• 제목/요약/키워드: Stress - Strain curve

검색결과 630건 처리시간 0.045초

다른 온도 조절 상태에서 분자 동역학에서 콜라겐 단백질의 거동 (The behavior of collagen-like molecules in response to different temperature setting methods in steered molecular dynamic simulation)

  • 윤영준;조강희;한석영
    • 한국정보전자통신기술학회논문지
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    • 제13권5호
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    • pp.397-402
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    • 2020
  • 타입 1 콜라겐 단백질은 인체 내에서 가장 많이 존재하는 단백질이다. 이 단백질은 점탄성 거동을 보이며 이는 힘줄에서도 찾아볼 수 있다. 분자동역학 시뮬레이션 방법에는 rescaling 방법과 reassignment 방법으로 온도를 조절할 수 있다. rescaling 방법은 온도를 주어진 온도로 책정하는 방법이고, reassignment 방법은 원하는 온도로 맥스웰 분포를 이용하여서 온도를 책정하는 방법이다. 우리는 reassignment 방법에서 콜라겐 단백질의 거동이 시간에 따라서 변화하는 현상을 찾아내었다. 반면에 rescaling 방법에서는 시간에 무관하게 거동하였다. 콜라겐에 다른 속도로 인장을 가하였을 경우, 예를 들어 0.5, 1, 2, 5 Å/ps의 속도로 40 Å까지 힘을 가했을 경우, rescaling 방법에서는 속도에 따른 변화가 거의 없었던 반면, reassignment 방법의 경우 대략 80nm, 100nm, 130nm, 180nm까지 인장이 되었음을 보여준다. 이 현상에 대한 물리학적 의미를 명확하게 규명하지는 못하였지만, 단백질에 관한 시뮬레이션을 실행하는데 있어서 주의를 기울여 수행하여야 한다는 점에서 이 논문의 가치가 있다고 생각한다.

PBA/PS 코어-셀 압력가소성 고분자와 실리카 나노입자의 블렌딩 (Blending of Silica Nanoparticles with PBA/PS Core-Shell Baroplastic Polymers)

  • 김민정;최용두;류상욱
    • 폴리머
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    • 제32권6호
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    • pp.573-579
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    • 2008
  • 두 단계 에멀젼 중합을 통해 PBA/PS 코어-셸 고분자 나노입자 및 실리카가 함유된 유기-무기 하이브리드 재료를 합성하였다. 실리카 나노입자는 코어-셸 고분자 에멀젼과 혼합되어 $Na_2CO_3$가 녹아있는 증류수/메탄올의 혼합용매에 침전되었다. 건조 후 압축성형으로 제조된 시편의 물성평가를 통해 탄성계수는 코어-셸 나노입자의 크기가 작을수록, 분자량이 클수록, 실리카가 많이 첨가될수록 증가함을 확인하였다. 또한 PBA/PS 코어-셸 고분자는 실리카가 13.0 wt% 첨가되었음에도 불구하고 25$^\circ$C, 13.8 MPa, 5분의 조건에서 우수한 압력가소성 특징을 나타내었으며 6배 이상 증가된 탄성계수가 얻어졌다.

액상화 저항곡선과 실내실험에 기반한 구성모델 입력변수의 산정 (Evaluation of Input Parameters in Constitutive Models Based on Liquefaction Resistance Curve and Laboratory Tests)

  • ;;유병수;김성렬
    • 한국지반공학회논문집
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    • 제36권6호
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    • pp.35-46
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    • 2020
  • 액상화 구성모델의 입력변수는 실내외 실험 등을 통해 지반 및 하중 조건에 적합한 값을 결정하는 것이 중요하지만, 설계 실무에서는 시험수행의 어려움 등으로 입력변수의 결정 및 해석결과의 검증이 어려웠다. 본 연구에서는 반복 직접전단시험에 대한 수치모델링을 수행하여 액상화 구성모델 중 Finn 모델과 PM4Sand 모델의 적용성을 분석하였다. 그 결과, Finn 모델은 과잉간극수압의 최대값 도달시점은 모사할 수 있었지만 항복 이후의 과잉간극수압 응답 및 응력-변형률 거동을 모사하는데 한계가 있었다. 이에 반해, PM4Sand 모델은 액상화 도달시점 및 및 액상화 이후의 응력-변형률 거동을 잘 모사할 수 있었다. 최종적으로, 설계조건에 맞는 액상화 저항전단응력비 CRR을 모사할 수 있는 액상화 모델의 입력변수 산정절차를 제안하고 PM4Sand 모델의 입력변수를 산정하는 간편식을 제안하였다.

