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Unsteady Phenomena Induced Pressure Pulsation and Radial Load in a Centrifugal Pump with Slope Volute

机译:倾斜蜗壳离心泵中的非稳态现象引起的压力脉动和径向载荷

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Vibration in centrifugal pump still remains a tough problem to solve. Many studied have been done to find the relationship between hydraulic design and vibration. Both experiments and numerical simulation methods have been proposed to make clear the influence of pump parameters related to vibration. It is evident that unsteady phenomena in centrifugal pump are the main factors causing vibration. Also motor-stator interaction of impeller and volute keeps predominant role considering hydraulic factors. Till now almost all reported researches consider pump geometry parameters, but the shape of volute is rarely proposed. To reduce interaction between impeller and volute tongue, a special volute with slope diffuser section is put forward in this paper. The relative position of volute tongue changes compared to the conventional spiral volute. Thus the effect of flow field striking with volute tongue can be receded effectively, and vibration will be reduced. As the developing of computer technology, it is possible for us to achieve the unsteady flow field inner pump by using numerical simulation methods. A commercial software Fluent was adopted to analyze pressure pulsation and radial load of model pump. Slant angle and clearance rate were optimized considering pressure magnitude. It is observed that pressure amplitude at blade passing frequency achieve the lowest level at slant angle 15~0. Pressure magnitude decreases significantly with the increasing of clearance, but limited to radial size of volute, it is suggested to be in the range of 0.134~0.250. Several monitor points are selected along the volute to have overall understanding of pressure pulsation characteristics. Pressure pulsation at blade passing frequency keeps the predominant in motor-stator interaction. Amplitude of both pressure and radial load increase rapidly when pump operating at off designed conditions.
机译:离心泵中的振动仍然是一个棘手的难题。为了找到水力设计与振动之间的关系,已经进行了许多研究。提出了实验和数值模拟方法,以弄清与振动有关的泵参数的影响。显然,离心泵中的不稳定现象是引起振动的主要因素。此外,考虑到液压因素,叶轮和蜗壳的电动机与定子相互作用也占据着主导地位。到目前为止,几乎所有已报道的研究都考虑了泵的几何参数,但是很少提出蜗壳的形状。为了减少叶轮与蜗壳舌之间的相互作用,提出了一种特殊的具有倾斜扩散段的蜗壳。与常规螺旋蜗壳相比,蜗壳舌的相对位置发生了变化。因此,可以有效地消除蜗壳舌撞击流场的影响,并减少振动。随着计算机技术的发展,我们可以通过数值模拟的方法来实现非定常流场内泵。采用商业软件Fluent分析模型泵的压力脉动和径向载荷。考虑压力大小优化了倾斜角和间隙率。观察到在叶片通过频率处的压力幅值在倾斜角15〜0时达到最低水平。压力大小随间隙的增大而显着减小,但受蜗壳径向尺寸的限制,建议在0.134〜0.250范围内。沿蜗壳选择了几个监测点,以全面了解压力脉动特性。叶片通过频率处的压力脉动在电机-定子相互作用中居于主导地位。当泵在非设计条件下运行时,压力和径向负载的幅度都会迅速增加。

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