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Radoslaw W. Maruda

Researcher at University of Zielona Góra

Publications -  75
Citations -  2790

Radoslaw W. Maruda is an academic researcher from University of Zielona Góra. The author has contributed to research in topics: Machining & Surface roughness. The author has an hindex of 25, co-authored 66 publications receiving 1907 citations.

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Ecological trends in machining as a key factor in sustainable production – A review

TL;DR: In this paper, a comprehensive analysis of literature pertaining to ecological trends in machining processes of difficult-to-cut materials (e.g. hard steels, Ti-based alloys, Ni based alloys) has been performed.
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A study on droplets sizes, their distribution and heat exchange for minimum quantity cooling lubrication (MQCL)

TL;DR: In this paper, the influence of emulsion mist formation parameters and the nozzle distance from the tool-chip interface, on the droplet velocity at the nozzle outlet, on active medium atomization angle as well as on the diameter and number of droplets supplied to the cutting zone was analyzed.
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Tool wear characterizations in finish turning of AISI 1045 carbon steel for MQCL conditions

TL;DR: In this paper, an analysis of tool wear of P25 cemented carbide inserts in finish turning of AISI 1045 carbon steel for different cooling conditions: dry cutting, minimum quantity cooling-lubrication (MQCL) and MQCL with phosphate ester-based EP/AW additive is presented.
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Parametric and nonparametric description of the surface topography in the dry and MQCL cutting conditions

TL;DR: In this article, a parametric and nonparametric description of surface topography after turning in the dry and MQCL conditions is presented, with the application of the Infinite Focus G4 microscope.
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Prediction of cutting forces during micro end milling considering chip thickness accumulation

TL;DR: In this article, the authors focus on the prediction of cutting forces during micro end milling using a novel approach that takes into account the chip thickness accumulation phenomenon, which can be manifested as chip thickness variations in the current tool rotation, resulting from material burnishing and elastic recovery in all previous tool rotations.