• 제목/요약/키워드: Layer structure

검색결과 6,675건 처리시간 0.03초

7층 적층구조 배면발광 청색 OLED의 발광 특성 연구 (A Study on the Bottom-Emitting Characteristics of Blue OLED with 7-Layer Laminated Structure)

  • 최규철;김덕열;장상목
    • 청정기술
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    • 제29권4호
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    • pp.244-248
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    • 2023
  • 최근 많은 정보를 신속하게 전달하기위한 방법으로 디스플레이의 역할은 아주 중요하며 다양한 색을 자연색에 가깝게 재현하기 위한 연구가 진행 중이다. 특히 정확하고 풍부한 색을 표현하기 위한 방법으로 발광 구조에 대한 연구가 진행되고 있다. 기술의 고도화, 디바이스의 소형화로 인해 작지만 높은 시인성과 에너지 소모에서 높은 효율을 가진 디스플레이의 필요성이 지속적으로 증가되고 있는 실정이다. OLED의 효율을 향상시키기 위해서는 운반자 주입의 향상, 전자와 정공이 수적인 균형을 이루며 효율적으로 재결합 할 수 있는 소자의 구조, 발광 효율이 큰 물질의 개발 등 OLED의 효율을 향상시키고자 하는 노력은 다방면에서 진행되고 있다. 본 연구에서는 7층 적층구조 배면발광 청색 OLED 소자의 전기적 특성 및 광학적 특성을 분석하였다. 소자는 제작이 용이하며, 고효율 및 고휘도화가 가능한 Blue 발광물질인 4,4'-Bis(carbazol-9-yl)biphenyl : Ir(difppy)2(pic)를 사용하였다. OLED 소자 제작은 SUNICEL PLUS 200 시스템을 이용하여 5×10-8 Torr 이하의 고진공 상태에서 In-Situ 방식으로 증착하였다. Electron or Hole Injection Layer(EIL or HIL) Electron or Hole Transport Layer(ETL or HTL) 등이 추가된 5층 구조에 Electron or Hole Blocking Layer(EBL or HBL)을 추가한 7층 구조로 실험을 진행하였다. 제작한 소자의 전기적, 광학적 특성을 분석한 결과 EBL 층과 HBL층을 삽입하여 색의 확산을 방지한 소자는 색 순도가 우수하게 나타났다. 본 연구결과를 이용하여 청색 OLED 디스플레이 소자의 연구 개발 기초 및 실용화에 크게 기여할 것으로 기대된다.

Soil and structure uncertainty effects on the Soil Foundation Structure dynamic response

  • Guellil, Mohamed Elhebib;Harichane, Zamila;Berkane, Hakima Djilali;Sadouk, Amina
    • Earthquakes and Structures
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    • 제12권2호
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    • pp.153-163
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    • 2017
  • The underlying goal of the present paper is to investigate soil and structural uncertainties on impedance functions and structural response of soil-shallow foundation-structure (SSFS) system using Monte Carlo simulations. The impedance functions of a rigid massless circular foundation resting on the surface of a random soil layer underlain by a homogeneous half-space are obtained using 1-D wave propagation in cones with reflection and refraction occurring at the layer-basement interface and free surface. Firstly, two distribution functions (lognormal and gamma) were used to generate random numbers of soil parameters (layer's thickness and shear wave velocity) for both horizontal and rocking modes of vibration with coefficients of variation ranging between 5 and 20%, for each distribution and each parameter. Secondly, the influence of uncertainties of soil parameters (layer's thickness, and shear wave velocity), as well as structural parameters (height of the superstructure, and radius of the foundation) on the response of the coupled system using lognormal distribution was investigated. This study illustrated that uncertainties on soil and structure properties, especially shear wave velocity and thickness of the layer, height of the structure and the foundation radius significantly affect the impedance functions, and in same time the response of the coupled system.

Large-Scale Vortical Structures in The Developing Plane Mixing Layer Using LES

  • Seo, Taewon;Kim, Yeung-Chan;Keum, Kihyun
    • International Journal of Aeronautical and Space Sciences
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    • 제2권1호
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    • pp.12-19
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    • 2001
  • Study of turbulent mixing layers has been a popular subject from the point of view of both practical application and phenomenological importance in engineering field. Turbulent mixing layers can be applied in many fields where rapid transition to turbulence is desirable in order to prevent boundary layer separation or to enhance mixing. The ability to control mixing, structure and growth of the shear flow would obviously have a considerable impact on many engineering applications. In addition to practical applications, free shear flows are one of the simplest flows to understand the fundamental mechanism in the transition process to turbulence. After the discovery of large-scale vortical structure in free shear flows many researchers have investigated the physical mechanism of generation and dissipation processes of the vortical structure. This study investigated the role of the large-scale vortical structures in the turbulent mixing layer using LES(Large-Eddy Simulation). The result shows that the pairing interaction of the vortical structure plays an important role in the growth rate of a mixing layer. It is found that the turbulence quantities depend strongly on the velocity ratio. It is also found that the vorticity in the high-velocity-side can extract energy from the mean flow, while the vorticity in the low-velocity-side lose energy by the viscous dissipation. Finally the results suggest the guideline to obtain the desired flow by control of the velocity ratio.

