• 제목/요약/키워드: tensile cracks

검색결과 581건 처리시간 0.021초

마이크로 섬유보강 모르타르의 휨 인성과 균열 특성의 상관관계 (Correlation Between Flexural Toughness and Cracking Characteristics of Micro-fiber Reinforced Mortar According to Fiber Contents)

  • 신경준;장규현;김의성
    • 대한토목학회논문집
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    • 제28권2A호
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    • pp.249-257
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    • 2008
  • 인장에 취약한 단점을 가지고 있는 시멘트계 복합재료인 모르타르와 콘크리트의 인장성능을 보강하기 위한 다양한 방법이 사용되고 있으며, 주요한 한가지 방법으로 인장에 강한 섬유를 혼입하는 섬유보강 콘크리트가 꾸준히 연구사용되어 왔다. 최근에는 재료의 균질성(homogeneous)을 높이고 보강재로 사용되는 섬유의 성능을 최대한 이끌어내기 위하여 굵은 골재를 제거하고 마이크로 섬유를 사용하는 마이크로 섬유보강 모르타르에 대한 연구가 활발히 진행되고 있다. 마이크로 섬유보강 모르타르는 배합조건에 따라서 다중균열이 발생하기 때문에 성능평가의 지표로써 휨인성 만을 사용하기에는 부족함이 있다. 따라서, 본 연구에서는 마이크로 섬유보강 모르타르의 휨인성과 균열 특성을 고찰하여, 균열특성을 나타낼 수 있는 측정치에 대한 연구를 수행하였다. 실험에는 PVA섬유와 강섬유가 사용되었으며, 휨실험을 통하여 섬유의 종류 및 혼입량에 따른 휨인성과 균열관련 측정치의 상관관계를 규명하였다. 그 결과 마이크로 섬유보강 모르타르의 특성을 대표할 수 있는 측정치로는 휨인성과 섬유혼입량, 그리고 균열개수 등이 적절한 것으로 나타났다.

Evaluation of the Biodurability of Polyurethane-Covered Stent Using a Flow Phantom

  • Dong Hyun Kim;Sung-Gwon Kang;Jung Ryul Choi;Ju Nam Byun;Young Chul Kim;Young Moo Ahn
    • Korean Journal of Radiology
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    • 제2권2호
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    • pp.75-79
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    • 2001
  • Objective: To evaluate the biodurability of the covering material in retrievable metallic stents covered with polycarbonate polyurethane. Materials and Methods: Using a peristaltic pump at a constant rate of 1ml/min, bile was recirculated from a reservoir through a long tube containing four stents. Each of these was removed from the system every two weeks and a radial tensile strength test and scanning electron microscopy (SEM) were performed. Each stent, removed at 2, 4, 6 and 8 weeks, was compared with a control stent not exposed to bile juice. Results: Gross examination showed that stents were intact at 2 weeks, but at 4, 6 and 8 weeks cracks were observed. The size of these increased gradually in accordance with the duration of exposure, and at 8 weeks several large holes in the polyurethane membrane were evident. With regard to radial tensile strength, extension and peak load at break were 84.47% and 10.030 N/mm, 54.90% and 6.769 N/mm, 16.55% and 2.452 N/mm, 11.21% and 1.373 N/mm at 0, 2, 4 and 6 weeks, respectively. Scanning electron microscopy at 2 weeks revealed intermittent pitting and cracking, and examination at 4, 6 and 8 weeks showed that the size of these defects was gradually increasing. Conclusion: When the polyurethane membrane was exposed to bile, biodegradation was first observed at week two and increased gradually according to the duration of exposure.

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$CO_2$ 레이저를 이용한 GTD111DS 초합금 용접부의 미세조직과 기계적 성질 (Microstructures and Mechanical Properties of GTD 111DS Welds by $CO_2$ Laser Welding)

  • 이택운;양성호;김상훈
    • 대한용접접합학회:학술대회논문집
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    • 대한용접접합학회 2009년 추계학술발표대회
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    • pp.108-108
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    • 2009
  • 니켈기지의 석출강화 초내열합금은 가스터빈의 고온부 부품 제조에 널리 사용되고 있다. 장시간 동안 부품의 강성 유지와 구조적 안정성을 확보하기 위해서는 니켈기지의 합금에 감마프라임 생성을 위한 원소를 첨가하는데 이에 따른 용접성의 저하 때문에 보통 초합금의 용접은 고온에서 수행하게 된다. 그러나 레이저용접의 경우는 용접변수 및 입열제어가 용이해 상온에서 초합금의 용접이 가능한 장점이 있다. 본 연구에서는 일반적인 재료로 연성이 좋은 STS304 판재와 실제 블레이드의 재료로 사용되는 니켈계 석출강화 합금인 GTD 111DS 모재에 $CO_2$ 레이저를 이용하여 용접을 실시하였고 적용파우더와 파워, 용접속도 및 파우더 공급량 등을 달리 하였다. STS304 판재 사용시 Rene 80과 IN 625 파우더 모두 용접부에서 균열이 발생하지 않았다. 그러나 GTD 111DS 모재의 경우 IN 625 파우더에서는 결함이 없었으나 Rene 80 파우더를 사용시에는 용접부에 균열이 발생하였다. IN 625 파우더는 모재보다 기계적 성질이 떨어지는 문제가 있으나 Rene 80은 모재와 동등 이상의 기계적 성질을 보유하고 있기 때문에 Rene 80 의 적용을 위해 균열이 발생하지 않는 용접변수의 제어를 시도하였다. 용접변수의 조정 결과 레이저 파워와 파우더 공급량을 낮추고 용접속도를 높여 균열이 발생하지 않는 최적의 용접변수를 설정할 수 있었다. 최적화된 용접변수를 적용, 용접한 시편의 인장값을 보면 GTD 111DS 모재에 Rene 80 파우더로 용접된 시편의 인장강도가 상온/고온($760^{\circ}C$)의 조건에서 각각 GTD 111DS 모재의 인장강도 보다 높은 값을 나타내었다.

