Komunita obyvateľov a sympatizantov obce Chorvátsky Grob
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The solidification cracking susceptibility of several commercial heats of Types 304L, 316L and 321Mo stainless steels was evaluated under pulsed-laser welding conditions. Both the Suutala weldability diagram and the WRC constitution diagram predicted that all the heats tested in this investigation would be resistant to weld solidification cracking based on the individual values of their Cr[sub eq]/Ni[sub eq] ratio. Fluid flow accompanied by heat transfer, solidification and interrelated chemical reactions play a key role during Continuous Casting (CC) of steel. Generation of defects and production issues are a result of the interaction between mould flux, steel grade and casting conditions. These issues are detrimental to both productivity and quality. The explicit finite-element method is applied in this work to simulate the coupled and highly- nonlinear thermo-mechanical phenomena that occur during steel solidification in continuous casting processes. Variable mass scaling is used to efficiently model these processes in their natural time scale using a Lagrangian formulation. This chapter deals with the heat transfer characteristics between the cast and the mold. Generally the heat transfer behavior between the cast and the sand mold is used and all the three modes of heat transfer are studied. The heat transfer characteristics from the cast is at a faster rate for a die mold than for the sand mold. Since the sand mold is used for most of the industrial Solidification as well as filling has great influences on the quality of cast products. In modern competitive world for increasing the quality of products these two steps draw higher attention to casting engineers. This case study is just one of the followings of the above mentioned objective. The aim of the present work is to reduce the rejection rate of cast products in a foundry shop due to To understand the effects of solid-state cooling rate on the dissolution rate of δ-ferrite fraction during both fast and slow solidification rates, the concentration profiles of Cr and Ni at 1390 °C (above T f), T f, and 1350 °C (below T f) (arrows in Fig. 12c, d) were drawn for slow and fast solidification rates at 0.1 and 10 °C/s solid-state cooling rates (Fig. 14a-d). The solidification sequence, microstructural evolution, solid-liquid interface variation, interdendritic segregation, and elemental distribution of as-cast IN718 alloy at three slow-cooling rates (5, 10, and 20 °C/min) were investigated by differential scanning calorimetry (DSC), confocal laser scanning microscopy (CLSM), optical microscopy (OM), field-emission scanning electron microscopy (FESEM), and electron-probe microanalysis (EPMA) techniques. in COMSOL Multiphysics 5.3a software. The steps of the numerical model can be summarized as, discretization of the domain and coupled governing equations (element, type, and size effect of boundary condition on the melting and solidification rate of PCM embedded in metal foam is studied. The results will be presented and discussed. A model for predicting solidification structure of continuously cast steel was developed using commercial s
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