A Review of Testing Analysis Research for Bio-inspired Flapping-wing Aerial Vehicles
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摘要: 仿生扑翼飞行器因其高机动性、高仿生性和优异气动效率, 在军事和民用领域均展现出广阔应用前景. 测试分析是解析气动机制、验证系统设计和改进研制技术的关键手段, 然而其复杂的飞行机制和非定常气动特性对性能测试与分析优化提出严峻挑战. 为此, 系统梳理面向仿生扑翼飞行器的飞行机理和气动特性分析所采用实验测试技术的发展现状与最新成果, 重点分析风洞测试、液体环境测试和专用测试平台三类测试分析方法. 归纳说明三类测试方法的内容与特点, 并进一步阐述相关发展与贡献, 最后总结并探讨当下仿生扑翼飞行器测试分析的不足之处、面临的挑战及未来发展趋势, 为仿生扑翼飞行器的实验测试分析、测试优化改进提供系统性指导.Abstract: Bio-inspired flapping-wing aerial vehicles, owing to their high maneuverability, strong biomimetic characteristics, and superior aerodynamic efficiency, exhibit broad application prospects in both military and civilian domains. Testing analysis is a key method for analyzing aerodynamic mechanisms, validating system designs and improving development technologies. However, their complex flight mechanisms and unsteady aerodynamic characteristics pose significant challenges to performance testing, analysis and optimization. This paper systematically reviews the current state and recent achievements of experimental testing techniques employed in the study of flight mechanisms and aerodynamic characteristics for bio-inspired flapping-wing aerial vehicles, with particular emphasis on three types of testing analysis methods: Wind tunnel testing, liquid environment testing and specialized testing platforms. The contents and features of these three testing methods are summarized and illustrated, followed by a discussion of their respective developments and contributions. Finally, the shortcomings, challenges and future trends of bio-inspired flapping-wing aerial vehicles testing analysis are summarized and discussed. This study provides systematic guidance for experimental investigations and methodological improvements in the testing and optimization of bio-inspired flapping-wing aerial vehicles.
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表 1 BIFWAVs专用测试平台系统构成
Table 1 System configuration of BIFWAVs specialized testing platform
系统名称 核心能力 关键技术 气动力测量系统 精准获取气动载荷数据, 决定实验数据可靠性 高精度力/力矩传感器、应变传感器、高精度数字天平、定制化力学传感器等 运动学监测系统 捕捉扑翼频率、轨迹及姿态变化, 保障运动参数可控可重复 DIC系统、PIV系统、激光位移传感器、三维运动捕捉系统、光电传感器等 形变测量系统 分析柔性翼被动形变与气动弹性效应, 揭示流固耦合机理 DIC系统、PIV系统、双目视觉技术、光学标记点追踪技术等 辅助系统 实现能耗测量、信号处理与运动驱动控制等, 保障测试协同运行 功率传感器、分流电路、伺服/压电致动器、实时信号处理系统等 表 2 专用测试平台分类与能力对比
Table 2 Classification and capability comparison of specialized testing platforms
平台大类 子分类 核心设计特点 主要测试能力 大中型仿鸟FWAVs测试平台 固定式无风环境测试平台 固定机体或翼面结构, 在无外部来流条件下开展测试, 系统结构相对简单, 易于搭建与维护, 测试成本较低 无风条件下的升力、推力、功率及翼面形变测量 多自由度动态测试平台 集成旋转臂、转台或悬挂支撑结构, 可模拟前飞和俯仰等多种飞行姿态, 支持多自由度协同运动控制 多姿态条件下气动力、功耗与翼面形变的同步测量, 并可实现来流等效模拟 微型仿昆虫FWAVs测试平台 力学性能为主测试平台 搭载高精度微型力/力矩传感器, 重点针对高频扑动下瞬态气动力响应进行测量, 系统动态响应速度快 升力、推力及力矩等核心气动参数的高精度分离与测量 气动弹性为主测试平台 依托高分辨率视觉测量系统, 融合翼面形变重建算法, 重点关注柔性翼被动形变与流场耦合特性 翼面动态形变、气动弹性效应及运动轨迹的同步测量 综合集成化测试平台 融合力学、运动学及流场测试手段, 实现多模态数据的同步采集与关联分析 气动力、翼面形变、能耗及流场特性的综合一体化测量 表 3 BIFWAVs测试方法比较
Table 3 Comparison of BIFWAVs testing methods
测试方法 研究目标 适用范围 测试特征 发展方向 风洞测试 评估BIFWAVs在稳定风场条件下的气动性能 适用于大中型仿鸟FWAVs, 研究非定常气动力机理与尺度效应 可控风场速度、攻角、扑频等, 适合BIFWAVs参数化对比 提升复杂环境适应性与测试的广度、精度 液体环境测试 借助流体黏性放大非定常气动力效应, 揭示扑动机理 常用于微型仿昆虫FWAVs, 适合低雷诺数、低载荷条件下的气动特性研究 易于结合PIV等流场可视化技术研究流场效应 提升耦合机制解析与数据适用一致性 专用测试平台 实现BIFWAVs在静态/动态条件下的多自由度运动学与气动性能耦合测量 适用范围覆盖各类BIFWAVs, 适合各方面气动测试 自由度高, 支撑柔性翼形变机理、驱动能耗与控制策略等各方面综合研究 复杂飞况模拟与提升数据可靠性 -
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