5 research outputs found

    Analiza oddzia艂ywania modelu narz臋dzia na symulacj臋 numeryczn膮 MES procesu skrawania z du偶膮 pr臋dko艣ci膮 (HSM)

    No full text
    The finite element method has been extensively used for the simulation of manufacturing processes and especially machining. In this paper, finite element models of high speed machining are presented. More specifically, orthogonal and oblique cutting models are presented, where the geometrical and material properties of the cutting tool are investigated. Orthogonal models pertain to the simulation of cutting with three different CBN tool types. Chip formation, cutting forces and temperatures are compared for each model, at the same cutting conditions. Additionally, 3D models are presented, where the back rake angle of the cutting tool is varied. From the results it may be concluded that 3D models provide more realistic results but they are computationally more demanding than 2D models. Finite element modelling of high speed machining can provide data for the process that would be either difficult or in some cases even impossible to obtain through extensive experimental work.W artykule okre艣lono oddzia艂ywanie geometrii narz臋dzia na wyniki symulacji numerycznej skrawania z du偶膮 pr臋dko艣ci膮. Przeprowadzono symulacj臋 numeryczn膮 dla skrawania ortogonalnego 2D, dla trzech modeli narz臋dzi z CBN o r贸偶nej geometrii. Por贸wnano podzia艂 modeli numerycznych narz臋dzi na elementy sko艅czone oraz przedstawiono analiz臋 procesu kszta艂towania wi贸ra, warto艣ci sk艂adowych si艂y skrawania, temperatur臋 w strefie skrawania oraz odkszta艂cenie plastyczne w warstwie wierzchniej dla wybranych ich geometrii. Przeprowadzono r贸wnie偶 proces symulacji dla modelu sko艣nego 3D dla r贸偶nych warto艣ci k膮ta pochylenia kraw臋dzi skrawaj膮cej. Wyniki symulacji pozwoli艂y stwierdzi膰, 偶e zastosowanie modeli 3D lepiej odzwierciedla rzeczywisty proces. Stawia jednak wi臋ksze wymagania w zakresie oblicze艅 ni偶 przy u偶yciu modeli 2D. Symulacja MES obr贸bki z du偶膮 pr臋dko艣ci膮 pozwoli艂a uzyska膰 wyniki, kt贸re mog膮 by膰 trudne lub w niekt贸rych przypadkach niemo偶liwe do uzyskania w ramach bada艅 eksperymentalnych

    Influence of Silver-Coated Tool Electrode on Electrochemical Micromachining of Incoloy 825

    No full text
    Incoloy 825 alloy is often used in calorifiers, propeller shafts, and tank vehicles owing to the improved resistance to aqueous corrosion. The electrochemical micromachining process can be utilized to machine such an engineering material owing to higher precision and lower tool wear. In the present study, an investigation was performed to enhance the process of creating micro-holes using silver-coated copper tool electrodes. The sodium nitrate electrolyte was used under different levels of input parameters such as voltage, electrolyte concentration, frequency, and duty cycle with a view to improving material removal rate, conicity, overcut, and circularity. It was found that silver-coated copper tool electrode had a high material removal rate (MRR), better overcut, conicity, and circularity compared to uncoated copper tools in most cases, due to its high corrosive resistance and electrical conductivity. From SEM and EDS analysis, it was observed that better surface topography of the micro-holes is obtained with silver-coated copper tool electrode while machining Incoloy 825 alloy in the micromachining process
    corecore