• 제목/요약/키워드: Composite Joint

검색결과 707건 처리시간 0.025초

전기자동차용 파워모듈 적용을 위한 Sn-Ag-Fe TLP (Transient Liquid Phase) 접합에 관한 연구 (Study on Sn-Ag-Fe Transient Liquid Phase Bonding for Application to Electric Vehicles Power Modules)

  • 김병우;고혜리;천경영;고용호;손윤철
    • 마이크로전자및패키징학회지
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    • 제30권4호
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    • pp.61-68
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    • 2023
  • 무연솔더에 Fe 입자를 첨가하여 Cu3Sn 금속간화합물 성장을 억제하고 취성파괴를 방지하는 연구는 보고된 바 있으나 이러한 복합솔더를 TLP(transient liquid phase) 본딩에 적용한 경우는 아직 없다. 본 연구에서는 Sn계 무연솔더 내부에 Fe 입자의 함량을 적절히 조절하여 Sn-3.5Ag-15.0Fe 복합솔더를 제작하고 TLP 본딩에 적용하여 접합부 전체를 Sn-Fe 금속간화합물로 변화시킴으로써 고온 솔더로서의 적용 가능성을 탐색하였다. 접합공정 중에 형성되는 FeSn2 금속간화합물은 513℃의 고융점을 가지므로 사용 중 온도가 280℃까지 상승하는 전력반도체용 파워모듈에 안정적으로 적용이 가능하다. 칩과 기판에 ENIG(electroless nickel-immersion gold) 표면처리를 적용한 결과 접합부에 Ni3Sn4/FeSn2/Ni3Sn4의 다층 금속간화합물 구조를 형성하였으며 전단시험시 파괴경로는 Ni3Sn4/FeSn2 계면에서 균열이 진전하다가 FeSn2 내부로 전파되는 양상을 보였다. TLP 접합공정 2시간 이후에는 30 MPa 이상의 전단강도를 얻었고 특히 200℃ 전단시험에서도 강도 저하가 전혀 없었다. 본 연구결과는 최근 활발히 연구되고 있는 전기자동차용 파워모듈에 적용할 수 있는 소재 및 공정으로 기대할 수 있다.

Effect of geometrical configuration on seismic behavior of GFRP-RC beam-column joints

  • Ghomia, Shervin K.;El-Salakawy, Ehab
    • Advances in concrete construction
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    • 제9권3호
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    • pp.313-326
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    • 2020
  • Glass fiber-reinforced polymer (GFRP) bars have been introduced as an effective alternative for the conventional steel reinforcement in concrete structures to mitigate the costly consequences of steel corrosion. However, despite the superior performance of these composite materials in terms of corrosion, the effect of replacing steel reinforcement with GFRP on the seismic performance of concrete structures is not fully covered yet. To address some of the key parameters in the seismic behavior of GFRP-reinforced concrete (RC) structures, two full-scale beam-column joints reinforced with GFRP bars and stirrups were constructed and tested under two phases of loading, each simulating a severe ground motion. The objective was to investigate the effect of damage due to earthquakes on the service and ultimate behavior of GFRP-RC moment-resisting frames. The main parameters under investigation were geometrical configuration (interior or exterior beam-column joint) and joint shear stress. The performance of the specimens was measured in terms of lateral load-drift response, energy dissipation, mode of failure and stress distribution. Moreover, the effect of concrete damage due to earthquake loading on the performance of beam-column joints under service loading was investigated and a modified damage index was proposed to quantify the magnitude of damage in GFRP-RC beam-column joints under dynamic loading. Test results indicated that the geometrical configuration significantly affects the level of concrete damage and energy dissipation. Moreover, the level of residual damage in GFRP-RC beam-column joints after undergoing lateral displacements was related to reinforcement ratio of the main beams.

