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一种混合式电控旋翼操纵特性

田季声 陆洋 王鹏 许细策

田季声, 陆洋, 王鹏, 等. 一种混合式电控旋翼操纵特性[J]. 航空动力学报, 2025, 41(X):20250437 doi: 10.13224/j.cnki.jasp.20250437
引用本文: 田季声, 陆洋, 王鹏, 等. 一种混合式电控旋翼操纵特性[J]. 航空动力学报, 2025, 41(X):20250437 doi: 10.13224/j.cnki.jasp.20250437
TIAN Jisheng, LU Yang, WANG Peng, et al. Handling characteristics of a hybrid electronically controlled rotor[J]. Journal of Aerospace Power, 2025, 41(X):20250437 doi: 10.13224/j.cnki.jasp.20250437
Citation: TIAN Jisheng, LU Yang, WANG Peng, et al. Handling characteristics of a hybrid electronically controlled rotor[J]. Journal of Aerospace Power, 2025, 41(X):20250437 doi: 10.13224/j.cnki.jasp.20250437

一种混合式电控旋翼操纵特性

doi: 10.13224/j.cnki.jasp.20250437
基金项目: 国家自然科学基金(12404514); 航空科学基金(2024M009052002); 国家资助博士后研究人员计划 (GZB20240969); 中国博士后科学基金(2024M754135); 江苏省自然科学基金(BK20241375); 江苏省卓越博士后计划
详细信息
    作者简介:

    田季声(2001-),男,硕士生,主要研究方向为直升机动力学。E-mail:sx2301189@nuaa.edu.cn

    通讯作者:

    陆洋(1977-),男,教授,博士,主要研究方向为直升机动力学及其控制、直升机设计。E-mail:luyang@nuaa.edu.cn

  • 中图分类号: V215.3

Handling characteristics of a hybrid electronically controlled rotor

  • 摘要:

    提出了一种基于宏纤维复合材料(MFC)结合桨根作动器的混合式电控旋翼。为探索这种混合式电控旋翼基于MFC进行周期变距的可行性,首先基于中等变形梁理论,结合MFC压电本构方程,建立了混合式电控旋翼气弹动力学分析模型。并通过与试验结果和CFD计算结果进行对比,初步验证了该模型的正确性。之后基于该分析模型,以MFC模型旋翼为对象,仿真研究了混合式电控旋翼主要控制参数与设计参数对旋翼操纵响应的影响规律。并以±12°的旋翼周期变距范围为设计目标,分析了利用MFC实现混合式电控旋翼周期变距的可行性。仿真结果表明:通过提高MFC驱动电压、增加MFC铺设量、降低桨叶扭转刚度等措施,可有效提高该混合式电控旋翼的弹性扭转操纵量;同时模型桨叶最大可产生约±12°的1 Ω扭转角,达到了周期变距设计目标。

     

  • 图 1  采埃孚公司混合式电控旋翼概念[16]

    Figure 1.  Hybrid electronically controlled rotor of ZFL[16]

    图 2  基于MFC的混合式电控旋翼示意图

    Figure 2.  Hybrid electronically controlled rotor based on MFC

    图 3  桨根坐标系与变形后坐标系

    Figure 3.  Blade root coordinate system and deformed coordinate system

    图 4  单元节点与自由度配置

    Figure 4.  Configuration of Unit nodes and degrees of freedom

    图 5  MFC材料方向定义

    Figure 5.  Definition of MFC material orientation

    图 6  MFC铺设示意与翼型表面MFC微元上的驱动应力

    Figure 6.  Actuation stress on the MFC element over the airfoil

    图 7  主动扭转模型桨叶示意图(单位:m)

    Figure 7.  Active-twist model blade (unit:m)

    图 8  扭转试验用MFC模型桨叶[32]

    Figure 8.  Model blade for torsional testing[32]

