• Title/Summary/Keyword: ZnO varistor

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Pspice Model of a ZnO Varistor for Impulse Current (임펄스 전류에 대한 ZnO 바리스터의 Pspice 모델)

  • Lee, B.H.;Kong, Y.H.;Lee, D.M.
    • Proceedings of the KIEE Conference
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    • 1999.07e
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    • pp.2161-2163
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    • 1999
  • Generally, ZnO varistors have dynamic characteristics that the cut-off voltage increases as the time to crest of the varistor current decreases. Dynamic characteristics of ZnO varistor are the most important factor in region of the steep front discharge current particularly. Also, V-I characteristics of ZnO varistor have hysterisis loop in time domain and frequency dependency. This paper deals with ZnO varistor numerical equation and modeling method which takes the behavior of varying clamping voltage into consideration during the time to crest, in range of $1{\mu}m{\sim}50{\mu}m$, of impulse current applied to a ZnO varistor. The simulated results by the proposed model are compared with experimental results for each of the impulse current.

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Degradation characteristics of Praseodymium-based ZnO Varistor (프라세오디윰계 산화아연 바리스터의 노화특성)

  • 이외천;박춘현;남춘우
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 1998.06a
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    • pp.343-346
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    • 1998
  • Degradation characteristics of the Pr-based ZnO varistor with $Y_2O_3$content (0.0-4.0 mol!%j were investigated. It was appeared that the variation of the J-E characteristics in the reverse direction before and after the applied stress with increasing $Y_2O_3$ content was larger than that of the forward direction but the variation was extrernly small. For all varistor, the leakage current with the stress time during the applied stress somewhat increased initialy but afterthat was almost constant or slightly decreased. The overall varistor voltage and nonlinear coefficient were less than 5%. Especially, in the case of Pr-based ZnO varistor containing 2.0 mol% to 4.0 mol% $Y_2O_3$, the variation of breakdown voltage and nonlinear coefficient was less than 1% and 5%. respectively. As a result, they showed good stability.

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A study on the Microstructure and electrical characteristics of ZnO varistors for arrester (피뢰기용 ZnO 바리스터 소자의 미세구조 및 전기적 특성에 관한 연구)

  • 김석수;조한구;박태곤;박춘현
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2001.07a
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    • pp.489-494
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    • 2001
  • In this thesis, the microstructure and electrical properties of ZnO varistors were investigated according to ZnO varistors with various formulation. A∼E's ZnO varistor ceramics were exhibited good density, 95% of theory density and low porosity, 5%, wholly. The average grain size of A-E's ZnO varistor ceramics exhibited 11.89$\mu\textrm{m}$, 13.57$\mu\textrm{m}$, 15.44$\mu\textrm{m}$, 11.92$\mu\textrm{m}$, 12.47$\mu\textrm{m}$, respectively. Grain size of C's ZnO varistor is larger and grain size of A and D's are smaller than other varistors. In the microstructure, A∼E's ZnO varistor ceramics sintered at l130$^{\circ}C$ was consisted of ZnO grain(ZnO), spinel phase(Zn$\sub$2.33/Sb$\sub$0.67/O$_4$), Bi-rich Phase(Bi$_2$O$_3$) and inergranular phase, wholly. Reference voltage of A∼E's ZnO varistor sintered at 1130$^{\circ}C$ decreased in order D, E > A > B > C's ZnO varistors. Nonlinear exponent of varistors exhibited high characteristics, above 30, wholly. Consequently, C's ZnO varistor exhibited good nonlinear exponent, 68. Lightning impulse residual voltage of A, B, C and E's ZnO varistors suited standard characteristics, below 12kV at current of 5kA.

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Microstructure Properties of Zinc Oxide Varistor with $Sb_2O_3$ Contents for Low Voltage Application ($Sb_2O_3$함량 변화에 따른 저전압용 ZnO Varistor의 미세구조 특성)

  • 박종주;서정선
    • Korean Journal of Crystallography
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    • v.8 no.2
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    • pp.149-153
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    • 1997
  • ZnO varistor based on ZnO-Bi2O3-Co3O4-MnCO3-Cr2-O3-Sb2O3 system with Sb2O3 contents were studied for grain size variation and microstructure properties. The composition of pure ZnO varistor was observed composition was inhibited owing to formation of Zn7Sb2O12 spinel phase and did not observed abnrmal grain growth. With Sb2O3 contents, the grain sizes of ZnO varistor were remarkably decreased and the microstructure had the distribution of dense and homogeneous grains.

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A study on ZnO varistor Design Prevented from Thermal Explosion (열폭주 방지 ZnO 배리스터 설계에 대한 연구)

  • Jung, Tae-Hun;Shin, Hee-Sang;Cho, Sung-Min;Choi, Sung-Wook;Kim, Jae-Chul
    • Proceedings of the KIEE Conference
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    • 2009.07a
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    • pp.1453_1454
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    • 2009
  • This paper examines the characteristics of ZnO varistor to prevent from thermal explosion. We carry out performance evaluation of electrical characteristics on ZnO varistor. we will develop ZnO varistor Prevented from thermal explosion using test result of this paper.

