Works about IRON powder
Results: 1208
Cold spray as a powder metallurgy process for production of nickel aluminium bronze.
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- PLoS ONE, 2025, v. 20, n. 3, p. 1, doi. 10.1371/journal.pone.0319333
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Kinetics of Reduction of Iron Ore Powder by Industrial Lignin from Pulping and Papermaking Waste Biomass Energy.
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- Crystals (2073-4352), 2025, v. 15, n. 2, p. 193, doi. 10.3390/cryst15020193
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Study on the Magnetic Contact Mechanical Properties of Polyurethane-Based Magnetorheological Elastomer Sealing Materials.
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- Lubricants (2075-4442), 2025, v. 13, n. 2, p. 88, doi. 10.3390/lubricants13020088
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AATCC Review Research Bulletins.
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- AATCC Review, 2021, v. 21, n. 6, p. 52
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- Article
Oxygen Scavenging and Oxygen Barrier Poly(1,2‐butadiene) Films Containing an Iron‐Complex Catalyst.
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- Macromolecular Chemistry & Physics, 2019, v. 220, n. 19, p. N.PAG, doi. 10.1002/macp.201900294
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Metastable microstructures containing zero valent iron for fast degradation of azo dyes.
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- Journal of Materials Science, 2015, v. 50, n. 15, p. 5238, doi. 10.1007/s10853-015-9071-4
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Formation of stainless steel-carbon nanotube composites using a scalable chemical vapor infiltration process.
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- Journal of Materials Science, 2013, v. 48, n. 3, p. 1387, doi. 10.1007/s10853-012-6885-1
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Mechanical processing of Fe powders.
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- Journal of Materials Science, 2012, v. 47, n. 11, p. 4757, doi. 10.1007/s10853-012-6358-6
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In situ study on the formation of FeTe.
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- Journal of Materials Science, 2011, v. 46, n. 13, p. 4540, doi. 10.1007/s10853-011-5348-4
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Dilatometric behavior and microstructure of sintered Fe–NbC and Fe–TaC composites.
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- Journal of Materials Science, 2007, v. 42, n. 1, p. 314, doi. 10.1007/s10853-006-1018-3
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Metal-electroceramic bonding in PZT through the selective application of laser energy.
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- Journal of Materials Science, 2006, v. 41, n. 10, p. 2831, doi. 10.1007/s10853-006-6295-3
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Characterization of oxygen passivated iron nanoparticles and thermal evolution to γ-Fe<sub>2</sub>O<sub>3</sub>.
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- Journal of Materials Science, 2004, v. 39, n. 15, p. 4877, doi. 10.1023/B:JMSC.0000035328.99440.8d
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Darkening of lead‐ and iron‐based pigments on late Gothic Italian wall paintings: Energy dispersive X‐ray fluorescence, μ‐Raman, and powder X‐ray diffraction analyses for diagnosis: Presence of β‐PbO<sub>2</sub> (plattnerite) and α‐PbO<sub>2</sub> (scrutinyite)
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- Journal of Raman Spectroscopy, 2020, v. 51, n. 4, p. 680, doi. 10.1002/jrs.5817
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Nitrate Reduction of the Siilinjärvi/Finland Mine Water with Zero-valent Iron and Iron Waste as Alternative Iron Sources.
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- Mine Water & the Environment, 2020, v. 39, n. 2, p. 280, doi. 10.1007/s10230-020-00668-9
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The effect of spray-drying inlet conditions on iron encapsulation using hydrolysed glucomannan as a matrix.
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- Food & Bioproducts Processing: Transactions of the Institution of Chemical Engineers Part C, 2020, v. 123, p. 72, doi. 10.1016/j.fbp.2020.05.013
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Cation Distribution in the Composite Materials of the CaFe<sub>2</sub>O<sub>4</sub>-α-Fe<sub>2</sub>O<sub>3</sub> Series.
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- Journal of Structural Chemistry, 2019, v. 60, n. 5, p. 763, doi. 10.1134/S0022476619050081
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Effect of the milling conditions for nanocrystalline iron powders on their corrosion behavior in neutral electrolytes.
