Artigos de revistas sobre o tema "Al2TiO5 based model refractory materials"
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Borysenko, Oksana, Sergii Logvinkov, Halyna Shabanova, Igor Остапенко e Vita Шумейко. "GEOMETRICAL–TOPOLOGICAL CHARACTERISTICS OF THE SUBSOLIDUS STRUCTURE IN THE MgO – Al2O3 – TiO2 SYSTEM". Bulletin of the National Technical University "KhPI". Series: Chemistry, Chemical Technology and Ecology, n.º 1(5) (15 de maio de 2021): 18–23. http://dx.doi.org/10.20998/2079-0821.2021.01.03.
Texto completo da fonteEpicier, T., G. Thomas, H. Wohlfromm e J. S. Moya. "High resolution electron microscopy study of the cationic disorder in Al2TiO5". Journal of Materials Research 6, n.º 1 (janeiro de 1991): 138–45. http://dx.doi.org/10.1557/jmr.1991.0138.
Texto completo da fonteDhupal, D., B. Doloi e B. Bhattacharyya. "Optimization of process parameters of Nd:YAG laser microgrooving of Al2TiO5 ceramic material by response surface methodology and artificial neural network algorithm". Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture 221, n.º 8 (1 de agosto de 2007): 1341–50. http://dx.doi.org/10.1243/09544054jem814.
Texto completo da fonteSagadin, Christoph, Stefan Luidold, Christoph Wagner, Christoph Pichler, Daniel Kreuzer, Alfred Spanring, Helmut Antrekowitsch, Amy Clarke e Kester Clarke. "Thermodynamic Refractory Corrosion Model for Ferronickel Manufacturing". Metallurgical and Materials Transactions B 52, n.º 2 (24 de fevereiro de 2021): 1052–60. http://dx.doi.org/10.1007/s11663-021-02077-x.
Texto completo da fonteRicoeur, Andreas, e Dimitri Henneberg. "Two Scale-Based Continuum Damage Model for Brittle Materials under Thermomechanical Loading". Key Engineering Materials 525-526 (novembro de 2012): 589–92. http://dx.doi.org/10.4028/www.scientific.net/kem.525-526.589.
Texto completo da fonteGrigoriev, Aleksandr S., Andrey I. Dmitriev e Evgeniy V. Shil’ko. "Evaluation of local mechanical properties of SiO2-based ceramic refractories using microscale modeling". Vestnik Tomskogo gosudarstvennogo universiteta. Matematika i mekhanika, n.º 80 (2023): 73–84. http://dx.doi.org/10.17223/19988621/80/7.
Texto completo da fonteWang, Zhi Gang, Chang Ming Liu, Nan Li e Yuan Wang. "Prediction of Properties of MgO-C Refractory Based on Micromechanics Model". Applied Mechanics and Materials 37-38 (novembro de 2010): 890–94. http://dx.doi.org/10.4028/www.scientific.net/amm.37-38.890.
Texto completo da fonteYan, Xiaobing, Gong Wang, Jianhui Zhao, Zhenyu Zhou, Hong Wang, Lei Zhang, Jingjuan Wang et al. "Memristors mimicking the regulation of synaptic plasticity and the refractory period in the phenomenological model". Journal of Materials Chemistry C 8, n.º 15 (2020): 5183–90. http://dx.doi.org/10.1039/d0tc00575d.
Texto completo da fonteLi, Bin, Ke Peng, Chen-Hao Yang e Xu-Hui Zhang. "Optimization method for clamping layout of refractory thin-wall parts based on IAGA-Elman". Journal of Physics: Conference Series 2760, n.º 1 (1 de maio de 2024): 012055. http://dx.doi.org/10.1088/1742-6596/2760/1/012055.
