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dc.contributor.authorHalawa, Taher
dc.contributor.authorAlqaradawi, Mohamed
dc.contributor.authorBadr, Osama
dc.contributor.authorGadala, Mohamed S.
dc.date.accessioned2021-12-23T06:17:28Z
dc.date.available2021-12-23T06:17:28Z
dc.date.issued2014-11
dc.identifier.citationHalawa, T., Alqaradawi, M., Badr, O., & Gadala, M. S. (2014, July). Numerical Investigation of Rotating Stall Characteristics and Active Stall Control in Centrifugal Compressors. In ASME Power Conference (Vol. 46094, p. V002T11A002). American Society of Mechanical Engineers.en_US
dc.identifier.urihttps://dspace.adu.ac.ae/handle/1/1916
dc.descriptionThe compressor stability depends on the compressor operating condition. If the compressor works at a condition between the choke limit and the surge limit, then the compressor is in the stable zone. Also, there is an unstable zone which is called the rotating stall and surge region and is located at low mass flow rate close to the surge line. At the stall region, the compressor is completely unstable, and there is high pressure fluctuations affecting the blades. The early flow separations cause formation of vortices and low velocity regions or stall regions which can increase with time resulting in the development of stall into surge or back flow.en_US
dc.description.abstractThis paper focuses on providing better view for the understanding of rotating stall phenomenon in centrifugal compressors by using numerical simulations and presents a study of the role of air injection method in delaying stall inception by using different injection parameters aiming at increasing the efficiency of this method. Results showed that the formation of stall begins at the impeller inlet due to early flow separation at low mass flow rates and due to the increase of the turbulence level and the absence of fluid orientation guidance at the vaneless region. The flow weakness causes back flow that results in the formation of the tip leakage flow which causes stall development with time. Results also showed that using air injection at specified locations at the vaneless shroud surface at injection angle of 20° and with injection mass flow rate of 1.5% of the inlet design mass flow rate, can delay the stall onset to happen at lower mass flow rate about 3.8 kg/s comparing with using injection with angle of 10° with different injection mass flow rates and also comparing with the case of no injection.en_US
dc.language.isoen_USen_US
dc.publisherAmerican Society of Mechanical Engineers.en_US
dc.subjectThermal Hydraulics and CFDen_US
dc.subjectCompressorsen_US
dc.subjectFlow (Dynamics)en_US
dc.subjectComputer simulationen_US
dc.titleNumerical Investigation of Rotating Stall Characteristics and Active Stall Control in Centrifugal Compressorsen_US
dc.typeArticleen_US
dc.identifier.doihttps://doi.org/10.1115/POWER2014-32052


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