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Rendi Kurniawan

Researcher at Yeungnam University

Publications -  64
Citations -  717

Rendi Kurniawan is an academic researcher from Yeungnam University. The author has contributed to research in topics: Machining & Surface roughness. The author has an hindex of 11, co-authored 44 publications receiving 414 citations.

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Surface roughness of two-frequency elliptical vibration texturing (TFEVT) method for micro-dimple pattern process

TL;DR: In this paper, a two-frequency elliptical vibration texturing (TFEVT) method was proposed to improve the surface roughness compared to the conventional texturing method during a micro-dimple texturing process.
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Micro-dimple pattern process and orthogonal cutting force analysis of elliptical vibration texturing

TL;DR: In this paper, an analytical model of the texturing process and an orthogonal cutting force analysis are presented to demonstrate the fabrication of a micro-dimple pattern using elliptical vibration texturing based on the EVC method.
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Measurement of Burr Removal Rate and Analysis of Machining Parameters in Ultrasonic Assisted Dry EDM (US-EDM) for Deburring Drilled Holes in CFRP Composite

TL;DR: In this paper, an ultrasonic assisted dry electrical discharge machining (US-EDM) process in a gaseous fluid medium was proposed to remove the burrs formed on the exit region of a drilled hole.
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Development of a two-frequency, elliptical-vibration texturing device for surface texturing

TL;DR: In this paper, a two-frequency, elliptical-vibration texturing (TFEVT) device was designed to be used in a surface texturing process, and its functionality is based on a combination of ultrasonic (> 20 kHz) and low vibration frequencies (> 100 Hz).
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Experimental and analytical study of ultrasonic elliptical vibration cutting on AISI 1045 for sustainable machining of round-shaped microgroove pattern

TL;DR: In this article, an experimental and analytical study of the ultrasonic elliptical vibration cutting (UEVC) process on medium steel alloy (AISI 1045) for sustainable machining of round-shaped (R-shaped) microgrooves via relatively low-speed machining (0.5-2.5m/min).