• Title/Summary/Keyword: 인덴테이션

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FE analysis of Extrusion Process and Estimation of welding strength for Micro Multi Cell Tube with Serration (세레이션형 미세 멀티셀 튜브 압출 및 접합강도 평가)

  • Lee Jung Min;Kim Byung Min;Jo Hyung Ho;Kang Chung Gil
    • Journal of the Korean Society for Precision Engineering
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    • v.22 no.9 s.174
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    • pp.49-59
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    • 2005
  • This paper describes a development of the extrusion process and estimation of the weldability for multi cell tubes used to cooling system of automobiles. A study on extrusion process is performed through the 3D FE simulation in non-steady state and extrusion experimentation. Also, nano-indentation test is employed to estimate the weldability of tubes. Especially, An evaluation of the weldability using the nano-indentation is accomplished as compared with nano-hardness in welded part and in the others. Finally, the pattern of the mandrel defection is investigated according to shapes of the porthole and/or chamber.

Development of an Ultra Precision Machining System Using a Force and Displacement Sensing Module (힘 및 변위 감지기구를 적용한 초정밀 가공시스템 개발)

  • Bang, Jin-Hyeok;Kwon, Ki-Hwan;Cho, Nahm-Gyoo
    • Journal of the Korean Society for Precision Engineering
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    • v.22 no.12 s.177
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    • pp.42-50
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    • 2005
  • This paper presents an ultra precision machining system using a high sensitive force sensing module to measure machining forces and penetration displacement in a tip-based nanopatterning. The force sensing module utilizes a leaf spring mechanism and a capacitive displacement sensor and it has been designed to provide a measuring range from 80 ${\mu}N$ to 8 N. This force sensing module is mounted on a PZT driven in-feed motion stage with 1 nm resolution. The sample can be moved by X-Y scanning motion stage with 5 nm resolution. In nano indentation experiments and patterning experiments, the machining forces were controlled and monitored by the force sensing module. Then, the patterned samples were measured by AFM. Experimental results demonstrated that the developed system can be used as an effective device in nano indentation and nanopatterning operation.

Analysis of the nano indentation using MSG plasticity (Mechanism-based Strain Gradient Plasticity 를 이용한 나노 인덴테이션의 해석)

  • 이헌기;고성현;한준수;박현철
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2004.10a
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    • pp.413-417
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    • 2004
  • Recent experiments have shown the 'size effects' in micro/nano scale. But the classical plasticity theories can not predict these size dependent deformation behaviors because their constitutive models have no characteristic material length scale. The Mechanism - based Strain Gradient(MSG) plasticity is proposed to analyze the non-uniform deformation behavior in micro/nano scale. The MSG plasticity is a multi-scale analysis connecting macro-scale deformation of the Statistically Stored Dislocation(SSD) and Geometrically Necessary Dislocation(GND) to the meso-scale deformation using the strain gradient. In this research we present a study of nano-indentation by the MSG plasticity. Using W. D. Nix and H. Gao s model, the analytic solution(including depth dependence of hardness) is obtained for the nano indentation , and furthermore it validated by the experiments.

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Finite Element Analysis of Nano Deformation for the Hyper-Fine Pattern Fabrication by using Nanoindentation (나노인덴테이션을 이용하여 극미세 패턴을 제작하기 위한 나노 변형의 유한요소해석(I))

  • 이정우;윤성원;강충길
    • Journal of the Korean Society for Precision Engineering
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    • v.20 no.5
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    • pp.210-217
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    • 2003
  • In this study, to achieve the optimal conditions for mechanical hyper-fine pattern fabrication process, deformation behavior of the materials during indentation was studied with numerical method by ABAQUS S/W. Polymer (PMMA) and brittle materials (Si, Pyrex glass) were used as specimens, and forming conditions to reduce the elastic restoration and pile-up was proposed. The indenter was modeled a rigid surface. Minimum mesh sizes of specimens are 1-l0mm. The result of the investigation will be applied to the fabrication of the hyper-fine pattern and mold.

Determination of the mechanical properties of the coated layer in the sheet metal using load-displacement curve by nanoindentation technique (나노 인덴테이션의 하중-변위 곡선을 이용한 표면처리강판 코팅층의 기계적 특성 결정)

  • Ko Y. H.;Lee J. M.;Kim B. M.
    • Proceedings of the Korean Society for Technology of Plasticity Conference
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    • 2004.05a
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    • pp.148-151
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    • 2004
  • Mechanical properties such as Young's modulus and hardness of thin film in coated steel are difficult to determine by nano-indentation from the conventional analysis using the load-displacement curve. Therefore, an analysis of the nano-indentation loading curve was used to determine the Young's modulus, hardness and strain hardening exponent. A new method is recently being developed for plasticity properties of materials from nano-indentation. Elastic modulus of the thin films shows relatively small influence whereas yield strength and strain hardening are found to have significant effect on measured data. The load-displacement behavior of material tested with a Berkovich indenter and nano-indentation continuous stiffness method is used to measure the modulus and hardness through thin films.

