• 제목/요약/키워드: Impact-induced Damage

검색결과 138건 처리시간 0.153초

Simulation of Ultrasonic Stress During Impact Phase in Wire Bonding

  • Mayer, Michael
    • 마이크로전자및패키징학회지
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    • 제20권4호
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    • pp.7-11
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    • 2013
  • As thermosonic ball bonding is developed for more and more advanced applications in the electronic packaging industry, the control of process stresses induced on the integrated circuits becomes more important. If Cu bonding wire is used instead of Au wire, larger ultrasonic levels are common during bonding. For advanced microchips the use of Cu based wire is risky because the ultrasonic stresses can cause chip damage. This risk needs to be managed by e.g. the use of ultrasound during the impact stage of the ball on the pad ("pre-bleed") as it can reduce the strain hardening effect, which leads to a softer deformed ball that can be bonded with less ultrasound. To find the best profiles of ultrasound during impact, a numerical model is reported for ultrasonic bonding with capillary dynamics combined with a geometrical model describing ball deformation based on volume conservation and stress balance. This leads to an efficient procedure of ball bond modelling bypassing plasticity and contact pairs. The ultrasonic force and average stress at the bond zone are extracted from the numerical experiments for a $50{\mu}m$ diameter free air ball deformed by a capillary with a hole diameter of $35{\mu}m$ at the tip, a chamfer diameter of $51{\mu}m$, a chamfer angle of $90^{\circ}$, and a face angle of $1^{\circ}$. An upper limit of the ultrasonic amplitude during impact is derived below which the ultrasonic shear stress at the interface is not higher than 120 MPa, which can be recommended for low stress bonding.

부유물 충돌을 고려한 교각의 홍수 취약도 해석 기법 (Flood fragility analysis of bridge piers in consideration of debris impacts)

  • 김현준;심성한
    • 한국산학기술학회논문지
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    • 제17권5호
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    • pp.325-331
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    • 2016
  • 본 연구에서는 홍수 시 부유물의 충돌하중을 고려하여 교량의 홍수 취약도 곡선을 도출하였다. 자연재해에 의해 불가피하게 발생하는 사회기반시설물의 손상 또는 기능 손실은 심각한 인명피해 뿐만 아니라 국가적으로 사회적, 경제적 손실을 불러올 수 있다. 따라서 국가주요시설물을 재난으로부터 효과적으로 유지관리하기 위해 취약도 곡선은 중요한 도구로 사용되고 있다. 특히 한국은 산지 지형이 많이 형성되어 있고 하절기에 강수량의 2/3이상이 집중되어, 홍수 피해 가능성이 매우 높다. 홍수 시 교량 파괴의 주원인으로는 부유물의 충돌과 하상세굴이 있는데, 부유물의 충돌은 여러 가지 불확실성으로 인하여 상대적으로 연구가 부족한 실정이다. 본 연구에서는 FERUM-ABAQUS 기반의 취약도 해석 시스템을 도입하여, 홍수시 부유물의 충돌에 대한 교량의 취약성을 평가하였다. 교량의 취약도 해석을 효과적으로 수행하기 위하여 한계상태함수, 손상도 지수, 확률변수, 유한요소모델, 취약도 해석 소프트웨어 시스템을 주로 고려하였으며, 가속도 및 변위 응답해석을 통하여 모델 상태를 확인하였다. 다음으로는 홍수 시 부유물 충돌에 발생 가능한 다양한 파라미터를 기반으로 교량의 취약도 곡선을 성공적으로 도출하였다.

Modeling and optimization of infill material properties of post-installed steel anchor bolt embedded in concrete subjected to impact loading

  • Saleem, Muhammad
    • Smart Structures and Systems
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    • 제29권3호
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    • pp.445-455
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    • 2022
  • Steel anchor bolts are installed in concrete using a variety of methods. One of the most common methods of anchor bolt installation is using epoxy resin as an infill material injected into the drilled hole to act as a bonding material between the steel bolt and the surrounding concrete. Typical design standards assume uniform stress distribution along the length of the anchor bolt accompanied with single crack leading to pull-out failure. Experimental evidence has shown that the steel anchor bolts fail owing to the multiple failure patterns, hence these design assumptions are not realistic. In this regard, the presented research work details the analytical model that takes into consideration multiple micro cracks in the infill material induced via impact loading. The impact loading from the Schmidt hammer is used to evaluate the bond condition bond condition of anchor bolt and the epoxy material. The added advantage of the presented analytical model is that it is able to take into account the various type of end conditions of the anchor bolts such as bent or U-shaped anchors. Through sensitivity analysis the optimum stiffness and shear strength properties of the epoxy infill material is achieved, which have shown to achieve lower displacement coupled with reduced damage to the surrounding concrete. The accuracy of the presented model is confirmed by comparing the simulated deformational responses with the experimental evidence. From the comparison it was found that the model was successful in simulating the experimental results. The proposed model can be adopted by professionals interested in predicting and controlling the deformational response of anchor bolts.