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Dielectric Properties and a Equivalent Circuit of ZnO-Based Varistor (ZnO 바리스터의 유전특성과 등기회로)

  • Rho, Il-Soo;Kang, Dae-Ha
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.56 no.12
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    • pp.2166-2172
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    • 2007
  • In this study a low-signal equivalent circuit based on the Double Schottky Barrier model is proposed for ZnO-based varistor. Since pin-lead inductance and stray capacitance are considered in pin-lead type ZnO varistor these inductance and capacitance could be removed from the experimental dielectric data of the varistor. According to the equivalent circuit simulation results the higher the varistor-voltage of varistor sample the capacitance of dielectric layer is larger, and the capacitances of semiconducting layer and depletion layer are smaller, while the parallel resistances of semiconducting layer and depletion layer are more larger values. Spectra of the dielectric loss factor $tan{\delta}$ show 2 peaks in low frequency and high frequency regions respectively. The low-frequency peak is due to the relaxation by deep donors and the high-frequency peak is due to the relaxation by shallow donors. Above results are well consistent with the theoretical mechanism of ZnO varistor.

A Study on the Microstructure and Electrical Characteristics of ZnO Varistor for d.c. Arrester (소결 조건 변화에 따른 직류 피뢰기용 ZnO 바리스터의 미세구조 및 전기적 성질에 관한 연구)

  • Kim, Seok-Sou;Choi, Ike-Sun;Park, Tae-Gon;Cho, I-Gon;Park, Choon-Hyun
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.17 no.6
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    • pp.683-689
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    • 2004
  • The microstructure and electrical characteristics of A ∼ C's ZnO varistors fabricated according to variable sintering condition, which sintering temperature was 1130 $^{\circ}C$ and speeds of pusher were A: 2 mm/min, B: 4 mm/min, C: 6 mm/min, respectively, were investigated. The experimental results obtained from this study were summarized as follows: The sintering density of A ∼C's ZnO varistors sintered at 1130 $^{\circ}C$ were decreased by sintering keep time to shorten, such as A: 9hour, B: 4.5hour and C: 3hour. A's ZnO varistor exhibited good densification nearly 98 % of theory density. In the microstructure, A∼C's ZnO varistors fabricated variable sintering condition was consisted of ZnO grain(ZnO), spinel phase(Z $n_{2.33}$S $b_{0.67}$ $O_4$), Bi-rich phasc(B $i_2$ $O_3$), wholly. Varistor voltage of A∼C's ZnO varistors sintered at 1130 $^{\circ}C$ increased in order A

Preparation of Low Voltage ZnO Varistor Using Seed Grain Method and Its Electrical Properties (종결정법을 이용한 저전압 ZnO 배리스터의 제조 및 전기적 특성)

  • 강승구;오재희
    • Journal of the Korean Ceramic Society
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    • v.25 no.5
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    • pp.552-560
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    • 1988
  • ZnO low voltage varistor was obtained by varying a) the amount of seed grains, b) the size of seed grains, and c) sintering temperature. Also, the optimum condition for fabricating the ZnO seed grains was studied. Large ZnO seed grains were obtained by washing a ZnO sintered body containing 1m/of BaCO3 in boiling water. When the seed grains were added, abnormal grain growth occurred, and the varistor voltage sharply decreased. However, when more than 5w/o of seed grain content was added, the varistor voltage gradually increased. When 10w/o seed grains of 75~106${\mu}{\textrm}{m}$ were added and sintered for 2 hours at 1200 to 125$0^{\circ}C$, low voltage varistor properties with V1mA/mm of 19V/mm and nonlinear exponent ($\alpha$) of 12 occurred.

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Effect of $Dy_2O_3$ Additive on the Nonohmic Characteristics of ZnO-$Pr_6O_{11}$-CoO-Based Ceramic Varistor (ZnO-$Pr_6O_{11}$-CoO계 세라믹 바리스터의 비옴성 특성에 $Dy_2O_3$ 첨가제의 영향)

  • Park, Choon-Hyun;Yoon, Han-Soo;Nahm, Choon-Woo
    • Proceedings of the KIEE Conference
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    • 1999.07d
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    • pp.1692-1695
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    • 1999
  • The nonohmic characteristics of ZnO-$Pr_6O_{11}$-CoO-based ceramic varistor doped with $Dy_2O_3$ in the range $0.0\sim2.0mol%$ sintered at $1300^{\circ}C$ and $1350^{\circ}C$ were investigated. 98.5 ZnO-$0.5Pr_6O_{11}$-1.0CoO varistor sintered at $130^{\circ}C$ exhibited higher nonlinear coefficient of 36 than the established Pr-based varistor. The four-component-system varistor such as 96.5 ZnO-$0.5Pr_6O_{11}$-1.0CoO-$2.0Dy_2O_3$ exhibited very highly nonohmic characteristics, which has nonlinear coefficient of 53.9. 98.5ZnO-$0.5Pr_6O_{11}$-1.0CoO varistor sintered at $1350^{\circ}C$, in contrast with that of $1300^{\circ}C$, exhibited approximately ohmic characteristics but nonlinear coefficient of varistor doped with 0.5mol% $Dy_2O_3$ showed higher nonlinear coefficient of probably 35. Consequently, it can be confirmed that $Dy_2O_3$ acted as additive of improvement on nonlinear coefficient. It is estimated that $Dy_2O_3$ will be used as additive of improvement on nonlinear coefficient to develop a goof ZnO varistor.

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Effect of Insulating Paste and 2nd Firing Process in ZnO Varistor (ZnO varistor에서의 절연 도포제 및 2차 열처리 효과)

  • Lee, Nam-Yang;Kim, Myung-Sik;Chung, In-Jae;Oh, Myung-Hwan
    • Proceedings of the KIEE Conference
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    • 1988.07a
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    • pp.821-823
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    • 1988
  • The electrical properties of ZnO varistors fabricated by the second firing method were investigated. The nonlinear coefficient of ZnO varistor fabricated by this method is similar to that of commercial ZnO varistor. But the breakdown voltage is higher than that of commercial ZnO varistor. These results are attributed to grain boundary diffusion of $Bi_{2}O_{3}$ by second firing.

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