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자동차용 합금화 용융아연도금강판의 도금층 미소물성 및 파괴 거동 (Microproperties and Fracture Behavior of Galvannealed Coating Layer of Automobiles)

  • 박춘달;고대철;김병민
    • 한국정밀공학회지
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    • 제24권3호
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    • pp.91-99
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    • 2007
  • Fractures of galvannealed coating layer during actual press forming in automotive applications were observed by scanning electron microscopy in order to understand fracture mechanism. Fracture behaviors of galvannealed coating layer in extra deep drawing quality steels and high strength steels have been studied by performing the tests describing the representative plastic deformation in sheet metal forming such as uni-axial tensile test, compression test, bi-axial test and plane strain test. Growth and direction of cracks were deeply related to the plastic deformation modes and history. The material properties of galvannealed coating layer were investigated by nano-indentation test equipped with Berkovich diamond indentor for the specimens. Hardness and elastic modulus of the coating layer were higher than bared steels and that was the reason for crack of coating layer. Flat friction test and drawbead friction test were performed to observe the effect of the surface morphology on the frictional characteristics. The micro-plasto hydrodynamic lubrication were appeared and played an important role in reducing the coefficient of friction.

TiNi계 형상기억합금 선재의 냉간압연 및 열처리 특성 (Cold Rolling and Heat Treatment Characteristics of TiNi Based Shape Memory Wire)

  • 김록형;김희수;장우양
    • 열처리공학회지
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    • 제30권6호
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    • pp.251-257
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    • 2017
  • The effect of annealing temperature on the martensitic transformation behavior, tensile deformation chracteristics and shape recovery etc., has been studied in TiNi based shape memory ribbon fabricated by coldrolling of wire. TiNi based shape memory wire (${\phi}=500{\mu}m$) of which structure is intermetallic compound could be cold-rolled without process annealing up to the reduction rate in thickness of 50%, but a few cracks appear in cold-rolled ribbon in the reduction rate in thickness of 65%. The $B2{\rightarrow}R{\rightarrow}B19^{\prime}$ martensitic transformation or $B2{\rightarrow}B19^{\prime}$ martensitic transformation occurs in annealing conditions dissipating lattice defects introduced by coldrolling. However, in case of higher reduction rate or lower annealing temperature, martensitic transformation in cold-rolled and then annealed ribbons does not occur. The maximum shape recovery rate of cold-rolled ribbons with the reduction rate of 35 and 65% could be achieved at annealing temperatures of 250 and $350^{\circ}C$, respectively. The shape recovery rate seems to be related to the stress level of plateau region on stress-strain curve.

Characterization of the brittleness of hard rock at different temperatures using uniaxial compression tests

  • Chen, Guoqing;Li, Tianbin;Wang, Wei;Guo, Fan;Yin, Hongyu
    • Geomechanics and Engineering
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    • 제13권1호
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    • pp.63-77
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    • 2017
  • The failure mechanism of a deep hard rock tunnel under high geostress and high geothermalactivity is extremely complex. Uniaxial compression tests of granite at different temperatures were conducted. The complete stress-strain curves, mechanical parameters and macroscopic failure types of the rock were analyzed in detail. The brittleness index, which represents the possibility of a severe brittleness hazard, is proposed in this paperby comparing the peak stress and the expansion stress. The results show that the temperature range from 20 to $60^{\circ}C$ is able to aggravate the brittle failure of hard rock based on the brittleness index. The closure of internal micro cracks by thermal stress can improve the strength of hard rock and the storage capacity of elastic strain energy. The failure mode ofthe samples changes from shear failure to tensile failure as the temperature increases. In conclusion, the brittle failure mechanism of hard rock under the action of thermal coupling is revealed, and the analysis result offers significant guidance for deep buried tunnels at high temperatures and under high geostress.

