• 제목/요약/키워드: mechanical stress response

검색결과 455건 처리시간 0.024초

냉간가공된 316L 스테인리스 강의 인장 및 저주기 피로 물성치에 미치는 동적변형시효의 영향 (The Influence of Dynamic Strain Aging on Tensile and LCF Properties of Prior Cold Worked 316L Stainless Steel)

  • 홍성구;이순복
    • 대한기계학회논문집A
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    • 제27권8호
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    • pp.1398-1408
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    • 2003
  • Tensile and LCF(low cycle fatigue) tests were carried out in air at wide temperature range 20$^{\circ}C$-750$^{\circ}C$ and strain rates of 1${\times}$10$\^$-4//s-1${\times}$10$\^$-2/ to ascertain the influence of strain rate on tensile and LCF properties of prior cold worked 316L stainless steel, especially focused on the DSA(dynamic strain aging) regime. Dynamic strain aging induced the change of tensile properties such as strength and ductility in the temperature region 250$^{\circ}C$-600$^{\circ}C$ and this temperature region well coincided with the negative strain rate sensitivity regime. Cyclic stress response at all test conditions was characterized by the initial hardening during a few cycles, followed by gradual softening until final failure. Temperature and strain rate dependence on cyclic softening behavior appears to result from the change of the cyclic plastic deformation mechanism and DSA effect. The DSA regimes between tensile and LCF loading conditions in terms of the negative strain rate sensitivity were well consistent with each other. The drastic reduction in fatigue resistance at elevated temperature was observed, and it was attributed to the effects of oxidation, creep and dynamic strain aging or interactions among them. Especially, in the DSA regime, dynamic strain aging accelerated the reduction of fatigue resistance by enhancing crack initiation and propagation.

탄성 다물체계 동역학을 기반으로 한 부유식 해상 풍력 발전기 타워의 구조 해석 (Structural Analysis of Floating Offshore Wind Turbine Tower Based on Flexible Multibody Dynamics)

  • 박광필;차주환;구남국;조아라;이규열
    • 대한기계학회논문집A
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    • 제36권12호
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    • pp.1489-1495
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    • 2012
  • 본 논문에서는 부유식 플랫폼의 동적 거동을 고려하여 해상 풍력 발전기 타워의 구조 해석을 수행하였다. 풍력 발전기는 플랫폼, 타워, 낫셀, 허브 그리고 3 개의 블레이드로 구성된다. 타워는 3 차원 빔 요소를 사용하여 탄성체로 모델링하여 탄성 다물체계 동역학을 기반으로 한 운동 방정식을 구성하였다. 회전하는 블레이드에는 블레이드 요소 운동량 이론에 따라 계산된 공기역학적 힘이 적용되었고, 부유식 플랫폼에는 유체정역학적 힘, 유체동역학적 힘 그리고 계류력이 적용되었다. 타워의 구조 동역학적 거동을 수치적으로 시뮬레이션하였다. 시뮬레이션 결과를 이용하여 굽힘 모멘트와 응력을 산출하고 허용치와 비교하였다.

Impact of rock microstructures on failure processes - Numerical study based on DIP technique

  • Yu, Qinglei;Zhu, Wancheng;Tang, Chun'an;Yang, Tianhong
    • Geomechanics and Engineering
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    • 제7권4호
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    • pp.375-401
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    • 2014
  • It is generally accepted that material heterogeneity has a great influence on the deformation, strength, damage and failure modes of rock. This paper presents numerical simulation on rock failure process based on the characterization of rock heterogeneity by using a digital image processing (DIP) technique. The actual heterogeneity of rock at mesoscopic scale (characterized as minerals) is retrieved by using a vectorization transformation method based on the digital image of rock surface, and it is imported into a well-established numerical code Rock Failure Process Analysis (RFPA), in order to examine the effect of rock heterogeneity on the rock failure process. In this regard, the numerical model of rock could be built based on the actual characterization of the heterogeneity of rock at the meso-scale. Then, the images of granite are taken as an example to illustrate the implementation of DIP technique in simulating the rock failure process. Three numerical examples are presented to demonstrate the impact of actual rock heterogeneity due to spatial distribution of constituent mineral grains (e.g., feldspar, quartz and mica) on the macro-scale mechanical response, and the associated rock failure mechanism at the meso-scale level is clarified. The numerical results indicate that the shape and distribution of constituent mineral grains have a pronounced impact on stress distribution and concentration, which may further control the failure process of granite. The proposed method provides an efficient tool for studying the mechanical behaviors of heterogeneous rock and rock-like materials whose failure processes are strongly influenced by material heterogeneity.

