Forming Processes of Modern Metallic Materials
| Forming Processes of Modern Metallic Materials |
| Autore | Trzepiecinski Tomasz |
| Pubbl/distr/stampa | Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2020 |
| Descrizione fisica | 1 online resource (258 p.) |
| Soggetto topico | History of engineering and technology |
| Soggetto non controllato |
aircraft industry
aluminium alloy aluminum alloy asymmetric rolling B content bending force prediction bending under tension bending under tension test BUT coefficient of friction comparative assessment deep drawing deformation behavior draw bead drawbead electromagnetic forming electromagnetically assisted forming FEM finite element method flexible-die forming flow-forming friction friction stir spot welding friction testing heat treatment high strength steel hot strip rolling (HSR) incremental sheet forming machine learning magnesium alloy material properties mechanical engineering mechanical properties metal forming microstructures modified 9Cr-2W steel n/a numerical modeling numerical simulation phase transformation planar anisotropy plastic working regression seamless tube sheet metal forming single-lap joints solid granular medium forming SPIF spinning springback control stamping process strip drawing surface properties tandem skew rolling texture tribology truncated cone warm forming |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Record Nr. | UNINA-9910557470403321 |
Trzepiecinski Tomasz
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| Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2020 | ||
| Lo trovi qui: Univ. Federico II | ||
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Numerical Modelling and Simulation of Metal Processing
| Numerical Modelling and Simulation of Metal Processing |
| Autore | Sommitsch Christof |
| Pubbl/distr/stampa | Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2021 |
| Descrizione fisica | 1 online resource (374 p.) |
| Soggetto topico | Technology: general issues |
| Soggetto non controllato |
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additive manufacture additive manufacturing Al2O3 Al2O3-ZrO2 all-position automatic tungsten inert gas (TIG) welding aluminium alloy anisotropy austenitic stainless steel burst fracture carbon steel casting cellular automaton cold roll-beating forming compass search composite computational efficiency contact stress continuous cooling cooling crystal direction cylindrical cup deep drawing dendritic grain growth diffusion dilatometry distortion draw radius drawing force dual phase steel earing EN AW-6060 experimental validation FEM FEM simulation finite element analysis finite element method flow cures flow stress fracture toughness calculation method genetic algorithm heating hot deformation hot dip galvanizing line hot-rolled stainless steel integrity identification intermetallics lap joint limiting drawing ratio (LDR) LS-DYNA material damage material model mechanical properties mechanical property metal casting microstructure Mises stress model fitting modified embedded-atom method molecular dynamics molecular dynamics simulation multi-objective optimization multivariate analysis nano-cutting NEWUOA numerical simulation optimal welding parameters optimization particle swarm optimization phase transformation phase transformations plastic deformation plasticity forming precipitation hardening aluminium alloys process parameter quantitative prediction quarter buckle reinforced residual stress response surface method (RSM) roll contour optimisation roll stack deflection rupture disc selective laser melting SGI SLM stacking fault stainless stainless steels stress triaxiality strip material flow temperature distribution tensile properties thermal modeling Ti-6Al-4V tin alloy titanium wire ultrasonic drawing undermatched volumetric heat source weld bead geometry work hardening XFEM γ-TiAl alloy |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Record Nr. | UNINA-9910557749103321 |
Sommitsch Christof
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| Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2021 | ||
| Lo trovi qui: Univ. Federico II | ||
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