized Design of the SGA-WZ Strapdown Airborne Gravimeter Temperature Control System
title Optimized Design of the SGA-WZ Strapdown Airborne Gravimeter Temperature Control System
title_full Optimized Design of the SGA-WZ Strapdown Airborne Gravimeter Temperature Control System
title_fullStr Optimized Design of the SGA-WZ Strapdown Airborne Gravimeter Temperature Control System
title_full_unstemmed Optimized Design of the SGA-WZ Strapdown Airborne Gravimeter Temperature Control System
title_short Optimized Design of the SGA-WZ Strapdown Airborne Gravimeter Temperature Control System
title_sort optimized design of the sga-wz strapdown airborne gravimeter temperature control system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4721702/
https://www.ncbi.nlm.nih.gov/pubmed/26633407
http://dx.doi.org/10.3390/s151229781
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