XIAO Kun, DONG Guangchen, FENG Zhenping. Effects of the Different-Side Multi-Stage Swirling Cooling Configuration on CrossFlow Suppression and Heat Transfer Enhancement[J]. 2023, 57(5): 24-33.
DOI:
XIAO Kun, DONG Guangchen, FENG Zhenping. Effects of the Different-Side Multi-Stage Swirling Cooling Configuration on CrossFlow Suppression and Heat Transfer Enhancement[J]. 2023, 57(5): 24-33.DOI: 10.7652/xjtuxb202305003.
Effects of the Different-Side Multi-Stage Swirling Cooling Configuration on CrossFlow Suppression and Heat Transfer Enhancement
this paper proposes a novel multi-stage swirl cooling structure with different-side nozzles to further enhance the leading-edge swirl cooling and heat transfer uniformity of gas turbine blades
and tackle high pressure loss caused by flow deflection between adjacent stages of the multi-stage swirl cooling structure at the leading edge. The models of the original multi-stage swirl cooling structure on the same side and the new multi-stage swirl cooling structure on the different side are established; the flow and heat transfer characteristics of these two swirl cooling structures at multiple inlet Reynolds numbers are analyzed and compared with the three-dimensional steady numerical simulation method under constant target surface temperature. The calculation results show that the coolant is injected into the swirl chamber through tangential nozzles to form high-speed swirl flow
which significantly improves the heat transfer capacity. For single-stage swirl cooling
the circumferential velocity of coolant gradually decreases while the axial velocity increases
leading to the gradual formation of a cross flow. The cross flow impacts the downstream jet flow and weakens the downstream heat transfer. The multi-stage swirl cooling structure can inhibit the cross flow
and the average circumferential Nusselt number is increased obviously. However
the flow deflection between the adjacent stages of the original multi-stage swirl cooling structure on the same side brings high pressure loss. With the advantages of the original model
the multi-stage cooling structure on the different side reduces the pressure loss by 22%
improves the uniformity of coolant distribution
and further enhances the overall heat transfer performance of the swirl cooling structure.
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references
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