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- Protection of Metals, 2007, v. 43, n. 2, p. 194, doi. 10.1134/S0033173207020129
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Chemical modification of the surface of a carbonyl iron powder.
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- Protection of Metals, 2006, v. 42, n. 3, p. 244, doi. 10.1134/S0033173206030064
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Structural-Phase Composition and Corrosion Behavior of Finely Dispersed Fe-C Powders in Neutral Media.
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- Protection of Metals, 2005, v. 41, n. 5, p. 465, doi. 10.1007/s11124-005-0067-3
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Corrosion of Highly Dispersed Systems Based on Iron and Fe-Si Alloys in Neutral Electrolytes. II. Iron-Based Systems Obtained by Grinding in Heptane with an Organosilicon Additive.
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- Protection of Metals, 2005, v. 41, n. 3, p. 263, doi. 10.1007/s11124-005-0039-7
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铋试金﹣二次灰吹﹣ICP-AES 测定黑色岩中的铂、钯、金.
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- Precious Metals / Guijinshu, 2022, v. 43, n. 2, p. 69
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Separation Process and Behavior of Copper and Germanium in Acid Leaching Solution from Zinc Hydrometallurgy.
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- Nonferrous Metals (Extractive Metallurgy), 2024, n. 10, p. 98, doi. 10.3969/j.issn.1007-7545.2024.10.012
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Study the hardness, Young's modulus and impact strength of Ep/Fe<sub>2</sub>O<sub>3</sub> and Ep/AL<sub>2</sub>O<sub>3</sub> nanocomposites.
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- Journal of Wasit for Science & Medicine, 2019, v. 12, n. 1, p. 39
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One-step formation of three-dimensional interconnected T-shaped microstructures inside composites by orthogonal bidirectional self-assembly method.
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- Science & Technology of Advanced Materials, 2024, v. 25, n. 1, p. 1, doi. 10.1080/14686996.2024.2313957
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MATHEMATICAL MODELLING OF THE SINTERING PROCESS OF IRON-BASED METAL-GLASS MATERIALS.
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- Progress in Physics of Metals / Uspehi Fiziki Metallov, 2019, v. 20, n. 4, p. 584, doi. 10.15407/ufm.20.04.584
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Ferromagnetic Nanopowder Iron-Based Materials Synthesized from Iron Citrates for Medical Purposes.
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- Nanosistemi, Nanomateriali, Nanotehnologii, 2022, v. 20, n. 2, p. 569, doi. 10.15407/nnn.20.02.569
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Электронно-лучевое физическое осаждение в вакууме биологически чистых (безлигандных) наночастиц оксида железа
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- Nanosistemi, Nanomateriali, Nanotehnologii, 2020, v. 18, n. 2, p. 373
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Nuclear Resonant Diffraction of Synchrotron Radiation: Interplay between the Anisotropy of Polarizability of Nuclei and the Asymmetry of Diffraction Geometry.
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- Journal of Experimental & Theoretical Physics, 2022, v. 135, n. 2, p. 137, doi. 10.1134/S1063776122080040
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A Cold-Pressing Method Combining Axial and Shear Flow of Powder Compaction to Produce High-Density Iron Parts.
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- Technologies (2227-7080), 2019, v. 7, n. 4, p. 70, doi. 10.3390/technologies7040070
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Iron powder activated peroxymonosulfate combined with waste straw to improve sludge dewaterability.
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- Environmental Technology, 2021, v. 42, n. 8, p. 1302, doi. 10.1080/09593330.2019.1665111
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Catalytic degradation of picric acid by heterogeneous Fenton-based processes.
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- Environmental Technology, 2011, v. 32, n. 4, p. 439, doi. 10.1080/09593330.2010.501823
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Multiscale investigation of sintering kinetics of Astaloy 85Mo.
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- Powder Metallurgy, 2024, v. 67, n. 1, p. 18, doi. 10.1177/00325899231218543
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Influence of iron nanopowder addition on the densification of chromium-prealloyed water-atomised powder metallurgy steel admixed with nickel.
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- Powder Metallurgy, 2023, v. 66, n. 4, p. 309, doi. 10.1080/00325899.2023.2190477
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Characterisation of the mechanisms taking place during liquid phase sintering of PM boron steels with the help of artificial intelligence.
