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High-Temperature Ultrasonic Doppler Velocimetry for Lead-Lithium Flows

机译:用于锂锂流的高温超声波多普勒速度

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Nuclear fusion reactors are a promising candidate of the future power source. Magnetic confinement fusion (MCF) blankets adopt high-temperature liquid metals (LM) such as the lead-lithium eutectic alloy (PbLi), as a coolant/tritium breeder. Developments of the LM-MCF blankets require comprehensive understanding of the high-temperature LM flows under the influence of the plasma-confining magnetic field. A high-temperature ultrasonic Doppler velocimetry (HT-UDV) has been developed as a flow diagnostic technique to acquire local velocity profiles of the opaque, high-temperature LM flow. This paper describes HT-UDV technique that has been successfully applied to measure velocity profiles of PbLi flows. The impact of tracer particles is investigated to determine requirements for HT-UDV measurement of PbLi flows. The HT-UDV system is tested on a PbLi flow driven by a rotating-disk in an inert atmosphere. We find that a sufficient amount of particles contained in the molten PbLi are required to successfully measure PbLi velocity profiles by HT-UDV. An X-ray diffraction analysis is performed to identify those particles in PbLi, and indicates that those particles were made of the lead mono-oxide (PbO). Since the specific densities of PbLi and PbO are close to each other, the PbO particles are expected to be well-dispersed in the bulk of molten PbLi. We conclude that the excellent dispersion of PbO particles enables the HT-UDV to obtain reliable velocity profiles for operation times of around 12 h.
机译:核聚变反应堆是未来电源的有希望的候选者。磁控隔音融合(MCF)橡皮布采用高温液体金属(LM),例如铅锂共晶合金(PBLI),作为冷却剂/氚育种剂。 LM-MCF橡皮布的开发需要在等离子体限制磁场的影响下对高温LM流进行全面了解。已经开发出高温超声波多普勒测速器(HT-UDV)作为流量诊断技术,以获取不透明,高温LM流的局部速度轮廓。本文介绍了已成功应用于测量PBLI流程的速度分布的HT-UDV技术。研究了示踪剂颗粒的影响,以确定Pli-UDV测量的要求。 HT-UDV系统在惰性气氛中由旋转盘驱动的PBLI流动进行测试。我们发现熔融PBLI中包含的足够量的颗粒需要通过HT-UDV成功测量PBLI速度谱。进行X射线衍射分析以鉴定PLI中的那些颗粒,并表明这些颗粒由铅单氧化物(PBO)制成。由于PBLI和PBO的特异性密度彼此靠近,因此预期PBO颗粒在熔融PBLI的大部分中分散。我们得出结论,PBO颗粒的优异分散使HT-UDV能够获得可靠的速度曲线,用于左右12小时的操作时间。

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