• 제목/요약/키워드: Deformation process

검색결과 2,562건 처리시간 0.029초

비 직교 물성 모델을 이용한 복합재료 계란판의 압축거동 및 파손 (Compressive and failure behaviour of composite egg-box panel using non-orthogonal constitutive model)

  • 한영원;장승환;유용문;전성식
    • Composites Research
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    • 제22권4호
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    • pp.20-26
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    • 2009
  • 본 연구에서는 직조섬유복합재료를 이용한 계란판 모양의 시편에 대한 드래이핑 공정과 압축 해석을 비직교성 재료 모델을 이용하여 수행하였다. 비 직교 재료 구성 모델은 Xue 등이 2003년에 발표한 것을 상용 프로그램인 LS-DYNA에서 제공하는 사용자 부프로그램 (user subroutine)을 이용하여 본 연구에 적용하였다. 비 직교 재료 구성 모델에서 빙향성은 변형 기울기 텐서를 이용하여 계산하였고, 각 단계마다 재료 물성 행렬을 갱신하였다. 비 직교 물성 모델은 바이어스 인장 실험 결과와 비교 검증을 한 후에 계란 판 성형에 적용하였다. 계란 판 해석을 위해 본 연구에서는 열 성형 공정 (드래이핑)과 압축 해석을 수행하였다. 압축 해석을 위한 유한요소 모델은 드래이핑 해석으로부터 얻은 유한요소결과를 이용하여 구축하였다.

GFRP-알루미늄 하니컴 하이브리드 적층판의 압축 및 굽힘 파괴거동과 음향방출해석 (Acoustic Emission Characteristics and Fracture Behaviors of GFRP-Aluminum Honeycomb Hybrid Laminates under Compressive and Bending Loads)

  • 이기호;구자욱;최낙삼
    • Composites Research
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    • 제22권6호
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    • pp.23-31
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    • 2009
  • 압축하중 및 굽힘하중을 받는 유리섬유플라스틱(GFRP) 표피/ 알루미늄 하니컴 코어(GF-AH) 하이브리드 복합재료의 음향방출(AE) 특성을 다양한 파괴과정과 연결시켜 연구하였다. 표피층 파괴, 표피/코어간의 계면박리, 하니컴 알루미늄 벽의 국부적인 소성항복 좌굴 및 셀벽간의 접착수지 박리와 같은 다양한 파괴모드가 하니컴 코어/GFRP표피 복합재를 이용한 AE주파수 분포 해석과 진폭분포 해석결과를 통해 분류되었다. 높은 진폭을 가진 AE 사상율의 분포는 셀벽 접착수지의 파괴, 표피층과 심층 사이의 박리및 미세파괴, 섬유파단에 대응하였으며 다른 피크 주파수의 분포는 알루미늄 셀벽의 소성변형, 셀벽간의 마찰로부터 발생한 것이다. 결론적으로 GF-AH 하이브리드 복합재료의 파괴거동 특성은 AE기법을 활용한 비파괴 평가를 통해 분석 가능하였다.

자동섬유적층법을 이용한 열가소성 복합재료 접시형 안테나 반사판 개발 (Development of a Thermoplastic Composite Parabolic Antenna Reflector using Automated Fiber Placement Method)

  • 김진봉;김태욱
    • Composites Research
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    • 제19권1호
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    • pp.15-21
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    • 2006
  • 일방향 섬유로 보강된 고성능 복합재료의 경우 모든 방향에서 곡률을 가지는 구조물의 제작에 용이하지 않다. 본 연구에서는 높은 비강성, 비강도를 가지는 일방향으로 보강된 AS4/PEEK 프리프레그 테이프를 이용한 축소 시제 복합재료 접시형 안테나 반사판의 개발 결과를 보여준다. 개발을 위해서 유한요소법을 통한 적층인자 연구를 통한 저열팽창/등방변형의 반사판 설계기법을 확립하였으며, Fiber Placement System을 통한 자동섬유적층법을 이용하여 접시형 안테나 반사판이 제작되었다. 제작된 반사판은 Full Bridge Circuit의 Strain Cage를 이용한 열변형 실험법으로 열팽창 거동에 대한 실험을 수행하였으며, 열변형 해석결과와의 비교를 통하여 제작된 구조물을 검증하였다.