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- Powder Metallurgy, 2023, v. 66, n. 1, p. 29, doi. 10.1080/00325899.2022.2055888
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Microstructure and mechanical properties of high carbon M2 powder metallurgy high-speed steel prepared by the carbide addition.
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- Powder Metallurgy, 2022, v. 65, n. 5, p. 403, doi. 10.1080/00325899.2022.2027593
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Fundamental study on the mechanical strength of soft magnetic composite prepared by ultra-high aspect ratio flake iron powder using ball-milling process.
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- Powder Metallurgy, 2022, v. 65, n. 3, p. 253, doi. 10.1080/00325899.2021.2013622
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Capsule-free hot isostatic pressing of sintered steel to full density using water atomised iron and Cr-alloyed powder consolidated by cold isostatic pressing.
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- Powder Metallurgy, 2022, v. 65, n. 2, p. 133, doi. 10.1080/00325899.2021.1966876
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Effect of powder particle shape and size distributions on the properties of low-viscosity iron-based feedstocks used in low-pressure powder injection moulding.
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- Powder Metallurgy, 2022, v. 65, n. 2, p. 170, doi. 10.1080/00325899.2021.1959696
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Ferrothermal reduction of iron(III)phosphate insulating layers in soft magnetic composites.
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- Powder Metallurgy, 2021, v. 64, n. 5, p. 351, doi. 10.1080/00325899.2021.1909211
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Computational approach to increasing the packing fraction of amorphous powders.
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- Powder Metallurgy, 2021, v. 64, n. 3, p. 185, doi. 10.1080/00325899.2021.1895493
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Effect of networked Cu-rich ferrite phase on proof stress and ultimate tensile strength of sintered bodies of Fe–Cu hybrid-alloyed steel powder with graphite.
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- Powder Metallurgy, 2021, v. 64, n. 2, p. 134, doi. 10.1080/00325899.2021.1871805
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Sintering shrinkage of cold compacted iron: effect of thermodynamic driving force, structural and geometrical activity.
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- Powder Metallurgy, 2021, v. 64, n. 2, p. 126, doi. 10.1080/00325899.2020.1867392
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Isothermal and non-isothermal sintering characteristics of mechanically alloyed nonequiatomic Fe<sub>2</sub>CoCrMnNi high-entropy alloy powder.
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- Powder Metallurgy, 2021, v. 64, n. 1, p. 64, doi. 10.1080/00325899.2020.1858586
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Sintering behaviour of compacted water-atomised iron powder: effect of initial state and processing conditions.
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- Powder Metallurgy, 2020, v. 63, n. 5, p. 338, doi. 10.1080/00325899.2020.1833138
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Reactions between ferrous powder compacts and atmospheres during sintering – an overview.
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- Powder Metallurgy, 2020, v. 63, n. 4, p. 237, doi. 10.1080/00325899.2020.1810427
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Sintering and magnetocaloric properties of gas atomised LaFe<sub>11.0</sub>Si<sub>1.2</sub>Co<sub>0.8</sub>.
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- Powder Metallurgy, 2020, v. 63, n. 2, p. 149, doi. 10.1080/00325899.2020.1741147
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Synthesis of Invar 36 type alloys from elemental and prealloyed powders by mechanical alloying.
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- Powder Metallurgy, 2019, v. 62, n. 3, p. 155, doi. 10.1080/00325899.2019.1625509
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A densification equation derived from the stress-deformation analysis of uniaxial cold compaction of metal powder mixes.
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- Powder Metallurgy, 2018, v. 61, n. 3, p. 210, doi. 10.1080/00325899.2018.1466501
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The effect of FeS film on the surface of iron powder particles on mechanical properties and fracture of Fe–Cu–C alloys.
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- Powder Metallurgy, 2016, v. 59, n. 5, p. 376, doi. 10.1080/00325899.2016.1248331
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Fabrication of a graded pore-sized porous FeAl intermetallic membrane.
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- Powder Metallurgy, 2016, v. 59, n. 5, p. 308, doi. 10.1080/00325899.2016.1228557
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