Investigating the effect of adding powders into dielectric in EDMmachining of Inconel 718 Alloy and using an ANN model to predictthe output parameters
محل انتشار: دومین کنفرانس بین المللی مهندسی مکانیک و هوافضا
سال انتشار: 1396
نوع سند: مقاله کنفرانسی
زبان: انگلیسی
مشاهده: 622
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شناسه ملی سند علمی:
MECHAERO02_181
تاریخ نمایه سازی: 13 شهریور 1396
چکیده مقاله:
One of the promising methods for improving output parameters in electrical discharge machining (EDM) is the powder mixed electrical discharge machining (PMEDM) process. In this process, the powder of a conductive or non-conductive material is added to the dielectric fluid. EDM is a very complex process which is influenced by many parameters. By adding powder to the dielectric, the complexity of processincreases so that the determination of relations between input and output parameters becomes more difficult. In this paper, the effect of adding aluminum and silicon carbide powders to the dielectric on the output parameters of EDM process of Inconel 718 alloy is experimentally investigated. According to the results, both powders improve the EDM process performance. Moreover, an artificial neural network(ANN) model is developed for prediction of surface roughness (Ra) and material removal rate (MRR) and then the results are compared to a regression model. Results show that the accuracy of predicted Ra and MRR by ANN is higher than that of regression model, as the prediction errors are 5.22% and 9.16% for ANN and regression models, respectively
کلیدواژه ها:
نویسندگان
Soroush Masoudi
Young Researchers and Elite Club, Najafabad Branch, Islamic Azad University, Najafabad, Iran
Seid Ali Mirsoleimani
Department of Mechanical Engineering, Isfahan University of Technology, Isfahan ۸۴۱۵۶-۸۳۱۱۱, Iran
Ali Najafi
Department of Mechanical Engineering, Isfahan University of Technology, Isfahan ۸۴۱۵۶-۸۳۱۱۱, Iran
Ana Vafadar
School of Engineering, Edith Cowan University, Perth, Western Australia