Mechanical and Biological Characteristics of Reinforced 3D Printing Filament Composites with Agricultural By-product

  • Kim, Hye-Been;Seo, Yu-Ri;Chang, Kyeong-Je;Park, Sang-Bae;Seonwoo, Hoon;Kim, Jin-Woo;Kim, Jangho;Lim, Ki-Taek
    • 산업식품공학
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    • 제21권3호
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    • pp.233-241
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    • 2017
  • Scaffolds of cell substrates are biophysical platforms for cell attachment, proliferation, and differentiation. They ultimately play a leading-edge role in the regeneration of tissues. Recent studies have shown the potential of bioactive scaffolds (i.e., osteo-inductive) through 3D printing. In this study, rice bran-derived biocomposite was fabricated for fused deposition modeling (FDM)-based 3D printing as a potential bone-graft analogue. Rice bran by-product was blended with poly caprolactone (PCL), a synthetic commercial biodegradable polymer. An extruder with extrusion process molding was adopted to manufacture the newly blended "green material." Processing conditions affected the performance of these blends. Bio-filament composite was characterized using field emission scanning electron microscopy (FE-SEM) and energy dispersive X-ray spectroscopy (EDX). Mechanical characterization of bio-filament composite was carried out to determine stress-strain and compressive strength. Biological behaviors of bio-filament composites were also investigated by assessing cell cytotoxicity and water contact angle. EDX results of bio-filament composites indicated the presence of organic compounds. These bio-filament composites were found to have higher tensile strength than conventional PCL filament. They exhibited positive response in cytotoxicity. Biological analysis revealed better compatibility of r-PCL with rice bran. Such rice bran blended bio-filament composite was found to have higher elongation and strength compared to control PCL.

골수술용 압전형 초음파 의료기기 개발을 위한 유한요소해석 및 이의 실험적 검증 (Finite Element Analysis for the Development of Bone Surgery Piezoelectric Ultrasonic Medical Device and its Experimental Verification)

  • 송태하;이중호;최종균;이희원
    • 대한의용생체공학회:의공학회지
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    • 제43권5호
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    • pp.319-330
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    • 2022
  • In this study, the optimal driving frequency was derived through finite element analysis (FEA) to optimize the developed piezoelectric ultrasonic medical devices(PUMD) for bone surgery. The core of the PUMD is the piezoelectric ceramic (PZT), which is a vibrator that generates vibration energy. The piezoelectric ceramic shows the maximum current value with respect to the input voltage at the resonance frequency, which generates the maximum mechanical vibration. In the past, various studies have been conducted related to the analysis of PUMD, but most of the research so far has been limited to free vibration analysis. However, in order to derive the accurate resonant frequency, the initial stress generated by bolt tightening in the bolt-clamped Langevin type transducer (BLT) must be considered. In this study, after designing a PUMD, the driving performance according to the bolt tightening value was analyzed through FEA, and this was experimentally verified. First, the resonance mode and frequency response were confirmed through modal and harmonic analysis at 20-40 kHz, which is known as the optimal driving frequency band of PUMD for bone surgery. In addition, the design of the PUMD was confirmed by checking the mechanical behavior of the tip and the piezoelectric ceramic at the resonant frequency. Consequentially, the characteristic evaluation was performed, and it was confirmed that the resonant frequency result derived through the FEA was reasonable. Through this study, we presented a more rational FEA method than before for BLT transducers. We expect that this will shorten the time and cost of developing a PUMD, and will enable the development of more stable and high-quality products.

