• Title/Summary/Keyword: 차폐개스

Search Result 3, Processing Time 0.019 seconds

Prediction of Penetration and Heat Affected Zone by Using Finite Element Method in $CO_2$ Arc Welding (유한 요소법을 이용한 $CO_2$아아크 용접부의 용입깊이와 열영향부 크기 예측)

  • 이정익;박일철;박기영;엄기원
    • Journal of Welding and Joining
    • /
    • v.10 no.4
    • /
    • pp.222-229
    • /
    • 1992
  • A prediction of penetration and heat affected zone by using Finite Element Method in CO$_{2}$ Arc Welding has been discussed this paper. The temperature distribution of a base metal produced by the CO$_{2}$ arc welding processing is analyzed by using a three dimensional finite element model. The common finite element program ANSYS 4.4A was employed to obtain the numerical results. Temperature dependent material properties, effect of latent heat, and the convective boundary conditions are included in the model. Numerically predicted sizes of the penetration and the heat affected zone are compared with the experimentally observed values. As a result, there was a slight difference between numerical analysis values and experimentally observed values. For in the case of heat affected zone, it was not considered a precise forced convective coefficient value, and in the case of penetration, it was not, considered a arc force.

  • PDF

Stress-Strain Behavior and Electrical Resistive of Conductive Silver Particle/Silicone Composite Pastes with Surface Modification (표면처리에 따른 도전성 은입자/실리콘 복합 페이스트의 응력-변형율 거동 및 전기비저항 특성)

  • 이건웅;방대석;박민;조동환
    • Composites Research
    • /
    • v.17 no.5
    • /
    • pp.61-67
    • /
    • 2004
  • This paper reports the electrical conductivity and the stress-strain behavior of silver particle-filled silicone composite pastes for electromagnetic interference (EMI) shielding gasket materials. The percolation threshold (critical concentration) of the composite paste obtained by incorporating irregular sphere-shaped silver particles and room temperature vulcanizing (RTV) silicone resin was determined from the electrical conductivity result. At about 28 vol% Beading of untreated silver particles, the percolation phenomenon occurred and at this critical concentration, the volumetric resistivity, the tensile strength, and the elongation of the pastes were investigated. This work also suggests that the stress-strain characteristics of a composite paste filled with metal particles above the percolation threshold may be effectively improved by properly selecting a coupling agent.

Effect of ,Shear Stress on the Viscosity and Electrical Conductivity for the Metal-Filled Composite Materials (금속입자 충전 복합재료의 전단응력에 따른 점도 및 전기 전도도 변화)

  • Lee, Geon-Woong;Choi, Dong-uk;Lee, Sang-Soo;Kim, Jun-Kyung;Park, Min
    • Polymer(Korea)
    • /
    • v.26 no.5
    • /
    • pp.644-652
    • /
    • 2002
  • This study aims at developing the conductive pastes consisting of room temperature vulcanizing (RTV) silicone and metal powder as matrix and filler, respectively. Electrical and rheological properties of metal - filled polymer composites are in general strongly affected by particle shape, side and dispersion state of the filler. In highly filled systems, particles tend to form very complex agglomerated structure which is easily changed when subjected to shear deformation. And the breakdown of agglomerated particles due to shear usually leads to the change of electrical conductivity of the composite. In this study, the effect of particle size and dispersion state of filler on the electrical conductivity of the composites are investigated to offer the selection criteria of conductive filler by measuring the rheological properties of uncured composites and the electrical conductivity of the cured composites. It was found that the type of metal filler systematically affected the rheological property, the susceptibility to shear and the degree of change of electrical conductivity of the composite. The effect of shear on the properties is more conspicuous in the composites containing large particle, indicating that both rheological and electrical properties can be improved by controlling the dispersion state at a given filler content.