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Academic literature on the topic 'Nanocristalline materials'
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Journal articles on the topic "Nanocristalline materials"
Talijan, Nadezda, Jasna Stajic-Trosic, Aleksandar Grujic, Vladan Cosovic, Vladimir Menushenkov, and Radoslav Aleksic. "Nanocomposite permanent magnetic materials Nd-Fe-B type: The influence of nanocomposite on magnetic properties." Journal of Mining and Metallurgy, Section B: Metallurgy 41, no. 1 (2005): 95–102. http://dx.doi.org/10.2298/jmmb0501095t.
Full textHabrat, W., M. Motyka, K. Topolski, and J. Sieniawski. "Evaluation of the Cutting Force Components and the Surface Roughness in the Milling Process of Micro- and Nanocrystalline Titanium." Archives of Metallurgy and Materials 61, no. 3 (2016): 1379–84. http://dx.doi.org/10.1515/amm-2016-0226.
Full textGeoffroy, O., L. Fratila, J. L. Porteseil, and T. Waeckerlé. "Modelling of magnetization mechanisms in nanocristalline alloys: from theory to experiment." Revue de Métallurgie 100, no. 12 (2003): 1213–25. http://dx.doi.org/10.1051/metal:2003190.
Full textCosta, Ana Cristina F. M., Márcio R. Morelli, and Ruth H. G. A. Kiminami. "Combustion synthesis, sintering and magnetical properties of nanocristalline Ni-Zn ferrites doped with samarium." Journal of Materials Science 39, no. 5 (2004): 1773–78. http://dx.doi.org/10.1023/b:jmsc.0000016183.30200.82.
Full textGuillemoles, J. F., J. P. Connolly, O. Ramdani, et al. "Solution Processing Route to High Efficiency CuIn(S,Se)2 Solar Cells." Journal of Nano Research 4 (January 2009): 79–89. http://dx.doi.org/10.4028/www.scientific.net/jnanor.4.79.
Full textQuan, Yifan, Jakob Steiner, Victor Ukleev, Joachim Kohlbrecher, Alexei Vorobiev, and Patrick Hautle. "Impact of the neutron-depolarization effect on polarized neutron scattering in ferromagnets." IUCrJ 8, no. 3 (2021): 455–61. http://dx.doi.org/10.1107/s2052252521003249.
Full textFaghi, Lotfi, Salim Triaa, Fatiha Siahmed, and Mohamed Azzaz. "Synthesis and characterization of nanocristalline Fe-40 at.% Si alloy prepared by high energy ball milling." International Journal of Materials Research 105, no. 1 (2014): 32–38. http://dx.doi.org/10.3139/146.110986.
Full textFernandez Perdomo, Claudia P., Ruth H. G. A Kiminami, and Ducinei Garcia. "Microwave assisted sintering of nanocristalline PMN-PT/CoFe2O4 prepared by rapid one pot pechini synthesis: Dielectric and magnetoelectric characteristics." Ceramics International 45, no. 6 (2019): 7906–15. http://dx.doi.org/10.1016/j.ceramint.2019.01.101.
Full textRottensteiner-Brandl, Ulrike, Rainer Detsch, Bapi Sarker, et al. "Encapsulation of Rat Bone Marrow Derived Mesenchymal Stem Cells in Alginate Dialdehyde/Gelatin Microbeads with and without Nanoscaled Bioactive Glass for In Vivo Bone Tissue Engineering." Materials 11, no. 10 (2018): 1880. http://dx.doi.org/10.3390/ma11101880.
Full textDjouadi, Djamel, Ali Aksas, and Azeddine Chelouche. "Elaboration et caractérisation structurale et optique des nanocristallites toriques de ZnO." Annales de chimie Science des Matériaux 35, no. 5 (2010): 255–60. http://dx.doi.org/10.3166/acsm.35.255-260.
Full textDissertations / Theses on the topic "Nanocristalline materials"
Thomas, L. V. "Contribution à l'étude de nanostructures magnétiques : du matériau nanocristallisé à l'agrégat." Université Joseph Fourier (Grenoble ; 1971-2015), 1997. http://www.theses.fr/1997GRE10232.
Full textRollin-Martinet, Sabrina. "Développement de nouvelles biocéramiques par consolidation à basse température d'apatites nanocristallines biomimétiques." Phd thesis, Université de Limoges, 2011. http://tel.archives-ouvertes.fr/tel-00768461.
Full textGallo, Luca. "Valutazione ambientale per i nano-materiali e le nano-tecnologie. Aspetti metodologici. Life cycle assessment di nanocristalli Quantum Dot." Master's thesis, Alma Mater Studiorum - Università di Bologna, 2012. http://amslaurea.unibo.it/3515/.
Full textQuillery, Pierre. "Comportement dynamique unixial et biaxial des alliages à mémoire de forme de type nickel-titane nanocristallins." Thesis, université Paris-Saclay, 2020. http://www.theses.fr/2020UPAST054.