Behaviour of lightweight composite trusses in fire - A case study

  • Choi, Seng-Kwan;Burgess, Ian;Plank, Roger
    • Steel and Composite Structures
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    • 제7권2호
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    • pp.105-118
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    • 2007
  • On September $11^{th}$ 2001, the twin towers of the World Trade Center in New York City were struck by two hijacked airplanes. Despite severe local damage induced by the impact, the towers were able to sustain 102 and 56 minutes of the subsequent multi-storey fires before collapsing. The purpose of this study is to contribute to the understanding of the in-fire performance of composite trusses by examining the behaviour of the longer-span type used in the towers. It makes no attempt to be a forensic study of the actual events. Using the finite element package Vulcan, the structural mechanics of typical long-span composite floor trusses are explained, under a variety of scenarios, as the fire temperatures rise. Different boundary conditions, degrees of protection and loading are all covered, the results being presented mainly in the form of graphs of deflection and internal force of members against time.

심근 경색 유발 심부전 모델에서 강리 추출물의 심장 보호 가능성 (Cardioprotective Potential of Gracilaria Verrucosa Extract in Myocardial Infarction-Induced Heart Failure Model)

  • 장윤재;김혜윰;윤정주;한병혁;유제국;조남근;이호섭;강대길
    • 대한한의학방제학회지
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    • 제31권3호
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    • pp.157-169
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    • 2023
  • Gracilaria Verrucosa (GV), a seaweed used in traditional Korean medicine, was studied for its effects on MI-induced heart failure in rats. MI is caused by a blocked coronary artery, leading to severe cardiac dysfunction. The study used a rat model to assess cardiac changes over time and evaluate the impact of GV on heart failure. Ischemia was induced through LAD ligation surgery, and the extent of ischemic area was measured as a prognostic factor. GV extract administration significantly improved cardiac morphology and reduced cardiac weight compared to the MI group. GV treatment also improved cardiac function, as evidenced by positive effects on chamber dilation during MI-induced heart failure. Parameters such as ejection fraction (EF) and fractional shortening (FS) were measured. The MI group showed decreased EF and FS compared to the sham group, while these parameters improved in the GV group. GV treatment also reduced levels of LDH, CPK, and CK-MB in the serum, indicating reduced myocardial damage. Histological analysis revealed that GV treatment attenuated cardiac hypertrophy and fibrosis, with reduced collagen deposition in the myocardium. Immunohistochemistry analysis showed suppressed expression of TGF-β1 and collagen 1, involved in fibrosis. In conclusion, GV showed potential in improving cardiac function in a rat model of MI-induced heart failure. It alleviated myocardial damage, attenuated cardiac hypertrophy and fibrosis, and suppressed fibrotic markers. Further studies are needed to explore its clinical efficacy and underlying mechanisms in cardiac diseases beyond animal models.

Lifetime seismic performance assessment of high-rise steel-concrete composite frame with buckling-restrained braces under wind-induced fatigue

  • Liu, Yang;Li, Hong-Nan;Li, Chao;Dong, Tian-Ze
    • Structural Engineering and Mechanics
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    • 제77권2호
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    • pp.197-215
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    • 2021
  • Under a severe environment of multiple hazards such as earthquakes and winds, the life-cycle performance of engineering structures may inevitably be deteriorated due to the fatigue effect caused by long-term exposure to wind loads, which would further increase the structural vulnerability to earthquakes. This paper presents a framework for evaluating the lifetime structural seismic performance under the effect of wind-induced fatigue considering different sources of uncertainties. The seismic behavior of a high-rise steel-concrete composite frame with buckling-restrained braces (FBRB) during its service life is systematically investigated using the proposed approach. Recorded field data for the wind hazard of Fuzhou, Fujian Province of China from Jan. 1, 1980 to Mar. 31, 2019 is collected, based on which the distribution of wind velocity is constructed by the Gumbel model after comparisons. The OpenSees platform is employed to establish the numerical model of the FBRB and conduct subsequent numerical computations. Allowed for the uncertainties caused by the wind generation and structural modeling, the final annual fatigue damage takes the average of 50 groups of simulations. The lifetime structural performance assessments, including static pushover analyses, nonlinear dynamic time history analyses and fragility analyses, are conducted on the time-dependent finite element (FE) models which are modified in lines with the material deterioration models. The results indicate that the structural performance tends to degrade over time under the effect of fatigue, while the influencing degree of fatigue varies with the duration time of fatigue process and seismic intensity. The impact of wind-induced fatigue on structural responses and fragilities are explicitly quantified and discussed in details.

