• Title/Summary/Keyword: 구조물의 안정성 평가

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Forensic Engineering Study on Structure Stability Evaluation of Deep Cement Mixing Vessel using ADINA Software (ADINA 를 이용한 DCM 선박의 구조안정성 평가에 관한 연구)

  • Kim, Eui Soo;Kim, Jong Hyuk
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.38 no.11
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    • pp.1283-1290
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    • 2014
  • Recently, a wide variety of simulation techniques such as structure analysis and structure-fluid interaction analysis are being employed in the field of forensic engineering for resolving the problem of legal liability for accidents and disasters. In this study, we performed a forensic engineering investigation of a sinking accident of a DCM (deep cement mixing) vessel. The accident vessel was built as a dedicated SCP (sand compaction pile) vessel at the time of vessel building, and the DCM vessel was structurally modified, e.g., by increasing the leader height and constructing for leader expansion, without a stability review. To determine the effects of expansion and modification of structures in this sinking accident, structural stability evaluation was performed using commercial software for structural analysis, ADINA software. Through an analysis and comparison of simulation results obtained using ADINA software with the results of the structural modification and expansion, we could determine the exact cause of the sinking accident of the DCM vessel.

A Basic Study on Effect Analysis of Adjacent Structures due to Explosion of Underground Hydrogen Infrastructure (지하 수소인프라 폭발에 따른 인접 구조물 영향 분석에 대한 기초 연구)

  • Choi, Hyun-Jun;Kim, Sewon;Kim, YoungSeok
    • Journal of the Korean Geosynthetics Society
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    • v.21 no.3
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    • pp.21-27
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    • 2022
  • For carbon neutrality, interest in R&D and infrastructure construction for hydrogen energy, an eco-friendly energy source, is growing worldwide. In particular, for hydrogen stations installed in downtown areas, underground hydrogen infrastructure are being considered to increase a safety distance from hydrogen tank explosions to adjacent structures. In order to design an appropriate location and depth of the underground hydrogen infrastructure, it is necessary to evaluate the impact of the explosion of the underground hydrogen infrastructure on adjacent structures. In this paper, a numerical model was developed to analyze the effect of the underground hydrogen infrastructure explosion on adjacent structures, and the over pressure of the hydrogen tank was evaluated using the equivalent TNT (Trinitrotoluene) model. In addition, parametric analysis was performed to estimate the stability of adjacent structures according to the construction conditions of the underground hydrogen infrastructure.

Surface Property Evaluation of Geosynthetics by Rotational Abrasion Test (회전마모시험에 의한 토목합성재료의 표면특성 평가)

  • 전한용;류중재;진용범;류원석
    • Proceedings of the Korean Fiber Society Conference
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    • 2003.10b
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    • pp.303-304
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    • 2003
  • 토목합성재료 중 부직포 및 직포 지오텍스타일이 지반구조물에 적응될 경우 구속하중 부가 시 흙과의 마찰로 인한 마모에 의해 지오텍스타일의 표면손상이 발생하게 되면 강도저하가 발생하여 구조물의 안정성에 중요한 영향을 미치게 된다. 일반적으로 지오텍스타일과 흙과의 마찰특성평가는 직접전단시험이나 인발시험에 의해 평가되지만, 이들 시험 모두 구속하중에 의한 전단 및 인발변형을 해석할 뿐이며, 마모에 의한 지오텍스타일 표면 손상이나 변화는 거의 고려되지 않는 실정이다. (중략)

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The Numerical Analysis for Different Foundations Constructed by Footing and Pile (직접기초와 파일기초로 적용된 이질기초에 대한 수치해석적 평가)

