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Centrifugal casting of ZA8 zinc alloy and composite A356/SiC : study and modeling of phases' and particles' segragation

机译:锌合金Za8和a356 / siC复合材料的离心铸造:相和分离的研究和建模

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摘要

Centrifugation is a casting technology that allows the production of cylindrical and graduated parts with different mechanical properties through the section. The need for materials with good quality and specific mechanical properties has been driven this technology in order to produce different types of materials such as zinc alloys and graduated metal matrix composites reinforced by hard and wear resistant particles.ududThe goal of this research project is to study and model the eutectic macrosegregation, the solidification speed, and the speeds of solidification fronts during centrifugal casting of ZA8 zinc-aluminum alloy in order to improve the part quality and increase its strength and field reliability. Moreover, the segregation of the particles during centrifugal casting of an aluminum matrix composite reinforced by silicon carbide particles (A356/SiC) is also studied to improve and control the graduation of the parts. The cooling rate, the speed, acceleration/deceleration, displacement, and segregation of the particles across the section will be modeled by discretization of Stokes’ law in time in order to take into consideration the change in the centrifugal radius and melt viscosity during cooling process. This study will allow the control of the graduation degree of particles across the section in order to improve the properties and wear resistance of the composite. This composite can be used in systems where friction is critical and load is high (reinforcements of parts for the cylinders of pneumatic systems).ududThe results show that the maximum macrosegregation zone of the eutectic across the casting section corresponds to the last point of solidification. The eutectic macrosegregation produced during centrifugal casting of thin walled part is a normal segregation which varies depending on the solidification speed and the ratio between the speeds of solidification fronts. On the other hand, it was found that the position and volume fraction of the particles on the outer/inner casting surface and across the section varies whether the viscosity of the liquid metal used and the centrifugal radius are considered constant or variable during the modeling. Modeling the particles’ segregation while discretizing, in time, the particles’ velocities gives more consistent results compared to those obtained experimentally.
机译:离心是一种铸造技术,可以通过该截面生产具有不同机械性能的圆柱形和带刻度的零件。为了生产出不同类型的材料,例如锌合金和由硬质耐磨颗粒增强的带刻度的金属基复合材料,推动了对高质量和特定机械性能材料的需求。 ud ud该研究项目的目标研究和建模ZA8锌铝合金离心铸造过程中的共晶宏观偏析,凝固速度和凝固前沿速度,以改善零件质量并提高其强度和现场可靠性。此外,还研究了离心铸造由碳化硅颗粒(A356 / SiC)增强的铝基复合材料时颗粒的偏析,以改善和控制零件的分度。为了及时考虑冷却过程中离心半径和熔体粘度的变化,将通过斯托克斯定律的及时离散化对整个截面的冷却速率,速度,加速/减速,位移和分离进行建模。 。这项研究将允许控制截面中颗粒的渐变程度,以改善复合材料的性能和耐磨性。该复合材料可用于摩擦力至关重要且载荷较高的系统中(气动系统气缸的零件增强)。 ud ud结果表明,在整个铸造段中,共晶的最大宏观偏析区域与最后一个点相对应。凝固。薄壁部件的离心铸造过程中产生的共晶宏观偏析是正常的偏析,其根据凝固速度和凝固前沿速度之间的比率而变化。另一方面,发现在建模过程中,无论所使用的液态金属的粘度和离心半径是恒定的还是可变的,外/内铸件表面上和整个截面上的颗粒的位置和体积分数都会变化。与离散实验相比,对粒子的分离进行建模,并及时离散化粒子的速度,可以得到更一致的结果。

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    Balout Bahaa;

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  • 年度 2010
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