A modified RBSM for simulating the failure process of RC structures

  • Zhao, Chao;Zhong, Xingu;Liu, Bo;Shu, Xiaojuan;Shen, Mingyan
    • Computers and Concrete
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    • 제21권2호
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    • pp.219-229
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    • 2018
  • In this paper, a modified rigid body spring model (RBSM) is proposed and used to analyze the damage and failure process of reinforced concrete (RC) structures. In the proposed model, the concrete is represented by an assembly of rigid blocks connected with a uniform distribution of normal and tangential springs to simulate the macroscopic mechanical behavior of concrete. Steel bars are evenly dispersed into rigid blocks as a kind of homogeneous axial material, and an additional uniform distribution of axial and dowel springs is defined to consider the axial stiffness and dowel action of steel bars. Perfect bond between the concrete and steel bars is assumed, and tension stiffening effect of steel bars is modeled by adjusting the constitutive relationship for the tensile reinforcement. Adjacent blocks are allowed to separate at the contact interface, which makes it convenient and easy to simulate the cracking process of concrete. The failure of the springs is determined by the Mohr-Coulomb type criterion with the tension and compression caps. The effectiveness of the proposed method is confirmed by elastic analyses of a cantilever beam under different loading conditions and failure analyses of a RC beam under two-point loading.

열간단조 금형강의 열충격과 열피로 특성연구 (Analysis of Thermal Shock and Thermal Fatigue in Tool Steels for Hot Forging)

  • 김정운;문영훈;류재화;박형호
    • 소성∙가공
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    • 제11권1호
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    • pp.61-68
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    • 2002
  • The thermal shock and thermal fatigue test has been carried out to analyze the thermal characteristics of tool steels for hot forging and the effects of mechanical properties on this study have been investigated. The resistance to thermal shock is first of all a matter of good toughness and ductility. Therefore, a proper hot-work tool steel should be characterized by high fracture strength and high temperature toughness. Based on these results, some critical temperature($T_{fracture}$) at which fracture occur can be measured to characterize the thermal resistance of the materials. During thermal fatigue tests, the thermal fatigue cracks occur because of the repetitive heating and cooling of the die surface and the thermal fatigue damage was evaluated by analyzing different number of cycles to failure. The results showed that the resistance to thermal shock and thermal fatigue were found to be favoured by high hot tensile strength and high hot hardness, and thermal resistance of SKD61 was superior to that of ESC, SKT4 and this was caused by higher mechanical properties of SKD61.

HSS-Co와 SM55C 이종 마찰용접재의 피로강도에 관한 연구(1) (A Study on fatigue Strength in the Friction Welded Joints of HSS-Co to SM55C Carbon Steel(I))

  • 서창민;서덕영;이동재
    • 대한기계학회논문집
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    • 제19권4호
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    • pp.918-928
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    • 1995
  • This paper deals with the various mechanical properties and fatigue strength in the FRW1 (friction welded interface) of high speed steel (HSS-Co) to SM55C through the tensile test, hardness test and fatigue test. The data of FRW specimens are also compared with those of the base materials (HSS-Co and SM55C steel). Three kinds of specimens used in this study are the friction welded joints, HSS-Co and SM55C carbon steel with circumferential notch, saw notch and smooth, respectively. It is confirmed that the applied welding conditions are optimum methods in order to minimize the heat affected zone (HAZ) and hardness distribution at the HAZ. The fatigue strengths at N = 10$^{6}$ cycles of smooth, circumferential notch and saw notch specimens in the FRW joints are about 299.2 MPa, 123.8 MPa and 247.5 MPA, respectively. The fatigue strength of the friction welded joints is almost equal to that of the SM55C carbon steel in the optimum welding conditions. The fatigue cracks initiated at the welded zone are propagated along the side of SM55C steel.

AlZnMgCu0.5 합금의 Electron Beam 용접성에 관한 연구 (Investigations on electron beam weldability of AlZnMgCu0.5 alloys)

  • 배석천
    • Journal of Welding and Joining
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    • 제15권4호
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    • pp.166-177
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    • 1997
  • The high strength AlZnMgCu0.5 alloy is a light metal with good age hardenability, and has a high tensile and yielding strength. Therefore, it can be used for structures requiring high speciple strength. Even though high strength AlZnMgCu alloy has good mechanical properties, it has a lot of problems in TIG and MIG welding processes. Since lots of high heat absorption is introduced into the weldment during TIG and MIG processes, the microstructural variation and hot cracks take place in heat affected zone. Therefore, the mechanical properties of high strength AlZnMgCu0.5 alloy can be degraded in weldment and heat affected zone. Welding process utilizing high density heat source such as electron beam should be developed to reduce pore and hot cracking, whichare usually accompanied by MIG and TIG welding processes. In this work, electron beam welding process were used with or without AlMg4.5Mn as filler material to avoid the degradation of mechanical properties. Mechanical and metallurgical characteristics were also studied in electron beam weldment and heat affected zone. Moreover hot cracking mechanism was also investigated.

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