scholarly journals Computer Simulation of Equiaxial Dendrite Solidification of Aluminum Alloy

1990 ◽  
Vol 54 (7) ◽  
pp. 816-825 ◽  
Author(s):  
Kimio Kubo
2006 ◽  
Vol 116-117 ◽  
pp. 102-105
Author(s):  
Yu.A. Bocharov ◽  
B.I. Semenov ◽  
K.M. Kushtarov ◽  
Yu.A. Gladkov ◽  
L.V. Khizhniakova

Technology requirements for a billet micro globular structure development and following deformation are the basic inputs in a conceptual forging equipment design. The R&D team has studied the features of the Aluminum alloy thixoprocess experimentally on a crank press as well as with a help of computer simulation and have formulated requirements for SSM technology CNC prototype unit development.


Author(s):  
I. L. Konstantinov ◽  
P. G. Potapov ◽  
S. B. Sidelnikov ◽  
D. S. Voroshilov ◽  
Yu. V. Gorokhov ◽  
...  

The process of hot die forging of AK4-1 aluminum alloy billets for the piston of an internal combustion engine (ICE) for an unmanned aerial vehicle (UAV) was simulated using the Deform-3D software package. The object of research was an ICE piston mounted on one of the UAV types of Russian production. Simulation was performed using the following parameters: tooling and billet temperature was 450 °C, ambient temperature was 20 °C, punch speed was 5 mm/s, and Siebel friction index was 0.4. Rigid plastic medium was chosen as a material model. The number of elements (6000) was selected so that at least 3 elements fit in the narrowest section of the part. Thus, as illustrated by the piston die forging, computer simulation in the Deform-3D software makes it possible to develop hot die forging processes for making aluminum alloy billets for UAV ICE pistons. At the same time, computer simulation can be used to evaluate the power parameters of the hot die forging process, study the nature of billet forming in die forging, make necessary adjustments to the virtual process, and develop the design of a die forging tool in order to select the most effective process solutions when designing a real process. The described computer simulation technique can be extended to other aluminum alloy die forgings.


2010 ◽  
Vol 457 ◽  
pp. 299-304 ◽  
Author(s):  
Itsuo Ohnaka ◽  
Akira Sugiyama ◽  
Kunihiko Konishi ◽  
Yoshinori Obana ◽  
Jin Dong Zhu ◽  
...  

Although several computer simulation codes have been developed to predict and prevent defects of lost foam castings, most of them are focused on aluminum alloy castings. This paper presents a new simulation method suitable for not only aluminum alloy but also cast iron. First of all, main assumptions and numerical schemes are as below: 1) Gas flow in the mold follows the D’Arcy’s law. 2) The gas pressure in the kinetic zone (gas gap) is uniform in each gas group and is solved by using the flow field of melt one time-step before. 3) The gas obeys the ideal gas law. 4) Latent heats of evaporative pattern degradation are simplified by an overall latent heat in which both melting and evaporation are considered. 5) The pattern absorbs heat of melt through conduction, radiation and convection. Further, X-ray direct observations of mold filling behaviors of cast iron were carried out in order to better understand the physical fundamentals and to evaluate simulated results. It was found that: 1) Mold filling behaviors of cast iron are quite different from those of aluminum alloy castings depending on the gating system and thickness of the casting. 2) Bubble floating-up often occurred in the case of the downward flow. 3) Although the newly developed simulation code could predict the mold filling to some extent, further work needs to be done, including better understanding of the heat transfer mechanism between the melt and pattern.


2008 ◽  
Vol 2 (3) ◽  
pp. 306-310 ◽  
Author(s):  
Yi-tao Yang ◽  
Jian-fu Wang ◽  
Meng Chen ◽  
Heng-hua Zhang ◽  
Guang-jie Shao

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