Results 71 to 80 of about 39,539 (226)
Low‐Angle Grain Boundaries and Re‐Segregation in Single‐Crystalline Ni‐Base Superalloys
Advanced Engineering Materials, EarlyView.This work demonstrates that Re‐segregation at low‐angle grain boundaries (LAGBs) in Ni‐base superalloys is influenced by misorientation angle. Advanced microscopy and atom probe tomography reveal that higher misorientation angles increases Re‐segregation.Alireza B. Parsa, Aparna Saksena, Alesander Kostka, Pascal Thome, Felicitas Scholz, Alexandre Mussi, Christoph Somsen, Baptiste Gault, Jan Frenzel, Gunther Eggeler +9 morewiley +1 more sourceInteraction of Ladle Slag With Varying SiO2 Content and Recyclate‐Based MgO–C Refractories
Advanced Engineering Materials, EarlyView.Ladle slags (CaO/Al2O3 = 1) with 1–20 wt% SiO2 were investigated in contact with industrial MgO–C refractories fabricated from fresh magnesia and 50 wt% recyclate. The sessile drop method at 1600°C reveals intensive gas formation, delayed slag infiltration in recyclate‐based samples, and, under high‐SiO2 slag, formation of a dense MgAl2O4‐rich ...Anton Yehorov, Eldar Salpagarov, Anhelina Mospan, Till Manon Jannis Stadtmüller, Thomas Schemmel, Christos Georgios Aneziris, Olena Volkova +6 morewiley +1 more sourceIncorporation of Selenium into Sol–Gel‐Derived Bioactive Glass: Influence on Glass Structure, Bioactivity, and its Selective Cytotoxicity
Advanced Engineering Materials, EarlyView.Selenium was incorporated into a sol–gel‐derived bioactive glass to enable sustained therapeutic ion release. The selenium‐containing glass preserved bioactivity while selectively inducing cytotoxicity in osteosarcoma cells and maintaining osteoblastic viability.Breno Rocha Barrioni, Thalita Marcolan Valverde, Talita Martins, Guilherme Mattos Jardim Costa, Alfredo Miranda de Goes, Marcello Rosa Dumont, Eduardo Henrique Martins Nunes, Marivalda de Magalhães Pereira +7 morewiley +1 more sourceInfrastructure for Detector Research and Development towards the
International Linear Collider
, 2012 The EUDET-project was launched to create an infrastructure for developing and
testing new and advanced detector technologies to be used at a future linear
collider.Abramowicz, H., Aguilar, J., Alozy, J., Ambalathankandy, P., Andricek, L., Anduze, M., Aplin, S., Apostolakis, J., Aspell, P., Attie, D., Bachynska, O., Bailey, D.S., Bamberger, A., Bartsch, V., Bassignana, D., Behnke, T., Behr, J., Ben-Hamu, Y., Benyamna, M., Bergauer, T., Bergsma, F., Besson, A., Beyer, E., Bilevych, Y., Boisvert, V., Bonis, J., Bonnard, J., Bonnemaison, A., Boudry, V., Brezina, Ch., Brient, J.C., Bryngemark, L., Bulgheroni, A., Caccia, M., Calderone, A., Callier, S., Calvet, D., Campbell, M., Carballo, V.M.Blanco, Carloganu, C., Cauchois, A., Charpy, A., Chefdeville, M., Christiansen, P., Claus, G., Clerc, C., Colas, P., Coppolani, X., Cornat, R., Cornebise, P., Corrin, E., Cotta-Ramusino, A., Cudie, X.Llopart, Cussans, D.G., Cvach, J., Da Silva, W., Daniluk, W., David, J., de Freitas, P.Mora, de Gaspari, M., de la Taille, Ch., De Lentdecker, G., de Masi, R., de Nooij, L., Degerli, Y., Dehmelt, K., Delagnes, E., Desch, K., Dewulf, J.P., Dhellot, M., Diener, R., Dolezal, Z., Doziere, G., Dragicevic, M., Drasal, Z., Dulinski, W., Dulucq, F., Dzahini, D., Eigen, G., Engels, J., Fehr, F., Fernandez, M., Fischer, P., Fiutowski, T., Fleury, J., Formenti, F., Fransen, M., Friedl, M., Frotin, M., Furletova, J., Gadow, K., Gaede, F., Garcia, E.Garcia, Garutti, E., Gastaldi, F., Gay, P., Gelin, M., Ghislain, P., Giannelli, M.Faucci, Giomataris, I., Giraud, J., Giudice, P.A., Goffe, M., Goodrick, M.J., Gottlicher, P., Green, B., Green, M.G., Grefe, Ch., Gregor, I.M., Grichine, V., Grondin, D., Gross, P., Guilhem, G., Haas, D., Haas, T., Haensel, S., Hartjes, F., Hauschild, M., Heath, H.F., Henschel, H., Himmi, A., Hommels, L.B.A., Hostachy, J.Y., Hu-Guo, Ch., Idzik, M., Imbault, D., Irmler, C., Ivantchenko, V., Janata, M., Janssen, X., Jaramillo, R., Jastrzab, M., Jauffret, C., Jeans, D., Jikhleb, I., Jonsson, L., Kalliopuska, J., Kaminski, J., Kananov, S., Kapusta, F., Karar, A., Kaukher, A., Kehrli, A., Kelly, M., Kielar, E., Kiesenhofer, W., Killenberg, M., Kloukinas, K., Kockner, F., Kodys, P., Koetz, U., Koffmane, Ch., Kohli, M., Kotula, J., Krammer, M., Krautscheid, T., Kruger, H., Kulis, Sz., Kvasnicka, J., Kvasnicka, P., Lange, W., Levy, A., Levy, I., Libov, V., Linssen, L., Ljunggren, M., Lohmann, W., Lozano, M., Lundberg, B., Lupberger, M., Lutz, B., Lutz, P., Mandry, S., Mannen, S., Marchioro, A., Marcisovsky, M., Martin-Chassard, G., Mathieu, A., Mehtaelae, P., Misiejuk, A., Mjornmark, U., Mnich, J., Morel, F., Morin, L., Moser, H.G., Moszczynski, A., Muhl, C., Munoz, F.J., Musa, L., Musat, G., Ninkovich, J., Ohlerich, M., Oliwa, K., Orava, R., Orsini, F., Oskarsson, A., Osterman, L., Page, R.F., Pawlik, B., Pellegrini, G., Peric, I., Pham, T.Hung, Piemontese, L., Pohl, M., Polak, I., Poschl, R., Postranecky, M., Potylitsina-Kube, N., Prahl, V., Przyborowski, D., Quirion, D., Ratti, L., Raux, L., Re, V., Reinecke, M., Renz, U., Reuen, L., Rialot, M., Ribon, A., Richert, T., Richter, R., Roloff, P., Rosemann, Ch., Rouge, A., Royer, L., Ruan, M., Rubinski, Igor, Rummel, S., Sadeh, I., Santos, H.Franca, Savoy-Navarro, A., Schade, P., Schafer, O., Schroder, H., Schumacher, M., Schuwalov, S., Schwartz, R., Sefkow, F., Sefri, R., Seguin-Moreau, N., Senee, F., Shaw, R., Sicho, P., Smolik, J., Stenlund, E., Stern, A., Swientek, K., Terwort, M., Timmermans, J., Trampitsch, G., Traversi, G., Uzhinskiy, V., Valentan, M., Valin, I., van der Graaf, H., van Remortel, N., Vanel, J.C., Velthuis, J.J., Videau, H., Vila, I., Volkenborn, R., Vrba, V., Wang, W., Ward, D.R., Warren, M., Wicek, F., Wienemann, P., Wierba, W., Wing, M., Winter, M., Wu, T., Wurth, R., Yang, Y., Zalesak, J., Zarnecki, A.F., Zawiejski, L., Zimmermann, R., Zimmermann, S., Zwerger, Andreas +278 morecore Multimodal Data‐Driven Microstructure Characterization
Advanced Engineering Materials, EarlyView.A self‐consistent autonomous workflow for EBSP‐based microstructure segmentation by integrating PCA, GMM clustering, and cNMF with information‐theoretic parameter selection, requiring no user input. An optimal ROI size related to characteristic grain size is identified.Qi Zhang, Santiago Benito, Özge Özgün, Sebastian Weber, Markus Stricker +4 morewiley +1 more sourceCreep Properties and Deformation Mechanism of Additively Manufactured NiAl‐CrMo Composites
Advanced Engineering Materials, EarlyView.Additively manufactured NiAl‐CrMo composites contain numerous interfaces and cell boundaries that control their creep response. At 700°C under high applied stress, creep is dominated by dislocation‐controlled power‐law mechanisms. At 800°C–900°C and lower stresses, creep is primarily diffusion‐controlled along cell boundaries.Jan Vollhüter, Andreas Bezold, Johan Westraadt, Katharina Fiegl, Subham Chattoraj, Benjamin Wahlmann, Carolin Körner, Michael Mills, Mathias Göken, Steffen Neumeier +9 morewiley +1 more sourceDirect Metal Deposition of Graphene–Ti28Nb35.4Zr Matrix Composites With Enhanced Mechanical, Corrosion, and Biocompatibility Properties for Bone Implants
Advanced Engineering Materials, EarlyView.Graphene nanoplatelet (0.1 wt.%) reinforcement significantly enhances the performance of β Ti‐28Nb‐35.4Zr alloy. Grain refinement, reduced water contact angle, and improved surface characteristics promote osteoblast adhesion and complete surface coverage after 7 days.Khurram Munir, Jixing Lin, Yuncang Li, Li Zhu, Paul F. A. Wright, Cuie Wen +5 morewiley +1 more source