Repair of sports bone injury based on multifunctional nanomaterial particles

  • Dongbai Guo
    • Structural Engineering and Mechanics
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    • 제86권4호
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    • pp.487-501
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    • 2023
  • Nanoparticles have lower size and larger specific surface area, good stability and less toxic and side effects. In recent years, with the development of nanotechnology, its application range has become wider and wider, especially in the field of biomedicine, which has received more and more attention. Bone defect repair materials with high strength, high elasticity and high tissue affinity can be prepared by nanotechnology. The purpose of this paper was to study how to analyze and study the composite materials for sports bone injury based on multifunctional nanomaterials, and described the electrospinning method. In this paper, nano-sized zirconia (ZrO2) filled micro-sized hydroxyapatite (HAP) composites were prepared according to the mechanical properties of bone substitute materials in the process of human rehabilitation. Through material tensile and compression experiments, the performance parameters of ZrO2/HAP composites with different mass fraction ratios were analyzed, the influence of filling ZrO2 particles on the mechanical properties of HAP matrix materials was clarified, and the effect of ZrO2 mass fraction on the mechanical properties of matrix materials was analyzed. From the analysis of the compressive elastic modulus, when the mass fraction of ZrO2 was 15%, the compressive elastic modulus of the material was 1222 MPa, and when 45% was 1672 MPa. From the analysis of compression ratio stiffness, when the mass fraction of ZrO2 was 15%, the compression ratio stiffness was 658.07 MPa·cm3/g, and when it was 45%, the compression ratio stiffness is 943.51MPa·cm3/g. It can be seen that by increasing the mass fraction of ZrO2, the stiffness of the composite material can be effectively increased, and the ability of the material to resist deformation would be increased. Typically, the more stressed the bone substitute material, the greater the stiffness of the compression ratio. Different mass fractions of ZrO2/HAP filling materials can be selected to meet the mechanical performance requirements of sports bone injury, and it can also provide a reference for the selection of bone substitute materials for different patients.

Ag/WC 소결 전기 접점 소재의 미세조직, 기계적 및 전기적 특성에 미치는 WC 입자 크기의 영향 (Effect of WC Particle Size on the Microstructure, Mechanical and Electrical Properties of Ag/WC Sintered Electrical Contact Material)

  • 김수빈;박소연;임종빈;권순호;이기안
    • 한국분말재료학회지
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    • 제30권3호
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    • pp.242-248
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    • 2023
  • The Ag/WC electrical contacts were prepared via powder metallurgy using 60 wt% Ag, 40 wt% WC, and small amounts of Co3O4 with varying WC particle sizes. After the fabrication of the contact materials, microstructure observations confirmed that WC-1 had an average grain size (AGS) of 0.27 ㎛, and WC-2 had an AGS of 0.35 ㎛. The Ag matrix in WC-1 formed fine grains, whereas a significantly larger and continuous growth of the Ag matrix was observed in WC-2. This indicates the different flow behaviors of liquid Ag during the sintering process owing to the different WC sizes. The electrical conductivities of WC-1 and WC-2 were 47.8% and 60.4%, respectively, and had a significant influence on the Ag matrix. In particular, WC-2 exhibited extremely high electrical conductivity owing to its large and continuous Ag-grain matrix. The yield strengths of WC-1 and WC-2 after compression tests were 349.9 MPa and 280.7 MPa, respectively. The high yield strength of WC-1 can be attributed to the Hall-Petch effect, whereas the low yield strength of WC-2 can be explained by the high fraction of high-angle boundaries (HAB) between the WC grains. Furthermore, the relationships between the microstructure, electrical/mechanical properties, and deformation mechanisms were evaluated.

TRIP1180 판재의 냉간 스탬핑공정에서 금형강의 경도 특성에 따른 내마모성 평가 (Quantitative Evaluation of Wear Resistance of Stamping Tool with Respect to Hardness of Tool Materials in Cold Stamping of TRIP1180 Steel Sheets)

  • 방준호;배기현;송정한;김홍기;이명규
    • 소성∙가공
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    • 제31권3호
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    • pp.129-135
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    • 2022
  • The purpose of this study was to quantitatively evaluate the influence of hardness of tool materials on wear resistance in the sheet metal forming process. Punches used in the wear test were made of STD-11 and K340 tool material, and the tempering temperature was set to 530℃ and 500℃, respectively, to control the hardness of the tool materials. The punches mimic the shape of stamping tool of automotive body component to reflect its plastic deformation, and are designed to concentrate wear on the curvature region of punches. Progressive die and coil sheet were used to save time, cost, and raw sheet materials. By quantitatively measuring the wear depth of the punches, the wear behavior and mechanism of the punches were investigated, and characteristics of hardness and wear resistance according to tool materials and tempering temperatures were evaluated. Testing results indicate that the punch made of K340 tool steel with higher hardness had better wear resistance than that of STD-11 tool steel, and the hardness and wear resistance of tool steel were significantly impacted by the tempering temperature.

기계적 밀링 처리하여 SPS법으로 제작한 티타늄의 미세조직과 강화기구 특성 (Microstructure and Strengthening Mechanism Characteristics of Titanium Fabricated by SPS Method after Mechanical Milling Treatment)

  • 한창석;김준성;심우빈
    • 한국재료학회지
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    • 제33권6호
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    • pp.242-250
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    • 2023
  • Titanium, which has excellent strength and toughness characteristics, is increasingly used in the aerospace field. Among the titanium alloys used for body parts, more than 80 % are Ti-6Al-4V alloys with a tensile strength of 931 MPa. The spark plasma sintering (SPS) method is used for solidification molding of powder manufactured by the mechanical milling (MM) method, by sintering at low temperature for a short time. This sintering method avoids coarsening of the fine crystal grains or dispersed particles of the MM powder. To improve the mechanical properties of pure titanium without adding alloying elements, stearic acid was added to pure titanium powder as a process control agent (PCA), and MM treatment was performed. The properties of the MM powder and SPS material produced by solidifying the powder were investigated by hardness measurement, X-ray diffraction, density measurement and structure observation. The processing deformation of the pure titanium powder depends on the amount of stearic acid added and the MM treatment time. TiN was also generated in powder treated by MM 8 h with 0.50 g of added stearic acid, and the hardness of the powder was higher than that of Ti-6Al-4V alloy when treated with MM for 8 h. When the MM-treated powder was solidified in the SPS equipment, TiC was formed by the solid phase reaction. The SPS material prepared as a powder treated with MM 8 h by adding 0.50 g of stearic acid also formed TiN and exhibited the highest hardness of Hv1253.

