Surface morphology analysis of Duplex Stainless Steel (DSS) in Clean Production using the Power Spectral Density
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Grzegorz Krolczyk | Michał Wieczorowski | Radoslaw W. Maruda | Piotr Niesłony | G. Królczyk | P. Niesłony | R. Maruda | M. Wieczorowski | P. Nieslony
[1] Wojciech Kapłonek,et al. The Use of Focus-Variation Microscopy for the Assessment of Active Surfaces of a New Generation of Coated Abrasive Tools , 2016 .
[2] Maxence Bigerelle,et al. An expert system to characterise the surfaces morphological properties according to their tribological functionalities: The relevance of a pair of roughness parameters , 2013 .
[3] Stanislaw Legutko,et al. Comparative assessment of the mechanical and electromagnetic surfaces of explosively clad Ti-steel plates after drilling process , 2017 .
[4] Dariusz Mika,et al. DIAGNOSTICS OF WORKPIECE SURFACE CONDITION BASED ON CUTTING TOOL VIBRATIONS DURING MACHINING , 2015 .
[5] G. Królczyk,et al. Experimental studies of the cutting force and surface morphology of explosively clad Ti–steel plates , 2016 .
[6] Jonathan Salvatore De Mattia,et al. On the tribological behavior of retrieved hip femoral heads affected by metallic debris. A comparative investigation by stylus and optical profilometer for a new roughness measurement protocol , 2016 .
[7] Stanislaw Legutko,et al. Metrological changes in surface morphology of high-strength steels in manufacturing processes , 2016 .
[8] Álisson Rocha Machado,et al. A new approach for detection of wear mechanisms and determination of tool life in turning using acoustic emission , 2015 .
[9] P. Pawlus,et al. Determination of oil demand for textured surfaces under conformal contact conditions , 2016 .
[10] Pero Raos,et al. INFLUENCE OF COOLING CONDITIONS ON THE MACHINING PROCESS UNDER MQCL AND MQL CONDITIONS , 2015 .
[11] A. Sharma,et al. Effects of Minimum Quantity Lubrication (MQL) in machining processes using conventional and nanofluid based cutting fluids: A comprehensive review , 2016 .
[12] Maxence Bigerelle,et al. Dynamic evolution of interface roughness during friction and wear processes. , 2014, Scanning.
[13] V. Kartik,et al. Modeling dynamic stability in high-speed micromilling of Ti–6Al–4V via velocity and chip load dependent cutting coefficients , 2015 .
[14] Johannes Kümmel,et al. Detailed analysis of microstructure of intentionally formed built-up edges for improving wear behaviour in dry metal cutting process of steel☆ , 2014 .
[15] Jacek Michalski. Surface topography of the cylindrical gear tooth flanks after machining , 2008 .
[16] A. Duparré,et al. Surface characterization techniques for determining the root-mean-square roughness and power spectral densities of optical components. , 2002, Applied optics.
[17] G. Khan,et al. Characterization of nanoscale roughness in single point diamond turned optical surfaces using power spectral density analysis , 2004 .
[18] Michał Wieczorowski,et al. Surface roughness analysis of hardened steel after high-speed milling. , 2011, Scanning.
[19] Wojciech Kacalak,et al. Methodology of evaluation of abrasive tool wear with the use of laser scanning microscopy. , 2014, Scanning.
[20] Kai Cheng,et al. Dynamic cutting process modelling and its impact on the generation of surface topography and texture in nano/micro cutting , 2009 .
[21] S. Chattopadhyaya,et al. Surface integrity analysis of abrasive water jet-cut surfaces of friction stir welded joints , 2017 .
[22] T. Mathia,et al. Surface topographic characterization for polyamide composite injection molds made of aluminum and copper alloys. , 2014, Scanning.
[23] Michał Wieczorowski,et al. SURFACE TEXTURE ANALYSIS AFTER BALL END MILLING WITH VARIOUS SURFACE INCLINATION OF HARDENED STEEL , 2014 .
[24] K. Nadolny,et al. Analysis of Flatness Deviations for Austenitic Stainless Steel Workpieces after Efficient Surface Machining , 2014 .