Research status of helicopter variable rotor speed technology
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Affiliation:

1.AVIC Hunan Power Machinery Research Institute, Zhuzhou, Hunan 412002, P. R. China;2.State Key Laboratory of Mechanical Transmissions, Chongqing University, Chongqing 400044, P. R. China

Clc Number:

D460

Fund Project:

Supported by National Natural Science Foundation of China (52072053).

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    Abstract:

    Helicopters possess unique advantages such as vertical takeoff and landing, hovering, and low altitude maneuvering flight, playing crucial roles in military and civil aviation. However, issues such as low speed, high fuel consumption, limited range, and high noise levels, have become constraints on expanding the application market of helicopters in both military and civil sectors. Variable rotor speed technology offers a solution by dynamically adjusting rotor speed according to flight conditions, effectively mitigating these shortcomings and improving helicopter performance. Consequently, it has emerged as an important research area in helicopter technology. Currently, variable rotor speed technology faces numerous challenges concerning its impact on helicopter performance, optimization and control, controls derived from variable rotor speed technology, and implementation. This paper provides a summary of research findings on variable rotor speed technology, focusing on three key aspects: the impact analysis of variable rotor speed on helicopter performance, optimization and control methods, and the realization of variable rotor speed technology. The aim is to provide a valuable insights into the development of variable rotor speed technology of high-performance helicopter.

    Table 1 Helicopters with variable rotor speed technology and their variable speed implementation methods
    Fig.1 Classic types of variable rotor speed helicopter
    Fig.2 Rotor power vs rotor speed[36]
    Fig.3 Variation curve of operation variable with rotor speed[36]
    Fig.4 Characteristic curves of turboshaft engine (power turbine with variable speed)[66]
    Fig.5 Schematic diagram of torque sequence transfer control in dual engine configuration
    Fig.6 Two-speed transmission configuration with fixed-axis planetary gear
    Fig.7 Two-speed configuration with fixed-axis planetary and idler gear
    Fig.8 Two-speed configuration with reversing and fixed-axis double planetary gear[18]
    Fig.9 Two-speed transmission configuration with fixed axis planetary gear-face gear[18]
    Fig.10 Two-speed transmission configuration with offset compound gear
    Fig.11 Two-speed configuration with clutch-free gear[17]
    Fig.12 Two-speed configuration with clutch-differential gear-train[17]
    Fig.13 Double clutch two-stage variable speed transmission configuration
    Fig.14 Two-speed transmission configuration with external variable speed mechanism[112]
    Fig.15 Continuously variable transmission configuration with dual input differential gear train[100]
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陈广艳,贾清龙,胡明辉,曾利.直升机变旋翼转速技术研究现状[J].重庆大学学报,2024,47(7):1~20

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History
  • Received:May 24,2022
  • Online: August 15,2024
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