초단유리섬유(milled glass fibers)와 에폭시 혼합물을 이용한 FRP 보강근 표면성형기법 연구 (A Study on Methodology for Improvement of Bond of FRP reinforcement to Concrete)

  • 문도영;심종성;오홍섭
    • 대한토목학회논문집
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    • 제26권4A호
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    • pp.775-785
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    • 2006
  • 본 논문은 우수한 부착성능과 더불어 단순한 공정으로 생산이 가능한 GFRP 보강근의 표면성형 기법을 제시하였다. 논문에는 제안하고자하는 표면성형기법에 대한 내용과 개발된 보강근의 콘크리트 부착성능에 대하여 언급하였다. 본 논문에서 제안하는 표면성형공법은 에폭시레진에 초단섬유인 milled glass fibers를 혼입하여 GFRP 보강근의 외부에 프레스 성형하는 공법이다. milled fibers의 적적한 혼합비를 결정하기 위하여 다양한 혼입비로 제작된 경화된 에폭시 시편의 압축강도실험과 다양한 혼입비의 표면형상을 갖는 부착시험편의 pull-out 실험이 수행되었다. 실험결과, 정적하중하에서 뿐 아니라 환경하중 재하상태에서도 milled fibers의 혼입량이 증가할수록 콘크리트와의 부착성능이 증진됨을 확인됨으로써 본 공법의 효용성을 검증하였다.

An integral quasi-3D computational model for the hygro-thermal wave propagation of imperfect FGM sandwich plates

  • Abdelouahed Tounsi;Saeed I. Tahir;Mohammed A. Al-Osta;Trinh Do-Van;Fouad Bourada;Abdelmoumen Anis Bousahla;Abdeldjebbar Tounsi
    • Computers and Concrete
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    • 제32권1호
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    • pp.61-74
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    • 2023
  • This article investigates the wave propagation analysis of the imperfect functionally graded (FG) sandwich plates based on a novel simple four-variable integral quasi-3D higher-order shear deformation theory (HSDT). The thickness stretching effect is considered in the transverse displacement component. The presented formulation ensures a parabolic variation of the transverse shear stresses with zero-stresses at the top and the bottom surfaces without requiring any shear correction factors. The studied sandwich plates can be used in several sectors as areas of aircraft, construction, naval/marine, aerospace and wind energy systems, the sandwich structure is composed from three layers (two FG face sheets and isotropic core). The material properties in the FG faces sheet are computed according to a modified power law function with considering the porosity which may appear during the manufacturing process in the form of micro-voids in the layer body. The Hamilton principle is utilized to determine the four governing differential equations for wave propagation in FG plates which is reduced in terms of computation time and cost compared to the other conventional quasi-3D models. An eigenvalue equation is formulated for the analytical solution using a generalized displacements' solution form for wave propagation. The effects of porosity, temperature, moisture concentration, core thickness, and the material exponent on the plates' dispersion relations are examined by considering the thickness stretching influence.

Study on stability and free vibration behavior of porous FGM beams

  • Bennai, Riadh;Atmane, Redhwane Ait;Bernard, Fabrice;Nebab, Mokhtar;Mahmoudi, Noureddine;Atmane, Hassen Ait;Aldosari, Salem Mohammed;Tounsi, Abdelouahed
    • Steel and Composite Structures
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    • 제45권1호
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    • pp.67-82
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    • 2022
  • In this paper, buckling and free vibration of imperfect, functionally graded beams, including porosities, are investigated, using a higher order shear strain theory. Due to defects during the manufacturing process, micro porosities may appear in the material, hence the appearance of this imperfection in the structure. The material properties of the beams are assumed to vary regularly, with power and sigmoid law, in the direction of thickness. A novel porosity distribution affecting the functionally graded volume fraction is presented. For the compact formulation used for cementite-based materials and already used in P-FGM, we have adapted it for the distribution of S-FGM. The equations of motion in the FG beam are derived using Hamilton's principle. The boundary conditions for beam FG are assumed to be simply supported. Navier's solution is used to obtain the closed form solutions of the FG beam. The numerical results of this work are compared with those of other published research to verify accuracy and reliability. The comparisons of different shear shape functions, the influence of porosity, thickness and inhomogeneity parameters on buckling and free vibration of the FG beam are all discussed. It is established that the present work is more precise than certain theories developed previously.