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CFD simulation on the turbulent mixing flow performance of the liquid-liquid ejector

机译:液液喷射器湍流混合流动性能的CFD仿真

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In order to study the flow performance of the liquid-liquid ejector, 3D ejector simulation models were established to investigate the influences of suction angle, suction number and working condition on the ejector performance. The simulation results showed that when the suction angle was 60°, the total pressure was in equilibrium state. The double suction ejector would induced more vortexes in the suction chamber than that of the single suction ejector, and the turbulent intensity of the fluid inside the ejector was bigger, however, it also caused much more loss in energy. When the working pressure was lower than 0.6 MPa, the liquid entrainment ratio increased rapidly. Once the working pressure reached 0.6 MPa, the liquid entrainment ratio basically remained unchanged. The mass flow rate of the suction medium increased with the increasing of suction pressure, and the differential pressure between the suction pressure and the working pressure at the nozzle also increased simultaneously.
机译:为了研究液体 - 液体喷射器的流动性能,建立了3D喷射器仿真模型,以研究吸入角,抽吸数和工作条件对喷射器性能的影响。仿真结果表明,当吸力角为60°时,总压力处于平衡状态。双抽吸喷射器将在吸入室中引起更多涡流,而不是单一吸入喷射器的涡流,并且喷射器内的流体的湍流强度更大,但是它也造成了更高的能量损失。当工作压力低于0.6MPa时,液体夹带比迅速增加。一旦工作压力达到0.6MPa,液体夹带比基本上保持不变。抽吸介质的质量流量随着吸入压力的增加而增加,抽吸压力与喷嘴处的工作压力之间的差压也同时增加。

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