• Title/Summary/Keyword: 층간 결합 모델링

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Study on Peridynamic Interlayer Modeling for Multilayered Structures (가상 절점을 이용한 적층 구조물의 페리다이나믹 층간 결합 모델링 검토)

  • Ahn, Tae Sik;Ha, Youn Doh
    • Journal of the Computational Structural Engineering Institute of Korea
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    • v.30 no.5
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    • pp.389-396
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    • 2017
  • Peridynamics has been widely used in the dynamic fracture analysis of brittle materials. Recently, various crack patterns(compact region, floret, Hertz-type crack, etc.) of multilayered glass structures in experiments(Bless et al. 2010) were implemented with a bond-based peridynamic simulation(Bobaru et al.. 2012). The actual glass layers are bound with thin elastic interlayer material while the interlayer is missing from the peridynamic model used in the previous numerical study. In this study, the peridynamic interlayer modeling for the multilayered structures is proposed. It requires enormous computational time and memory to explicitly model very thin interlayer materials. Instead of explicit modeling, fictitious peridynamic particles are introduced for modeling interlayer materials. The computational efficiency and accuracy of the proposed peridynamic interlayer model are verified through numerical tests. Furthermore, preventing penetration scheme based on short-range interaction force is employed for the multilayered structure under compression and verified through parametric tests.

The Development of Fully Coupled SWAT-MODFLOW Model (II) Evaluation of Model (완전 연동형 SWAT-MODFLOW 결합모형 (II) 모형의 평가)

  • Kim, Nam-Won;Chung, Il-Moon;Won, Yoo-Seung
    • Journal of Korea Water Resources Association
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    • v.37 no.6
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    • pp.509-515
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    • 2004
  • In this study, comprehensive evaluation on the fully coupled SWAT-MODFLOW model is performed. Since combined model can consider the spatially varied daily recharge rate, groundwater modeling would be greatly enhanced. Also, combined model has been able to generate the distribution of groundwater heads with time, surface-subsurface flow modeling would be greatly advanced. River-aquifer interaction is well established in the combined model considering two-way interactions. Consequently, the reliability of groundwater discharge and total runoff of watershed would be greatly enhanced when combined model is used.

Peridynamic Impact Fracture Analysis of Multilayered Glass with Nonlocal Ghost Interlayer Model (비국부 층간 결합 모델을 고려한 다중적층 유리의 페리다이나믹 충돌 파괴 해석)

  • Ha, Youn Doh;An, Tae Sick
    • Journal of the Computational Structural Engineering Institute of Korea
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    • v.31 no.6
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    • pp.373-380
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    • 2018
  • We present the peridynamic dynamic fracture analysis to solve impact fracturing of multilayered glass impacted by a high-velocity object. In the most practical multilayered glass structures, main layers are glued by thin elastic masking films. Thus, it is difficult and expensive to construct the numerical model for such a multilayered structure. In this paper, we employ efficient numerical modeling of multilayered structures with a nonlocal ghost interlayer model in which ghost particles are distributed between main layers and they are interacting with each other in peridynamic way. We also consider a simple nonlocal contact condition in peridynamic frameworks to solve impact and penetration of the high-velocity impactor to the multilayered structure. Finally we can confirm the fracture capabilities of the method using a multilayered glass model in which 7 glass layers and a single elastic backing layer are affixed by polyvinyl butyral films.

FEA simulation for studying the effect of the movable side trowel (FEA simulation을 이용한 Movable Side Trowel의 효과에 대한 연구)

  • Kwon, Hong-Kyu;Kim, Young-Beom
    • Journal of the Korea Safety Management & Science
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    • v.9 no.2
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    • pp.135-147
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    • 2007
  • 이 논문은 CC 프로세스의 movable side trowel 효과를 연구하기 위한 실험과 모델링을 제시한다. FEA simulation을 이용하여 우리는 movable side trowel의 효과와 움직임에 대한 기초적인 이해를 얻어냈다. 단면의 side trowel 보다 양면의 side trowel이 실제의 3D 형상을 만드는 동안에 층간의 최적의 결합을 만들어 준다는 면에서 가장 적합하다는 것을 알아냈다. 우리의 실험이 위의 결과를 입증하였다.

