• 제목/요약/키워드: Micro Geometry

검색결과 229건 처리시간 0.024초

미소접합시험과 유한요소법을 통한 섬유/에폭시 복합재의 계면 전단강도 해석 (Analysis of Interfacial Shear Strength of Fiber/Epoxy Composites by Microbond Test and Finite Element Method)

  • 강수근;이덕보;최낙삼
    • Composites Research
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    • 제19권4호
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    • pp.7-14
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    • 2006
  • 미소 드랍릿 시편을 이용한 탄소섬유와 에폭시 수지 사이의 계면전단강도에 대해 시험분석하였다. 또한 드랍릿 모델, 원형 단면 모델, 인발모델의 3종류의 유한요소해석을 통해 섬유/수지간의 응력분포를 계산하였다. 본 연구결과는 다음과 같다. (1) 미소드랍릿 시험의 경우는 인발시험보다 섬유/수지의 계면에서 큰 응력집중이 나타났으며 계면박리가 낮은 하중수준에서도 발생하기 용이함을 알수 있었다. (2) 미소드랍릿시험에서 높은 계면강도를 보였는데, 이는 미소드랍릿의 형상과 사이즈, 바이스팁과 접촉하는 부위의 응력집중효과를 함께 받았기 때문으로 해석되었다.

인간 이도의 소리응답특성과 음향공간의 재현 (Characteristics of Sound Response in Ear Canal of Human and Reproduction of Acoustical Space)

  • 안태수;이두호
    • 한국소음진동공학회논문집
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    • 제21권9호
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    • pp.842-849
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    • 2011
  • The human ear canal amplifies the sound pressure level at specific frequency bands. The characteristics of the ear canal are very similar to those of curved cylindrical tube. In this study, the characteristics of sound transfer in human ear canal were measured and the acoustical space of ear canal was reproduced from the canal cavity geometry. For the measurement of sound transfer function in ear canal, a probe microphone and a reference microphone were used. The sound transfer functions were measured for 5 human subjects. To reproduce the acoustical space of the ear canal, two kinds of ear simulator were designed. The first one is a straight cylindrical tube type and the other is a real-shape ear of which geometry was taken from a micro-CT scanning of a human ear. The characteristics of the reproduced apparatus were compared with those of the human and a commercial ear simulator, RA0045 of G.R.A.S. Inc. The comparison results show that the developed apparatus well represent the ear canal characteristics in the low frequency, but have limited coincidence in level over high frequency range.

ANALYSIS OF THE PERMEABILITY CHARACTERISTICS ALONG ROUGH-WALLED FRACTURES USING A HOMOGENIZATION METHOD

  • Chae, Byung-Gon;Choi, Jung-Hae;Ichikawa, Yasuaki;Seo, Yong-Seok
    • Nuclear Engineering and Technology
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    • 제44권1호
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    • pp.43-52
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    • 2012
  • To compute a permeability coefficient along a rough fracture that takes into account the fracture geometry, this study performed detailed measurements of fracture roughness using a confocal laser scanning microscope, a quantitative analysis of roughness using a spectral analysis, and a homogenization analysis to calculate the permeability coefficient on the microand macro-scale. The homogenization analysis is a type of perturbation theory that characterizes the behavior of microscopically inhomogeneous material with a periodic boundary condition in the microstructure. Therefore, it is possible to analyze accurate permeability characteristics that are represented by the local effect of the facture geometry. The Cpermeability coefficients that are calculated using the homogenization analysis for each rough fracture model exhibit an irregular distribution and do not follow the relationship of the cubic law. This distribution suggests that the permeability characteristics strongly depend on the geometric conditions of the fractures, such as the roughness and the aperture variation. The homogenization analysis may allow us to produce more accurate results than are possible with the preexisting equations for calculating permeability.

모세관 단면 형상에 따른 계면 및 증발 특성 (Geometry Effects of Capillary on the Evaporation from the Meniscus)

  • 최충효;진송완;유정열
    • 대한기계학회논문집B
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    • 제31권4호
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    • pp.313-319
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    • 2007
  • The effect of capillary cross-section geometry on evaporation is investigated in terms of the meniscus shape, evaporation rate and evaporation-induced flow for circular, square and rectangular cross-sectional capillaries. The shapes of water and ethanol menisci are not much different from each other in square and rectangular capillaries even though the surface tension of water is much larger than that of ethanol. On the other hand, the shapes of water and ethanol menisci are very different from each other in circular capillary. The averaged evaporation fluxes in circular and rectangular capillaries are measured by tracking the meniscus position. At a given position, the averaged evaporation flux in rectangular capillaries is much larger than that in circular capillary with comparable hydraulic diameter. The flow near the evaporating meniscus is also measured using micro-PIV, so that the rotating vortex motion is observed near the evaporating ethanol and methanol menisci except for the case of methanol meniscus in rectangular capillary. This difference is considered to be due to the existence of corner menisci at the four comers.