Structural RC computer aided intelligent analysis and computational performance via experimental investigations

  • Y.C. Huang;M.D. TuMuli Lulios;Chu-Ho Chang;M. Nasir Noor;Jen-Chung Shao;Chien-Liang Chiu;Tsair-Fwu Lee;Renata Wang
    • Structural Engineering and Mechanics
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    • 제90권3호
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    • pp.253-261
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    • 2024
  • This research explores a new finite element model for the free vibration analysis of bi-directional functionally graded (BDFG) beams. The model is based on an efficient higher-order shear deformation beam theory that incorporates a trigonometric warping function for both transverse shear deformation and stress to guarantee traction-free boundary conditions without the necessity of shear correction factors. The proposed two-node beam element has three degrees of freedom per node, and the inter-element continuity is retained using both C1 and C0 continuities for kinematics variables. In addition, the mechanical properties of the (BDFG) beam vary gradually and smoothly in both the in-plane and out-of-plane beam's directions according to an exponential power-law distribution. The highly elevated performance of the developed model is shown by comparing it to conceptual frameworks and solution procedures. Detailed numerical investigations are also conducted to examine the impact of boundary conditions, the bi-directional gradient indices, and the slenderness ratio on the free vibration response of BDFG beams. The suggested finite element beam model is an excellent potential tool for the design and the mechanical behavior estimation of BDFG structures.

기계식 이음 PE관의 응답변위법 기반 내진성능평가 요령 (Seismic Performance Evaluation of Mechanically Jointed PE Pipeline by Response Displacement Method)

  • 박동순
    • 한국구조물진단유지관리공학회 논문집
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    • 제27권4호
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    • pp.23-32
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    • 2023
  • 지진 시 매설 PE관은 파단시 신장율이 우수하여 상대적으로 우수한 내진성능을 보이는 것으로 보고되고 있다. 국내 융착식 PE관의 응답변위법 기반 내진성능평가 절차를 제안한 바 있으나, 기계식 이음 PE관에 대한 절차는 부재한 실정이다. 이에 본 연구에서는 기계식 이음 PE관의 응답변위법 기반 내진성능평가 절차를 제시하였다. 기계식 이음 PE관의 경우 분절관의 평가 절차를 따르며, 관체 발생응력, 이음부 신축변형률 및 이음부 휨 각도 평가를 수행하도록 제안하였다. 또한 지반의 축방향 변형률 산정에 필요한 지반의 불균질성 계수를 도입하였다. 지반 액상화 우려가 있는 지반에 대한 측방 변위 및 재압밀 침하량 계산 방법도 함께 제안하였다. 국내 지반 환경을 고려한 민감도 해석 결과, 일정 품질이 확보된 기계식 이음 PE관은 지반 액상화를 고려하지 않을 때, 양호한 구조적 지진 안전성을 보였다. 본 절차는 주로 소규모 관경의 배관 접합에 사용하는 기계식 접합 매설 PE관의 내진설계 및 내진성능평가에 활용할 수 있을 것으로 판단된다.

Mechanical behavior of rock-coal-rock specimens with different coal thicknesses

  • Guo, Wei-Yao;Tan, Yun-Liang;Yu, Feng-Hai;Zhao, Tong-Bin;Hu, Shan-Chao;Huang, Dong-Mei;Qin, Zhe
    • Geomechanics and Engineering
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    • 제15권4호
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    • pp.1017-1027
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    • 2018
  • To explore the influence of coal thickness on the mechanical behavior and the failure characteristics of rock-coal-rock (RCR) mass, the experimental investigation of uniaxial compressive tests was conducted first and then a systematic numerical simulation by particle flow code (PFC2D) was performed to deeply analyze the failure mechanical behavior of RCR specimens with different coal thicknesses in conventional compression tests. The overall elastic modulus and peak stress of RCR specimens lie between the rock and the coal. Inter-particle properties were calibrated to match the physical sample strength and the stiffness response. Numerical simulation results show that the deformation and strength behaviors of RCR specimens depend not only on the coal thickness, but also on the confining pressure. Under low confining pressures, the overall failure mechanism of RCR specimen is the serious damage of coal section when the coal thickness is smaller than 30 mm, but it is shear failure of coal section when the coal thickness is larger than 30 mm. Whereas under high confining pressures, obvious shear bands exist in both the coal section and the rock section when the coal thickness is larger than 30 mm, but when the coal thickness is smaller than 30mm, the failure mechanism is serious damage of coal section and shear failure of rock section.

