• Title/Summary/Keyword: Flow Ccontrol

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Changes in The Pressure-Flow Control Characteristics of Shunt Valves Under Brain Pressure Pulsation (뇌압 펄스하에서 션트밸브의 압력-유량제어 특성곡선의 변화)

  • Hong Yisong;Lee Chong-Sun;Jang Jongyun
    • Proceedings of the KSME Conference
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    • 2002.08a
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    • pp.699-702
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    • 2002
  • Shunt valves implanted in the subcutaneous tissue of brain to treat patient with hydrocephalus were numerically simulated to investigate influence of pressure pulsation on their flow control characteristics. Shunt valves are subjected to pressure variation since ventricles enclosing the brain are under pressure pulsation rather than uniform pressure due to blood pressure variation. We modeled flow orifice through shunt valve and imposed pulsating pressure and valve diaphragm movement to compute flow through the valve. The results of our study indicated that flow rate increased by $40{\%}$ by introducing pressure pulsation and diaphragm movement on the shunt valve. Our results demonstrate the pressure-flow control characteristics of shunt valves unplanted above human brain may be quite different from the characteristics obtained by syringe pump test with uniform pressure and no diaphragm movement.

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Design and Implementation of VHDL Environment (VHDL 환경 설계 및 구현)

  • 김충석;표창우;원유헌
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.17 no.11
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    • pp.1247-1263
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    • 1992
  • VHDL, which is the IEEE standard HDL, has gradually become popular in the area of hardware design, the VHDL Environment developed in this study consists of VHDL Support Environment and VHDL Using Environment. The VHDL Support Environment is composed of Analyzer, CDFG Generator for synthesis, Synthesizer, and VHDL Generator converting CDFG to VHDL. The VHDL Using Environment provides users with more convenient access to the VHDL Support Environment. The VHDL Using Environment allows accessing the tools in the VHDL Support Environment through Graphical User Interface. VHDL program can be automaticaly generated from schematics in the VHDL Using Environment.

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Analysis of Control Performance in Gap Size of MR Damper (MR Damper의 Gap Size에 따른 제어성능 분석)

  • Heo, Gwang Hee;Jeon, Seung Gon;Seo, Sang Gu;Kim, Dae Hyeok
    • Journal of the Korea institute for structural maintenance and inspection
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    • v.25 no.1
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    • pp.41-50
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    • 2021
  • In this study, the flow path width (Gap Size), which is the flow path of fluid, was selected differently among various factors that determine the Ccontrol Force of MR damper, and the change of Control Force was confirmed accordingly. For this purpose, two MR dampers with a Gap Size of 1.0mm and 1.5mm were fabricated, respectively, and dynamic load experiments were conducted according to changes in applied current and vibration conditions The experimental results showed that the minimum Control Force was 3.2 times higher than 1.5mm in the case of 1.0mm Gap Size, and the maximum Control Force was 2.3 times higher than 1.5mm in the case of 1.0mm Gap Size. In addition, the increased width of the Control Force according to applied current was 34N for Gap Size 1.0mm, and 12.7N for Gap Size 1.5mm. As the gap Size increased, the overall Control Force and the increase in the Control Force by the applied current decreased. Next, the dynamic range, which is a performance evaluation index of the semi-active Control device, was 2.3 on average under 1.0mm condition and 2.8 on average under 1.5mm condition, confirming the possibility of utilization as a semi-active Control device.