Research on an Error Compensation Method of SINS of a Mine Monorail Crane
Underground coal mines belong to the GNSS-denied environment, and the Strapdown Inertial Navigation System (SINS) has a significant advantage in the precise positioning of equipment in this environment because of its operation without requiring interaction with external information and strong anti-i...
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Published in | Energies (Basel) Vol. 16; no. 16; p. 5969 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
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Basel
MDPI AG
01.08.2023
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Abstract | Underground coal mines belong to the GNSS-denied environment, and the Strapdown Inertial Navigation System (SINS) has a significant advantage in the precise positioning of equipment in this environment because of its operation without requiring interaction with external information and strong anti-interference capabilities. Nonetheless, the vibrations of the installation platform adversely affect the positioning accuracy of SINS. This article focuses on the monorail crane in coal mines as the subject of research, developing a dynamic model for the motion unit consisting of the “track + drive unit + driver’s cab”, while analyzing the relationship between track roughness conditions and the vibration excitation of this unit. Subsequently, utilizing the dynamic model, the study calculated the angular and linear vibration characteristics and formulated models to address coning error and sculling error specific to the SINS in this vibration condition. Lastly, by employing a multi-sample compensation algorithm, this article compensated for positioning errors in the SINS caused by track roughness-induced vibrations during uniform straight-line motion of the motion unit, thus achieving optimal positioning information for the monorail crane. The simulation results demonstrated that employing a four-sample compensation algorithm reduces the coning error in SINS positioning calculations by a minimum of 50% and decreases the sculling error by at least 31%, satisfying the positioning accuracy requirements for precise parking of the monorail crane during the transportation phase, while establishing the foundation for autonomous precise positioning and integrated navigation of underground track transport equipment in coal mines. |
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AbstractList | Underground coal mines belong to the GNSS-denied environment, and the Strapdown Inertial Navigation System (SINS) has a significant advantage in the precise positioning of equipment in this environment because of its operation without requiring interaction with external information and strong anti-interference capabilities. Nonetheless, the vibrations of the installation platform adversely affect the positioning accuracy of SINS. This article focuses on the monorail crane in coal mines as the subject of research, developing a dynamic model for the motion unit consisting of the “track + drive unit + driver’s cab”, while analyzing the relationship between track roughness conditions and the vibration excitation of this unit. Subsequently, utilizing the dynamic model, the study calculated the angular and linear vibration characteristics and formulated models to address coning error and sculling error specific to the SINS in this vibration condition. Lastly, by employing a multi-sample compensation algorithm, this article compensated for positioning errors in the SINS caused by track roughness-induced vibrations during uniform straight-line motion of the motion unit, thus achieving optimal positioning information for the monorail crane. The simulation results demonstrated that employing a four-sample compensation algorithm reduces the coning error in SINS positioning calculations by a minimum of 50% and decreases the sculling error by at least 31%, satisfying the positioning accuracy requirements for precise parking of the monorail crane during the transportation phase, while establishing the foundation for autonomous precise positioning and integrated navigation of underground track transport equipment in coal mines. |
Audience | Academic |
Author | Wu, Miao Jiang, Hai Ji, Xiaodong Yang, Yang Du, Jialu |
Author_xml | – sequence: 1 givenname: Hai surname: Jiang fullname: Jiang, Hai – sequence: 2 givenname: Xiaodong orcidid: 0000-0003-2379-3536 surname: Ji fullname: Ji, Xiaodong – sequence: 3 givenname: Yang surname: Yang fullname: Yang, Yang – sequence: 4 givenname: Jialu surname: Du fullname: Du, Jialu – sequence: 5 givenname: Miao surname: Wu fullname: Wu, Miao |
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Cites_doi | 10.2514/3.21382 10.2514/2.7620 10.1049/PBRA017E 10.3901/JME.2013.18.001 10.3390/axioms10030224 10.2514/3.19831 10.1177/1350650114543717 10.2514/2.4228 10.2514/2.4242 |
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SubjectTerms | Accuracy Algorithms Analysis Coal industry Coal mining Compensation and benefits coning error Cranes & hoists Cranes, derricks, etc Electric cranes Electronics in navigation Inertial navigation Inertial navigation (Aeronautics) Methods Mineral industry Mines Mining industry monorail crane multi-sample algorithm precise positioning Radio frequency identification sculling error strapdown inertial navigation Vibration |
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Title | Research on an Error Compensation Method of SINS of a Mine Monorail Crane |
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