AAM-VDT: Vehicle Digital Twin for Tele-Operations in Advanced Air Mobility

Fuente: arXiv
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Autori principali: Nguyen, Tuan Anh, Kwag, Taeho, Pham, Vinh, Nguyen, Viet Nghia, Hyun, Jeongseok, Jang, Minseok, Lee, Jae-Woo
Natura: Preprint
Pubblicazione: 2024
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author Nguyen, Tuan Anh
Kwag, Taeho
Pham, Vinh
Nguyen, Viet Nghia
Hyun, Jeongseok
Jang, Minseok
Lee, Jae-Woo
author_facet Nguyen, Tuan Anh
Kwag, Taeho
Pham, Vinh
Nguyen, Viet Nghia
Hyun, Jeongseok
Jang, Minseok
Lee, Jae-Woo
contents This study advanced tele-operations in Advanced Air Mobility (AAM) through the creation of a Vehicle Digital Twin (VDT) system for eVTOL aircraft, tailored to enhance remote control safety and efficiency, especially for Beyond Visual Line of Sight (BVLOS) operations. By synergizing digital twin technology with immersive Virtual Reality (VR) interfaces, we notably elevate situational awareness and control precision for remote operators. Our VDT framework integrates immersive tele-operation with a high-fidelity aerodynamic database, essential for authentically simulating flight dynamics and control tactics. At the heart of our methodology lies an eVTOL's high-fidelity digital replica, placed within a simulated reality that accurately reflects physical laws, enabling operators to manage the aircraft via a master-slave dynamic, substantially outperforming traditional 2D interfaces. The architecture of the designed system ensures seamless interaction between the operator, the digital twin, and the actual aircraft, facilitating exact, instantaneous feedback. Experimental assessments, involving propulsion data gathering, simulation database fidelity verification, and tele-operation testing, verify the system's capability in precise control command transmission and maintaining the digital-physical eVTOL synchronization. Our findings underscore the VDT system's potential in augmenting AAM efficiency and safety, paving the way for broader digital twin application in autonomous aerial vehicles.
format Preprint
id arxiv_https___arxiv_org_abs_2404_09621
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle AAM-VDT: Vehicle Digital Twin for Tele-Operations in Advanced Air Mobility
Nguyen, Tuan Anh
Kwag, Taeho
Pham, Vinh
Nguyen, Viet Nghia
Hyun, Jeongseok
Jang, Minseok
Lee, Jae-Woo
Systems and Control
Emerging Technologies
Human-Computer Interaction
Robotics
This study advanced tele-operations in Advanced Air Mobility (AAM) through the creation of a Vehicle Digital Twin (VDT) system for eVTOL aircraft, tailored to enhance remote control safety and efficiency, especially for Beyond Visual Line of Sight (BVLOS) operations. By synergizing digital twin technology with immersive Virtual Reality (VR) interfaces, we notably elevate situational awareness and control precision for remote operators. Our VDT framework integrates immersive tele-operation with a high-fidelity aerodynamic database, essential for authentically simulating flight dynamics and control tactics. At the heart of our methodology lies an eVTOL's high-fidelity digital replica, placed within a simulated reality that accurately reflects physical laws, enabling operators to manage the aircraft via a master-slave dynamic, substantially outperforming traditional 2D interfaces. The architecture of the designed system ensures seamless interaction between the operator, the digital twin, and the actual aircraft, facilitating exact, instantaneous feedback. Experimental assessments, involving propulsion data gathering, simulation database fidelity verification, and tele-operation testing, verify the system's capability in precise control command transmission and maintaining the digital-physical eVTOL synchronization. Our findings underscore the VDT system's potential in augmenting AAM efficiency and safety, paving the way for broader digital twin application in autonomous aerial vehicles.
title AAM-VDT: Vehicle Digital Twin for Tele-Operations in Advanced Air Mobility
topic Systems and Control
Emerging Technologies
Human-Computer Interaction
Robotics
url https://arxiv.org/abs/2404.09621