Texto completo da fonteSpyridakos, Athanasios, Dimitrios E. Alexakis, Isaak Vryzidis, Nikolaos Tsotsolas, George Varelidis e Efthimios Kagiaras. "Waste Classification of Spent Refractory Materials to Achieve Sustainable Development Goals Exploiting Multiple Criteria Decision Aiding Approach". Applied Sciences 12, n.º 6 (16 de março de 2022): 3016. http://dx.doi.org/10.3390/app12063016.
Texto completo da fonteZhang, Chengbo, Binbin Hou, Lei Shao, Zongshu Zou e Henrik Saxén. "Estimation of the Blast Furnace Hearth State Using an Inverse-Problem-Based Wear Model". Metals 12, n.º 8 (3 de agosto de 2022): 1302. http://dx.doi.org/10.3390/met12081302.
Texto completo da fonteC., Chijioke, Okoye P., Igwegbe W. E. e Ugwuegbulam J.C. "PREDICTING THE COMPRESSIVE STRENGTH OF PBA – CLAY REFRACTORY BRICKS USING RESPONSE SURFACE METHOD". International Journal of Research -GRANTHAALAYAH 6, n.º 6 (30 de junho de 2018): 472–79. http://dx.doi.org/10.29121/granthaalayah.v6.i6.2018.1392.
Texto completo da fonteBhandari, Uttam, Congyan Zhang, Congyuan Zeng, Shengmin Guo, Aashish Adhikari e Shizhong Yang. "Deep Learning-Based Hardness Prediction of Novel Refractory High-Entropy Alloys with Experimental Validation". Crystals 11, n.º 1 (7 de janeiro de 2021): 46. http://dx.doi.org/10.3390/cryst11010046.
Texto completo da fonteBhandari, Uttam, Congyan Zhang, Congyuan Zeng, Shengmin Guo, Aashish Adhikari e Shizhong Yang. "Deep Learning-Based Hardness Prediction of Novel Refractory High-Entropy Alloys with Experimental Validation". Crystals 11, n.º 1 (7 de janeiro de 2021): 46. http://dx.doi.org/10.3390/cryst11010046.
Texto completo da fonteSheng, Dong-Yuan, e Christian Windisch. "A Simulation-Based Digital Design Methodology for Studying Conjugate Heat Transfer in Tundish". Metals 12, n.º 1 (28 de dezembro de 2021): 62. http://dx.doi.org/10.3390/met12010062.
Texto completo da fonteDmitriev, Andrey N., M. O. Zolotykh, K. Chen e Galina Yu Vitkina. "The Thermophysical Bases of Monitoring of the Fireproof Lining Wear in the Blast Furnace Hearth". Defect and Diffusion Forum 370 (janeiro de 2017): 113–19. http://dx.doi.org/10.4028/www.scientific.net/ddf.370.113.
Texto completo da fonteZhu, Liguang, Yanan Jia, Zengxun Liu, Caijun Zhang, Xingjuan Wang e Pengcheng Xiao. "Mass-Transfer Model for Steel, Slag, and Inclusions during Ladle-Furnace Refining". High Temperature Materials and Processes 37, n.º 7 (26 de julho de 2018): 665–74. http://dx.doi.org/10.1515/htmp-2017-0011.
Texto completo da fonteHelle, Mikko, Henrik Saxén, Bart de Graaff e Cornelis van der Bent. "Wear-Model-Based Analysis of the State of Blast Furnace Hearth". Metallurgical and Materials Transactions B 53, n.º 1 (4 de janeiro de 2022): 594–603. http://dx.doi.org/10.1007/s11663-021-02399-w.
Texto completo da fonteTrumbulovic, Ljiljana, Zvonko Gulisija, Zagorka Acimovic-Pavlovic e Lj Andric. "Influence of the cordierite lining on the lost foam casting process". Journal of Mining and Metallurgy, Section B: Metallurgy 39, n.º 3-4 (2003): 475–87. http://dx.doi.org/10.2298/jmmb0304475t.