Full textShape memory alloys (SMA) undergo a solid-solid phase transformation called martensitic transformation, involving a "high temperature" phase, austenite, and a "low temperature" phase, martensite. The crystalline microstructure of the alloy alters mechanisms of transformations, and its pseudo-elastic behavior. The reduction of the grains to nanometric size shows new and unknown thermal and mechanical characteristics. Knowledge of thermomechanical behavior is however essential for the validation of multiaxial models to democratize the use of these materials. This work presents the development of innovative biaxial dynamic tests for the study of the pseudo-elastic mechanical behavior of a nickel titanium under biaxial dynamic compression. A single projectile, launched on a complex system of 45 ^ { circ} triangles, bars and transmitters, creates a biaxial solicitation of the sample. This mechanism ensures that the loads are synchronized along the two axes. Thanks to its architecture, the system makes possible many cases of multiaxial dynamic stress, unexplored until now. The forces and displacements across the sample are calculated independently, along both axes, from strain gauges glued on bars. The use of a thermal and optical camera allows strain and heating sources fields to be identified. The stress field is estimated by combining the information from the strain gauges placed on the bars and a finite element analysis of the specimen. The deformation appears homogeneous in the biaxial loading region of interest where a significant rise in temperature due to the phase change latent heat is observed. On the other hand the dynamic testing allows an equivalent dynamic stress/strain curve under biaxial and quasi-adiabatic conditions to be plotted. Experiments are finally compared to the results of finite difference axisymmetric model where the constitutive law is given by a fully coupled stochastic multiscale model
DOMINGUEZ, ESPINOS OCTAVIO. "Etude de la compaction et du frittage de poudres nanometriques de fe et de cu. Proprietes mecaniques de materiaux massifs a stucture nanocristalline." Paris 11, 1996. http://www.theses.fr/1996PA112255.
Full textChailloux, Thibaut. "Caractérisation et modélisation de matériaux magnétiques en hautes températures en vue d’une application au filtrage CEM." Thesis, Lyon 1, 2011. http://www.theses.fr/2011LYO10309/document.
Full textA major challenge in the aviation industry is to design and develop “more” electric aircraft. Indeed, the main systems use different types of energy such as hydraulic or pneumatic energy. The current trend is to convert these systems to electric power because it has many advantages and would allow economies of mass, energy and maintenance costs. With the increasing electrical systems in the aircraft, arise problems of interference and electromagnetic compatibility between these systems. Moreover, these power systems are subjected to severe working conditions, including extreme temperatures. As part of the FEMINA project (Filtrage Electromagnétiques et Matériaux pour l‟INtégration en Aéronautique), the goal of our team was to study an EMC filter subjected to extreme temperature conditions. This filter is composed of passive elements (capacitors and inductors) and designed to remove interference caused by electrical converter located close to the source of energy and heat (the propeller). As part of my thesis work, I focused on the effect of temperature on the behavior of inductors through the magnetic materials that compose them. I have thus determined the magnetic materials that I felt able to fulfill their role at high temperatures, then I developed a dynamic model of magnetic behavior, taking into account the skin effect and the effect of temperature and finally I tested this new model by including it in a circuit simulator to model a common mode filter that meets the specifications of our industrial partners
Clédière, Jessy. "Simulation des processus d'aimantation dans des matériaux à anisotropie aléatoire et propriétés dynamiques d'aimantation dans des rubans nanocristallins doux." Université Joseph Fourier (Grenoble), 1999. http://www.theses.fr/1999GRE10085.
Full textDesmoulins, Jean-Baptiste. "Contribution a l'etude de la magnetostriction dans les structures biphasees : couplages magnetique-mecanique-thermique dans les materiaux nanocristallins de type finemet en vue de la realisation de composants inductifs." Cachan, Ecole normale supérieure, 1999. http://www.theses.fr/1999DENS0016.
Full textChailloux, Thibaut. "Caractérisation et modélisation de matériaux magnétiques en hautes températures en vue d'une application au filtrage CEM." Phd thesis, Université Claude Bernard - Lyon I, 2011. http://tel.archives-ouvertes.fr/tel-00703562.
Full textFaure, Cyril. "Nouveaux revêtements multicouches diamantés nanograins sur cermets WC-Co : étude des phénomènes microstructuraux intervenant aux interfaces lors de l'élaboration." Phd thesis, Université Sciences et Technologies - Bordeaux I, 2010. http://tel.archives-ouvertes.fr/tel-00575512.
Full textBooks on the topic "Nanocristalline materials"
Nano-Surface Chemistry. Marcel Dekker, Inc., 2003.
Yi-Ru, Ying Jackie, ed. Nanostructured materials. Academic, 2001.
Morton, Rosoff, ed. Nano-surface chemistry. Marcel Dekker, 2002.
Rosoff, Morton. Nano-Surface Chemistry. CRC, 2001.
Physical Properties of Carbon Nanotubes. World Scientific Publishing Company, 1998.