  • Hwang, Eui-Suk;Jang, Kyung-Jun;Thak, Ki-Yoel;Lee, Jong-Sung;Kim, Hak-Moon
    • Proceedings of the Korean Geotechical Society Conference
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    • 2009.09a
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    • pp.985-992
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    • 2009
  • 대형 구조물의 기초 시공 시 구조물의 하부지반이 불균질하거나 경사진 지반 또는 일반토사와 암반이 혼재된 지지력이 급격히 변화하는 구간에서 시공되는 경우가 많으며 이와 같은 경우에는 경제적인 최적의 방안으로 직접기초와 말뚝기초를 혼용하여 사용하는 방안이 필요하다. 그러나 일반적으로 기초의 안정성 확보를 위해 보수적으로 말뚝기초를 적용하는 경우가 대부분이며 소규모의 아파트 기초현장에서는 부분적으로 이질기초가 적용되나 이에 대한 보강이나 안정성 검토는 형식적으로 이루어지는 경우가 대부분이다. 본 연구에서는 직접기초와 파일기초가 적용되는 이질기초에 대한 수치해석을 통하여 이질기초 적용 시 기초 및 하부지반에 대한 거동을 평가하여, 이질기초에 대한 적용가능성 여부 및 기초하부에서의 개략적인 거동에 대하여 고찰하고자 한다.

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Stability Analysis of DCM treated Ground Using Centrifuge Test (원심모형시험을 이용한 DCM 처리지반의 안정성 평가)

  • Kim, Byoung-Il;Yoo, Wan-Kyu;Lee, Seung-Hyun;Han, Jin-Tae
    • Journal of the Korean Society of Hazard Mitigation
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    • v.11 no.3
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    • pp.105-110
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    • 2011
  • Recently, a deep mixture method as a soil improvement method of marine soft ground, which causes less noise and vibration than other methods, are widely used. In this study, for DCM(Deep Cement Mixing) method, one of the deep mixture method, optimum mixing ratio of clay-cement was suggested using uniaxial compression tests on specimens with various mixing ratio of claycement. In addition, the stability of a caisson on tangent circle-type and wall-type DCM treated ground was evaluated using centrifuge tests. As a result, optimum mixing ratio of clay-cement was 28.5% and the stability of the caisson on DCM treated ground was confirmed. However, the lateral displacement of the caisson on the wall-type DCM treated ground was 7% less and the settlement of that was 39% less than the case of the tangent-circle-type DCM method.

Stability evaluation of reinforced earth walls based on large-scale modular blocks (대형 축조블록을 이용한 보강토옹벽의 안정성 평가)

  • Han, Jung-Geun;Kim, Min-Woo;Hong, Kikwon;Yun, Jung-Mann
    • Journal of the Korean Geosynthetics Society
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    • v.13 no.4
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    • pp.143-151
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    • 2014
  • This paper describes external and internal stability of reinforced earth wall using large-scale modular block and geogrid reinforcement. The evaluation for external and internal stability was conducted to analyze effect of wall height, reinforced soil (or backfill soils) and reinforcement strength. The external stability showed that the analysis cases were satisfied with design criteria, when the required minimum length and vertical spacing of reinforcement were 0.7H and 1m, respectively. The internal stability conformed that some cases were satisfied with design criteria in $25^{\circ}$ of internal friction angle of reinforced soil. Expecially, it will be applicable as wall structure considering a structural stability and economic efficiency based on evaluation of internal stability.

Efficient Structral Safety Monitoring of Large Structures Using Substructural Identification (부분구조추정법을 이용한 대형구조물의 효율적인 구조안전도 모니터링)

  • 윤정방;이형진
    • Journal of the Earthquake Engineering Society of Korea
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    • v.1 no.2
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    • pp.1-15
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    • 1997
  • This paper presents substructural identification methods for the assessment of local damages in complex and large structural systems. For this purpose, an auto-regressive and moving average with stochastic input (ARMAX) model is derived for a substructure to process the measurement data impaired by noises. Using the substructural methods, the number of unknown parameters for each identification can be significantly reduced, hence the convergence and accuracy of estimation can be improved. Secondly, the damage index is defined as the ratio of the current stiffness to the baseline value at each element for the damage assessment. The indirect estimation method was performed using the estimated results from the identification of the system matrices from the substructural identification. To demonstrate the proposed techniques, several simulation and experimental example analyses are carried out for structural models of a 2-span truss structure, a 3-span continuous beam model and 3-story building model. The results indicate that the present substructural identification method and damage estimation methods are effective and efficient for local damage estimation of complex structures.