A design approach of integral-abutment steel girder bridges for maintenance

  • Kim, WooSeok;Jeong, Yoseok;Lee, Jaeha
    • Steel and Composite Structures
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    • 제26권2호
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    • pp.227-239
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    • 2018
  • Integral abutment bridges (IABs) have no joint across the length of bridge and are therefore also known as jointless bridges. IABs have many advantages, such as structural integrity, efficiency, and stability. More importantly, IABs have proven to be have both low maintenance and construction costs. However, due to the restraints at both ends of the girder due to the absence of a gap (joint), special design considerations are required. For example, while replacing the deck slabs to extend the service life of the IAB, the buckling strength of the steel girder without a deck slab could be much smaller than the case with deck slab in place. With no deck slab, the addition of thermal expansion in the steel girders generates passive earth pressure from the abutment and if the applied axial force is greater than the buckling strength of the steel girders, buckling failure can occur. In this study, numerical simulations were performed to estimate the buckling strength of typical steel girders in IABs. The effects of girder length, the width of flange and thickness of flange, imperfection due to fabrication and construction errors on the buckling strengths of multiple and single girders in IABs are studied. The effect of girder spacing, span length ratio (for a three span girder) and self-weight effects on the buckling strength are also studied. For estimation of the reaction force of the abutment generated by the passive earth pressure of the soil, BA 42/96 (2003), PennDOT DM4 (2015) and the LTI proposed equations (2009) were used and the results obtained are compared with the buckling strength of the steel girders. Using the selected design equations and the results obtained from the numerical analysis, equations for preventing the buckling failure of steel girders during deck replacement for maintenance are presented.

Influence of stiffeners on the performance of blind-bolt end-plate connections to CFST columns

  • Ding, Fa-xing;Pan, Zhi-cheng;Liu, Peng;Huang, Shi-jian;Luo, Liang;Zhang, Tao
    • Steel and Composite Structures
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    • 제36권4호
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    • pp.447-462
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    • 2020
  • The paper aims to investigate the mechanical mechanism and seismic effect of stiffeners in blind bolt endplate connection to CFST column. A precise 3D finite element model with considering the cyclic properties of concrete and steel materials was established, and the efficiency was validated through monotonic and cyclic test data. The deforming pattern and the seismic performance of the unstiffened and stiffened blind bolt endplate connections were investigated. Then a parametric analysis was conducted to analyze the contribution of stiffeners and the joint working behaviors with endplate under cyclic load. The joint stiffness classifications were compared and a supplement stiffness classification method was proposed, and the energy dissipation ability of different class connections were compared and discussed. Results indicated that the main deformation pattern of unstiffened blind bolt endplate connections was the local bending of end plate. The vertical stiffeners can effectively alleviate the local bending deformation of end plate. And influence of stiffeners in thin endplate and thick endplate was different. Based on the stiffness of external diaphragm welded connection, a more detailed rigidity classification was proposed which included the pin, semi-rigid, quasi-rigid and rigid connection. Beam was the main energy dissipation source for rigid connection. For the semi-rigid and quasi-rigid connection, the extended endplate, stiffeners and steel beam would all participate in the energy dissipation.

Static analysis of a radially retractable hybrid grid shell in the closed position

  • Cai, Jianguo;Jiang, Chao;Deng, Xiaowei;Feng, Jian;Xu, Yixiang
    • Steel and Composite Structures
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    • 제18권6호
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    • pp.1391-1404
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    • 2015
  • A radially retractable roof structure based on the concept of the hybrid grid shell is proposed in this paper. The single-layer steel trusses of the radially foldable bar structure are diagonally stiffened by cables, which leads to a single-layer lattice shell with triangular mesh. Then comparison between the static behavior between the retractable hybrid grid shell and the corresponding foldable bar shell with quadrangular mesh is discussed. Moreover, the effects of different structural parameters, such as the rise-to-span ratio, the bar cross section area and the pre-stress of the cables, on the structural behaviors are investigated. The results show that prestressed cables can strengthen the foldable bar shell with quadrangular mesh. Higher structural stiffness is anticipated by introducing cables into the hybrid system. When the rise-span ratio is equal to 0.2, where the joint displacement reaches the minimal value, the structure shape of the hyrbid grid shell approaches the reasonable arch axis. The increase of the section of steel bars contributes a lot to the integrity stiffness of the structure. Increasing cable sections would enhance the structure stiffness, but it contributes little to axial forces in structural members. And the level of cable prestress has slight influence on the joint displacements and member forces.

