• Title/Summary/Keyword: 안전 접지

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Evaluation of the Optimal Grouser Shape Ratio of Dozer Considering the Ground Conditions (지반 특성을 고려한 도저의 최적 그라우저 형상비 평가)

  • Baek, Sung-Ha;Kwak, Tae-Young;Choi, Changho;Lee, Seong-Hwan
    • Journal of the Korean Geotechnical Society
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    • v.37 no.3
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    • pp.31-41
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    • 2021
  • A dozer is a construction machinery used to move soil mass along large open tracts of land. Soil thrust generated on the soil-track interface determines the performance of the dozer; to improve the tractive performance of the dozer, the outer surface of the continuous-track is designed to protrude with grousers. In this study, we calculated soil thrust of the dozer equipped with grousers with various shape ratios, and evaluated the optimal grouser shape ratio considering ground conditions. Grouser generated additional soil thrust on the side of the continuous-track (e.g., side soil thrust) and converted the shearing surface (e.g., from soil-track interface to soil-soil interface), increasing the soil thrust of dozer by about 1.3 to 1.6 times. The effect of grouser's shape ratio on the soil thrust of dozer differed with the relative density of the ground. As the shape ratios of grouser increased, soil thrust of dozer decreased at the relative density of 40% and increased at the relative density of 80%. Based on these results, it can be concluded that the shape ratio of grouser severely affects the dozer's performance; thus, careful consideration of the optimal shape ratio of grouser is of great importance in the mechanical design, evaluation, and optimization of the undercarriage of dozers.

An Experiment and Analysis for Standardize Measurement on CCFL (냉음극 형광램프의 표준화 계측을 위한 실험과 분석)

  • Jin, Dong-Jun;Jeong, Jong-Mun;Jeong, Hee-Suk;Kim, Jin-Shon;Lee, Min-Kyu;Kim, Jung-Hyun;Koo, Je-Huan;Gwon, Gi-Cheong;Kang, June-Gill;Choi, Eun-Ha;Cho, Guang-Sup
    • Journal of the Korean Vacuum Society
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    • v.17 no.4
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    • pp.331-340
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    • 2008
  • A method of measuring the current and voltage is suggested in the circuit of cold cathode fluorescent lamps (CCFLs) which are driven at a high frequency of $50{\sim}100\;kHz$ and a high voltage of several kV. It is difficult to measure the current and voltage in the lamp circuit, because the impedance of the probe at high voltage side causes the leakage current and the variation of luminance. According to the analysis of equivalence circuit with the probe impedance and leakage current, the proper measuring method is to adjust the input DC voltage and to keep the specific luminance when the probe is installed at a high voltage circuit. The lamp current is detected with a current probe or a high frequency current meter at the ground side and the voltage is measured with a high voltage probe at the high voltage side of lamp. The lamp voltage($V_C$) is measured between the ballast capacitor and the lamp electrode, and the output voltage($V_I$) of inverter is measured between inverter output and ballast capacitor. As the phases of lamp voltage($V_C$) and current ($I_G$) are nearly the same values, the real power of lamp is the product of the lamp voltage($V_C$) by the lamp current($I_G$). The measured value of the phase difference between inverter output voltage($V_I$) and lamp current($I_G$) is appreciably deviated from the calculated value at $cos{\theta}=V_C/V_I$.