자동차 흡기계 공기 여과기 필터의 음향학적 모델 (Acoustic modeling of an air cleaner filter in the engine intake system)

  • 이정권;강장훈
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2006년도 춘계학술대회논문집
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    • pp.114-117
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    • 2006
  • The air filter in engine intake system has a function of filtrating the dirt in the scavenging air as well as attenuating the noise. The noise attenuation within the air cleaner filter, however, has been regarded as negligible by the field engineers. In this paper, for the analysis of the acoustical performance of air filter, an acoustical model was suggested and the characteristics of air filter system were investigated. Fibrous structure of the filter element was modeled as a micro-perforated panel using the flow resistivity and porosity. The pleated geometry of the filter element was modeled as two coupled ducts that have permeable walls, in which each duct area was assumed being constant. Using such simplified geometry, a mathematical model was developed for the sound propagation within a narrow duct system. Visco-thermal effect was considered in modeling the sound propagation through such tubes; the filter box was modeled as a rigid rectangular box. By combining two models, a four-pole transfer matrix was derived. For the validation purpose, transmission loss was measured for a plastic rectangular box containing an air filter. A noticeable effect of the air filter element was observed by including the filter into the box. Comparing the predicted and measured data, we found that the predicted TL agrees well with experimental results, in particular, in magnitude and frequency at TL troughs.

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Depth-dependent EBIC microscopy of radial-junction Si micropillar arrays

  • Kaden M. Powell;Heayoung P. Yoon
    • Applied Microscopy
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    • 제50권
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    • pp.17.1-17.9
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    • 2020
  • Recent advances in fabrication have enabled radial-junction architectures for cost-effective and high-performance optoelectronic devices. Unlike a planar PN junction, a radial-junction geometry maximizes the optical interaction in the three-dimensional (3D) structures, while effectively extracting the generated carriers via the conformal PN junction. In this paper, we report characterizations of radial PN junctions that consist of p-type Si micropillars created by deep reactive-ion etching (DRIE) and an n-type layer formed by phosphorus gas diffusion. We use electron-beam induced current (EBIC) microscopy to access the 3D junction profile from the sidewall of the pillars. Our EBIC images reveal uniform PN junctions conformally constructed on the 3D pillar array. Based on Monte-Carlo simulations and EBIC modeling, we estimate local carrier separation/collection efficiency that reflects the quality of the PN junction. We find the EBIC efficiency of the pillar array increases with the incident electron beam energy, consistent with the EBIC behaviors observed in a high-quality planar PN junction. The magnitude of the EBIC efficiency of our pillar array is about 70% at 10 kV, slightly lower than that of the planar device (≈ 81%). We suggest that this reduction could be attributed to the unpassivated pillar surface and the unintended recombination centers in the pillar cores introduced during the DRIE processes. Our results support that the depth-dependent EBIC approach is ideally suitable for evaluating PN junctions formed on micro/nanostructured semiconductors with various geometry.

Newton의 역제곱 법칙 증명에서 기하학적 극한 분석 및 교육적 시사점 (In Newton's proof of the inverse square law, geometric limit analysis and Educational discussion)

  • 강정기
    • 한국학교수학회논문집
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    • 제24권2호
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    • pp.173-190
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    • 2021
  • 본 연구는 Newton의 의 핵심으로 일컬어지는 역제곱 법칙의 증명을 기하학적 극한과 관련하여 분석하고, 이를 수학교육에 활용하는 방안과 관련한 교육적 시사점을 제공하고자 하였다. Newton은 무한소에 대한 논쟁을 의식하여 전통적인 Euclid의 기하 방식으로 역학 문제를 해결하였다. Newton은 힘, 시간, 관성 궤도 이탈 정도 등을 기하 선분으로 표현함으로써 역학을 기하의 차원에 포함시키는 결과를 이뤄냈다. Newton은 특히 포물선 근사, 다각형 근사, 선분의 비의 극한이라는 기하학적 극한을 도입함으로써 Euclid 기하를 역학을 아우르는 새로운 차원으로 발전시킬 수 있었다. 이러한 분석을 바탕으로 Newton의 기하학적 극한을 수학의 유용성을 보여주는 도구로 활용, 곡선면적은 정적분이라는 통념을 깨는 수단으로 활용할 것을 제안하였다. 더불어 학교수학에서 기하학적 극한의 바람직한 활용을 돕기 위해서는 미시 세계에서의 동등성 확대 강조, 발견술로서 활용하게끔 유도하는 질문 활용, 미시 세계에서 선분의 동등성 파악에는 비의 접근이 유용하다는 인식을 돕는 과정이 필요할 것이라는 교육적 시사점을 제안하였다.