Analysis for mechanical characteristics and failure models of coal specimens with non-penetrating single crack

  • Lv, Huayong;Tang, Yuesong;Zhang, Lingfei;Cheng, Zhanbo;Zhang, Yaning
    • Geomechanics and Engineering
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    • 제17권4호
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    • pp.355-365
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    • 2019
  • It is normal to observe the presence of numerous cracks in coal body. And it has significantly effective on the mechanical characteristics and realistic failure models of coal mass. Therefore, this paper is to investigate the influence of crack parameters on coal body by comprehensive using theoretical analysis, laboratory experiments and numerical simulation through prepared briquette specimens. Different from intact coal body possessing single peak in stress-strain curve, other specimens with crack angle can be illustrated to own double peaks. Moreover, the unconfined compressive strength (UCS) of specimens decreases and follow by increasing with the increase of crack angle. It seems to like a parabolic shape with an upward opening. And it can be demonstrated that the minimum UCS is obtained in crack angle $45^{\circ}$. In terms of failure types, it is interesting to note that there is a changing trend from tensile failure to tensile-shear mixing failure with tension dominant follow by shear dominant with the increase of crack angle. However, the changing characteristics of UCS and failure forms can be explained by elastic-plastic and fracture mechanics. Lastly, the results of numerical simulations are good consistent with the experimental results. It provides experimental and theoretical foundations to reveal fracture mechanism of coal body with non-penetrating single crack further.

Study on the performance of concrete-filled steel tube beam-column joints of new types

  • Liu, Dianzhong;Li, Hongxian;Ren, Huan
    • Computers and Concrete
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    • 제26권6호
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    • pp.547-563
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    • 2020
  • In this paper, the influence of axial compression ratio on the mechanical properties of new type joints of side span of rectangular concrete-filled steel tubular column-H-type steel beam is studied. Two new types of side-span joints of rectangular concrete-filled steel tubular column-H-type steel beam are designed and quasi-static tests of five new type joints with 1:2 scale reduction ratios are performed. The axial compression ratio of joint JD1 is 0.3, 0.4 and 0.5, and the axial compression ratio of joint JD2 is 0.3 and 0.5. In the joint test, different axial forces were applied to the top of the column according to different axial compression ratios, and low-cyclic reciprocating load was applied on the beam. The stress and strain distribution, beam and column deformation, limit state, failure process, failure mechanism, stiffness degradation, ductile deformation and energy dissipation capacity of the joint were measured and analyzed. The results show that: with the increase of axial compression ratio, the ultimate bearing capacity of the joint decreases slightly, the plastic deformation decreases, and the stiffness and ductility decrease. According to the energy dissipation curve of the specimen, the equivalent damping coefficient also increases with the increase of axial compression ratio in a certain range, indicating that the increase of axial compression ratio can improve the seismic performance of the joint to a certain extent. The finite element method is used to simulate the joint test, and the test results are in good agreement with the simulation results.

Effect of stress-strain curve changing with equal channel angular pressing on ultimate strength of ship hull stiffened panels

  • Sekban, Dursun Murat;Olmez, Hasan
    • Structural Engineering and Mechanics
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    • 제78권4호
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    • pp.473-484
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    • 2021
  • Similar to other structures, ultimate strength values showing the maximum load that the structure can resist without damaging has great importance on ships. Therefore, increasing the ultimate strength values will be an important benefit for the structure. Low carbon steels used in ships due to their low cost and good weldability. Improving the ultimate strength values without interfering with the chemical composition to prevent of the weldability properties of these steels would be very beneficial for ships. Grain refinement via severe plastic deformation (SPD) is an essential strengthening mechanism without changing the chemical composition of metallic materials. Among SPD methods, equal channel angular pressing (ECAP) is one of the most commonly used one due to its capacity for achieving bulk ultrafine-grained (UFG) materials. When the literature is examined, it is seen that there is no study about ultimate strength calculation in ships after ECAP. Therefore, the mean purpose of this study is to apply ECAP to a shipbuilding low carbon steel to be able to achieve mechanical properties and investigate the alteration of ship hull girder grillage system's ultimate strength via finite element analysis approach. A fine-grained (FG) microstructure with a mean grain size of 6 ㎛ (initial grain size was 25 ㎛) was after ECAP. This microstructural evolution brought about a considerable increase in strength values. Both yield and tensile strength values increased from 280 MPa and 425 MPa to about 420 MPa and 785 MPa, respectively. This improvement in the strength values reflected a finite element method to determine the ultimate strength of ship hull girder grillage system. As a result of calculations, it was reached significantly higher ultimate strength values (237,876 MPa) compared the non-processed situation (192,986 MPa) on ship hull girder grillage system.

