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      대기압 공기 중 경사진 에폭시 표면에서 발달하는 연면방전 메커니즘 = Surface Discharge Mechanism of Inclined Epoxy Surface in Atmospheric Air

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      https://www.riss.kr/link?id=A108723477

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      다국어 초록 (Multilingual Abstract)

      This paper presents the surface discharge characteristics developed on an inclined epoxy surface in atmospheric air. The surface discharge experiments were conducted under AC high voltage using a rod electrode and an epoxy to measure the surface flashover voltages and surface discharge path. When the slopes of the epoxy surface were 0°, 30°, and 60°, there is little difference in the surface flashover voltages. Surface discharge developed into three cases with the changes of electrode gap (surface distance). The developments of the three discharge paths consisted of propagation from the electrode surface to the air, from the triple junction to the dielectric surface, and the electrode surface to the dielectric surface via the air. The dominant-discharge mechanisms were analyzed for the surface discharge types. A surface discharge model propagating to the epoxy surface via air were proposed based on the discharge mechanisms including the space charge effect of the positive ions. These results can be applied as basic data on electrical fire of PCB boards, coatings, and electrical equipment to which epoxy is applied.
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      This paper presents the surface discharge characteristics developed on an inclined epoxy surface in atmospheric air. The surface discharge experiments were conducted under AC high voltage using a rod electrode and an epoxy to measure the surface flash...

      This paper presents the surface discharge characteristics developed on an inclined epoxy surface in atmospheric air. The surface discharge experiments were conducted under AC high voltage using a rod electrode and an epoxy to measure the surface flashover voltages and surface discharge path. When the slopes of the epoxy surface were 0°, 30°, and 60°, there is little difference in the surface flashover voltages. Surface discharge developed into three cases with the changes of electrode gap (surface distance). The developments of the three discharge paths consisted of propagation from the electrode surface to the air, from the triple junction to the dielectric surface, and the electrode surface to the dielectric surface via the air. The dominant-discharge mechanisms were analyzed for the surface discharge types. A surface discharge model propagating to the epoxy surface via air were proposed based on the discharge mechanisms including the space charge effect of the positive ions. These results can be applied as basic data on electrical fire of PCB boards, coatings, and electrical equipment to which epoxy is applied.

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      참고문헌 (Reference)

      1 H. C. Miller, "Surface flashover of insulators" 24 (24): 765-786, 1989

      2 S. -W. Jee, "Surface discharge mechanism with a change of gas pressure in N2/O2 mixed gas for insulation design of SF6-Free high-voltage power equipment" 28 (28): 771-779, 2021

      3 M. Hara, "Particle-initiated breakdown characteristics of conical insulator in N2 gas and N2/O2 mixture under DC voltage" 22 (22): 87-96, 1987

      4 M. Ren, "Partial discharges triggered by metal -particle on insulator surface under standard oscillating impulses in SF6 Gas" 22 (22): 3007-3018, 2015

      5 K. Kato, "Influence of surface charges on impulse flashover characteristics of alumina dielectrics in vacuum" 16 (16): 1710-1716, 2009

      6 O. Yamamoto, "Influence of electric field at cathode triple junction on flashover characteristics in vacuum" 131 (131): 1-8, 2000

      7 M. S. Naidu, "Gas Insulated Substations" I. K. International Publishing House Pvt. Ltd 123-127, 2008

      8 H. C. Miller, "Flashover of insulators in vacuum: the last twenty years" 22 (22): 3641-3657, 2015

      9 T. Hosokawa, "DC breakdown characteristics in the gap with thin dielectric sheet in air" 18 (18): 822-832, 2011

      10 J. T. Krile, "DC and pulsed dielectric surface flashover at atmospheric pressure" 33 (33): 1149-1154, 2005

      1 H. C. Miller, "Surface flashover of insulators" 24 (24): 765-786, 1989

      2 S. -W. Jee, "Surface discharge mechanism with a change of gas pressure in N2/O2 mixed gas for insulation design of SF6-Free high-voltage power equipment" 28 (28): 771-779, 2021

      3 M. Hara, "Particle-initiated breakdown characteristics of conical insulator in N2 gas and N2/O2 mixture under DC voltage" 22 (22): 87-96, 1987

      4 M. Ren, "Partial discharges triggered by metal -particle on insulator surface under standard oscillating impulses in SF6 Gas" 22 (22): 3007-3018, 2015

      5 K. Kato, "Influence of surface charges on impulse flashover characteristics of alumina dielectrics in vacuum" 16 (16): 1710-1716, 2009

      6 O. Yamamoto, "Influence of electric field at cathode triple junction on flashover characteristics in vacuum" 131 (131): 1-8, 2000

      7 M. S. Naidu, "Gas Insulated Substations" I. K. International Publishing House Pvt. Ltd 123-127, 2008

      8 H. C. Miller, "Flashover of insulators in vacuum: the last twenty years" 22 (22): 3641-3657, 2015

      9 T. Hosokawa, "DC breakdown characteristics in the gap with thin dielectric sheet in air" 18 (18): 822-832, 2011

      10 J. T. Krile, "DC and pulsed dielectric surface flashover at atmospheric pressure" 33 (33): 1149-1154, 2005

      11 D. K. Davies, "Charge generation on dielectric surfaces" 2 (2): 1533-1537, 1969

      12 D. Y. Lim, "Analysis of the influence of a conductive particle on the surface flashover characteristics of epoxy dielectric in atmospheric air" 99 : 31-40, 2019

      13 J. Sun, "A review on surface flashover phenomena at DC voltage in vacuum and compressed gas" 29 (29): 1-14, 2022

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