Development of shock absorber with quasi-zero stiffness effect to reduce dynamic effects on pump unit

A. Gareev, A. Valeev
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Abstract

The article is devoted to the improvement of the vibration isolation and shockproof properties of the shock absorber used in the vibration isolation compensator system of the pumping unit (PU). The set task is to create an elastic damping system with the desired low (quasi-zero) stiffness, which makes it possible to reduce the detrimental effect of pumping unit vibrations both on human health and on the equipment itself. High internal dynamic (vibration) loads are the main causes of early failure of pumping units, which are transmitted to the equipment through pipelines and foundations, mainly due to various operational factors. A promising trend in increasing the operating reliability and efficiency of pumping and power equipment is the use of a vibration-isolating compensator system (VICS). To obtain greater efficiency of vibration isolation, it is proposed to apply a modern method of vibration damping – the use of elastic mechanical systems with quasi-zero stiffness. The damping devices with a quasi-zero stiffness effect were studied. An assessment of the operability and effectiveness of these dampers at oil and gas facilities was given. Based on the information studied, a new concept of a quasi-zero stiffness damping device is proposed. The method of mathematical analysis determined its power curve. A 3D model of the damper device was built using a simulation software. The functional check of the damper was performed with mathematical modeling carried out on the computing device with the help of a specialized Ansys software that allows performing a system analysis of an object using the finite element method. The following results were obtained: the design of the damper with the effect of quasi-zero stiffness allows to widen the range of basement load transmission coefficient reduction towards low frequencies. The low rigidity of the system at the operating point ensures low values of the frequency of natural oscillations, and, consequently, high vibration isolation qualities.
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准零刚度减振器的研制以减小泵机组的动力效应
本文对抽油机隔振补偿系统中所用减振器的隔振和防震性能进行了改进。设定的任务是创建一个具有所需的低(准零)刚度的弹性阻尼系统,从而可以减少抽油机振动对人体健康和设备本身的有害影响。高的内部动(振动)载荷是引起抽油机早期失效的主要原因,这些载荷通过管道和基础传递给设备,主要是由各种运行因素引起的。隔振补偿系统(VICS)是提高泵送和电力设备运行可靠性和效率的一个有前途的趋势。为了获得更高的隔振效率,提出了一种现代的减振方法——使用准零刚度的弹性机械系统。研究了具有准零刚度效应的阻尼装置。对这些阻尼器在油气设施中的可操作性和有效性进行了评估。在此基础上,提出了准零刚度阻尼装置的概念。用数学分析的方法确定了其功率曲线。利用仿真软件建立了阻尼器的三维模型。阻尼器的功能校核是在专用的Ansys软件的帮助下在计算设备上进行的数学建模,该软件允许使用有限元方法对对象进行系统分析。研究结果表明:准零刚度阻尼器的设计可以扩大低频基底荷载传递系数的衰减范围;系统在工作点处的低刚度确保了自然振荡频率的低值,因此具有高隔振质量。
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