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EFFECT OF EXIT PRESSURE PULSATION ON THE PERFORMANCE AND STABILITY LIMIT OF A TURBOCHARGER CENTRIFUGAL COMPRESSOR

机译:出口压力脉动对涡轮增压器离心压缩机性能和稳定极限的影响

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It is well known that compressor surge imposes a significant limit on the flow range of a turbocharged internal combustion engine. The centrifugal compressor is commonly placed upstream of the inlet manifold and hence, it is exposed to the intermittent flow regime of the inlet valves. Surge phenomena has been well studied over the past decades, there still remains limited information with regards to the unsteady impact caused by the inlet valves. This study presents an experimental evaluation of such a situation. Engine representative pulses are created by a downstream system comprising a large volume, two rotating valves, a throttle valve and the corresponding pipe network. Different pulsation levels are characterized by means of their frequency and the corresponding amplitude at the compressor inlet. The stability limit of the system under study is evaluated with reference to the parameter B proposed by Greitzer [7-9]. B describes the dynamics of the compression system in terms of volume, area, equivalent length and compressor tip speed as well as the Helmholtz frequency of the system. For a given compressor, as B goes beyond a critical value, the system will exhibit surge as the result of the flow instability progression. The reduced frequency analysis shows that the scroll-diffuser operates in an unsteady regime, while the impeller is nearly quasi-steady. In the vicinity of the surge point, under a pulsating flow, the instantaneous operation of the compressor showed significant excursions into the unstable side of the surge line. Furthermore, it has been found that the presence of a volume in the system has the greatest effect on the surge margin of the compressor under the unsteady conditions.
机译:众所周知,压缩机浪涌对涡轮增压内燃机的流量范围施加了显着的限制。离心式压缩机通常放置在入口歧管的上游,因此,暴露于入口阀的间歇流动状态。在过去的几十年中,喘振现象已经很好地研究,仍然仍然存在对入口阀造成的不稳定影响有限的信息。本研究提出了这种情况的实验评价。发动机代表脉冲由包括大容量,两个旋转阀,节流阀和相应的管网的下游系统产生。通过其频率和压缩机入口处的相应幅度表征不同的脉动水平。参考Greitzer提出的参数B评估正在研究的系统的稳定性极限[7-9]。 b在体积,面积,等效长度和压缩机尖端速度以及系统的亥姆霍兹频率方面描述了压缩系统的动态。对于给定的压缩机,随着B的超出临界值,系统将表现出浪涌,因为流量不稳定进展。降低的频率分析表明,滚动扩散器在不稳定的状态下操作,而叶轮几乎是准稳定的。在潮汐点附近,在脉动流动下,压缩机的瞬时操作显示出喘振线的不稳定侧的显着偏移。此外,已经发现系统中体积的存在在不稳定条件下对压缩机的浪涌裕度产生最大的影响。

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