Theoretical analysis and finite element method simulations on dynamic sensitivity of hemisphere-shaped electrostatic sensors

Electrostatic sensors are key components of electrostatic monitoring systems. Their sensitivity characteristics have a direct influence on monitoring accuracy. In previous studies, spatial sensitivity, which is called static sensitivity here, was used to describe the sensitivity characteristics. How...

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Main Authors: Xin Tang, Zhongsheng Chen, Yue Li, Zheng Hu, Yongmin Yang
Format: Article
Language:English
Published: SAGE Publishing 2016-08-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814016665050
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spelling doaj-d5486bb2a36848bd8901cb97db3bb53d2020-11-25T03:43:48ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402016-08-01810.1177/168781401666505010.1177_1687814016665050Theoretical analysis and finite element method simulations on dynamic sensitivity of hemisphere-shaped electrostatic sensorsXin TangZhongsheng ChenYue LiZheng HuYongmin YangElectrostatic sensors are key components of electrostatic monitoring systems. Their sensitivity characteristics have a direct influence on monitoring accuracy. In previous studies, spatial sensitivity, which is called static sensitivity here, was used to describe the sensitivity characteristics. However, it only reflects a basic relationship between static charged particles and induced charges on an electrostatic sensor’s probe. Besides, as a three-dimensional defined parameter, it is difficult to build a unified model if actual boundary conditions are considered. Thus, it is not quite proper for applications that detect moving particles. To solve this problem, dynamic sensitivity is proposed in this article. As for a hemisphere-shaped electrostatic sensor, first, a more accurate model of static sensitivity is built. Based on it, dynamic sensitivity is defined and modeled analytically. Then, a calibration method is proposed to improve the model’s accuracy under actual boundary conditions. In the end, finite element method simulations are done for validations. The results demonstrate that dynamic sensitivity reflects a relationship between moving charged particles and the actual output signals of a sensor, thus it is direct and practical for moving particles. And the theoretical results are highly consistent with the simulated ones. Moreover, the dynamic sensitivity indicates localized sensing characteristics of hemisphere-shaped electrostatic sensors.https://doi.org/10.1177/1687814016665050
collection DOAJ
language English
format Article
sources DOAJ
author Xin Tang
Zhongsheng Chen
Yue Li
Zheng Hu
Yongmin Yang
spellingShingle Xin Tang
Zhongsheng Chen
Yue Li
Zheng Hu
Yongmin Yang
Theoretical analysis and finite element method simulations on dynamic sensitivity of hemisphere-shaped electrostatic sensors
Advances in Mechanical Engineering
author_facet Xin Tang
Zhongsheng Chen
Yue Li
Zheng Hu
Yongmin Yang
author_sort Xin Tang
title Theoretical analysis and finite element method simulations on dynamic sensitivity of hemisphere-shaped electrostatic sensors
title_short Theoretical analysis and finite element method simulations on dynamic sensitivity of hemisphere-shaped electrostatic sensors
title_full Theoretical analysis and finite element method simulations on dynamic sensitivity of hemisphere-shaped electrostatic sensors
title_fullStr Theoretical analysis and finite element method simulations on dynamic sensitivity of hemisphere-shaped electrostatic sensors
title_full_unstemmed Theoretical analysis and finite element method simulations on dynamic sensitivity of hemisphere-shaped electrostatic sensors
title_sort theoretical analysis and finite element method simulations on dynamic sensitivity of hemisphere-shaped electrostatic sensors
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2016-08-01
description Electrostatic sensors are key components of electrostatic monitoring systems. Their sensitivity characteristics have a direct influence on monitoring accuracy. In previous studies, spatial sensitivity, which is called static sensitivity here, was used to describe the sensitivity characteristics. However, it only reflects a basic relationship between static charged particles and induced charges on an electrostatic sensor’s probe. Besides, as a three-dimensional defined parameter, it is difficult to build a unified model if actual boundary conditions are considered. Thus, it is not quite proper for applications that detect moving particles. To solve this problem, dynamic sensitivity is proposed in this article. As for a hemisphere-shaped electrostatic sensor, first, a more accurate model of static sensitivity is built. Based on it, dynamic sensitivity is defined and modeled analytically. Then, a calibration method is proposed to improve the model’s accuracy under actual boundary conditions. In the end, finite element method simulations are done for validations. The results demonstrate that dynamic sensitivity reflects a relationship between moving charged particles and the actual output signals of a sensor, thus it is direct and practical for moving particles. And the theoretical results are highly consistent with the simulated ones. Moreover, the dynamic sensitivity indicates localized sensing characteristics of hemisphere-shaped electrostatic sensors.
url https://doi.org/10.1177/1687814016665050
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AT zhongshengchen theoreticalanalysisandfiniteelementmethodsimulationsondynamicsensitivityofhemisphereshapedelectrostaticsensors
AT yueli theoreticalanalysisandfiniteelementmethodsimulationsondynamicsensitivityofhemisphereshapedelectrostaticsensors
AT zhenghu theoreticalanalysisandfiniteelementmethodsimulationsondynamicsensitivityofhemisphereshapedelectrostaticsensors
AT yongminyang theoreticalanalysisandfiniteelementmethodsimulationsondynamicsensitivityofhemisphereshapedelectrostaticsensors
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