Texto completo da fonteZhao, Shu Mao, Wei Yang, Jie Sun e Zhi Xie. "Grain Gradation Design for Al2O3-MgO-C Refractories Based on Close Packing Theories". Advanced Materials Research 508 (abril de 2012): 63–66. http://dx.doi.org/10.4028/www.scientific.net/amr.508.63.
Texto completo da fonteBarati, Hadi, Menghuai Wu, Susanne Michelic, Sergiu Ilie, Abdellah Kharicha, Andreas Ludwig e Youn-Bae Kang. "Mathematical Modeling of the Early Stage of Clogging of the SEN During Continuous Casting of Ti-ULC Steel". Metallurgical and Materials Transactions B 52, n.º 6 (20 de outubro de 2021): 4167–78. http://dx.doi.org/10.1007/s11663-021-02336-x.
Texto completo da fonteBhandari, Uttam, Hamed Ghadimi, Congyan Zhang, Shizhong Yang e Shengmin Guo. "Predicting Elastic Constants of Refractory Complex Concentrated Alloys Using Machine Learning Approach". Materials 15, n.º 14 (18 de julho de 2022): 4997. http://dx.doi.org/10.3390/ma15144997.
Texto completo da fonteHuang, A., P. Lian, L. Fu, H. Gu e Y. Zou. "Modeling and experiment of slag corrosion on the lightweight alumina refractory with static magnetic field facing green metallurgy". Journal of Mining and Metallurgy, Section B: Metallurgy 54, n.º 2 (2018): 143–51. http://dx.doi.org/10.2298/jmmb171014002h.
Texto completo da fonteJones, Morgan E., Steve Fearn, Rudolf Winter, Fajin Yuan, Alistair R. Lennie, Julia E. Parker, Stephen P. Thompson e Chiu C. Tang. "Dynamic strain propagation in nanoparticulate zirconia refractory". Journal of Applied Crystallography 48, n.º 2 (21 de fevereiro de 2015): 386–92. http://dx.doi.org/10.1107/s1600576715002393.
Texto completo da fonteYao, Hao, Huiting Chen, Yao Ge, Han Wei, Ying Li, Henrik Saxén, Xuebin Wang e Yaowei Yu. "Numerical Analysis on Erosion and Optimization of a Blast Furnace Main Trough". Materials 14, n.º 17 (26 de agosto de 2021): 4851. http://dx.doi.org/10.3390/ma14174851.
Texto completo da fonteGOROG, J. PETER, JAMES G. HEMRICK, HARALD A. WALTER, W. RAY LEARY e MURRAY ELLIS. "Design of refractory linings for balanced energy efficiency, uptime, and capacity in lime kilns". February 2015 14, n.º 2 (1 de março de 2015): 141–51. http://dx.doi.org/10.32964/tj14.2.141.
Texto completo da fonteSeyed Mahmoud, Seyed Mohammad Ali, Ghader Faraji, Mostafa Baghani, Mohammad Saber Hashemi, Azadeh Sheidaei e Majid Baniassadi. "Design of Refractory Alloys for Desired Thermal Conductivity via AI-Assisted In-Silico Microstructure Realization". Materials 16, n.º 3 (27 de janeiro de 2023): 1088. http://dx.doi.org/10.3390/ma16031088.
Texto completo da fonteGong, Zhen-Xiang, e Arun S. Mujumdar. "Development of Drying Schedules for One-Side-Heating Drying of Refractory Concrete Slabs Based on a Finite Element Model". Journal of the American Ceramic Society 79, n.º 6 (junho de 1996): 1649–58. http://dx.doi.org/10.1111/j.1151-2916.1996.tb08777.x.
Texto completo da fonteBetts, Keith A., Per-Olof Thuresson, Federico Felizzi, Ella X. Du, Ibou Dieye, Jia Li, Mathias Schulz e Anthony S. Masaquel. "US cost–effectiveness of polatuzumab vedotin, bendamustine and rituximab in diffuse large B-cell lymphoma". Journal of Comparative Effectiveness Research 9, n.º 14 (outubro de 2020): 1003–15. http://dx.doi.org/10.2217/cer-2020-0057.