Buckling resistance behavior of WGJ420 fire-resistant weathering steel columns under fire

  • Yiran Wu;Xianglin Yu;Yongjiu Shi;Yonglei Xu;Huiyong Ban
    • Steel and Composite Structures
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    • 제47권2호
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    • pp.269-287
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    • 2023
  • The WGJ420 fire-resistant weathering (FRW) steel is developed and manufactured with standard yield strength of 420 MPa at room temperature, which is expected to significantly enhance the performance of steel structures with excellent fire and corrosion resistances, strong seismic capacity, high strength and ductility, good resilience and robustness. In this paper, the mechanical properties of FRW steel plates and buckling behavior of columns are investigated through tests at elevated temperatures. The stress-strain curves, mechanical properties of FRW steel such as modulus of elasticity, proof strength, tensile strength, as well as corresponding reduction factors are obtained and discussed. The recommended constitutive model based on the Ramberg-Osgood relationship, as well as the relevant formulas for mechanical properties are proposed, which provide fundamental mechanical parameters and references. A total of 12 FRW steel welded I-section columns with different slenderness ratios and buckling load ratios are tested under standard fire to understand the global buckling behavior in-depth. The influences of boundary conditions on the buckling failure modes as well as the critical temperatures are also investigated. In addition, the temperature distributions at different sections/locations of the columns are obtained. It is found that the buckling deformation curve can be divided into four stages: initial expansion stage, stable stage, compression stage and failure stage. The fire test results concluded that the residual buckling capacities of FRW steel columns are substantially higher than the conventional steel columns at elevated temperatures. Furthermore, the numerical results show good agreement with the fire test results in terms of the critical temperature and maximum axial elongation. Finally, the critical temperatures between the numerical results and various code/standard curves (GB 51249, Eurocode 3, AS 4100, BS 5950 and AISC) are compared and verified both in the buckling resistance domain and in the temperature domain. It is demonstrated that the FRW steel columns have sufficient safety redundancy for fire resistance when they are designed according to current codes or standards.

강판으로 보강된 원형철근콘크리트교각의 내진성능 평가에 관한 해석적 연구 (Numerical Study on Seismic Performance Evaluation of Circular Reinforced Concrete Piers Confined by Steel Plate)

  • 이명진;박종섭
    • 한국산학기술학회논문지
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    • 제22권1호
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    • pp.116-122
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    • 2021
  • 본 논문은 반복하중을 받는 원형 철근콘크리트 교각 외부에 강판 보강을 적용한 경우, 교각의 성능 향상도를 정량적으로 평가하였다. 범용 유한 요소해석프로그램인 ABAQUS의 다양한 3차원 요소를 적용하여 교각 구조물을 해석하였다. 비탄성, 비선형 해석 변수로는 강판 보강 높이와 교각 높이 비, 강판 보강 두께와 교각 지름 비를 적용하였다. 교각 하부는 고정단으로 고려하였으며, 하중은 교각 상단에 횡 방향 반복하중을 가력하였다. 하중-변위 곡선, 응력-변형률 곡선, 연성도, 에너지 흡수 능력을 고려하여 보강에 따른 교각의 내진 성능 향상도를 평가하였다. 강판으로 보강한 원형철근콘크리트 교각은 보강재로 인한 외부 콘크리트 구속 효과로 인해 기둥의 항복 하중과 극한하중이 평균 3.76배 증가하였고, 에너지 흡수능력은 최대 4배 증가하였다. 소성 힌지가 발생하는 교각 하부 부분만 보강하여도 연성도가 크게 향상되었으며 강판의 두께가 두꺼울수록 에너지 흡수 능력이 가장 큰 값을 나타내었다. 본 연구결과를 토대로 원형철근콘크리트 교각의 외부 강판 보강을 통하여 교각의 구조 성능을 향상시킬 수 있음을 정량적으로 확인할 수 있었다.

