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A Rotational Gyroscope with a Water-Film Bearing Based on Magnetic Self-Restoring Effect

Stable rotor levitation is a challenge for rotational gyroscopes (magnetically suspended gyroscopes (MSG) and electrostatically suspended gyroscopes (ESG)) with a ring- or disk-shaped rotor, which restricts further improvement of gyroscope performance. In addition, complicated pick-up circuits and f...

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Autores principales: Chen, Dianzhong, Liu, Xiaowei, Zhang, Haifeng, Li, Hai, Weng, Rui, Li, Ling, Rong, Wanting, Zhang, Zhongzhao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5855013/
https://www.ncbi.nlm.nih.gov/pubmed/29385105
http://dx.doi.org/10.3390/s18020415
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author Chen, Dianzhong
Liu, Xiaowei
Zhang, Haifeng
Li, Hai
Weng, Rui
Li, Ling
Rong, Wanting
Zhang, Zhongzhao
author_facet Chen, Dianzhong
Liu, Xiaowei
Zhang, Haifeng
Li, Hai
Weng, Rui
Li, Ling
Rong, Wanting
Zhang, Zhongzhao
author_sort Chen, Dianzhong
collection PubMed
description Stable rotor levitation is a challenge for rotational gyroscopes (magnetically suspended gyroscopes (MSG) and electrostatically suspended gyroscopes (ESG)) with a ring- or disk-shaped rotor, which restricts further improvement of gyroscope performance. In addition, complicated pick-up circuits and feedback control electronics propose high requirement on fabrication technology. In the proposed gyroscope, a ball-disk shaped rotor is supported by a water-film bearing, formed by centrifugal force to deionized water at the cavity of the lower supporting pillar. Water-film bearing provides stable mechanical support, without the need for complicated electronics and control system for rotor suspension. To decrease sliding friction between the rotor ball and the water-film bearing, a supherhydrophobic surface (SHS) with nano-structures is fabricated on the rotor ball, resulting in a rated spinning speed increase of 12.4% (under the same driving current). Rotor is actuated by the driving scheme of brushless direct current motor (BLDCM). Interaction between the magnetized rotor and the magnetic-conducted stator produces a sinusoidal rotor restoring torque, amplitude of which is proportional to the rotor deflection angle inherently. Utilization of this magnetic restoring effect avoids adding of a high amplitude voltage for electrostatic feedback, which may cause air breakdown. Two differential capacitance pairs are utilized to measure input angular speeds at perpendicular directions of the rotor plane. The bias stability of the fabricated gyroscope is as low as 0.5°/h.
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spelling pubmed-58550132018-03-20 A Rotational Gyroscope with a Water-Film Bearing Based on Magnetic Self-Restoring Effect Chen, Dianzhong Liu, Xiaowei Zhang, Haifeng Li, Hai Weng, Rui Li, Ling Rong, Wanting Zhang, Zhongzhao Sensors (Basel) Article Stable rotor levitation is a challenge for rotational gyroscopes (magnetically suspended gyroscopes (MSG) and electrostatically suspended gyroscopes (ESG)) with a ring- or disk-shaped rotor, which restricts further improvement of gyroscope performance. In addition, complicated pick-up circuits and feedback control electronics propose high requirement on fabrication technology. In the proposed gyroscope, a ball-disk shaped rotor is supported by a water-film bearing, formed by centrifugal force to deionized water at the cavity of the lower supporting pillar. Water-film bearing provides stable mechanical support, without the need for complicated electronics and control system for rotor suspension. To decrease sliding friction between the rotor ball and the water-film bearing, a supherhydrophobic surface (SHS) with nano-structures is fabricated on the rotor ball, resulting in a rated spinning speed increase of 12.4% (under the same driving current). Rotor is actuated by the driving scheme of brushless direct current motor (BLDCM). Interaction between the magnetized rotor and the magnetic-conducted stator produces a sinusoidal rotor restoring torque, amplitude of which is proportional to the rotor deflection angle inherently. Utilization of this magnetic restoring effect avoids adding of a high amplitude voltage for electrostatic feedback, which may cause air breakdown. Two differential capacitance pairs are utilized to measure input angular speeds at perpendicular directions of the rotor plane. The bias stability of the fabricated gyroscope is as low as 0.5°/h. MDPI 2018-01-31 /pmc/articles/PMC5855013/ /pubmed/29385105 http://dx.doi.org/10.3390/s18020415 Text en © 2018 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
Chen, Dianzhong
Liu, Xiaowei
Zhang, Haifeng
Li, Hai
Weng, Rui
Li, Ling
Rong, Wanting
Zhang, Zhongzhao
A Rotational Gyroscope with a Water-Film Bearing Based on Magnetic Self-Restoring Effect
title A Rotational Gyroscope with a Water-Film Bearing Based on Magnetic Self-Restoring Effect
title_full A Rotational Gyroscope with a Water-Film Bearing Based on Magnetic Self-Restoring Effect
title_fullStr A Rotational Gyroscope with a Water-Film Bearing Based on Magnetic Self-Restoring Effect
title_full_unstemmed A Rotational Gyroscope with a Water-Film Bearing Based on Magnetic Self-Restoring Effect
title_short A Rotational Gyroscope with a Water-Film Bearing Based on Magnetic Self-Restoring Effect
title_sort rotational gyroscope with a water-film bearing based on magnetic self-restoring effect
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5855013/
https://www.ncbi.nlm.nih.gov/pubmed/29385105
http://dx.doi.org/10.3390/s18020415
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