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복합재료의 층간파괴 실험법

  • 홍창선
    • Journal of the KSME
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    • v.30 no.2
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    • pp.172-179
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    • 1990
  • 섬유강화 복합재료는 기존의 등방성재료에 비해 비강성과 비강도가 높고 충격특성, 피로특성 그 리고 내부식성 등이 매우 우수하여 항공기뿐 아니라 자동차, 쾌속선, 스포츠용품 등에 널리 사 용되고 있으며 높은 X선 투과성과 치수안정성 등의 특성을 이용하여 의료용기기, 대규모집적회 로기판, 정밀계측기기 등에까지 응용분야가 넓어져 가고 있다. 최근에는 설계를 지원하기 위한 데이타베이스의 체계화와 실제 구조물이 요구하는 특성의 효율적인 만족을 위해 구조물의 안전성 관점에서 본 손상허용 평가가 요구되고 있다. 이를 위해 섬유강화 복합재료의 층간파괴인성을 평가할 수 있는 기존의 실험법들을 소개하고 섬유강화 복합재료의 층간파괴 특성을 고려하여 보았다. 섬유강화 복합재료를 실제 구조물에 응용하기 위해서는 설계에 대한 중요한 정보인 각 파괴모우드에 대한 층간파괴인성들을 일관성 있게 정량적으로 평가할 수 있는 방법이 제시되어 각 파괴모우드에 대한 층간파괴인성의 측정뿐 아니라 층간 파괴 거동의 규명이 행해져야 한다.

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A Study on the Safety Distance of Underground Structures in Asepct of Ground Vibration Velocity due to Explosions (지중 구조물의 지반 진동 안전거리 설정에 관한 현장적용연구)

  • Park, Sangjin;Kang, Jiwon;Park, Young Jun
    • Korean Journal of Construction Engineering and Management
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    • v.17 no.4
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    • pp.87-94
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    • 2016
  • The necessity to consider stability of underground structures constructed below or adjacent ammunition depots has been increased since the expansion of urban area and construction of infrastructure. However, there are a few studies on influence of accidental explosion on underground structures. In this study, the process of assessing the stability of underground structures is suggested and its applicability is verified through the case study. AUTODYN and SPACECLAIM are used to execute the structure and geotechnical modelling, and explosion effect is simulated and vibration velocities are calculated. According to the result of this case study, it is concluded that underground structure constructed 70m below ground might be rarely influenced by the simulated explosion. The process used in this study could be used to design the underground ammunition complex and analyse the stability of underground facilities being influenced by periodical vibration.

A Study on the Methodology to Ensure Long-Term Durability of Low and Intermediate Level Radwaste Disposal Concrete Structure (${\cdot}$저준위 방사성폐기물 처분 콘크리트 구조물의 장기적 내구성 확보를 위한 방안 검토)

  • Kim Young-Ki;Lee Byung-Sik;Lee Yong-Ho
    • Proceedings of the Korean Radioactive Waste Society Conference
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    • 2005.06a
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    • pp.211-220
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    • 2005
  • The concrete structure is being considered for the main engineered barrier of low and intermediate level radwaste disposal facility. Concrete of low permeability can minimize infiltration of water and effectively prevent release of nuclide to ecosystem. But if concrete degrades, structural stability of disposal structure will decrease while permeability increase, resulting in increased possibility of nuclide release due to water infiltration. Therefore disposal concrete structure degradation shall be minimized to maintain capacity of nuclide isolation. The typical causes of concrete structure degradation are sulfide attack, reinforcement corrosion due to chloride attack, leaching of calcium hydroxide, alkali-aggregate reaction and repeated freezing-thawing. The common cause of these degradation processes is infiltration of water or adverse chemicals into concrete. Based on the study of these degradation characteristics and mechanisms of concrete structure, the methodology of design and service life evaluation of concrete structure as an engineered barrier are reviewed to ensure its long-term durability.

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