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Numerical studies on the effects of the lateral boundary on soil-structure interaction in homogeneous soil foundations

  • Li, Z.N.;Li, Q.S.;Lou, M.L.
    • Structural Engineering and Mechanics
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    • 제20권4호
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    • pp.421-434
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    • 2005
  • In this paper, the finite element method is applied to investigate the effect of the lateral boundary in homogenous soil on the seismic response of a superstructure. Some influencing factors are presented and discussed, and several parameters are identified to be important for conducting soil-structure interaction experiments on shaking tables. Numerical results show that the cross-section width L, thickness H, wave propagation velocity and lateral boundaries of soil layer have certain influences on the computational accuracy. The dimensionless parameter L/H is the most significant one among the influencing factors. In other words, a greater depth of soil layer near the foundation should be considered in shaking table tests as the thickness of the soil layer increases, which can be regarded as a linear relationship approximately. It is also found that the wave propagation velocity in soil layer affects the numerical accuracy and it is suggested to consider a greater depth of the soil layer as the wave propagation velocity increases. A numerical study on a soil-structure experimental model with a rubber ring surrounding the soil on a shaking table is also conducted. It is found the rubber ring has great effect on the soil-structure interaction experiments on shaking table. The experimental precision can be improved by reasonably choosing the elastic parameter and width of the rubber ring.

메쉬 구조의 Ag 나노박막을 이용한 ITO/Mesh-Ag/ITO 고전도성 투명전극 제조 및 특성 분석 (Fabrication of the ITO/Mesh-Ag/ITO Transparent Electrode using Ag Nano- Thin Layer with a Mesh Structure and Its Characterization)

  • 이동현;조의식;권상직
    • 반도체디스플레이기술학회지
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    • 제18권4호
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    • pp.100-104
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    • 2019
  • The 'ITO/Ag/ITO' multilayers as a highly conductive and transparent electrode, even with the optimum thickness conditions, the transmittances were much lower than those of a single ITO layer on some ranges of the visible wavelength. In order to improve the transmittance, Ag layer was formed with mesh structure. Where, the thickness of the Ag layer was about 10 nm and the space between the Ag lines was varied from 2.9 ㎛ to 19.6 ㎛ with the fixed Ag width of about 1.2 ㎛ in order to vary an open ratio of the Ag mesh structure. The transmittance and sheet resistance in the ITO/Mesh-Ag/ITO multilayer structure were analyzed depending on the open ratio. As a result, a trade off in the open ratio was necessary in order to obtain the transmittance as high as possible and the sheet resistance as possible low. By the open ratio of about 86%, in the ITO/Mesh-Ag/ITO multilayer structure, the transmittance was nearly same as the single ITO layer and the sheet resistance was about 62.3 Ω/.

Dynamic analysis by impact load in viscoelastic sandwich plates with FRP layer utilizing numerical method

  • Bayati, Mohammad Reza;Mazaheri, Hamid;Bidgoli, Mahmood Rabani
    • Steel and Composite Structures
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    • 제43권2호
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    • pp.229-240
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    • 2022
  • The main objective of this work is presenting a mathematical model for the concrete slab with fiber reinforced polymer (FRP) layer under the impact load. Impacts are assumed to occur normally over the top slab and the interaction between the impactor and the structure is simulated using a new equivalent three-degree-of-freedom (TDOF) spring-mass-damper (SMD) model. The structure is assumed viscoelastic based on Kelvin-Voigt model. Based on the sinusoidal shear deformation theory (SSDT), energy method and Hamilton's principle, the motion equations are derived. Applying DQM, the dynamic deflection and contact force of the structure is calculated numerically so that the effects of mass, velocity and height of impactor, boundary conditions, FRP layer, structural damping and geometrical parameters of structure are shown on the dynamic deflection and contact force of system. Results show that considering structural damping leads to lower dynamic deflection and contact force. In addition, increasing the impact velocity of impactor yields to increases in the maximum contact force and deflection while the contact duration is decreased. The result shows that the contact force and the central deflection of the structure decreases and the contact time decreases with assuming FRP layer.

