A Critical Analysis of Design for Reduction in Vibrations of Centrifugal Impellers

Muhammad Umair Najeem, Syed Irtiza Ali Shah, Majid Mehmood
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Abstract

Centrifugal pumps are widely used for various applications. Numerous technical practices use centrifugal pumps, particularly when consistent and adaptable pump performance is required. Still, these can have several issues, including low efficiency when operated under off-design conditions and poor capitalization performance. These frequent transport mixtures, such as liquid and gas, and pure liquids. It is a well-known fact that several problems encountered by pumps in a pumping station are related to structural instability or impeller/blade failure. Vibrations can cause catastrophic failures in the impeller, so these must be kept to a minimum while designing the impeller. Vibration, cavitation, rough running, lower-than-expected efficiency, and shorter pump life can all be traced back to unfavorable process flow conditions. Although there are some design guidelines for pump configuration, the effects of fluctuating discharge on structural stability have yet to be investigated. An additional pressing problem is the identification of time cracks. Failure can occur due to cracks much before the design loads. In this work, we aim to investigate and analyze the centrifugal impeller design consideration. Using different methods for designing and modeling, we compared significant results and found the optimal solutions in which a centrifugal impellor can be designed. This work enables us to determine the best techniques and methods to overcome the problem of vibrations produced in the centrifugal impeller. This also helps us to understand the centrifugal pump's behavior and performance to improve its efficiency. Centrifugal impellors are compared across conditions, including free, forced, damped, and undamped systems. Three successful methods for designing and modeling a centrifugal impellor are proposed using these parameters. The methods of design and analysis provide predictions of the flow fields that are highly reliable. Regarding fluid distribution and pump efficiency, computational fluid dynamics provides various solutions that may be applied to impeller design. Using fluent software, we can better comprehend the pump's resonant operation. Blade mistuning is a severe problem that can be handled using the blade tip timing and strain gauge technique. Vibration and motor current signature analysis (MCSA) is also mentioned to investigate vibrational problems with the centrifugal impeller. Several strategies are discussed to lessen or eliminate the issue of vibrations in impellers. The limitations and disadvantages of using these techniques are discussed. The summary of results provides significant design and improvement in centrifugal pumps in the recent past.
减少离心叶轮振动设计的关键分析
离心泵广泛应用于各种场合。许多技术实践都使用离心泵,尤其是在要求泵性能稳定、适应性强的情况下。不过,离心泵也可能存在一些问题,包括在非设计条件下运行时效率较低以及资本化性能较差。这些泵经常输送液体和气体等混合物以及纯液体。众所周知,泵站中泵遇到的一些问题与结构不稳定或叶轮/叶片故障有关。振动可导致叶轮发生灾难性故障,因此在设计叶轮时必须将振动降至最低。振动、气蚀、运行不畅、效率低于预期以及泵寿命缩短都可以追溯到不利的工艺流程条件。虽然有一些泵配置的设计准则,但波动的排量对结构稳定性的影响仍有待研究。另一个亟待解决的问题是时间裂缝的识别。裂缝可能会在设计载荷之前很长时间就出现。在这项工作中,我们旨在研究和分析离心叶轮的设计考虑因素。通过使用不同的设计和建模方法,我们比较了显著的结果,并找到了离心叶轮设计的最佳解决方案。这项工作使我们能够确定克服离心叶轮振动问题的最佳技术和方法。这也有助于我们了解离心泵的行为和性能,从而提高其效率。离心叶轮在不同条件下进行了比较,包括自由、强制、阻尼和无阻尼系统。利用这些参数提出了三种成功的离心叶轮设计和建模方法。这些设计和分析方法提供了高度可靠的流场预测。在流体分布和泵效率方面,计算流体动力学提供了各种解决方案,可用于叶轮设计。使用 Fluent 软件,我们可以更好地理解泵的共振运行。叶片失谐是一个严重的问题,可以使用叶片尖端定时和应变仪技术来解决。还提到了振动和电机电流特征分析 (MCSA),以研究离心叶轮的振动问题。讨论了几种减轻或消除叶轮振动问题的策略。还讨论了使用这些技术的局限性和缺点。结果总结为近期离心泵的设计和改进提供了重要依据。
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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