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Thermal design studies in niobium and helium for superconducting radio frequency cavities.

机译:在铌和氦中进行超导射频腔的热设计研究。

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摘要

Liquid helium is now a common refrigerant for superconducting radio frequency (SRF) technology. It helps in cooling the niobium (Nb) made SRF cavities below their superconducting transition temperature (Tc). Testing of these cavities is routinely done in saturated liquid helium-I (He-I) for low field measurements and in saturated liquid helium-II (He-II) for high field measurements. The thermal design studies of these cavities involve two thermal parameters, namely the temperature dependant thermal conductivity of Nb at low temperatures and the Nb-He interface heat transfer coefficient. During the fabrication process of the SRF cavities, Nb sheet material is plastically deformed through a deep drawing process to obtain the desired shape. The effect of plastic deformation on low temperature thermal conductivity as well as heat transfer coefficients in the two states (He-I and He-II) has been studied. Strain induced due to the plastic deformations reduces the thermal conductivity in its phonon transmission regime, which may explain the performance limitations of the SRF cavities during their high field operations. The effect of annealing the Nb samples at two different temperatures to restore the phonon peak in the thermal conductivity curve has also been studied. Measurements of heat transfer coefficient for nucleate pool boiling liquid helium are in agreement with the theoretical predictions as well as with the existing experimental data. These measurements reveal higher heat transfer for rough surfaces as compared with smoother ones. Kapitza conductance measurements for Nb - He-II interface for rough surfaces with surface index (SI) more than 3 as compared with the flat and smooth surfaces have also been carried out before and after the annealing. Here, SI is defined as the ratio of exposed surface area to that of projected area. These measurements provide helpful insight in understanding the problem of Kapitza conductance for different surface topologies where the rough and annealed surface revealed increased Kapitza conductance.
机译:液态氦现在是超导射频(SRF)技术的常用制冷剂。它有助于将铌(Nb)制成的SRF腔体冷却到其超导转变温度(Tc)以下。这些空穴的测试通常在低场测量的饱和液态氦I(He-I)和高场测量的饱和液态氦II(He-II)中进行。这些腔的热设计研究涉及两个热参数,即低温下Nb的温度相关导热系数和Nb-He界面传热系数。在SRF腔体的制造过程中,Nb片材通过深冲过程塑性变形,以获得所需的形状。研究了塑性变形对低温热导率以及两种状态(He-I和He-II)下的热传递系数的影响。由于塑性变形而引起的应变降低了其声子传输方式的热导率,这可以解释SRF腔在其高场操作期间的性能局限性。还研究了在两个不同温度下对Nb样品进行退火以恢复热导率曲线中的声子峰的效果。核池沸腾液氦传热系数的测量与理论预测以及现有实验数据一致。这些测量结果表明,与光滑表面相比,粗糙表面的传热性更高。还在退火前后,对表面指数(SI)大于3的粗糙表面的Nb-He-II界面的Kapitza电导率进行了测量。在此,SI定义为暴露的表面积与投影的表面积之比。这些测量结果对于理解不同表面拓扑的Kapitza电导问题提供了有用的见解,其中粗糙和退火的表面显示出Kapitza电导增加。

著录项

  • 作者

    Aizaz, Ahmad.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 140 p.
  • 总页数 140
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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