온도와 재령이 콘크리트의 동탄성계수와 정 탄성계수의 상관관계에 미치는 영향 (Effect of Temperature and Aging on the Relationship Between Dynamic and Static Elastic Modulus of Concrete)

  • 한상훈;김진근;박우선;김동현
    • 콘크리트학회논문집
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    • 제13권6호
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    • pp.610-618
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    • 2001
  • 본 논문에서는 동탄성계수와 정탄성계수 및 압축강도의 상관관계를 양생온도, 재령, 시멘트의 종류에 따라 살펴보고 그 거동을 정확하게 모델링하는 모델식을 제시하고자 하였다. 이를 위하여 충격공진법을 이용하여 공진주파수를 측정하여 동탄성계수를 계산하고 일축압축실험을 통하여 정탄성계수와 압축강도를 구하였다. 시멘트는 1종과 5종 포틀랜드 시멘트를, 물-시멘트비는 0.40과 0.50을, 양생온도는 10, 23, 5$0^{\circ}C$를 선택하여 실험을 수행하였다. 동탄성계수와 정탄성계수의 상관관계는 시멘트의 종류와 재령에 큰 영향을 받지 않았다. 그러나, 양생온도의 변화에 따라 동탄성계수와 정탄성계수의 상관관계는 변화하여 두 값의 비가 온도가 증가함에 따라 1에 가깝게 접근하였다. 초기현탄성계수와 동탄성계수의 비는 정탄성계수와 동탄성계수의 비보다 좀 더 1에 가까웠다. 압축강도와 동탄성계수의 상관관계는 동탄성계수와 정탄성계수의 상관관계와 같이 시멘트의 종류와 재령에는 큰 영향을 받지 않았지만 양생온도에 따라서는 그 상관관계가 변하였다. 제시된 동탄성계수와 정탄성계수 및 압축강도의 상관관계식들은 이러한 시멘트의 종류와 온도에 따른 상관관계의 변화를 잘 모델링하였다.

모래 지반의 입자크기가 지반-말뚝 시스템의 동적 거동에 미치는 영향 평가 (Evaluation of Particle Size Effect on Dynamic Behavior of Soil-pile System)

  • 유민택;양의규;한진태;김명모
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2010년도 춘계 학술발표회
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    • pp.188-197
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    • 2010
  • This paper presents experimental results of a series of 1-g shaking table model tests performed on end-bearing single piles and pile groups to investigate the effect of particle size on the dynamic behavior of soil-pile systems. Two soil-pile models consisting of a single-pile and a $4{\times}2$-pile group were tested twice; first using Jumoonjin sand, and second using Australian Fine sand, which has a smaller particle size. In the case of single-pile models, the lateral displacement was almost within 1% of pile diameter which corresponds to the elastic range of the pile. The back-calculated p-y curves show that the subgrade reaction of the Jumoonjin-sand-model ground was larger than that of the Australian Fine-sand-model ground at the same displacement. This phenomenon means that the stress-strain behavior of Jumoonjin sand was initially stiffer than that of Australian Fine sand. This difference was also confirmed by resonant column tests and compression triaxial tests. And the single pile p-y backbone curves of the Australian fine sand were constructed and compared with those of the Jumoonjin sand. As a result, the stiffness of the p-y backbone curves of Jumunjin sand was larger than those of Australian fine sand. Therefore, using the same p-y curves regardless of particle size can lead to inaccurate results when evaluating dynamic behavior of soil-pile system. In the case of the group-pile models, the lateral displacement was much larger than the elastic range of pile movement at the same test conditions in the single-pile models. The back-calculated p-y curves in the case of group pile models were very similar in both sands because the stiffness difference between the Jumoonjin-sand-model ground and the Australian Fine-sand-model ground was not significantly large at a large strain level, where both sands showed non-linear behavior. According to a series of single pile and group pile test results, the evaluation group pile effect using the p-multiplier can lead to inaccurate results on dynamic behavior of soil-pile system.

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