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Development Of Production System Of Cryogenic Micro-slush Particles Using A Two-fluid Nozzle

机译:用双流体喷嘴开发低温微泥浆生产系统

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A production system for cryogenic fine micro-slush nitrogen particles is developed using a two-fluid atomization nozzle to apply micro-slush as a refrigerant for long-distance high temperature superconducting cables (HTS); a process that is expected to result in an extensive improvement in effective cooling performance for super-conducting systems. The principle of the micro-slush production nozzle and the performance of the nozzle investigated by Particle Image Velocimetry (PIV) measurement are herein presented. We mainly focus on the development of a new type of superadiabatic two-fluid ejector nozzle, which is capable of generating and atomizing solid nitrogen using liquid-gas impingement of a pressurized subcooled liquid nitrogen (LN_2) flow and by a low-temperature, high-speed gaseous helium (GHe) flow. In addition, we constructed a micro-slush particle production system using this new type of two-fluid nozzle and then investigated the effect of the mass flow rate of GHe on the characteristics of the micro-slush two-phase atomizing flow by PIV. The results of this research show that it is possible to produce fine micro-slush nitrogen particles using this newly developed two-fluid nozzle under high-speed atomizing flow conditions, and by applying the appropriate mass-flow rate of subcooled LN_2 and cryogenic GHe. Based on the optimized thermal flow conditions of cryogenic micro-slush particulate atomizing two-phase flow and the practical use of its multi-phase functionality, utilization in the development of a new type of superconducting cooling system is predicted.
机译:开发了使用双流体雾化喷嘴的低温细微泥浆氮颗粒生产系统,该工艺将微泥浆用作制冷剂,用于长距离高温超导电缆(HTS);该工艺有望大大改善超导系统的有效冷却性能。本文介绍了微泥浆生产喷嘴的原理和通过粒子图像测速(PIV)测量研究的喷嘴性能。我们主要专注于新型超绝热双流体喷射器喷嘴的开发,该喷嘴能够通过加压过冷液氮(LN_2)流的液气撞击并通过低温,高温度来产生和雾化固态氮。高速气态氦(GHe)流。此外,我们使用这种新型的双流体喷嘴构造了微泥浆颗粒生产系统,然后研究了GHe的质量流量对PIV的微泥浆两相雾化流特性的影响。研究结果表明,使用这种新开发的双流体喷嘴,在高速雾化流条件下,并通过应用适当的过冷LN_2和低温GHe的质量流量,可以生产出微细的泥浆氮颗粒。基于低温微泥浆雾化两相流的最佳热流条件,以及其多相功能的实际应用,可以预测在新型超导冷却系统开发中的应用。

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