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Finite Element Analysis of Nano Deformation for Hyper-fine Pattern Fabrication by Application of Nanoidentation Process (II) (나노인덴테이션 공정을 이용하여 극미세 패턴을 제작하기 위한 나노변형의 유한요소해석(II))

  • 이정우;윤성원;강충길
    • Journal of the Korean Society for Precision Engineering
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    • v.20 no.9
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    • pp.47-54
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    • 2003
  • In this study, to achieve the optimal conditions for mechanical hyper-fine pattern fabrication process, deformation behavior of the materials during indentation was studied with numerical method by ABAQUS S/W. Polymer (PMMA) and brittle materials (Si, Pyrex glass) were used as specimens, and forming conditions to reduce the elastic re cover and pile-up were proposed. The indenter was modeled a rigid surface. Minimum mesh sizes of specimens are 1 -l0nm. Comparison between the experimental data and numerical result demonstrated that the finite element approach is capable of reproducing the loading-unloading behavior of a nanoindentation test. The result of the investigation will be applied to the fabrication of the hyper-fine pattern.

Dislocation Density Propagation adjacent to the Low Angle Grain Boundaries of Polycrystalline Materials (다결정 미세입자 소각입계면에서의 전위밀도 확산)

  • Ma, Jeong-Beom
    • Journal of the Korean Society of Manufacturing Technology Engineers
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    • v.20 no.5
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    • pp.618-622
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    • 2011
  • Specialized large-scale computational finite-element and molecular dynamic models have been used in order to understand and predict how dislocation density emission and contact stress field due to nanoindentation affect inelastic deformation evolution scales that span the molecular to the continuum level in ductile crystalline systems. Dislocation density distributions and local stress fields have been obtained for different crystalline slip-system and grain-boundary orientations. The interrelated effects of grain-boundary interfaces and orientations, dislocation density evolution and crystalline structure on indentation inelastic regions have been investigated.

A Study of Extrusion Process for Al 3003 Condenser Tube (Al 3003 컨덴서 튜브의 직접압출 연구)

  • Bae, Jae-Ho;Lee, Jung-Min;Kim, Byung-Min
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.29 no.8 s.239
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    • pp.1043-1050
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    • 2005
  • Condenser tube is a component of the heat exchanger in automobile and air conditioning apparatus. It is generally made from the 1000 or 3000 series Al alloys that have good heat efficiency. In the case of 3000 series, these have high strength and hardness but have the disadvantage of low extruability. The development of extruding process in condenser tube with 3000 series Al alloys is studied in this paper. A study on extrusion process is performed through the 3D FE simulation in non-steady state and extrusion experimentation. Also, nano-indentation test is employed to estimate the weldability of tubes. Especially, An evaluation of the weldability using the nano-indentation is accomplished as compared with nano-hardness of welded part and the others in cross-section of tube.

A study on adhesion of HA coating by Microplasma Spray (마이크로플라즈마 스프레이에 의한 HA코팅의 밀착력에 관한 연구)

  • Mun, Jang-Won;Gwon, Jeong-Dae;Gwon, Sik-Cheol;Na, Jong-Ju;Lee, Gyu-In;Jeon, Chang-Su;Go, Cheol-Ung
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2009.05a
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    • pp.162-163
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    • 2009
  • 마이크로플라즈마 스프레이(Microplasma spray, MPS)를 이용하여 hydroxyapatite(HA) 코팅을 수행하여, HA코팅 층에 대한 밀착력을 측정하였다. 밀착력의 측정은 ASTM C633에 의거하였으며, 실험의 설계는 다꾸치법 (L18($2^{1}3^{7}$))을 이용하였다. 본 실험에서 HA코팅 층과 모재에 대한 밀착력 측정에서 35.8MPa의 밀착력을 얻었으며, SEM을 이용하여, 표면 형상과 밀착력 실험 후의 파단면을 관찰하였다. 또한, 나노 인덴테이션을 사용하여, 탄성계수와 미소경도를 측정하였다.

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Mechanical properties on nanoindentation measurements of osteonic lamellae in a human cortical bone (나노인덴테이션을 이용한 인체 피질골 골층판의 물성연구)

  • Choi Hwan-Seok;Song Jung-Il;Joo Won-Kyung
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2006.05a
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    • pp.527-528
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    • 2006
  • In the proposed research plan, the effects of anisotropic and time-dependent mechanical properties on nanoindentation measurements of osteonic lamellae in a human cortical bone are investigated. The most popular method(Oliver-Pharr method) in nanoindentation data analysis is based on the assumption of elastic isotropy. Since cortical bone has exhibited anisotropy, it is necessary to consider the effects of anisotropy on nanoindentation measurement for cortical bone. By comparison with the contact area obtained from monitoring the contact profile in FEA simulations, the Oliver-Pharr method was found to underpredict or overpredict the contact area due to effects of anisotropy. The mount of error depended on the indentation orientation. The indentation modulus results and were also similar to moduli calculated from mathematical model. The Oliver-Pharr method has been shown to be useful for providing first order approximations in analysis of anisotropic mechanical properties of cortical bone, although the indentation modulus is influenced by anisotropy.

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