新一代重型机载装甲车辆着陆缓冲分析

IF 1.2 4区 工程技术 Q3 ENGINEERING, AEROSPACE Aircraft Engineering and Aerospace Technology Pub Date : 2024-05-10 DOI:10.1108/aeat-11-2023-0305
Chaoyu Lu, Jinbao Chen, Chen Wang, Zhicheng Song
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引用次数: 0

摘要

目的本研究的目的是确保新一代装甲车辆着陆缓冲装置的成功实施,并显著提高其质量。为精确分析新一代装甲车的缓冲性能,建立了一个考虑到复杂行驶系统的非线性有限元动力学模型。该模型考虑了各种非线性因素的影响,以测量拟议模型与传统模型之间的动态响应差异。分析了安全气囊在不同着陆条件下的缓冲性能及其各种影响因素。研究结果行走系统对车辆关键点的影响较大,与传统模型相比,其上甲板后端具有较大的加速度波动。增加车身材料刚度有助于减小这种波动。建立的非线性有限元模型可以有效地分析机载装甲车辆的着陆缓冲性能。外部气囊排气孔的面积对缓冲性能影响较大,缓冲系统在各种工况下都具有优异的缓冲性能。将各类复杂结构之间的相互作用全部纳入分析过程,得出了有价值的新结论。定量揭示了传统模拟模型在多个维度上的分析误差及其形成原因。基于高精度仿真模型,验证了所设计的气囊缓冲系统对新一代重型机载装甲车辆具有优异的缓冲效果。 原创性/价值该工作的新颖性来自于新型大载荷机载装甲车辆对低过载平稳着陆的需求,并提供了一个量化传统分析模型误差和误差原理的高精度模型。
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Landing cushioning analysis of new generation heavy airborne armored vehicles

Purpose

The purpose of this study is to ensure the successful implementation of a landing cushion for the new generation armored vehicles with significantly enhanced quality. Furthermore, to introduce a high-precision landing cushioning analysis model.

Design/methodology/approach

To accurately analyze the cushioning performance of the new generation armored vehicles, a nonlinear finite element dynamics model considering the complex travel system was established. The model considered the influence of various nonlinear factors to measure the dynamic response difference between the proposed and traditional models. The cushioning performance of airbags under different landing conditions and their various influence factors were analyzed.

Findings

The travel system has a large influence on the key points of the vehicle, whose rear end of the upper deck has a larger acceleration fluctuation compared with the traditional model. The increase in the body material stiffness is helpful to reduce this fluctuation. The established nonlinear finite element model can effectively analyze the landing cushioning performance of airborne armored vehicles. The area of the external airbag vent has a large influence on the cushioning performance, and the cushioning system has excellent cushioning performance under various operating conditions.

Practical implications

This study introduces the travel system, which is ignored by traditional analytical models. The interactions between various types of complex structures are included in the analysis process in its entirety, leading to valuable new conclusions. Quantitatively reveals the analytical errors of traditional simulation models in multiple dimensions and the reasons for their formation. Based on a high-precision simulation model, it is verified that the designed airbag cushioning system has an excellent cushioning effect for the new generation of heavy airborne armored vehicles.

Originality/value

The novelty of this work comes from the need for smooth landing with low overload for a new type of large-load airborne armored vehicle and provides a high-precision model that quantifies the traditional analytical modeling errors and error principle.

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来源期刊
Aircraft Engineering and Aerospace Technology
Aircraft Engineering and Aerospace Technology 工程技术-工程:宇航
CiteScore
3.20
自引率
13.30%
发文量
168
审稿时长
8 months
期刊介绍: Aircraft Engineering and Aerospace Technology provides a broad coverage of the materials and techniques employed in the aircraft and aerospace industry. Its international perspectives allow readers to keep up to date with current thinking and developments in critical areas such as coping with increasingly overcrowded airways, the development of new materials, recent breakthroughs in navigation technology - and more.
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