超声速行星降落时太空舱-刚性降落伞系统的飞行不稳定性研究

IF 5.8 1区 工程技术 Q1 ENGINEERING, AEROSPACE Aerospace Science and Technology Pub Date : 2025-05-01 Epub Date: 2025-02-06 DOI:10.1016/j.ast.2025.110026
Luca Placco , Giulio Soldati , Matteo Bernardini , Francesco Picano
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引用次数: 0

摘要

采用大涡模拟(LES)和浸入边界法(IBM)技术,对超音速飞行状态下降落舱后面的刚性降落伞进行了高保真的时间演化模拟。该研究旨在确定刚性减速器中存在的“呼吸”不稳定性的流体动力学性质,从而使其独立于结构灵活性。下降舱的湍流尾迹与降落伞产生的弓形激波相互作用,作为主要触发因素。通过大涡模拟精确解析的高能湍流结构会引起降落伞激波的局部波动,破坏其与上游流动的平衡,导致激波的连续循环运动。这种运动与舱盖控制体积内流动压力的周期性变化有关,影响降落伞的性能。在仿真结果的基础上,建立了一个零维模型来预测激波运动的非定常动力学和减速器的性能。该模型由胶囊尾迹的输入波动驱动,再现了模拟中观察到的激波位置振荡和阻力变化的主要频率。很明显,不稳定性最终是由低频尾迹扰动引起的。因此,该研究提供了对超音速状态下非定常降落伞响应的影响因素的见解。
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On flight instabilities of capsule-rigid parachute system during supersonic planetary descent
High-fidelity time-evolving simulations of a rigid parachute trailing behind a descent module in a supersonic flight regime have been performed, employing Large-Eddy Simulation (LES) and Immersed-Boundary Method (IBM) techniques. The study aims to establish the fluid dynamic nature of the ‘breathing’ instability present also in a rigid decelerator, and thus its independence from structural flexibility. The turbulent wake of the descent capsule interacts with the bow shock generated by the parachute acting as the primary triggering factor. Energetic turbulent structures, accurately resolved by Large-Eddy Simulation, induce local fluctuations in the parachute shock, destabilizing its equilibrium with the upstream flow and leading to continuous cyclic motion of the shock wave. This motion correlates with periodic variations in flow pressure inside the canopy control volume, impacting parachute performance. Based on simulation results, a zero-dimensional model is developed to predict the unsteady dynamics of the shock motion and the decelerator performance. The model is driven by input fluctuations from the capsule wake, reproducing the main frequencies of shock position oscillations and drag variations as observed in simulations. It is apparent that unsteadiness is eventually triggered by low-frequency wake perturbations. Thus, the study provides insights into factors contributing to unsteady parachute responses in supersonic regimes.
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来源期刊
Aerospace Science and Technology
Aerospace Science and Technology 工程技术-工程:宇航
CiteScore
10.30
自引率
28.60%
发文量
654
审稿时长
54 days
期刊介绍: Aerospace Science and Technology publishes articles of outstanding scientific quality. Each article is reviewed by two referees. The journal welcomes papers from a wide range of countries. This journal publishes original papers, review articles and short communications related to all fields of aerospace research, fundamental and applied, potential applications of which are clearly related to: • The design and the manufacture of aircraft, helicopters, missiles, launchers and satellites • The control of their environment • The study of various systems they are involved in, as supports or as targets. Authors are invited to submit papers on new advances in the following topics to aerospace applications: • Fluid dynamics • Energetics and propulsion • Materials and structures • Flight mechanics • Navigation, guidance and control • Acoustics • Optics • Electromagnetism and radar • Signal and image processing • Information processing • Data fusion • Decision aid • Human behaviour • Robotics and intelligent systems • Complex system engineering. Etc.
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