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Development of a novel method for the exploration of the thermal response of superfluid helium cooled superconducting cables to pulse heat loads

机译:开发一种探测超流氦冷却超导电缆对脉冲热负荷热响应的新方法

摘要

Management of transient heat deposition in superconducting magnets and its extraction from the aforementioned is becoming increasingly important to bring high energy particle accelerator performance to higher beam energies and intensities. Precise knowledge of transient heat deposition phenomena in the magnet cables will permit to push the operation of these magnets as close as possible to their current sharing limit, without unduly provoking magnet quenches. With the prospect of operating the Large Hadron Collider at CERN at higher beam energies and intensities an investigation into the response to transient heat loads of LHC magnets, operating in pressurized superfluid helium, is being performed. The more frequently used approach mimics the cable geometry by resistive wires and uses Joule-heating to deposit energy. Instead, to approximate as closely as possible the real magnet conditions, a novel method for depositing heat in cable stacks made out of superconducting magnet-cables has been developed. The goal is to measure the temperature difference as a function of time between the cable stack and the superfluid helium bath depending on heat load and heat pulse length. The heat generation in the superconducting cable and precise measurement of small temperature differences are major challenges. The functional principle and experimental set-up are presented together with proof of principle measurements.
机译:为了将高能粒子加速器的性能提高到更高的光束能量和强度,超导磁体中瞬态热沉积的管理及其从上述过程中的提取变得越来越重要。对电磁电缆中瞬态热沉积现象的精确了解将使这些磁体的运行尽可能接近其电流共享极限,而不会引起磁体的失超。鉴于有可能在更高的束能量和强度下在CERN处运行大型强子对撞机,因此正在对在加压超流氦中运行的LHC磁体对瞬态热负荷的响应进行研究。更常用的方法是通过电阻丝模拟电缆的几何形状,并使用焦耳加热来沉积能量。取而代之的是,为了尽可能接近真实的磁体条件,已经开发了一种在由超导磁体电缆制成的电缆堆叠中沉积热量的新方法。目的是根据热负荷和热脉冲长度,测量电缆堆和超流体氦浴之间的温度差随时间的变化。超导电缆中的热量产生和小温差的精确测量是主要挑战。介绍了功能原理和实验设置以及原理测量的证明。

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