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      Surface Characterization and Tribological Performance Analysis of Electric Discharge Machined Duplex Stainless Steel

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          Abstract

          The present article focused on the surface characterization of electric discharge machined duplex stainless steel (DSS-2205) alloy with three variants of electrode material (Graphite, Copper-Tungsten and Tungsten electrodes). Experimentation was executed as per Taguchi L18 orthogonal array to inspect the influence of electric discharge machining (EDM) parameters on the material removal rate and surface roughness. The results revealed that the discharge current (contribution: 45.10%), dielectric medium (contribution: 18.24%) majorly affects the material removal rate, whereas electrode material (contribution: 38.72%), pulse-on-time (contribution: 26.11%) were the significant parameters affecting the surface roughness. The machined surface at high spark energy in EDM oil portrayed porosity, oxides formation, and intermetallic compounds. Moreover, a pin-on-disc wear analysis was executed and the machined surface exhibits 70% superior wear resistance compared to the un-machined sample. The surface thus produced also exhibited improved surface wettability responses. The outcomes depict that EDMed DSS alloy can be considered in the different biomedical and industrial applications.

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          Effect of wettability and surface roughness on ice-adhesion strength of hydrophilic, hydrophobic and superhydrophobic surfaces

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            Nanotextured titanium surfaces for enhancing skin growth on transcutaneous osseointegrated devices.

            A major problem with transcutaneous osseointegrated implants is infection, mainly due to improper closure of the implant-skin interface. Therefore, the design of transcutaneous osseointegrated devices that better promote skin growth around these exit sites needs to be examined and, if successful, would clearly limit infection. Due to the success already demonstrated for orthopedic implants, developing surfaces with biologically inspired nanometer features is a design criterion that needs to be investigated for transcutaneous devices. This study therefore examined the influence of nanotextured titanium (Ti) created through electron beam evaporation and anodization on keratinocyte (skin-forming cell) function. Electron beam evaporation created Ti surfaces with nanometer features while anodization created Ti surfaces with nanotubes. Conventional Ti surfaces were largely micron rough, with few nanometer surface features. Results revealed increased keratinocyte adhesion in addition to increased keratinocyte spreading and differences in keratinocyte filopodia extension on the nanotextured Ti surfaces prepared by either electron beam evaporation or anodization compared to their conventional, unmodified counterparts after 4h. Results further revealed increased keratinocyte proliferation and cell spreading over 3 and 5days only on the nanorough Ti surfaces prepared by electron beam evaporation compared to both the anodized nanotubular and unmodified Ti surfaces. Therefore, the results from this in vitro study provided the first evidence that nano-modification techniques should be further researched as a means to possibly improve skin growth, thereby improving transcutaneous osseointegrated orthopedic implant longevity. Copyright 2009 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
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              Research on the icephobic properties of fluoropolymer-based materials

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                Author and article information

                Journal
                Micromachines (Basel)
                Micromachines (Basel)
                micromachines
                Micromachines
                MDPI
                2072-666X
                07 October 2020
                October 2020
                : 11
                : 10
                : 926
                Affiliations
                [1 ]Mechanical Engineering Faculty, Perm National Research Polytechnic University, 614000 Perm, Russia; kruspert@ 123456mail.ru (E.S.S.); karimur_80@ 123456mail.ru (K.R.M.)
                [2 ]Mechanical Engineering Department, Khalsa College of Engineering and Technology, Amritsar 143001, India; amitmahajan291@ 123456gmail.com (A.M.); devgan.sandeep186@ 123456gmail.com (S.D.)
                [3 ]Mechanical Engineering Department, Beant College of Engineering and Technology, Gurdaspur 143521, India; singh.gurpreet191@ 123456gmail.com (G.S.); sarabjeetsidhu@ 123456yahoo.com (S.S.S.)
                Author notes
                Author information
                https://orcid.org/0000-0003-3275-6139
                https://orcid.org/0000-0001-5910-3213
                https://orcid.org/0000-0002-5837-1678
                Article
                micromachines-11-00926
                10.3390/mi11100926
                7599910
                33036440
                fc1798a7-7697-417f-8175-f9c604f7af58
                © 2020 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 22 September 2020
                : 05 October 2020
                Categories
                Article

                material processing,dss-2205 alloy,electric-discharge machining,surface integrity,wear resistance,surface wettability

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