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Naji, M. |
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Motta, Antonella |
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Aletan, Dirar |
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Mohamed, Tarek |
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Ertürk, Emre |
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Taccardi, Nicola |
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Kononenko, Denys |
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Petrov, R. H. | Madrid |
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Alshaaer, Mazen | Brussels |
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Bih, L. |
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Casati, R. |
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Muller, Hermance |
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Kočí, Jan | Prague |
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Šuljagić, Marija |
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Kalteremidou, Kalliopi-Artemi | Brussels |
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Azam, Siraj |
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Ospanova, Alyiya |
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Blanpain, Bart |
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Ali, M. A. |
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Popa, V. |
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Rančić, M. |
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Ollier, Nadège |
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Azevedo, Nuno Monteiro |
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Landes, Michael |
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Rignanese, Gian-Marco |
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Valtonen, Kati
Tampere University
in Cooperation with on an Cooperation-Score of 37%
Topics
Publications (57/57 displayed)
- 2024Comparison of abrasion wear testing to an in-service feed hopper wear case
- 2023Enhancing the cavitation erosion resistance of AISI 420-type stainless steel with quenching and partitioningcitations
- 2023History of Tribology in Finland 1881–2023 and the Finnish Society for Tribology 1977-2023citations
- 2023High-stress abrasive wear performance of medium-carbon direct-quenched and partitioned, carbide-free bainitic, and martensitic steelscitations
- 2023History of Tribology in Finland 1881 – 2023 and the Finnish Society for Tribology 1977 - 2023citations
- 2022Influence of process parameters on the particle–matrix interaction of WC-Co metal matrix composites produced by laser-directed energy depositioncitations
- 2022Influence of process parameters on the particle–matrix interaction of WC-Co metal matrix composites produced by laser-directed energy depositioncitations
- 2022Influence of process parameters on the particle-matrix interaction of WC-Co metal matrix composites produced by laser-directed energy depositioncitations
- 2022Impact-abrasive and abrasive wear behavior of low carbon steels with a range of hardness-toughness propertiescitations
- 2022High-stress abrasive wear characteristics of ultra-high strength press-hardening steelcitations
- 2022Experimental studies of high stress abrasive and impact-abrasive wear
- 2022Effect of prior austenite grain size on the abrasive wear resistance of ultra-high strength martensitic steelscitations
- 2021On the role of grain size on slurry erosion behavior of a novel medium-carbon, low-alloy pipeline steel after induction hardeningcitations
- 2021Comparison of various high-stress wear conditions and wear performance of martensitic steelscitations
- 2021Effect of tempering on the impact-abrasive and abrasive wear resistance of ultra-high strength steelscitations
- 2020Impact-abrasive and abrasive wear behavior of low carbon steels with a range of hardness-toughness propertiescitations
- 2020Effect of prior austenite grain size on the abrasive wear resistance of ultra-high strength martensitic steelscitations
- 2020Characteristics of carbide-free medium-carbon bainitic steels in high-stress abrasive wear conditionscitations
- 2019Comparison of laboratory wear test results with the in-service performance of cutting edges of loader bucketscitations
- 2019Research methods for the evaluation of the relevance of application oriented laboratory wear tests
- 2019Research methods for the evaluation of the relevance of application oriented laboratory wear tests
- 2019Role of fracture toughness in impact-abrasion wearcitations
- 2019Impact wear and mechanical behavior of steels at subzero temperaturescitations
- 2019High-stress abrasion of wear resistant steels in the cutting edges of loader bucketscitations
- 2019Comparison of various high-stress wear conditions and wear performance of martensitic steelscitations
- 2019Effect of tempering on the impact-abrasive and abrasive wear resistance of ultra-high strength steelscitations
- 2018Wear performance of quenched wear resistant steels in abrasive slurry erosioncitations
- 2018Research methods for the evaluation of the relevance of application oriented laboratory wear tests
- 2018Specific wear energy in high-stress abrasion of metals
- 2018Relevance of Laboratory Wear Experiments for the Evaluation of In-Service Performance of Materials
