中国民航大学学报 ›› 2026, Vol. 44 ›› Issue (1): 73-79.

• 未来机场及智能装备 • 上一篇    下一篇

小型飞机无杆牵引车车架动力学仿真及优化设计

  

  1. 中国民航大学航空工程学院,天津 300300
  • 收稿日期:2025-02-22 修回日期:2025-04-07 出版日期:2026-02-28 发布日期:2026-03-07
  • 作者简介:祝恒佳(1987— ),男,湖北黄冈人,副教授,博士,研究方向为车辆动力学、多体动力学、机场特种车辆与作业.
  • 基金资助:
    中央高校基本科研业务费专项(3122022066)

Dynamic simulation and optimization design of the frame for a small aircrafttowbarless towing vehicle

  1. College of A eronautical Engineering, CAUC, Tianjin 300300, China
  • Received:2025-02-22 Revised:2025-04-07 Online:2026-02-28 Published:2026-03-07

摘要: 牵引车车架作为飞机无杆牵引车的核心承载结构,其强度和刚度直接决定了飞机牵引滑行系统的安全性本文设计了一款针对小型飞机牵引需求的牵引车车架结构,并构建了相应的动力学仿真模型,深入探讨牵引速度与路面障碍凸起高度对车架受力的影响。通过有限元仿真分析、结构优化设计及实验验证发现:当牵引车后轮接触障碍凸起时,车架左、右侧梁将产生对称且相等的最大作用力,且该作用力随牵引速度的提升而显著增大;在牵引速度达到30kmh、障碍凸起高度为30mm的工况下,车架受力与应力水平达到峰值,导致局部应力值超出材料许用应力范围;经过结构优化,车架在未超过许用应力的前提下,承载能力提升了86.31%,并通过实验数据验证了优化后模型的准确性。本文可为牵引车车架的后续设计与优化提供重要的理论依据和实践参考。

关键词: 飞机牵引滑行, 无杆牵引车, Adams仿真, 有限元模型, 车辆动力学

Abstract: The frame of the towing vehicle, as the core load-bearing structure of the aireraft towbarless towing vehicle, di-rectly determines the safety of the aircraft towing and taxiing system through its strength and stiffness. This paperdesigns a frame structure for the towing vehicle tailored to the towing requirements of small aircraft and developsa corresponding dynamic simulation model to thoroughly investigate the effects of towing speed and road obstaclebump height on frame loading. Finite element simulation, structural optimization design, and experimental vali-dation reveal that when the rear wheels of the towing vehicle encounter an obstacle bump, symmetric and equalmaximum forces are generated on the left and right side beams of the frame, and these forces increase significant-y with increasing towing speed. Under the condition of a towing speed of 30 km/h and an obstacle bump height of30 mm, the frame loading and stress level reach their peaks, causing local stress values to exceed the material'sallowable stress limit. After structural optimization, the frame's load-carrying capacity is improved by 86.31%without exceeding the allowable stress, and the accuracy of the optimized model is validated by experimental da-a. This paper can provide important theoretical basis and practical reference for the subsequent design and opti-mization of towing vehicle frames.

Key words: aircraft towing and taxiing, towbarless towing vehicle, Adams simulation, finite element model, vehicle dynamics

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