Interaction of DEMS with H-terminated Si(001) surface : a first principles (DEMS와 H-terminated Si (001) 표면의 상호작용: 제일원리연구)

  • Kim, Dae-Hyun;Kim, Dae-Hee;Park, So-Yeon;Seo, Hwa-Il;Lee, Do-Hyeong;Kim, Yeong-Cheol
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2009.06a
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    • pp.117-117
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    • 2009
  • 최근 고집적화 구조는 저항(resistance)과 정전용량 (capacitance)에 의한 신호 지연 (RC delay) 증가로 인한 혼선 (cross-talk noise)과 전력소모 (power dissipation)등의 문제를 발생시킨다. 칩 성능에 영향을 미치는 제한인자를 최소화하기 위해서는 저저항 배선 금속과 저유전상수 (low-k)의 층간 절연막 (IMD, intermetal dielectric) 물질이 필요하다. 최근 PECVD (plasma enhanced chemical vapor deposition)를 이용하여 증착시킨 유기살리케이트 (OSG, organosilicate glass)는 가장 유망한 저유전상수 물질로 각광받고 있다. 본 연구에서는 제일원리 연구를 통하여 OSG의 전구체 중에 하나인 DEMS 문자를 모델링하고, 에너지적으로 가장 안정한 구조를 찾아서 각 원자 간의 결합에 따른 해리에너지 (dissociation energy)를 계산하고, DEMS가 H-terminated Si 표면과 반응하는 기구에 대해 고찰하였다. 최적화된 DEMS 분자의 구조를 찾았고 DEMS 분자가 결합이 깨져 조각 분자군으로 될 때의 에너지들을 계산하였다. 계산된 해리에너지로부터 DEMS 분자의 O 원자와 C분자의 결합이 깨져서 $C_2H_5$를 조각 분자군으로 생성할 확률이 총 8가지의 경우에서 가장 높다는 것을 알 수 있었다. 8 가지의 해리된 DEMS 조각 분자군들이 H-terminated Si 표면과 반응할 때의 반응에너지를 계산한 결과 표면의 Si 원자와 DEMS 분자에서 $C_2H_5$가 해리되어 생성된 조각 분자군의 O 원자가 결합을 하고 부산물로 $C_2H_6$를 생성하는 반응이 가장 선호된다는 것을 알 수 있었다. DEMS 분자로 증착시킨 OSG에 대하여 제일원리법을 이용하여 계산한 연구는 보고된 바 없기 때문에, DEMS 분자의 각 원자 간의 해리에너지와 Si 기판과의 반응에너지는 추후 연구개발의 중요한 기초 자료가 될 수 있다.

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Concept of Rock Physics Modeling and Application to Donghae-1 Gas Field (암석물리모델링의 개념과 동해-1 가스전에의 적용)

  • Hu, Doc-Ki;Keehm, Young-Seuk
    • 한국지구물리탐사학회:학술대회논문집
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    • 2008.10a
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    • pp.173-178
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    • 2008
  • In this paper, we will introduce rock physics modeling technique, which interrelate reservoir properties with seismic properties, and apply the technique to the Donghae-1 gas reservoir. From well-log data analysis, we obtained velocityporosity (Vp-$\phi$) relations for each formation. These relations can used to predict porosity from seismic data. In addition, we analyzed permeability data, which were obtained from core measurements and computational rock physics simulations. We then obtained permeability-porosity ($\kappa-\phi$) relations. Combining $\kappa-\phi$ with Vp-$\phi$ relations, we finally present quantitative Vp-$\kappa$ relations. As to Vp-$\phi$ modeling, we found that the degree of diagenesis and clay contents increase with depth. As to Vp-$\kappa$ relations, though \kappa-\phi relations are almost identical for all formations, we could obtain distinct Vp-$\kappa$ relations due to Vp-$\phi$ variations. In conclusion, the rock physics modeling, which bridges between seismic properties and reservoir properties, can be a very robust tool for quantitative reservoir characterization with less uncertainty.

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Swelling and Mechanical Property Change of Shale and Sandstone in Supercritical CO2 (초임계 CO2에 의한 셰일 및 사암의 물성변화 및 스웰링에 관한 연구)

  • Choi, Chae-Soon;Song, Jae-Joon
    • Tunnel and Underground Space
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    • v.22 no.4
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    • pp.266-275
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    • 2012
  • In this study, a method is devised to implement a supercritical $CO_2$ ($scCO_2$) injection environment on a laboratory scale and to investigate the effects of $scCO_2$ on the properties of rock specimens. Specimens of shale and sandstone normally constituting the cap rock and reservoir rock, respectively, were kept in a laboratory reactor chamber with $scCO_2$ for two weeks. From this stage, a chemical reaction between rock surface and the $scCO_2$ was induced. The effect of saline water was also investigated by comparing three conditions ($scCO_2$-rock, $scCO_2-H_2O$-rock and $scCO_2$-brine(1M)-rock). Finally, we checked the changes in the properties before and after the reaction by destructive and nondestructive testing procedures. The swelling of shale was a main concern in this case. The experimental results suggested that $scCO_2$ has a greater effect on the swelling of the shale than pure water and brine. It was also observed that the largest swelling displacement of shale occurred after a reaction with the $H_2O-scCO_2$ solution. The results of a series of the destructive and nondestructive tests indicate that although each of the property changes of the rock differed depending on the reaction conditions, the $H_2O-scCO_2$ solution had the greatest effect. In this study, shale was highly sensitive to the reaction conditions. These results provide fundamental information pertaining to the stability of $CO_2$ storage sites due to physical and chemical reactions between the rocks in these sites and $scCO_2$.