다구찌 기법을 이용한 이종재료 경사 홀 클린칭 접합부 수평 방향 접합강도 예측 및 검증 (Prediction and Verification of Lateral Joining Strength for Tapered-Hole Clinching using the Taguchi Method)

  • 강동식;박으뜸;;강범수;송우진
    • 소성∙가공
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    • 제25권1호
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    • pp.36-42
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    • 2016
  • Fiber metal laminates (FMLs) are well known for improved fatigue strength, better impact resistance, superior damage tolerance and slow crack growth rate compared to traditional metallic materials. However, defects and loss of strength of a composite material can occur due to the vertical load from the punch during the joining with a dissimilar material using a conventional clinching method. In the current study, tapered-hole clinching was an alternative process used to join Al 5052 and FMLs. The tapered hole was formed in the FML before the joining. For the better understanding of static and dynamic characteristics, a clinched joining followed by a tensile-shear test was numerically simulated using the finite element analysis. The design parameters were also evaluated for the geometry of the tapered hole by the Taguchi method in order to improve and compare the lateral joining strength of the clinched joint. The influence of the neck thickness and the undercut were evaluated and the contribution of each design parameter was determined. Then, actual experiments for the joining and tensile-shear test were conducted to verify the results of the numerical simulations. In conclusion, the appropriate combination of the design parameters can improve the joining strength and the cross-sections of the tapered-hole clinched joint formed in the actual experiments were in good agreement with the results of the numerical simulations.

연소관 조립체의 접착 체결부에 대한 비파괴 시험 방법 연구 (A Study on the Nondestructive Test Method for Adhesively Bonded Joint in Motor Case Assembly)

  • 황태경;이상호;김동륜;문순일
    • 비파괴검사학회지
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    • 제26권5호
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    • pp.343-352
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    • 2006
  • 본 논문에서는 금속 연소관, 단열 고무 그리고 내열 복합재로 구성된 연소관 조립체의 접착 체결 상태를 확인하기 위해 변형률, 음향방출 신호 그리고 초음파 시험자료를 이용한 비파괴 시험 방법이 제시되었다. 또한 내압 상태에서 연소관 조립체의 각 계면 접착 상태를 정량적으로 평가하기 위해 유한요소 해석이 수행되었다. 공압 시험 중 계측한 변형률 값과 음향방출 신호 상관관계 연구를 통해 연소관 조립체의 접착 건전성 평가가 가능했다. 그리고 연소관 조립체의 여러 접착 계면 중 첫 번째 계면인 연소관과 고무간의 접착은 초음파 방법으로 분류하였다. 이러한 연구를 통해 연소관 조립체의 모든 접착 계면은 1) 초기 완전 미접착, 2) 공압 시험 중 완전 접착 분리, 3) 공압 시험 중 부분 접착 분리, 4) 완전 접착 등 4가지 형태로 분류 및 검출되었다.

Experimental investigation of force-distribution in high-strength bolts in extended end-plate connections

