A modeling and calibrating method of FBG sensors for wing deformation displacement measurement

The airborne distributed Position and Orientation System (POS) is a key piece of equipment for providing high-precision motion parameters for aerial remote sensing systems. However, wing deformation degrades the performance of distributed POS, thus, it is urgent to obtain high-precision deformation...

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Published in:Heliyon
Main Authors: Yanhong Liu, Yan Huang, Hejun Yao, Wei Liang, Yuan Xu
Format: Article
Language:English
Published: Elsevier 2023-05-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2405844023031390
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author Yanhong Liu
Yan Huang
Hejun Yao
Wei Liang
Yuan Xu
author_facet Yanhong Liu
Yan Huang
Hejun Yao
Wei Liang
Yuan Xu
author_sort Yanhong Liu
collection DOAJ
container_title Heliyon
description The airborne distributed Position and Orientation System (POS) is a key piece of equipment for providing high-precision motion parameters for aerial remote sensing systems. However, wing deformation degrades the performance of distributed POS, thus, it is urgent to obtain high-precision deformation information to assist distributed POS. In this study, a modeling and calibrating method of fiber Bragg grating (FBG) sensors for wing deformation displacement measurement is proposed. First, based on the cantilever beam theory and piecewise superposition, a modeling and calibrating method for wing deformation displacement measurement is established. The wing is then placed under different deformation conditions, and the changes in the wing deformation displacement and corresponding wavelength variations of the pasted FBG sensors are obtained using theodolite coordinate measurement system and FBG demodulator, respectively. Subsequently, linear least square fitting is deployed to develop the relationship model between the wavelength variations of the FBG sensors and wing deformation displacement. Finally, the wing deformation displacement at the measuring point in the temporal and spatial dimensions is obtained by fitting and interpolation. An experiment is conducted, and the results show that the accuracy of the proposed method can reach 0.721 mm with a wing length of 3 m, which can be used in the motion compensation of an airborne distributed POS.
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spelling doaj-art-e43d2ce60fd04ca998ebdf4a9efe1ded2025-08-19T22:44:41ZengElsevierHeliyon2405-84402023-05-0195e1593210.1016/j.heliyon.2023.e15932A modeling and calibrating method of FBG sensors for wing deformation displacement measurementYanhong Liu0Yan Huang1Hejun Yao2Wei Liang3Yuan Xu4Beijing Institute of Metrology, Beijing 100029, China; National Metrology Center for Industry of GNSS, Beijing 100029, China; Beihang University, Beijing 100191, ChinaBeijing Institute of Metrology, Beijing 100029, China; National Metrology Center for Industry of GNSS, Beijing 100029, China; Corresponding author. Beijing Institute of Metrology, Beijing 100029, China.Beijing Institute of Metrology, Beijing 100029, China; National Metrology Center for Industry of GNSS, Beijing 100029, ChinaBeijing Institute of Metrology, Beijing 100029, China; National Metrology Center for Industry of GNSS, Beijing 100029, ChinaBeijing Institute of Metrology, Beijing 100029, China; National Metrology Center for Industry of GNSS, Beijing 100029, ChinaThe airborne distributed Position and Orientation System (POS) is a key piece of equipment for providing high-precision motion parameters for aerial remote sensing systems. However, wing deformation degrades the performance of distributed POS, thus, it is urgent to obtain high-precision deformation information to assist distributed POS. In this study, a modeling and calibrating method of fiber Bragg grating (FBG) sensors for wing deformation displacement measurement is proposed. First, based on the cantilever beam theory and piecewise superposition, a modeling and calibrating method for wing deformation displacement measurement is established. The wing is then placed under different deformation conditions, and the changes in the wing deformation displacement and corresponding wavelength variations of the pasted FBG sensors are obtained using theodolite coordinate measurement system and FBG demodulator, respectively. Subsequently, linear least square fitting is deployed to develop the relationship model between the wavelength variations of the FBG sensors and wing deformation displacement. Finally, the wing deformation displacement at the measuring point in the temporal and spatial dimensions is obtained by fitting and interpolation. An experiment is conducted, and the results show that the accuracy of the proposed method can reach 0.721 mm with a wing length of 3 m, which can be used in the motion compensation of an airborne distributed POS.http://www.sciencedirect.com/science/article/pii/S2405844023031390Wing deformation measurementFiber bragg grating sensorAirborne distributed position and orientation systemFitting and interpolation
spellingShingle Yanhong Liu
Yan Huang
Hejun Yao
Wei Liang
Yuan Xu
A modeling and calibrating method of FBG sensors for wing deformation displacement measurement
Wing deformation measurement
Fiber bragg grating sensor
Airborne distributed position and orientation system
Fitting and interpolation
title A modeling and calibrating method of FBG sensors for wing deformation displacement measurement
title_full A modeling and calibrating method of FBG sensors for wing deformation displacement measurement
title_fullStr A modeling and calibrating method of FBG sensors for wing deformation displacement measurement
title_full_unstemmed A modeling and calibrating method of FBG sensors for wing deformation displacement measurement
title_short A modeling and calibrating method of FBG sensors for wing deformation displacement measurement
title_sort modeling and calibrating method of fbg sensors for wing deformation displacement measurement
topic Wing deformation measurement
Fiber bragg grating sensor
Airborne distributed position and orientation system
Fitting and interpolation
url http://www.sciencedirect.com/science/article/pii/S2405844023031390
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