Entire aerial-aquatic trajectory modeling and optimization for trans-medium vehicles

Trans-medium flight vehicles can combine high aerial maneuverability and underwater concealment ability, which have attracted much attention recently. As the most crucial procedure, the trajectory design generally determines the trans-medium flight vehicle performance. To quantitatively analyze the...

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Main Authors: Teng Long, Nianhui Ye, Baoshou Zhang, Jingliang Sun, Renhe Shi
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2025-07-01
Series:Defence Technology
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Online Access:http://www.sciencedirect.com/science/article/pii/S2214914725000534
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author Teng Long
Nianhui Ye
Baoshou Zhang
Jingliang Sun
Renhe Shi
author_facet Teng Long
Nianhui Ye
Baoshou Zhang
Jingliang Sun
Renhe Shi
author_sort Teng Long
collection DOAJ
description Trans-medium flight vehicles can combine high aerial maneuverability and underwater concealment ability, which have attracted much attention recently. As the most crucial procedure, the trajectory design generally determines the trans-medium flight vehicle performance. To quantitatively analyze the flight vehicle performance, an entire aerial-aquatic trajectory model is developed in this paper. Different from modeling a trajectory purely for the water entry process, the constructed entire trajectory model has integrated aerial, water entry, and underwater trajectories together, which can consider the influence of the connected trajectories. As for the aerial and underwater trajectories, explicit dynamic models are established to obtain the trajectory parameters. Due to the complicated fluid force during high-velocity water entry, a computational fluid dynamics model is investigated to analyze this phase. The computational domain size is adaptively refined according to the final aerial trajectory state, where the redundant computational domain is removed. An entire trajectory optimization problem is then formulated to maximize the total flight range via tuning the joint states of different trajectories. Simultaneously, several constraints, i.e., the max impact load, trajectory height, etc., are involved in the optimization problem. Rather than directly optimizing by a heuristic algorithm, a multi-surrogate cooperative sampling-based optimization method is proposed to alleviate the computational complexity of the entire trajectory optimization problem. In this method, various surrogates cooperatively generate infill sample points, thereby preventing the poor approximation. After optimization, the total flight range can be improved by 20%, while all the constraints are satisfied. The result demonstrates the effectiveness and practicability of the developed model and optimization framework.
format Article
id doaj-art-97bc8c480e4c4a789b3dfc02ca0ebc39
institution Kabale University
issn 2214-9147
language English
publishDate 2025-07-01
publisher KeAi Communications Co., Ltd.
record_format Article
series Defence Technology
spelling doaj-art-97bc8c480e4c4a789b3dfc02ca0ebc392025-08-20T03:24:30ZengKeAi Communications Co., Ltd.Defence Technology2214-91472025-07-014922324110.1016/j.dt.2025.02.013Entire aerial-aquatic trajectory modeling and optimization for trans-medium vehiclesTeng Long0Nianhui Ye1Baoshou Zhang2Jingliang Sun3Renhe Shi4School of Aerospace Engineering, Beijing Institute of Technology, Beijing 100081, China; Key Laboratory of Dynamics and Control of Flight Vehicle, Ministry of Education, Beijing 100081, China; National Key Laboratory of Land and Air Based Information Perception and Control, Beijing 100081, China; Corresponding author.School of Aerospace Engineering, Beijing Institute of Technology, Beijing 100081, ChinaSchool of Aerospace Engineering, Beijing Institute of Technology, Beijing 100081, China; Key Laboratory of Dynamics and Control of Flight Vehicle, Ministry of Education, Beijing 100081, China; National Key Laboratory of Land and Air Based Information Perception and Control, Beijing 100081, China; Corresponding author.School of Aerospace Engineering, Beijing Institute of Technology, Beijing 100081, China; Key Laboratory of Dynamics and Control of Flight Vehicle, Ministry of Education, Beijing 100081, China; National Key Laboratory of Land and Air Based Information Perception and Control, Beijing 100081, ChinaSchool of Aerospace Engineering, Beijing Institute of Technology, Beijing 100081, China; Key Laboratory of Dynamics and Control of Flight Vehicle, Ministry of Education, Beijing 100081, China; National Key Laboratory of Land and Air Based Information Perception and Control, Beijing 100081, ChinaTrans-medium flight vehicles can combine high aerial maneuverability and underwater concealment ability, which have attracted much attention recently. As the most crucial procedure, the trajectory design generally determines the trans-medium flight vehicle performance. To quantitatively analyze the flight vehicle performance, an entire aerial-aquatic trajectory model is developed in this paper. Different from modeling a trajectory purely for the water entry process, the constructed entire trajectory model has integrated aerial, water entry, and underwater trajectories together, which can consider the influence of the connected trajectories. As for the aerial and underwater trajectories, explicit dynamic models are established to obtain the trajectory parameters. Due to the complicated fluid force during high-velocity water entry, a computational fluid dynamics model is investigated to analyze this phase. The computational domain size is adaptively refined according to the final aerial trajectory state, where the redundant computational domain is removed. An entire trajectory optimization problem is then formulated to maximize the total flight range via tuning the joint states of different trajectories. Simultaneously, several constraints, i.e., the max impact load, trajectory height, etc., are involved in the optimization problem. Rather than directly optimizing by a heuristic algorithm, a multi-surrogate cooperative sampling-based optimization method is proposed to alleviate the computational complexity of the entire trajectory optimization problem. In this method, various surrogates cooperatively generate infill sample points, thereby preventing the poor approximation. After optimization, the total flight range can be improved by 20%, while all the constraints are satisfied. The result demonstrates the effectiveness and practicability of the developed model and optimization framework.http://www.sciencedirect.com/science/article/pii/S2214914725000534Water entryTrans-medium vehicleComputational fluid dynamicsTrajectory optimizationPseudospectral methodSurrogate
spellingShingle Teng Long
Nianhui Ye
Baoshou Zhang
Jingliang Sun
Renhe Shi
Entire aerial-aquatic trajectory modeling and optimization for trans-medium vehicles
Defence Technology
Water entry
Trans-medium vehicle
Computational fluid dynamics
Trajectory optimization
Pseudospectral method
Surrogate
title Entire aerial-aquatic trajectory modeling and optimization for trans-medium vehicles
title_full Entire aerial-aquatic trajectory modeling and optimization for trans-medium vehicles
title_fullStr Entire aerial-aquatic trajectory modeling and optimization for trans-medium vehicles
title_full_unstemmed Entire aerial-aquatic trajectory modeling and optimization for trans-medium vehicles
title_short Entire aerial-aquatic trajectory modeling and optimization for trans-medium vehicles
title_sort entire aerial aquatic trajectory modeling and optimization for trans medium vehicles
topic Water entry
Trans-medium vehicle
Computational fluid dynamics
Trajectory optimization
Pseudospectral method
Surrogate
url http://www.sciencedirect.com/science/article/pii/S2214914725000534
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AT baoshouzhang entireaerialaquatictrajectorymodelingandoptimizationfortransmediumvehicles
AT jingliangsun entireaerialaquatictrajectorymodelingandoptimizationfortransmediumvehicles
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