입자결합모델을 이용한 불연속체 암반의 역학적 물성 평가 (Evaluation of the mechanical properties of discontinuous rock masses by using a bonded-particle model)

  • 박의섭;류창하;배성호
    • 한국터널공학회:학술대회논문집
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    • 한국터널공학회 2005년도 학술발표회 논문집
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    • pp.348-358
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    • 2005
  • Although the evaluation of the mechanical properties and behavior of discontinuous rock masses is very important for the design of underground openings, it has always been considered the most difficult problem. One of the difficulties in describing the rock mass behavior is assigning the appropriate constitutive model. This limitation may be overcome with the progress in discrete element software such as PFC, which does not need the user to prescribe a constitutive model for rock mass. Instead, the micro-scale properties of the intact rock and joints are defined and the macro-scale response results from those properties and the geometry of the problem. In this paper, a $30m{\times}30m{\times}30m$ jointed rock mass of road tunnel site was analyzed. A discrete fracture network was developed from the joint geometry obtained from core logging and surface survey. Using the discontinuities geometry from the DFN model, PFC simulations were carried out, starting with the intact rock and systematically adding the joints and the stress-strain response was recorded for each case. With the stress-strain response curves, the mechanical properties of discontinuous rock masses were determined and compared to the results of empirical methods such as RMR, Q and GSI. The values of Young's modulus, Poisson's ratio and peak strength are almost similar from PFC model and Empirical methods. As expected, the presence of joints had a pronounced effect on mechanical properties of the rock mass. More importantly, the mechanical response of the PFC model was not determined by a user specified constitutive model.

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SF6-C2H2-H2 기체에 의해 생성된 탄소 코일 기하구조의 반응온도 효과 (Effect of Reaction Temperature on the Geometry of Carbon Coils Formed by SF6 Flow Incorporation in C2H2 and H2 Source Gases)

  • 김성훈
    • 한국진공학회지
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    • 제21권1호
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    • pp.48-54
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    • 2012
  • 니켈촉매 막을 증착시킨 산화규소 기판위에 아세틸렌기체와 수소기체를 원료로, 육불화황기체를 첨가기체로 열화학기상증착 시스템하에서 탄소코일을 증착하였다. 반응온도를 $650^{\circ}C$에서 $800^{\circ}C$까지 증가시키면서 증착된 탄소 코일의 기하구조를 조사하였다. $650^{\circ}C$에서는 주로 탄소나노필라멘트 형성의 전단계가 나타났으며, 반응온도가 증가하자($700^{\circ}C$) 나노 크기의 코일들이 나타났다. $775^{\circ}C$로 반응온도를 더욱 증가시키자, 파도물결과 같은 나노 코일들이 성장되었으며, 간혹 마이크로 크기의 코일들도 나타났다. 육불화황에 첨가된 불소의 에칭효과로 니켈 촉매의 크기를 줄일 수 있을 것으로 여겨지며, 따라서 육불화항 첨가기체의 사용으로 기존에 보고된 것보다 작은 크기의 직경을 갖는 마이크로 탄소 코일을 얻을 수 있었다.

Effect of Internal Flow in Symmetric and Asymmetric Micro Regenerative Pump Impellers on Their Pressure Performance

  • Horiguchi, Hironori;Matsumoto, Shinji;Tsujimoto, Yoshinobu;Sakagami, Masaaki;Tanaka, Shigeo
    • International Journal of Fluid Machinery and Systems
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    • 제2권1호
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    • pp.72-79
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    • 2009
  • The effect of symmetric and asymmetric micro regenerative pump impellers on their pressure performance was studied. The shut off head of the pump with the symmetric impeller was about 2.5 times as that with the asymmetric impeller. The computation of the internal flow was performed to clarify the cause of the increase of the head. It was found that the contribution of the angular momentum supply was larger than that of shear stress for the head development in both cases. The larger head and momentum supply in the case of the symmetric impeller were caused by larger recirculated flow rate and larger angular momentum difference between the inlet and outlet to the impeller. The larger recirculated flow rate was caused by smaller pressure gradient in the direction of recirculated flow. The decrease of the circumferential velocity in the casing was attributed to the smaller local flow rate in the casing.