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The transient behavior of the co-axial non-synchronous rotating assembly of a decanting centrifuge

机译:can析离心机同轴非同步旋转组件的瞬态行为

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摘要

This study identifies the cause of unstable vibrations that sporadically occur in decanting centrifuges as being caused by a combination of internal bearing clearance, conveyor unbalance and low bearing loads. These centrifuges are different from other rotating equipment common in industry (pumps, fans, compressors, electric motors) in that they are dual rotor systems – one rotor inside the other. Unbalance in either rotor can produce severe vibration of the whole machine when the running speed is close to a mode of vibration – that is, running at or near a critical speed. The external rotor, called the bowl, is subjected to an internal pressure generated by the centrifugal force of the product being separated. The internal rotor is supported from the bowl and is in the form of an auger screw. The main supporting bearings are subjected to forces from both the bowl and the auger - the liquid end bearing also supports the gearbox. Being able to predict critical speeds through numerical or computational analysis is a necessary step in the design process or for troubleshooting vibration problems. As part of the study, the main rolling element bearings were replaced by oil-film journal bearings to assess the viability of their use. Journal bearings are simpler, of lower cost and generate less noise than their rolling element counterparts. However, instability in running above the first critical speed can result due to oil film forces and internal hysteresis of the rotor assembly. The auger is asymmetric so instability in running is possible at around half the first critical speed.This study was undertaken to understand the dynamics of decanting type centrifuges and develop a methodology for identifying their critical speeds and cause of unstable vibration. In the longer term this will assist in the generation of new designs that are quieter, use less energy and have better separation efficiencies.
机译:这项研究确定了倾析离心机中偶尔发生的不稳定振动的原因,这是内部轴承间隙,输送机不平衡和低轴承负荷共同造成的。这些离心机与行业中其他常见的旋转设备(泵,风扇,压缩机,电动机)不同,它们是双转子系统,一个转子在另一个转子内。当运行速度接近振动模式时,即以临界速度或接近临界速度运行时,两个转子中的不平衡都会导致整个机器严重振动。外部转子(称为转鼓)承受由分离的产品的离心力产生的内部压力。内部转子由转鼓支撑,并采用螺旋螺杆的形式。主支撑轴承承受来自转鼓和螺旋钻的力-液体端轴承也支撑变速箱。能够通过数值或计算分析来预测临界速度是设计过程中或解决振动问题的必要步骤。作为研究的一部分,主要的滚动轴承被油膜轴颈轴承取代,以评估其使用的可行性。与滚动轴承相比,滑动轴承更简单,成本更低并且产生的噪音更少。然而,由于油膜力和转子组件的内部滞后,可能导致在高于第一临界速度时运行不稳。螺旋钻是非对称的,因此可能在第一临界速度的一半左右运行时不稳定。本研究旨在了解de析式离心机的动力学特性,并开发出一种方法来识别其临界速度和不稳定振动的原因。从长远来看,这将有助于生成更安静,使用更少能源并具有更好分离效率的新设计。

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    Donohue Brian;

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  • 年度 2014
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