• Title/Summary/Keyword: Physical Boundary

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Some Physical and Electrical Properties of Zirconia Solid Electrolyte Contained Yttria (이트리아를 함유한 지르코니아 고체전해질의 물리적, 전기적 특성)

  • 정형진;오영제
    • Journal of the Korean Ceramic Society
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    • v.23 no.1
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    • pp.13-20
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    • 1986
  • Zirconia soild electrolytes containing 4~10mol% of yttria were prepared by wet-blending of oxides and rea-ction-sintering, Sinterbility and degree of stabilization were optimized for the development of oxygen sensor. Fracture strength thermal expansion coefficient electrical conductivity and galvanic potential were measured and discussed with respect to the amount of ytria addition phase transformation microstructure and degree of stabilization. It was found that sintering and stabilization occurred when the composition was designed to be near the boundary region of $ZrO_2-Y_2O_3$ binary system. In such away a good zirconia solid electrolyte suitable for oxygen sensor could be developed.

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Analytical Model of TFT Drain Current based on Effective Area and Average Velocity (유효면적과 평균속도를 고려한 TFT의 해석적 Drain 전류 모델)

  • Jung, Tae-Hee;Won, Chang-Sub;Ryu, Se-Hwan;Han, Deuk-Young;Ahn, Hyung-Keun
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.21 no.3
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    • pp.197-202
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    • 2008
  • In this paper, we proposed an analytical model for TFT which has series of the polycrystalline structures. An average speed is defined as carrier speed by the electric field. The effective square is suggested as the area of grain without depletion for the changed grain size. First, physical parameters such as grain size, channel lenght and trap density, have been changed to prove the validity of the average speed model and the value of the effective square has been estimated through drain-source current.

A mathematical approach for the effect of the rotation on thermal stresses in the piezo-electric homogeneous material

  • Ramady, Ahmed;Dakhel, B.;Balubaid, Mohammed;Mahmoud, S.R.
    • Computers and Concrete
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    • v.25 no.5
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    • pp.471-478
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    • 2020
  • In this work, the analytical solution for the stresses in piezo-thermo-elastic homogeneous, transversely isotropic material under the effect of the rotation has investigated. The thermoelasticity theory has used to study the problem. The material subjected to boundary conditions. Finally, the numerical solution has carried out piezo - thermo-elastic material under the effect of rotation, to illustrate the analytical development. The corresponding simulated results of various physical quantities such as the displacements and the stresses, the temperature and the electrical displacement have presented graphically.

An Alternative Use of the Heat Transfer Coefficient in Terms of the Gradient Thickness (구배두께를 이용한 대류열전달의 재해석)

  • Kim, Chan-Jung
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.24 no.12
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    • pp.1678-1682
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    • 2000
  • In this article, the concept of gradient thickness is further extended to characterize the gradient behavior of the thermal and momentum boundary layer near a solid surface. The gradient thickness can replace the use of the conventional of the Nusselt and Reynolds numbers in terms of the gradient thickness provides a much easier grasp of the physical and practical meaning of the processes involved. Although there is no urgent need to discard the concept of the conventional convective heat transfer coefficient, the concept of the gradient thickness is believed to serve an efficient tool in helping students understand physics.

Numerical Simulation of the Natural Convection in Horizontal Enclosure of Different Aspect Ratio with an Array of Square Cylinder (사각 물체가 존재하는 밀폐계의 종횡비 변화에 따른 내부 자연대류 현상에 대한 수치적 연구)

  • Lee, Jae-Ryong;Ha, Man-Yeong
    • Proceedings of the KSME Conference
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    • 2003.11a
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    • pp.109-114
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    • 2003
  • The physical model considered here is a horizontal layer of fluid heated below and cooled above with a periodic array of evenly spaced square cylinders placed at the center of the layer, whose aspect ratio here varies from unity to twelve. Periodic boundary condition is employed along the horizontal direction to allow for lateral freedom for the convection cells. Two-dimensional solution for unsteady natural convection is obtained using an accurate and efficient Chebyshev spectral multi-domain methodology for a given Rayleigh numbers of $10^{6}$.