  • Abdalla, K.M.;Abu-Farsakh, G.A.R.;Barakat, S.A.
    • Steel and Composite Structures
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    • 제7권2호
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    • pp.87-103
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    • 2007
  • This paper presents some of the results from an experimental research project on the behavior of extended end-plate connections subjected to moment conducted at the Structural Laboratory of Jordan University of Science and Technology. Since the connection behavior affects the structural frame response, it must be included in the global analysis and design. In this study, the behavior of six full-scale stiffened and unstiffened cantilever connections of HEA- and IPE-sections has been investigated. Eight high strength bolts were used to connect the extended end-plate to the column flange in each case. Strain gauges were installed inside each of the top six bolts in order to obtain experimentally the actual tension force induced within each bolt. Then the connection behavior is characterized by the tension force in the bolt, extended end-plate behavior, moment-rotation relation, and beam and column strains. Some or all of these characteristics are used by many Standards; therefore, it is essential to predict the global behavior of column-beam connections by their geometrical and mechanical properties. The experimental test results are compared with two theoretical (equal distribution and linear distribution) approaches in order to assess the capabilities and accuracy of the theoretical models. A simple model of the joint is established and the essential parameters to predict its strength and deformational behavior are determined. The equal distribution method reasonably determined the tension forces in the upper two bolts while the linear distribution method underestimated them. The deformation behavior of the tested connections was characterized by separation of the column-flange from the extended end-plate almost down to the level of the upper two bolts of the lower group and below this level the two parts remained in full contact. The neutral axis of the deformed joint is reasonably assumed to pass very close to the line joining the upper two bolts of the lower group. Smooth monotonic moment-rotation relations for the all tested frames were observed.

Thermoelastic effect on inter-laminar embedded delamination characteristics in Spar Wingskin Joints made with laminated FRP composites

  • Mishra, P.K.;Pradhan, A.K.;Pandit, M.K.;Panda, S.K.
    • Steel and Composite Structures
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    • 제35권3호
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    • pp.439-447
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    • 2020
  • This paper presents two sets of full three-dimensional thermoelastic finite element analyses of superimposed thermo-mechanically loaded Spar Wingskin Joints made with laminated Graphite Fiber Reinforced Plastic composites. The study emphasizes the influence of residual thermal stresses and material anisotropy on the inter-laminar delamination behavior of the joint structure. The delamination has been pre-embedded at the most likely location, i.e., in resin layer between the top and next ply of the fiber reinforced plastic laminated wingskin and near the spar overlap end. Multi-Point Constraint finite elements have been made use of at the vicinity of the delamination fronts. This helps in simulating the growth of the embedded delamination at both ends. The inter-laminar thermoelastic peel and shear stresses responsible for causing delamination damage due to a combined thermal and a static loading have been evaluated. Strain energy release rate components corresponding to the Mode I (opening), Mode II (sliding) and Mode III (tearing) of delamination are determined using the principle of Virtual Crack Closure Technique. These are seen to be different and non-self-similar at the two fronts of the embedded delamination. Residual stresses developed due to the thermoelastic anisotropy of the laminae are found to strongly influence the delamination onset and propagation characteristics, which have been reflected by the asymmetries in the nature of energy release rate plots and their significant variation along the delamination front.

동시 경화 장섬유 복합재료-알루미늄 혼성 구조물의 접착 특성 연구 (A Study on Adhesion Characteristics of Co-cured Long Fiber Prepreg Sheet-Aluminum Hybrid Structures)

  • 이성우;장승환
    • Composites Research
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    • 제31권1호
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    • pp.17-22
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    • 2018
  • 장섬유 복합재료(Long Fiber Prepreg Sheet; LFPS)는 기존 연속섬유로 구성된 섬유 강화 복합재료에 비해 우수한 생산 효율과 성형성을 가지고 있다. 섬유 강화 복합재료가 타 재료와 혼성으로 사용이 되는 경우 이종 재료의 체결을 위해 접착 방법을 사용하게 되며, 접착부의 강도는 혼성 구조물의 강도를 결정하기 때문에 복합재료 접합부의 설계는 중요하다. 본 연구에서는 동시에 경화된 LFPS와 알루미늄의 접합부를 다양한 표면처리 조건과 온도 및 수분 환경조건에 따른 접착 특성을 평가하였다. 표면처리 기법으로는 기계적인 방법인 연마와 플라즈마 표면처리를 대상으로 하였다. 다양한 표면처리가 적용된 접착 조인트는 단면 겹치기 접착 조인트를 사용하여 실험하였다. 여러 조건들에서 접착 강도가 평가되었고 가장 적절한 조건이 도출되었다.