Effect of vibration amplitude at two different frequencies on the microstructure of Al A۳۵۶ alloy processed via vibrated cooling slope

سال انتشار: 1401
نوع سند: مقاله کنفرانسی
زبان: انگلیسی
مشاهده: 245

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شناسه ملی سند علمی:

ICIRES12_017

تاریخ نمایه سازی: 17 مرداد 1401

چکیده مقاله:

Cooling slope casting is one the semisolid casting methods with a simpler technology as compared with other conventional semisolid casting processes. Nevertheless, this technique is a two-stage semisolid process requiring re-heating to semisolid region for gaining a globular structure. In the present study, a relatively new process, termed as Vibrating Cooling Slope (VCS), developed at university of Tehran utilized to gain a non-dendritic globular structure in A۳۵۶ Al alloy. In this technique, the conventional cooling slope and vibration casting methods have been combined into an integrated one for producing globular structures in the as-cast condition. The effect of the vibration amplitude in the range of ۱۲۰ to ۸۰۰μm at two different vibration frequencies of ۴۰ and ۶۰ Hz on the morphology of specimens examined. The microstructure of the sample produced at the amplitude of ۱۲۰ μm and frequency of ۴۰ Hz was not globular but after reheating turned to globular. However, the sample produced by VCS at the amplitude of ۱۲۰ μm and frequency of ۶۰ Hz as well as the samples processed at the amplitude of ۴۰۰μm and ۸۰۰μm at both frequencies of ۴۰ Hz and ۶۰ Hz exhibited a globular structure in the as-cast condition. In addition, increasing the vibration amplitude from ۱۲۰ to ۸۰۰μm resulted in decreased size of globules for both applied frequencies. Also, the shape factor of globules increased with increasing the amplitude of vibration in the range of ۱۲۰ to ۴۰۰ μm, but remained almost constant for further increase of this parameter. The increased vibration frequency resulted in a smaller globule size and a larger shape factor for all of the explored amplitudes. The microstructural analysis revealed that the optimum microstructure (from the point of view of the size and morphology of globules) achieved at the vibration amplitude of ۸۰۰ μm and frequency of ۶۰ Hz. These results attributed to increased amount of the shear stress imposed on the semisolid alloy on the cooling slope by increased amplitude and frequency of the applied vibration

نویسندگان

F Akhlaghi

School of Metallurgy and Materials Engineering, College of Engineering, University of Tehran P. O. Box ۱۱۱۵۵-۴۵۶۳, Tehran, Iran

A Taghani

School of Metallurgy and Materials Engineering, College of Engineering, University of Tehran P. O. Box ۱۱۱۵۵-۴۵۶۳, Tehran, Iran