음향 방출에 의한 인코넬 600 합금의 응력 부식 균열 거동 평가 (Evaluation of the Stress Corrosion Cracking Behavior of Inconel G00 Alloy by Acoustic Emission)

  • 성게용;김인섭;윤용구
    • 비파괴검사학회지
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    • 제16권3호
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    • pp.174-183
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    • 1996
  • 본 연구에서는 인코넬600 합금을 열처리 상태 및 변형속도 등이 서로 다른 SCC 발생 조건하에서 정변형 속도 시험법으로 인장시켜 그때 발생되는 AE신호와 균열 거동을 비교하므로서 SCC 발생 및 진전을 AE로서 적절히 탐지할 수 있는가를 연구하였고, AE로 탐지 가능한 초기의 최소 균열 크기를 측정하므로서 비파괴시험법으로서의 적용성을 평가하고자 하였다 실험 결과, IGSCC에서 발생되는 AE amplitude 준위는 연성파괴 및 기계적인 변형에서 발생되는 것들보다 큰 것으로 나타났으며, 이것은 AE amplitude준위가 AE발생원을 식별할 수 있는 중요한 변수가 될 수 있음을 의미한다. IGSCC 미소균열의 성장 및 주균열의 형성으로부터 주균열의 성장으로 전환되는 시점을 AE로 적절히 감시할 수 있음을 보였으며, AE로 탐지 가능한 최소 균열 크기는 길이 $200{\sim}400{\mu}m$, 깊이 $100{\mu}m$ 이하의 균열인 것으로 나타났다. 결론적으로 AE기술은 입계 응력 부식 균열의 진전을 조기 탐지할 수 있는 유용한 방법으로 평가되며 비파괴시험법으로서의 실제 적용 가능성도 높을 것으로 판단된다.

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처분공 가열-수화 조건에서 벤토나이트 완충재의 열-수리-역학적 거동 특성 평가 (Evaluation of thermal-hydro-mechanical behavior of bentonite buffer under heating-hydration condition at disposal hole)

  • 차요한;이창수;김진섭;이민형
    • 한국터널지하공간학회 논문집
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    • 제25권2호
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    • pp.175-186
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    • 2023
  • 처분공 내에 위치한 완충재는 사용후핵연료로부터 발산된 고온의 붕괴열과 지하수에 노출되며, 이와 같은 가열-수화를 포함한 처분환경 하의 완충재의 열-수리-역학-화학적 상호작용은 완충재의 장기적 성능과 건전성에 핵심적으로 작용하는 것으로 알려져 있다. 따라서 본 연구에서는 처분환경 조건에서 완충재의 가열-수화 특성 및 지하수 지화학 조건을 고려한 벤토나이트의 열-수리-역학-화학적(Thermal-Hydraulic-Mechanical-Chemical, 이하 THMC) 복합거동 특성 규명을 위한 실험실 규모의 Lab.THMC 실험시스템을 개발하였다. 본 실험시스템은 스페인 CIEMAT의 열-수리-역학 복합거동 실험장치를 토대로 개발되었으며, 화학적 특성을 달리한 지하수 주입 조건에서 벤토나이트 완충재의 가열-수화 특성을 파악하고 응력 변화를 계측함으로써 열-수리-화학적 변화에 따른 역학적 성능 변화 특성을 규명하는 것을 목표로 한다. 본 기술논문에서는 개발된 Lab.THMC 실험시스템의 설계 및 구성을 간략하게 소개하고, 장치 검토 및 주요 변수설정을 위해 수행된 예비실험 결과와 차후 연구계획에 대해 정리하였다.