동적 재구성이 가능한 SoC 3중 버스 구조 (Dynamically Reconfigurable SoC 3-Layer Bus Structure)

  • 김규철;서병현
    • 전기전자학회논문지
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    • 제13권2호
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    • pp.101-107
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    • 2009
  • 집적회로의 공정기술 및 설계기술이 발전함에 따라 많은 IP가 하나의 반도체 칩에 집적되어 하나의 시스템을 구성하는 SoC 설계가 많이 이루어지고 있다. 본 논문에서는 다양한 IP 간에 효율적인 데이터 통신이 이루어지도록 버스 상의 전송 특성에 따라 버스모드를 동적으로 재구성하는 SoC 3중 버스 구조를 제안한다. 제안된 버스는 다중-단일버스 모드, 단일-다중버스 모드로 재구성이 가능하며 따라서 단일버스 모드와 다중버스 모드의 장점을 모두 갖는다. 실험결과 제안된 버스구조는 기존의 고정된 버스구조보다 독립적이며 데이터 전송시간을 단축시킬 수 있음을 확인하였다. 그리고 제안된 버스구조를 JPEG 시스템에 적용한 결과 다중버스구조보다 평균 22%의 전송시간 단축을 얻을 수 있었다.

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Optimal Design of Laminate Composites with Gradient Structure for Weight Reduction

  • Back, Sung-Ki;Kang, Tae-Jin;Lee, Kyung-Woo
    • 한국복합재료학회:학술대회논문집
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    • 한국복합재료학회 1999년도 추계학술발표대회 논문집
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    • pp.68-72
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    • 1999
  • In an effort to construct a structure under the design principle of minimal use of materials for maximum performances, a discrete gradient structure has been introduced in laminate composite systems. Using a sequential linear programming method, the gradient structure of composites to maximize the buckling load was optimized in terms of fiber volume fraction and thickness of each layer. Theoretical optimization results were then verified with experimental ones. The buckling load of laminate composite showed maximum value with the outmost [$0^{\circ}$] layer concentrated by almost all the fibers when the ratio of length to width(aspect ratio) was less than 1.0. But when the aspect ratio was 2.0, the optimum was determined in a structure where the thickness and fiber volume fraction were well balanced in each layer. From the optimization of gradient structure, the optimal fiber volume fraction and thickness of each layer were proposed. Experimental results agreed well with the theoretical ones. Gradient structures have also shown an advantage in the weight reduction of composites compared with the conventional homogeneous structures.

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다층 기공구조를 갖는 다공성 반응소결 탄화규소 다공체 제조 (Fabrication of Porous Reaction Bonded Silicon Carbide with Multi-Layered Pore Structures)

  • 조경선;김규미;박상환
    • 한국세라믹학회지
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    • 제46권5호
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    • pp.534-539
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    • 2009
  • Reaction Bonded Silicon Carbide(RBSC) has been used for engineering ceramics due to low-temperature fabrication and near-net shape products with excellent structural properties such as thermal shock resistance, corrosion resistance and mechanical strength. Recently, attempts have been made to develop hot gas filter with gradient pore structure by RBSC to overcome weakness of commercial clay-bonded SiC filter such as low fracture toughness and low reliability. In this study a fabrication process of porous RBSC with multi-layer pore structure with gradient pore size was developed. The support layer of the RBSC with multi-layer pore structure was fabricated by conventional Si infiltration process. The intermediate and filter layers consisted of phenolic resin and fine SiC powder were prepared by dip-coating of the support RBSC in slurry of SiC and phenol resin. The temperature of $1550^{\circ}C$ to make Si left in RBSC support layer infiltrate into dip-coated layer to produce SiC by reacting with pyro-carbon from phenol resin.

Computational thermal stability and critical temperature buckling of nanosystem

  • Chengda Zhang;Haifeng Hu;Qiang Ma;Ning Wang
    • Advances in nano research
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    • 제14권6호
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    • pp.575-590
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    • 2023
  • Many of small-scale devices should be designed to tolerate high temperature changes. In the present study, the states of buckling and stability of nano-scale cylindrical shell structure integrated with piezoelectric layer under various thermal and electrical external loadings are scrutinized. In this regard, a multi-layer composite shell reinforced with graphene nano-platelets (GNP) having different patterns of layer configurations is modeled. An outer layer of piezoelectric material receiving external voltage is also attached to the cylindrical shell for the aim of observing the effects of voltage on the thermal buckling condition. The cylindrical shell is mathematically modeled with first-order shear deformation theory (FSDT). Linear elasticity relationship with constant thermal expansion coefficient is used to extract the relationship between stress and strain components. Moreover, minimum virtual work, including the work of the piezoelectric layer, is engaged to derive equations of motion. The derived equations are solved using numerical method to find out the effects of temperature and external voltage on the buckling stability of the shell structure. It is revealed that the boundary condition, external voltage and geometrical parameter of the shell structure have notable effects on the temperature rise required for initiating instability in the cylindrical shell structure.