三自由度声共振系统的共振频率跟踪控制

Junjie Wu, Xiaobin Zhan, Tielin Shi
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引用次数: 0

摘要

共振可以提高机械系统的能量转换和传输效率。然而,由于负载波动,通过跟踪谐振频率来保持有效的谐振行为可能具有挑战性。本研究针对三自由度声共振系统(3DOFARS)介绍了一种基于软件的锁相环(SPLL)控制方法。首先提供了控制 3DOFARS 行为的动态方程,然后根据幅相频特性曲线进行了频域分析。随后,通过考虑系统激励信号和响应信号之间的相位关系,开发了 SPLL 控制方法,并使用 Simulink 建立了控制模型。对于具有特定振幅和频率变化的阶跃、斜坡和正弦扰动,SPLL 控制方法可以实时跟踪激励频率到谐振频率。在这些干扰中,阶跃干扰比斜率干扰和正弦干扰造成系统不稳定的风险更大。最后,通过引入不同类型、振幅和频率的高质量干扰,进行了仿真验证和统计分析,以评估 SPLL 控制方法对不同干扰的影响。在稳定条件下,SPLL 方法对低频干扰有更好的控制能力,对高频干扰有更好的鲁棒性。与传统方法相比,SPLL 控制方法能有效地将激励频率实时跟踪到谐振频率,同时保持工艺流程的完整性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Resonance frequency tracking control of a three-degree-of-freedom acoustic resonance system
Resonance can enhance energy conversion and transmission efficiency in mechanical systems. However, maintaining effective resonant behavior by tracking the resonant frequency can be challenging due to load fluctuations. This study introduces a software-based phase-locked loop (SPLL) control method for three-degree-of-freedom acoustic resonant systems (3DOFARS). Initially, the dynamic equation governing the behavior of 3DOFARS is provided, followed by a frequency domain analysis based on the amplitude-phase frequency characteristic curve. Subsequently, the SPLL control method is developed by considering the phase relationship between the system’s excitation signal and response signal, and a control model is then established using Simulink. For the step, slope, and sinusoidal disturbances with specific amplitude and frequency variations, the SPLL control method can track the excitation frequency to the resonant frequency in real time. Among these disturbances, step disturbances pose a greater risk of system instability compared to slope and sinusoidal disturbances. Finally, simulation verification and statistical analysis are carried out by introducing quality interferences of varying types, amplitudes, and frequencies to assess the SPLL control method’s impact on different interferences. Under stable conditions, the SPLL method has better control capabilities against low-frequency interference and better robustness against high-frequency interference. In comparison to conventional methods, the SPLL control method effectively maintains real-time tracking of the excitation frequency to the resonant frequency while upholding process flow integrity.
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