Modeling Of Heat Transfer And Solidification Of Droplet/Substrate In Microcasting SDM Process

Microcasting Shape-Deposition-Manufacturing is an approach to Solid-Freeform-Fabrication (SFF) process which is a novel method for rapid automated manufacturing of near-net-shape multi-material parts with complex geometries. By this method, objects are made by sequentially depositing molten metal dr...

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Main Authors: A. Jafari, S.H. Seyedein, M. Haghpanahi
Format: Article
Language:English
Published: Iran University of Science & Technology 2008-08-01
Series:International Journal of Industrial Engineering and Production Research
Subjects:
FEM
Online Access:http://ijiepr.iust.ac.ir/browse.php?a_code=A-10-1-93&slc_lang=en&sid=1
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spelling doaj-1bb9cd7d1f484561832d262d24ccbadd2020-11-25T01:34:37ZengIran University of Science & TechnologyInternational Journal of Industrial Engineering and Production Research2008-48892345-363X2008-08-01197187198Modeling Of Heat Transfer And Solidification Of Droplet/Substrate In Microcasting SDM ProcessA. Jafari0S.H. Seyedein1M. Haghpanahi2 Microcasting Shape-Deposition-Manufacturing is an approach to Solid-Freeform-Fabrication (SFF) process which is a novel method for rapid automated manufacturing of near-net-shape multi-material parts with complex geometries. By this method, objects are made by sequentially depositing molten metal droplets on a substrate and shaping by a CNC tool, layer by layer. Important issues are concerned with remelting dept of substrate, cooling rate and stress build up. In the present study attempts were made to numerically model the heat transfer and phase change within the droplet/substrate, making a better understanding of process performance. Thus, making a brief literature review, a 2-D transient heat transfer Finite Element Analysis was carried out by the use of ANSYS multiphysics, in which solidification is handled using apparent capacity method. Verification was done by available experimental data in the open literature to ensure model predictions. The model was run under various process parameters and obtained results presented in the form of temperature fields, solidification profiles, cooling curves and remelting history curves. Solidification profile studies predict a columnar dendritic solidified structure in the vertical orientation which was in agreement with metallographic sections published earlier. Parametric studied were also carried out under different boundary conditions, initial temperature of the droplet and Substrate temperature. It was concluded that 1) the process is not sensitive to convection/radiation effects from the surface. 2) the main parameter that can control the maximum remelting dept is initial temperature of the droplet. the more drop temperature, the more remelting dept. This parameter also affects cooling rate during solidification. 3) Increasing substrate temperature showed a decreased cooling rate in solid, which can be used to reduce residual stresses, but it had a minor effect on the cooling rates during solidification .http://ijiepr.iust.ac.ir/browse.php?a_code=A-10-1-93&slc_lang=en&sid=1Heat Transfer Solidification FEM Shape Deposition Manufacturing Microcasting
collection DOAJ
language English
format Article
sources DOAJ
author A. Jafari
S.H. Seyedein
M. Haghpanahi
spellingShingle A. Jafari
S.H. Seyedein
M. Haghpanahi
Modeling Of Heat Transfer And Solidification Of Droplet/Substrate In Microcasting SDM Process
International Journal of Industrial Engineering and Production Research
Heat Transfer
Solidification
FEM
Shape Deposition Manufacturing
Microcasting
author_facet A. Jafari
S.H. Seyedein
M. Haghpanahi
author_sort A. Jafari
title Modeling Of Heat Transfer And Solidification Of Droplet/Substrate In Microcasting SDM Process
title_short Modeling Of Heat Transfer And Solidification Of Droplet/Substrate In Microcasting SDM Process
title_full Modeling Of Heat Transfer And Solidification Of Droplet/Substrate In Microcasting SDM Process
title_fullStr Modeling Of Heat Transfer And Solidification Of Droplet/Substrate In Microcasting SDM Process
title_full_unstemmed Modeling Of Heat Transfer And Solidification Of Droplet/Substrate In Microcasting SDM Process
title_sort modeling of heat transfer and solidification of droplet/substrate in microcasting sdm process
publisher Iran University of Science & Technology
series International Journal of Industrial Engineering and Production Research
issn 2008-4889
2345-363X
publishDate 2008-08-01
description Microcasting Shape-Deposition-Manufacturing is an approach to Solid-Freeform-Fabrication (SFF) process which is a novel method for rapid automated manufacturing of near-net-shape multi-material parts with complex geometries. By this method, objects are made by sequentially depositing molten metal droplets on a substrate and shaping by a CNC tool, layer by layer. Important issues are concerned with remelting dept of substrate, cooling rate and stress build up. In the present study attempts were made to numerically model the heat transfer and phase change within the droplet/substrate, making a better understanding of process performance. Thus, making a brief literature review, a 2-D transient heat transfer Finite Element Analysis was carried out by the use of ANSYS multiphysics, in which solidification is handled using apparent capacity method. Verification was done by available experimental data in the open literature to ensure model predictions. The model was run under various process parameters and obtained results presented in the form of temperature fields, solidification profiles, cooling curves and remelting history curves. Solidification profile studies predict a columnar dendritic solidified structure in the vertical orientation which was in agreement with metallographic sections published earlier. Parametric studied were also carried out under different boundary conditions, initial temperature of the droplet and Substrate temperature. It was concluded that 1) the process is not sensitive to convection/radiation effects from the surface. 2) the main parameter that can control the maximum remelting dept is initial temperature of the droplet. the more drop temperature, the more remelting dept. This parameter also affects cooling rate during solidification. 3) Increasing substrate temperature showed a decreased cooling rate in solid, which can be used to reduce residual stresses, but it had a minor effect on the cooling rates during solidification .
topic Heat Transfer
Solidification
FEM
Shape Deposition Manufacturing
Microcasting
url http://ijiepr.iust.ac.ir/browse.php?a_code=A-10-1-93&slc_lang=en&sid=1
work_keys_str_mv AT ajafari modelingofheattransferandsolidificationofdropletsubstrateinmicrocastingsdmprocess
AT shseyedein modelingofheattransferandsolidificationofdropletsubstrateinmicrocastingsdmprocess
AT mhaghpanahi modelingofheattransferandsolidificationofdropletsubstrateinmicrocastingsdmprocess
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