A study of DC electrical breakdown in liquid helium through analysis of the empirical breakdown field distributions
arXiv:2011.08844 · doi:10.1063/5.0037888
Abstract
We report results from a study on electrical breakdown in liquid helium using near-uniform-field stainless steel electrodes with a stressed area of 0.725 cm. The distribution of the breakdown field is obtained for temperatures between 1.7 K and 4.0 K, pressures between the saturated vapor pressure and 626 Torr, and with electrodes of different surface polishes. A data-based approach for determining the electrode-surface-area scaling of the breakdown field is presented. The dependence of the breakdown probability on the field strength as extracted from the breakdown field distribution data is used to show that breakdown is a surface phenomenon closely correlated with Fowler-Nordheim field emission from asperities on the cathode. We show that the results from this analysis provides an explanation for the supposed electrode gap-size effect and also allows for a determination of the breakdown-field distribution for arbitrary shaped electrodes. Most importantly, the analysis method presented in this work can be extended to other noble liquids to explore the dependencies for electrical breakdown in those media.
References in corpus (6)
- Light Dark Matter in Superfluid Helium: Detection with Multi-excitation Production
- Plans for a Neutron EDM Experiment at SNS
- Liquid Argon Dielectric Breakdown Studies with the MicroBooNE Purification System
- High Voltage in Noble Liquids for High Energy Physics
- Sub-GeV Dark Matter Searches and Electric Field Studies for the LUX and LZ Experiments
- High Voltage Test Apparatus for a Neutron EDM Experiment and Lower Limit on the Dielectric Strength of Liquid Helium at Large Volumes