• 제목/요약/키워드: MHD (Magneto-Hydro Dynamics)

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U-City/BIM USN 고도화를 위한 상수도배관용 자기유체발전 기술 개발 (Development of Waterworks Piping MHD Technology for USN Advancement in U-City/BIM)

  • 황정래;이현동;오윤석;곽필재;김지은
    • 상하수도학회지
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    • 제26권4호
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    • pp.555-563
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    • 2012
  • Due to the importance of energy-saving and CO2 reduction is being emphasized in the world, efforts to find a solution for the problems is increasing rapidly. In particular, the renewable energy is on understanding as a breakthrough for the protection of the environment and the economic development, so it is intensively fostered as future industries. Developed countries are already pursuing policy and technology development related with renewable energy. In this paper, we will develop MHD(Magneto Hydro Dynamics) technology to supply the commercial power that can is targeted at water pipe related with hydro power among renewable energy technologies. Kinetic energy of fluid flowing in the water pipe is converted into electric power. It allows stable power supply to the various sensors and devices on water pipe. We have performed several experiments to verify the application possibility of the developed technologies and present the result and a method of performance improvement of the technologies.

MHD의 스크램제트 성능 개선과 전력 생산 잠재력 (Potential of MHD in Improving the Performance of and Generating Power in Scramjets)

  • ;최정열
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2008년도 제31회 추계학술대회논문집
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    • pp.310-313
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    • 2008
  • 스크램젯 비행체에서 극초음속 순항미사일의 추진 특성을 향상시키고 항력을 적게 발생하면서 전력을 생산하는 장치로써 MHD 장치가 최근 들어 큰 관심을 받아왔다. 이전에 보였던 것보다 보다 완전한 물리적 모델을 바탕으로 하면, 경계층 박리 억제나 파워 바이패스를 통해 극초음속 추진 시스템의 성능 향상을 하는 MHD의 쓰임새를 논의하는 것은 불필요한 일이 된다. MHD 유동 제어를 하게 되면 엔진 성능에 상당한 역효과를 미치는 불가피한 Joule 가열이 크게 발생한다. 하지만, 예비 조사에 따르면 MHD는 약간의 항력만을 더 발생하면서 스크램젯 엔진을 장착한 무기에 메가와트 단위의 큰 전력을 생산해 낼 수 있을 것으로 여겨진다.

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Numerical Analysis of an Arc Plasma in a DC Electric Furnace

  • Lee, Yeon-Won;Lee, Jong-Hoon
    • Journal of Advanced Marine Engineering and Technology
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    • 제28권8호
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    • pp.1251-1257
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    • 2004
  • In order to analyze the heat transfer phenomena in the plasma flames, a mathematical model describing heat and fluid flow in an electric arc has been developed and used to predict heat transfer from the arc to the steel bath in a DC Electric Arc Furnace. The arc model takes the separate contributions to the heat transfer from each involved mechanism onto account, that is radiation, convection and energy transported by electrons. The finite volume method and a SIMPLE algorithm are used for solving the governing MHD equations, that are conservation equations of mass, momentum and energy together with the equations describing a standard k-${\varepsilon}$ model for turbulence. The model predicts heat transfer for different currents and arc lengths. Finally these calculation results can be used as a useful insight into plasma phenomena of the industrial-scale electric arc furnace. From these results, it can be concluded that higher arc current and longer arc length give high heat transfer

ANALYSES OF ANNULAR LINEAR INDUCTION PUMP CHARACTERISTICS USING A TIME-HARMONIC FINITE DIFFERENCE ANALYSIS

  • Seong, Seung-Hwan;Kim, Seong-O
    • Nuclear Engineering and Technology
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    • 제40권3호
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    • pp.213-224
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    • 2008
  • The pumping of coolant in a liquid metal fast reactor may be performed with an annular linear induction electro-magnetic (EM) pump. Linear induction pumps use a traveling magnetic field wave created by poly-phase currents, and the induced currents and their associated magnetic field generate a Lorentz force, whose effect can be the pumping of the liquid metal. The flow behaviors in the pump are very complex, including a time-varying Lorentz force and pressure pulsation, because an induction EM pump has time-varying magnetic fields and the induced convective currents that originate from the flow of the liquid metal. These phenomena lead to an instability problem in the pump arising from the changes of the generated Lorentz forces along the pump's geometry. Therefore, a magneto-hydro-dynamics (MHD) analysis is required for the design and operation of a linear induction EM pump. We have developed a time-harmonic 2-dimensional axisymmetry MHD analysis method based on the Maxwell equations. This paper describes the analysis and numerical method for obtaining solutions for some MHD parameters in an induction EM pump. Experimental test results obtained from an induction EM pump of CLIP-150 at the STC "Sintez," D.V. Efremov Institute of Electro-physical Apparatus in St. Petersburg were used to validate the method. In addition, we investigated some characteristics of a linear induction EM pump, such as the effect of the convective current and the double supply frequency (DSF) pressure pulsation. This simple model overestimated the convective eddy current generated from the sodium flow in the pump channel; however, it had a similar tendency for the measured data of the pump performance through a comparison with the experimental data. Considering its simplicity, it could be a base model for designing an EM pump and for evaluating the MHD flow in an EM pump.

고엔탈피 열유동 발생용 고주파 유도결합 플라즈마 토치의 최적 설계변수 해석 (Optimum design analysis of ICP(Inductively Coupled Plasma) torch for high enthalpy thermal plasma flow)

  • 서준호
    • 한국항공우주학회지
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    • 제40권4호
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    • pp.316-329
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    • 2012
  • 초음속 플라즈마 풍동 등, 항공우주 응용을 위한 고순도, 고엔탈피 열유동 발생 장치로서 널리 쓰이고 있는 유도결합 플라즈마 토치에 대해, 전기회로 이론과 결합된 해석적 및 수치해석적 자기유체역학 모델을 이용하여 토치 설계변수(주파수 $f$, 가둠관 반지름 $R$ 및 코일 감은수 $N$) 변화에 따른 전기적 특성 변수(등가 저항, 등가 인덕턴스 및 결합효율)의 거동을 추적함으로써 최적 설계 변수해석을 수행하였다. 계산 결과, 등가저항은 $f$, $R$$N$이 증가함에 따라 커지는 반면, 등가 인덕턴스는 $f$가 증가할수록 작아지지만 $R$$N$의 증가에 대해서는 커지는 경향이 있음을 파악하였다. 이로부터, 10 kW 급 고주파 유도결합 플라즈마 토치의 경우, 결합효율을 극대화시키는 최적의 주파수, 가둠관 반지름 및 코일 감은수의 범위를 각각 $f$=4~6 MHz, $R$=17~25 mm 및 $N$=3~4 로 추정하였다.