直流配电网用弹性氦冷高温超导电缆终端固氮低温蓄热

Zhenyu Zhang, Nuo Cheng, Xiang Luo, Yuan Gao, C. H. Kim, S. Pamidi
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引用次数: 0

摘要

氦气的低热容量限制了氦气冷却高温超导电缆的整体冷却能力,使其在电气故障或低温系统故障等意外事件中容易出现大幅温升。研究了固体氮作为高温超导电缆终端的附加冷却剂。在超导电缆终端中以固体氮的形式额外的低温热储存可以通过保持系统处于超导状态来降低风险,直到适当的突发事件被激活。外部装满活性炭的罐用作气态氮的吸附缓冲罐,以尽量减少操作压力。活性炭的使用最大限度地减少了缓冲罐的体积,并防止了由于从固体到气体的相变而导致的压力上升。此外,当高温超导电缆系统恢复正常运行状态时,活性炭可以为系统提供所需的氮气,以固体氮的形式建立低温储热,作为一个可逆的、自成体系。通过综合实验对活性炭的使用可行性及性能进行了探讨。研究发现,该系统可以作为低温热缓冲器,使超导电缆系统能够承受意外的热冲击,并以自主方式恢复,同时保持压力低于期望值。除了将概念融入实际应用之外,还根据所需的保护时间和可能的紧急热负荷对固体氮的质量进行了量化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Solid Nitrogen Cryogenic Thermal Storage in the Terminations for Resilient Helium Gas Cooled HTS Cables Utilized in DC Power Distribution Network
The low heat capacity of helium gas limits overall cooling capacity of helium gas cooled high temperature superconducting power cable and makes them susceptible to large temperature rises during unexpected events such as electrical faults or cryogenic system failures. Solid nitrogen has been explored as an additional cooling agent in the HTS cable termination. Additional cryogenic thermal storage in the form of solid nitrogen in the superconducting cable terminations can mitigate the risk by keeping the system in superconducting state until the appropriate contingency is activated. An external tank filled with activated carbon is used as an adsorption buffer tank for gaseous nitrogen to minimize the operational pressure. The use of activated carbon minimizes the volume of the buffer tank and prevents pressure rise due to the phase change from solid to gas. In addition, when the HTS cable system is back to normal operational condition, the activated carbon can provide the system back with the required nitrogen to establish cryogenic thermal storage in the form of solid nitrogen as a reversible and self-contained system. Comprehensive experiments were performed to explore the feasibility of using the activated carbon and its performance. It was found that the proposed system performs as a cryogenic thermal buffer to enable the superconducting cable system to tolerate unexpected heat surge and recover in an autonomous fashion while keeping the pressure below the desired value. In addition to integrate the concept into real applications, the mass of solid nitrogen has been quantified based on the required protection time and possible emergency heat load.
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