- 2018High-stress abrasion of wear resistant steels in the cutting edges of loader bucketscitations
- 2018Effect of fracture toughness on impact-abrasion wear
- 2017Comparison of laboratory wear test results with the in-service performance of cutting edges of loader bucketscitations
- 2017The effect of impact conditions on the wear and deformation behavior of wear resistant steelscitations
- 2016Effects of composition and microstructure on the abrasive wear performance of quenched wear resistant steelscitations
- 2016Comparison of laboratory wear test results with the in-service performance of cutting edges of loader buckets
- 2016Wear performance of quenched wear resistant steels in abrasive slurry erosioncitations
- 2016Experimental study on the behavior of wear resistant steels under high velocity single particle impactscitations
- 2015Comparison of laboratory rolling-sliding wear tests with in-service wear of nodular cast iron rollers against wire ropescitations
- 2015Effect of Multiple Impacts on the Deformation of Wear-Resistant Steelscitations
- 2015Experimental study on the behavior of wear resistant steels under high velocity single particle impactscitations
- 2015Wear behavior and work hardening of high strength steels in high stress abrasioncitations
- 2015The effect of impact conditions on the wear and deformation behavior of wear resistant steelscitations
- 2015The effect of impact conditions on the wear and deformation behavior of wear resistant steelscitations
- 2015The deformation, strain hardening, and wear behavior of chromium-alloyed hadfield steel in abrasive and impact conditionscitations
- 2014Effects of composition and microstructure on the abrasive wear performance of quenched wear resistant steelscitations
- 2014Effect of abrasive properties on the high-stress three-body abrasion of steels and hard metals
- 2014Versatile erosion wear testing with the high speed slurry-pot
- 2013Characterization of the effects of embedded quartz layer on wear rates in abrasive wearcitations
- 2013The effect of microstructure and lead content on the tribological properties of bearing alloyscitations
- 2013Impact-abrasion wear of wear-resistant steels at perpendicular and tilted anglescitations
- 2013Characterization of the wear of nodular cast iron rollers in contact with wire ropescitations
- 2013Characterization of the wear of nodular cast iron rollers in contact with wire ropescitations
- 2013High-stress abrasion and impact-abrasion testing of wear resistant steelscitations
- 2013High-Stress Abrasion and Impact-Abrasion Testing of Wear Resistant Steelscitations
- 2012Characterization of the effects of embedded quartz layer on wear rates in abrasive wear
- 2009Characterization of functional gradient structures in duplex stainless steel castingscitations
Places of action
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document
Comparison of abrasion wear testing to an in-service feed hopper wear case
Abstract
Feed hoppers are used to guide flowing ore in the mines. The flow of ore over the feed hopper plates creates a deep cavity at the point, where the ore dropped from the feeder hits the plates. The prevailing wear mechanism in the feed hopper plates is abrasion, which is known to cause marked economical losses in the mines, when worn out parts are replaced. Therefore, technologically optimal but also cost-effective selection of the materials used in the wear parts is of essential nature. Novel application oriented wear testing methods offer one solution for the challenges faced in the selection of materials for parts and components prone to severe abrasive wear.<br/>Wear of the feed hopper side plates was tested in the laboratory set-up and compared to the in-service samples that had been used for 13 weeks in a chromite mine. The studied 500 HB and 600 HB quenched and tempered steel plates had a typical martensitic microstructure. The slurry-pot with a dry gravel bed (dry-pot) and the crushing pin-on-disc were selected as the wear test methods. Both of these abrasive test methods cause high-stress wear, crushing the rock and deforming the steel, but the contact conditions are different. In the dry-pot, the test samples rotate inside freely moving gravel bed, while in the crushing pin-on-disc, the cylindrical pin sample is pressed against the rotating disc covered with loose rock particles. Kuru granite and Kemi chromite ore were used as abrasives.<br/>Although both selected test methods simulated the in-service conditions quite well, especially the abrasives used in the tests caused differences in the results. When the test abrasive was chromite, the wear rates were on a similar level with the in-service use. Moreover, when the wear rates of the two studied steels were compared with each other, in chromite tested samples the difference was closer to the in-service case. On the other hand, the chromite ore comminuted much faster than granite, and therefore the wear rates with chromite were lower compared to the tests conducted with granite. Furthermore, the granite abrasive showed also much bigger difference between the wear rates of the test steels (about 30%). Therefore, in general, granite is a favored option when comparing the overall high-stress abrasion properties of steels. However, in this particular case, chromite was a better choice for a test abrasive, because it simulated better the in-service environment.<br/>