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Information Journal Paper

Title

ULTRASONIC ASSISTED MAGNETIC ABRASIVE FINISHING OF INNER SURFACE OF TUBE WORKPIECE

Pages

  103-110

Abstract

 Ultrasonic Assisted MAGNETIC ABRASIVE FINISHING (UAMAF) is the combination of MAGNETIC ABRASIVE FINISHING (MAF) and ULTRASONIC VIBRATIONS to finish the surfaces in nanometer scale. In this work, the experimental setup for UAMAF was prepared to finish inner surface of tube work piece. By using experimental setup, the effect of experimental parameters such as ULTRASONIC VIBRATIONS, MESH NUMBER, the type of abrasives (SiC and diamond) and finishing time has been investigated on the changes in the surface roughness of tube work piece. The experimental results showed that the use of ULTRASONIC VIBRATIONS has a significant effect on reducing the surface roughness. The changes in surface roughness increase with the MESH NUMBER from 90 to 800 and finishing time from 30s to 5 min. Among two types of abrasives, diamond showed the best performance in finishing. OPTICAL MICROSCOPY images showed that the dominant finishing mechanism in MAF for coarse grains (with mesh size of 90 and 120) is two body and for fine grains (with mesh size of 220, 400 and 800) is three body. In UAMAF, for both of the coarse and fine grains the dominant finishing mechanism is three body.

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    APA: Copy

    SHAHRAJABIAN, HAMZEH, FARAHNAKIAN, MASOUD, & SARAEIAN, PAYAM. (2017). ULTRASONIC ASSISTED MAGNETIC ABRASIVE FINISHING OF INNER SURFACE OF TUBE WORKPIECE. MODARES MECHANICAL ENGINEERING, 17(5 ), 103-110. SID. https://sid.ir/paper/179213/en

    Vancouver: Copy

    SHAHRAJABIAN HAMZEH, FARAHNAKIAN MASOUD, SARAEIAN PAYAM. ULTRASONIC ASSISTED MAGNETIC ABRASIVE FINISHING OF INNER SURFACE OF TUBE WORKPIECE. MODARES MECHANICAL ENGINEERING[Internet]. 2017;17(5 ):103-110. Available from: https://sid.ir/paper/179213/en

    IEEE: Copy

    HAMZEH SHAHRAJABIAN, MASOUD FARAHNAKIAN, and PAYAM SARAEIAN, “ULTRASONIC ASSISTED MAGNETIC ABRASIVE FINISHING OF INNER SURFACE OF TUBE WORKPIECE,” MODARES MECHANICAL ENGINEERING, vol. 17, no. 5 , pp. 103–110, 2017, [Online]. Available: https://sid.ir/paper/179213/en

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