Review on Quantitative Measures of Robustness for Building Structures Against Disproportionate Collapse

  • Jiang, Jian;Zhang, Qijie;Li, Liulian;Chen, Wei;Ye, Jihong;Li, Guo-Qiang
    • 국제초고층학회논문집
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    • 제9권2호
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    • pp.127-154
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    • 2020
  • Disproportionate collapse triggered by local structural failure may cause huge casualties and economic losses, being one of the most critical civil engineering incidents. It is generally recognized that ensuring robustness of a structure, defined as its insensitivity to local failure, is the most acceptable and effective method to arrest disproportionate collapse. To date, the concept of robustness in its definition and quantification is still an issue of controversy. This paper presents a detailed review on about 50 quantitative measures of robustness for building structures, being classified into structural attribute-based and structural performance-based measures (deterministic and probabilistic). The definition of robustness is first described and distinguished from that of collapse resistance, vulnerability and redundancy. The review shows that deterministic measures predominate in quantifying structural robustness by comparing the structural responses of an intact and damaged structure. The attribute-based measures based on structural topology and stiffness are only applicable to elastic state of simple structural forms while the probabilistic measures receive growing interest by accounting for uncertainties in abnormal events, local failure, structural system and failure-induced consequences, which can be used for decision-making tools. There is still a lack of generalized quantifications of robustness, which should be derived based on the definition and design objectives and on the response of a structure to local damage as well as the associated consequences of collapse. Critical issues and recommendations for future design and research on quantification of robustness are provided from the views of column removal scenarios, types of structures, regularity of structural layouts, collapse modes, numerical methods, multiple hazards, degrees of robustness, partial damage of components, acceptable design criteria.

α-티타늄 평판표면에서 강체 구형팁의 스크래치로 인한 내부 결정구조 특성 변화에 대한 연구 (A Study on Crystalline Structural Variations of the Rigid Spherical-Tip scratch on the Surface of α-Titanium substrates via Molecular Dynamics Simulations)

  • 정예리;김진호;이태일
    • Tribology and Lubricants
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    • 제39권5호
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    • pp.167-172
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    • 2023
  • Titanium alloys are widely recognized among engineering materials owing to their impressive mechanical properties, including high strength-to-weight ratios, fracture toughness, resistance to fatigue, and corrosion resistance. Consequently, applications involving titanium alloys are more susceptible to damage from unforeseen events, such as scratches. Nevertheless, the impact of microscopic damage remains an area that requires further investigation. This study delves into the microscopic wear behavior of α-titanium crystal structures when subjected to linear scratch-induced damage conditions, utilizing molecular dynamics simulations as the primary methodology. The configuration of crystal lattice structures plays a crucial role in influencing material properties such as slip, which pertains to the movement of dislocations within the crystal structure. The molecular dynamics technique surpasses the constraints of observing microscopic phenomena over brief intervals, such as sub-nano- or pico-second intervals. First, we demonstrate the localized transformation of lattice structures at the end of initialization, indentation, and wear processes. In addition, we obtain the exerted force on a rigid sphere during scratching under linear movement. Furthermore, we investigate the effect of the relaxation period between indentation and scratch deformation. Finally, we conduct a comparison study of nanoindentation between crystal and amorphous Ti substrates. Thus, this study reveals the underlying physics of the microscopic transformation of the α-titanium crystal structure under wear-like accidental events.

