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Optimization of gaseous helium heater for 2 K cryogenic system for VECC's superconducting electron linac

机译:VECC超导电子直线加速器2 K低温系统气态氦加热器的优化

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摘要

Niobium superconducting radiofrequency cavities are generally operated at around 2 K temperature to achieve a high quality factor by reducing residual surface losses. 2 K temperature is produce by lowering down the pressure of the helium by employing a sub-atmospheric vacuum pumping system. The cavities are immersed in liquid helium bath, maintained in the helium chamber. A special heater is optimized for warming up the helium gas coming out from the helium chamber to 300 K before it enters the pumping system. Keeping in view the uninterrupted and reliable operation of the superconducting electron linac and safe running of the liquid helium plant, a tubular heat exchanger type of heater is designed. Current is passed through the tubes of the heater so as to let the tube banks themselves act as heating element. He gas, passing through the tubes, absorbs the heat and warms up to the desired temperature. Unlike common notion, it has been observed that heater with longer length could reduce the requirement of the heater power but at the cost of extra pumping power, required to counter balance the excess pressure drop caused by the additional length of the heater. Pressure drop is kept within 50 Pa for 2 g/s helium flow rate. The whole lot of tubes, divided into 4 bundles, are electrically connected in series so that current rating of the feed-through could be kept within 750 A. This paper discusses the methodology used for optimizing the design of the heater.
机译:铌超导射频腔通常在约2 K的温度下工作,以通过减少残留的表面损耗来获得高质量的品质因数。通过使用低于大气压的真空泵系统降低氦气压力,可产生2 K温度。将腔体浸入保持在氦室中的液氦浴中。优化了一个特殊的加热器,用于将氦室中的氦气在进入泵送系统之前预热到300K。考虑到超导电子直线加速器的不间断且可靠的运行以及液氦设备的安全运行,设计了一种管状热交换器式加热器。电流流过加热器的管,以使管束本身充当加热元件。气体通过管道吸收热量并加热到所需温度。与通常的概念不同,已经观察到较长长度的加热器可以减少加热器功率的需求,但是以额外的泵送功率为代价,以抵消由加热器的额外长度引起的过大的压降。对于2 g / s的氦气流量,压降保持在50 Pa之内。整个管(分成4束)串联电连接,以便将馈通电流额定值保持在750 A以内。本文讨论了用于优化加热器设计的方法。

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