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The development and physical properties of perovskite dielectrics in ceramic material (페로브스카이트 유전체 세라믹 재료의 발전과 물성)

  • Lee, Jin;Hong, Kyoung-Jin
    • Electrical & Electronic Materials
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    • v.7 no.1
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    • pp.73-79
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    • 1994
  • 페로브스카이트형 강유전체의 활발한 연구는 제2차 세계대전중 미국과 구 소련등에서 TiO$_{2}$ 고체 콘덴서를 개량하던 중에 Ba 이 첨가된 BaTiO$_{3}$를 발견하면서부터 시작되었고, 일본에서는 PbZr$_{0.5}$Ti$_{0.5}$O$_{3}$의 morphotropic phase boundary를 발견하면서부터 이루어졌으며, 그것이 지니는 특성때문에 고체콘덴서, 초전형 적외선 센서, 초음파 발생과 검출기, 압전 점화기 및 표면파필터기 등 여러방면에 실용화 되고 있다. 따라서, 본 보고에서는 지금까지 연구된 페로브스카이트형 강유전체 세라믹 재료의 물성을 소개하고 앞으로의 연구동향 등에 관하여 서술하고자 한다.

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Pre-processing for the Design of Micro-fluid Flow Sensing Elements

  • Kim Jin-Taek;Pak Bock-Choon;Lee Cheul-Ro;Baek B.J.
    • KSTLE International Journal
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    • v.7 no.1
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    • pp.22-26
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    • 2006
  • A simple finite element analysis is performed to simulate the thermal characteristics of a micro sensor package with thin film heater embedded in the glass wall of a micro-channel. In this paper, Electric characteristics of ITO sputtered heater were presented in this study, which can be used as a map of heater design in the range of available system temperature. The effects of thermo-physical properties of materials, geometrical structure and boundary condition on the thermal performance are also investigated. Finally, the design of micro-flow induced thermal sensor that is capable of measuring fluid flow with a lower flow detection limit of approximately 24pL/s is presented.

A Physically Based Dynamic Recrystallization Model for Predicting High Temperature Flow Stress (열간 유동응력 예측을 위한 물리식 기반 동적 재결정 모델)

  • Lee, H.W.;Kang, S.H.;Lee, Y.S.
    • Transactions of Materials Processing
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    • v.22 no.8
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    • pp.450-455
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    • 2013
  • In the current study, a new dynamic recrystallization model for predicting high temperature flow stress is developed based on a physical model and the mean field theory. In the model, the grain aggregate is assumed as a representative volume element to describe dynamic recrystallization. The flow stress and microstructure during dynamic recrystallization were calculated using three sub-models for work hardening, for nucleation and for growth. In the case of work hardening, a single parameter dislocation density model was used to calculate change of dislocation density and stress in the grains. For modeling nucleation, the nucleation criterion developed was based on the grain boundary bulge mechanism and a constant nucleation rate was assumed. Conventional rate theory was used for describing growth. The flow stress behavior of pure copper was investigated using the model and compared with experimental findings. Simulated results by cellular automata were used for validating the model.

The Numerical Study of Flow through Complicated-Channel with the Lattice Boltzmann Equation Method (Lattice Boltzmann Equation 방법을 복잡한 형상의 채널 유동 해석에 적용하기 위한 수치적 연구)

  • Jeong Gl-Ho;Ha Man-Young
    • Journal of the Korean Society of Visualization
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    • v.2 no.1
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    • pp.46-51
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    • 2004
  • This paper deals with the evaluation of several boundary conditions which are commonly used in the lattice Boltzmann equation method. 2-D channel flow(Poiseuille flow) and lid-driven cavity flow was selected as a test problem of this study, because there exist an analytic solution and previous study which could be used for a benchmarking test. It was found that lattice Boltzmann method still needs more considerations of stability and physical consistency, though it could predict the flow patterns both qualitatively and quantitatively.

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A Numerical Analysis of cleat and Mass Transfer on the Dehumidifier of Liquid Desiccant Cooling System (액체 건조제 냉각장치의 제습기에서 열 및 물질전달 수치해석)

  • Go, Gwang-Ho;O, Myeong-Do
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.25 no.12
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    • pp.1756-1765
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    • 2001
  • The heat and mass transfer process between the falling liquid desiccant(TEG) film and the air in counter flow at the dehumidifier of desiccant cooling system were investigated. The governing equations with appropriate boundary and interfacial conditions describing the physical problems were solved by numerical analysis. As a result, the effects of the design parameters and the outside air conditions on the rates of dehumidification and sensible cooling were discussed. The results of the dehumidification and sensible cooling rates were compared with those of the cross flow at the same conditions.