    图 9  静止状态下桨尖扭转角计算验证

    Figure 9.  Computational validation of blade tip twist angle in stationary state

    图 10  MFC驱动下的主动扭转角变化

    Figure 10.  Active-twist angle variation under MFC actuation

    图 11  旋转状态下桨叶升力验证

    Figure 11.  Lift validation of rotor blades in rotating state

    图 12  部分参数定义与MFC铺设示意图

    Figure 12.  Schematic diagram of MFC layout and parameter definitions

    图 13  不同驱动电压下的MFC弹性扭转变距操纵量

    Figure 13.  Pitch control from MFC-induced elastic twist under varying actuation voltages

    图 14  不同驱动电压峰峰值下的操纵响应

    Figure 14.  Control response under varying peak-to-peak driving voltages

    图 15  不同驱动频率下的MFC弹性扭转变距操纵量

    Figure 15.  Pitch control from MFC-induced elastic twist under varying driving frequencies

    图 16  不同驱动频率下的操纵响应

    Figure 16.  Control response under varying driving frequencies

    图 17  不同初始相位下的MFC弹性扭转变距操纵量

    Figure 17.  Pitch control from MFC-induced elastic twist under varying initial phases

    图 18  不同初始相位下的操纵响应

    Figure 18.  Control response under varying initial phases

    图 19  不同MFC铺设范围下的弹性扭转变距操纵量

    Figure 19.  Pitch control from MFC-induced elastic twist under varying MFC coverage ranges

    图 20  不同MFC铺设范围下的操纵响应

    Figure 20.  Control response under varying MFC coverage ranges

    图 21  不同MFC铺设位置下的弹性扭转变距操纵量

    Figure 21.  Pitch control from MFC-induced elastic twist under varying MFC placement positions

    图 22  不同MFC铺设位置下的操纵响应

    Figure 22.  Control response under varying MFC placement positions

    图 23  不同MFC纤维铺设角度下的弹性扭转变距操纵量

    Figure 23.  Pitch control from MFC-induced elastic twist under varying MFC fiber orientation angles

    图 24  不同MFC纤维铺设角度下的操纵响应

    Figure 24.  Control response under varying MFC fiber orientation angles

    图 25  不同桨叶扭转刚度下的弹性扭转变距操纵量

    Figure 25.  Pitch control from MFC-induced elastic twist under varying blade torsional stiffness

    图 26  不同桨叶扭转刚度下的操纵响应

    Figure 26.  Control response under varying blade torsional stiffness

    图 27  参数优化配置下的桨叶弹性扭转角时间历程

    Figure 27.  Time history of blade elastic torsion angle under optimized parameter configuration

    图 28  施加偏置电压后的弹性扭转角时间历程

    Figure 28.  Time history of blade elastic torsion angle after applying bias voltage

    表  1  模型旋翼主要物理参数

    Table  1.   Main physical parameters of the rotor

    参数 数值
    直径/m 2.8
    弦长/m 0.121
    根切半径/m 0.2
    转速/(r/min) 600
    桨叶片数 2
    总距/(°) 2
    下载: 导出CSV

    表  2  混合式电控旋翼基本参数

    Table  2.   Fundamental parameters of the HECR rotor

    参数 数值
    直径/m 2.8
    弦长/m 0.121
    根切半径/m 0.2
    转速/(r/min) 600
    桨叶片数 2
    总距/(°) 5
    翼型 NACA23012
    MFC沿弦向长度/m 0.08
    MFC压电常数d33/(pC/N) 487.9
    MFC压电常数d31/(pC/N) −195.8
    下载: 导出CSV

    表  3  单晶MFC材料特性[34]

    Table  3.   Optimized material properties of MFC[34]

    参数 数值
    弹性模量E3/GPa 6.23
    弹性模量E1/GPa 11.08
    切变模量G31/GPa 2.01
    泊松比ν31 0.229
    压电常数d33/(pC/N) 1896.52
    压电常数d31/(pC/N) −861.20
    下载: 导出CSV
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  • 收稿日期:  2025-09-22
  • 网络出版日期:  2025-12-20

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