Texto completo da fonteXiang, Junchen, Haoyu Shi, Xueyu Huang e Daogui Chen. "Improving Graphite Ore Grade Identification with a Novel FRCNN-PGR Method Based on Deep Learning". Applied Sciences 13, n.º 8 (21 de abril de 2023): 5179. http://dx.doi.org/10.3390/app13085179.
Texto completo da fonteMakarov, V. N., R. G. Akhmetov, S. Ya Davydov e N. V. Makarov. "Research and modeling of the ecological efficiency of drying refractory and building materials in vertical shaft furnaces". NOVYE OGNEUPORY (NEW REFRACTORIES), n.º 7 (30 de novembro de 2023): 52–59. http://dx.doi.org/10.17073/1683-4518-2023-7-52-59.
Texto completo da fonteKlimenko, Denis, Nikita Stepanov, Jia Li, Qihong Fang e Sergey Zherebtsov. "Machine Learning-Based Strength Prediction for Refractory High-Entropy Alloys of the Al-Cr-Nb-Ti-V-Zr System". Materials 14, n.º 23 (26 de novembro de 2021): 7213. http://dx.doi.org/10.3390/ma14237213.
Texto completo da fonteLiu, Zhangquan, Xiaohui Shi, Min Zhang e Junwei Qiao. "High-Temperature Mechanical Properties of NbTaHfTiZrV0.5 Refractory High-Entropy Alloys". Entropy 25, n.º 8 (26 de julho de 2023): 1124. http://dx.doi.org/10.3390/e25081124.
Texto completo da fonteMhandu, Takunda Joseph, Ilhwan Park, Sanghee Jeon, Sohta Hamatsu, Yogarajah Elakneswaran, Mayumi Ito e Naoki Hiroyoshi. "A Pretreatment of Refractory Gold Ores Containing Sulfide Minerals to Improve Gold Leaching by Ammonium Thiosulfate: A Model Experiment Using Gold Powder and Arsenic-Bearing Sulfide Minerals". Metals 13, n.º 8 (28 de julho de 2023): 1357. http://dx.doi.org/10.3390/met13081357.
Texto completo da fonteJayaram, Raman, e M. K. Miller. "An atom-probe field ion-microscope investigation of γ-γ' interfaces in a model nickel-based superalloy". Proceedings, annual meeting, Electron Microscopy Society of America 50, n.º 1 (agosto de 1992): 176–77. http://dx.doi.org/10.1017/s0424820100121284.
Texto completo da fonteGruber, Dietmar, Sheng Li Jin e Harald Harmuth. "Simulation of Refractory Fracture as a Tool for Advanced Material Testing". Advances in Science and Technology 92 (outubro de 2014): 232–41. http://dx.doi.org/10.4028/www.scientific.net/ast.92.232.
Texto completo da fonteLocci, A. M., A. Cincotti, F. Delogu, R. Orrù e G. Cao. "Combustion synthesis of metal carbides: Part I. Model development". Journal of Materials Research 20, n.º 5 (maio de 2005): 1257–68. http://dx.doi.org/10.1557/jmr.2005.0152.
Texto completo da fonteZhang, Yu, Rohit Deshpande, D. Huang, Pinakin Chaubal e Chenn Q. Zhou. "A Methodology for Blast Furnace Hearth Inner Profile Analysis". Journal of Heat Transfer 129, n.º 12 (3 de abril de 2007): 1729–31. http://dx.doi.org/10.1115/1.2768100.
Texto completo da fonteМаевский, К. К. "Численное исследование ударно-волнового нагружения металлических композитов на базе W и WC". Журнал технической физики 91, n.º 5 (2021): 815. http://dx.doi.org/10.21883/jtf.2021.05.50694.293-20.
