| Literature DB >> 27599577 |
Shengtao Li1, Yuanwei Zhu1, Daomin Min1, George Chen1,2.
Abstract
Electrical breakdown is one of the most important physical phenomena in electrical and electronic engineering. Since the early 20(th) century, many theories and models of electrical breakdown have been proposed, but the origin of one key issue, that the explanation for dc breakdown strength being twice or higher than ac breakdown strength in insulating materials, remains unclear. Here, by employing a bipolar charge transport model, we investigate the space charge dynamics in both dc and ac breakdown processes. We demonstrate the differences in charge accumulations under both dc and ac stresses and estimate the breakdown strength, which is modulated by the electric field distortion induced by space charge. It is concluded that dc breakdown initializes in the bulk whereas ac breakdown initializes in the vicinity of the sample-electrode interface. Compared with dc breakdown, the lower breakdown strength under ac stress and the decreasing breakdown strength with an increase in applied frequency, are both attributed to the electric field distortion induced by space charges located in the vicinity of the electrodes.Entities:
Year: 2016 PMID: 27599577 PMCID: PMC5013471 DOI: 10.1038/srep32588
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Space charge dynamics and breakdown strengths under dc stress.
(a) Experimental and simulated breakdown strengths of 1–4 layer oil impregnated paper under dc stress, (b) space charge distribution as a function of position in a dc breakdown process of two-layer oil impregnated paper, (c) electric field distribution as a function of position in a dc breakdown process of two-layer oil impregnated paper.
Figure 2Space charge dynamics and breakdown strengths under ac stress.
(a) Experimental and simulated breakdown strengths of one-layer oil impregnated paper under 50–1000 Hz ac stress, (b) space charge distribution as a function of position at applied electric strength of 135 kV/mm in 50–1000 Hz ac breakdown processes of one-layer oil impregnated paper, (c) electric field distribution as a function of position at applied electric strength of 135 kV/mm (at phase angle of 90°) in 50–1000 Hz ac breakdown processes of one-layer oil impregnated paper.