MODELING OF A CONTROLLED ELECTROMAGNETIC VIBRATION DRIVE WITH A VARIABLE RESONANT FREQUENCY

Q3 Energy
O. Cherno, A. Kozlov
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Abstract

The technology for the production of high-quality concrete products includes the vibration of the concrete mixture at various frequencies. For this, an electromagnetic vibration drive can be used, which has high reliability, durability and controllability. For its effective application, it is necessary to adjust the resonance frequency of the oscillating system in order to ensure the near-resonance mode of operation at different frequencies. This is possible by using devices with adjustable stiffness, in particular, controlled dynamic vibration absorbers with nonlinear elastic elements. In the article the electromagnetic, electromechanical, mechanical, and energy processes in a controlled vibration system, which includes an electromagnetic vibrator and a vibration absorber with conical springs, the stiffness of which is regulated by compression using a press, have been investigated. Using the circle-field method, a mathematical and simulation model of electromagnetic and electromechanical processes in the vibrator has been developed. For this purpose, numerical calculations of the magnetic field in the vibrator have been performed and, based on the obtained results, the functional dependences between the electromagnetic force, magnetic flux, magnetomotive force and the size of the air gap have been determined. A model of the mechanics of the oscillating system, processes in the vibration absorber press drive and processes in the control system has been also developed. The built simulation models were combined into a general model in the Simulink environment, by means of which the time diagrams of the processes have been obtained. The modeling results show that the system provides a smooth transition from one vibration frequency to another while maintaining the specified amplitude of the working body oscillations and near-resonance mode with high energy efficiency. References 12, figures 10, tables 3.
具有可变谐振频率的受控电磁振动驱动器的建模
生产高质量混凝土产品的技术包括混凝土混合料在不同频率下的振动。为此,可以采用电磁振动驱动,具有较高的可靠性、耐久性和可控性。为了使其有效应用,需要对振荡系统的谐振频率进行调整,以保证在不同频率下的近谐振工作模式。这可以通过使用具有可调刚度的设备,特别是具有非线性弹性元件的可控动态吸振器来实现。本文研究了一个可控振动系统的电磁、机电、机械和能量过程,该系统包括一个电磁激振器和一个带锥形弹簧的吸振器,其刚度通过压力机的压缩来调节。利用圆场法,建立了振动器内电磁和机电过程的数学模型和仿真模型。为此,对振动器中的磁场进行了数值计算,并根据所得结果确定了电磁力、磁通量、磁动势与气隙大小之间的函数依赖关系。还建立了振动系统的力学模型、减振器压力机驱动过程和控制系统过程。将所建立的仿真模型在Simulink环境中组合成一个通用模型,并通过该模型得到各工序的时间图。建模结果表明,该系统在保持工作体振荡幅值和近共振模式的前提下,实现了从一个振动频率到另一个振动频率的平稳过渡,具有较高的能量效率。参考文献12,图10,表3。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Technical Electrodynamics
Technical Electrodynamics Energy-Energy Engineering and Power Technology
CiteScore
1.80
自引率
0.00%
发文量
72
审稿时长
4 weeks
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