Texto completo da fonteМаевский, К. К. "Численное исследование ударно-волнового нагружения металлических композитов на базе W и WC". Журнал технической физики 91, n.º 5 (2021): 815. http://dx.doi.org/10.21883/jtf.2021.05.50694.293-20.
Texto completo da fontePopov, V. N. "Simulation of crystallization of the melt modified by nanoscale particles during laser treatment of a metal surface". Physics and Chemistry of Materials Treatment 1 (2021): 5–14. http://dx.doi.org/10.30791/0015-3214-2021-1-5-14.
Texto completo da fonteBuljak, Vladimir, Severine Bavier-Romero e Achraf Kallel. "Calibration of Drucker–Prager Cap Constitutive Model for Ceramic Powder Compaction through Inverse Analysis". Materials 14, n.º 14 (20 de julho de 2021): 4044. http://dx.doi.org/10.3390/ma14144044.
Texto completo da fonteVlahović, Milica, Ana Alil, Aleksandar Devečerski, Dragana Živojinović e Tatjana Volkov-Husović. "Non-Destructive Examination for Cavitation Resistance of Talc-Based Refractories with Different Zeolite Types Intended for Protective Coatings". Materials 16, n.º 16 (11 de agosto de 2023): 5577. http://dx.doi.org/10.3390/ma16165577.
Texto completo da fonteZuev, A. V., Yu P. Zarichnyak e D. Ya Barinov. "MEASUREMENT OF THERMOPHYSICAL PROPERTIES RIGID FIBER INSULATION". Proceedings of VIAM, n.º 2 (2021): 88–98. http://dx.doi.org/10.18577/2307-6046-2021-0-2-88-98.
Texto completo da fonteAneggi, Eleonora, Sajid Hussain, Walter Baratta, Daniele Zuccaccia e Daniele Goi. "Enhanced Heterogeneous Fenton Degradation of Organic Dyes by Bimetallic Zirconia-Based Catalysts". Molecules 29, n.º 9 (30 de abril de 2024): 2074. http://dx.doi.org/10.3390/molecules29092074.
Texto completo da fontePeng, Jing, Fang Li, Bin Liu, Yong Liu, Qihong Fang, Jia Li e Peter K. Liaw. "Mechanical properties and deformation behavior of a refractory multiprincipal element alloy under cycle loading". Journal of Micromechanics and Molecular Physics 05, n.º 04 (dezembro de 2020): 2050014. http://dx.doi.org/10.1142/s2424913020500149.
Texto completo da fonteEriş, Rasim, M. Vedat Akdeniz e Amdulla O. Mekhrabov. "On the Optimization of the Microstructural and Mechanical Properties of Model Ni-Based Superalloys Through the Alloying Effects of Refractory Mo and W Elements". Metallurgical and Materials Transactions A 53, n.º 5 (21 de março de 2022): 1859–72. http://dx.doi.org/10.1007/s11661-022-06642-0.
Texto completo da fonteLi, Sheng Hao, Ao Huang, Yun Tao Qu, Xin Lu, Hua Zhi Gu e Guang Qiang Li. "Mathematical Simulation and Physical Modeling of Self-Source Magnetization by Liquid Electrolyte Flow". Materials Science Forum 982 (março de 2020): 165–72. http://dx.doi.org/10.4028/www.scientific.net/msf.982.165.
Texto completo da fonteParshin, Sergey G., Alexey M. Levchenko e Pengfei Wang. "Metallurgy and Mechanism of Underwater Wet Cutting Using Oxidizing and Exothermic Flux-Cored Wires". Materials 14, n.º 16 (18 de agosto de 2021): 4655. http://dx.doi.org/10.3390/ma14164655.
Texto completo da fonteMcSherry, Sean, e Andrej Lenert. "Design of a gradient epsilon-near-zero refractory metamaterial with temperature-insensitive broadband directional emission". Applied Physics Letters 121, n.º 19 (7 de novembro de 2022): 191702. http://dx.doi.org/10.1063/5.0122535.
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