충돌하중을 받는 이방향 비부착 프리스트레스트 콘크리트 패널부재의 충돌저항성능에 대한 실험적 거동 평가 (Experimental Evaluation of Bi-directionally Unbonded Prestressed Concrete Panel Impact-Resistance Behavior under Impact Loading)

  • 이나현;이상원;이승재;김장호
    • 콘크리트학회논문집
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    • 제25권5호
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    • pp.485-496
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    • 2013
  • 2001년 9.11테러로 인한 미국 세계무역센터 및 미국 국방성 펜타곤이 붕괴된 이후, 전 세계적으로 충돌, 폭발 등의 극한하중에 의한 테러가 빈번하게 발생하고 있으며, 극한하중에 의한 구조물의 거동에 대한 사회적 불안감은 더욱 증가되고 있다. 그러나 지금까지의 사회기반시설구조물에는 폭발 및 충돌 등과 같은 극한하중에 대한 방호 및 방재개념을 설계에 고려하지 못하고 있는 실정이며, 원전격납건물, 가스탱크, 교량, 터널 등에 널리 사용되는 프리스트레스트 콘크리트 구조물에 대한 극한하중 연구는 전 세계적으로 미흡하다. 충돌과 같은 극한하중은 집약된 에너지의 급작스런 방출로 인한 높은 충돌압력을 형성하므로, 극한하중의 특성 및 전파 메커니즘을 이해하는 것이 필요하다. 그러므로 이 연구에서는 이방향 비부착 프리스트레스트 콘크리트 패널의 충돌저항성능을 비교검토하기 위하여, $1400mm{\times}1000mm{\times}300mm$의 철근콘크리트(RC), 프리스트레스 텐던으로만 보강된 콘크리트(PS), 프리스트레스 텐던과 철근으로 보강된 콘크리트(PSR, 일반적인 PSC) 시편을 제작하였다. 실험 조건에 맞춰 14 kN의 추를 10 m, 5 m, 4 m 높이에서 낙하하는 예비 실험과 3.5 m 높이의 본 실험으로 구성하여 충돌하중에 대한 프리스트레스트 콘크리트 구조물의 실험적 평가를 수행하였다. 또한, 충돌실험을 위한 기본적인 실험 구성 및 계측시스템을 구축하였다. 충돌 저항성능은 균열형상, 손상면적, 에너지 흡수, 처짐, 변형률, 가속도 등의 충돌에 의한 계측데이터를 이용한 거동분석 뿐만 아니라, 충돌 후 잔류구조성능 실험을 수행하여 이방향 비부착 프리스트레스트 콘크리트 패널의 충돌저항성능을 검토하였다. 본 실험은 향후 국내외 프리스트레스트 콘크리트에 대한 충돌 방호설계 및 충돌해석 등 관련 연구분야의 기초자료가 될 것이라고 판단되는 바이다.

Response of circular footing on dry dense sand to impact load with different embedment depths

  • Ali, Adnan F.;Fattah, Mohammed Y.;Ahmed, Balqees A.
    • Earthquakes and Structures
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    • 제14권4호
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    • pp.323-336
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    • 2018
  • Machine foundations with impact loads are common powerful sources of industrial vibrations. These foundations are generally transferring vertical dynamic loads to the soil and generate ground vibrations which may harmfully affect the surrounding structures or buildings. Dynamic effects range from severe trouble of working conditions for some sensitive instruments or devices to visible structural damage. This work includes an experimental study on the behavior of dry dense sand under the action of a single impulsive load. The objective of this research is to predict the dry sand response under impact loads. Emphasis will be made on attenuation of waves induced by impact loads through the soil. The research also includes studying the effect of footing embedment, and footing area on the soil behavior and its dynamic response. Different falling masses from different heights were conducted using the falling weight deflectometer (FWD) to provide the single pulse energy. The responses of different soils were evaluated at different locations (vertically below the impact plate and horizontally away from it). These responses include; displacements, velocities, and accelerations that are developed due to the impact acting at top and different depths within the soil using the falling weight deflectometer (FWD) and accelerometers (ARH-500A Waterproof, and Low capacity Acceleration Transducer) that are embedded in the soil in addition to soil pressure gauges. It was concluded that increasing the footing embedment depth results in increase in the amplitude of the force-time history by about 10-30% due to increase in the degree of confinement. This is accompanied by a decrease in the displacement response of the soil by about 40-50% due to increase in the overburden pressure when the embedment depth increased which leads to increasing the stiffness of sandy soil. There is also increase in the natural frequency of the soil-foundation system by about 20-45%. For surface foundation, the foundation is free to oscillate in vertical, horizontal and rocking modes. But, when embedding a footing, the surrounding soil restricts oscillation due to confinement which leads to increasing the natural frequency. Moreover, the soil density increases with depth because of compaction, which makes the soil behave as a solid medium. Increasing the footing embedment depth results in an increase in the damping ratio by about 50-150% due to the increase of soil density as D/B increases, hence the soil tends to behave as a solid medium which activates both viscous and strain damping.