41 research outputs found

    Multiscale Biomechanics and Tribology of Inorganic and Organic Systems

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    This open access book gathers authoritative contributions concerning multiscale problems in biomechanics, geomechanics, materials science and tribology. It is written in memory of Sergey Grigorievich Psakhie to feature various aspects of his multifaceted research interests, ranging from theoretical physics, computer modeling of materials and material characterization at the atomic scale, to applications in space industry, medicine and geotectonics, and including organizational, psychological and philosophical aspects of scientific research and teaching as well. This book covers new advances relating to orthopedic implants, concerning the physiological, tribological and materials aspects of their behavior; medical and geological applications of permeable fluid-saturated materials; earthquake dynamics together with aspects relating to their managed and gentle release; lubrication, wear and material transfer in natural and artificial joints; material research in manufacturing processes; hard-soft matter interaction, including adhesive and capillary effects; using nanostructures for influencing living cells and for cancer treatment; manufacturing of surfaces with desired properties; self-organization of hierarchical structures during plastic deformation and thermal treatment; mechanics of composites and coatings; and many more. Covering established knowledge as well as new models and methods, this book provides readers with a comprehensive overview of the field, yet also with extensive details on each single topic

    UFGM - 2006 Annual Report

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    INGV, SEZIONE DI CATANIAPublished2.6. TTC - Laboratorio di gravimetria, magnetismo ed elettromagnetismo in aree attiveope

    Multiscale biomechanics and tribology of inorganic and organic systems : In memory of Professor Sergey Psakhie

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    This open access book gathers authoritative contributions concerning multiscale problems in biomechanics, geomechanics, materials science and tribology. It is written in memory of Sergey Grigorievich Psakhie to feature various aspects of his multifaceted research interests, ranging from theoretical physics, computer modeling of materials and material characterization at the atomic scale, to applications in space industry, medicine and geotectonics, and including organizational, psychological and philosophical aspects of scientific research and teaching as well. This book covers new advances relating to orthopedic implants, concerning the physiological, tribological and materials aspects of their behavior; medical and geological applications of permeable fluid-saturated materials; earthquake dynamics together with aspects relating to their managed and gentle release; lubrication, wear and material transfer in natural and artificial joints; material research in manufacturing processes; hard-soft matter interaction, including adhesive and capillary effects; using nanostructures for influencing living cells and for cancer treatment; manufacturing of surfaces with desired properties; self-organization of hierarchical structures during plastic deformation and thermal treatment; mechanics of composites and coatings; and many more. Covering established knowledge as well as new models and methods, this book provides readers with a comprehensive overview of the field, yet also with extensive details on each single topic.TU Berlin, Open-Access-Mittel – 202

    Vision 2040: A Roadmap for Integrated, Multiscale Modeling and Simulation of Materials and Systems

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    Over the last few decades, advances in high-performance computing, new materials characterization methods, and, more recently, an emphasis on integrated computational materials engineering (ICME) and additive manufacturing have been a catalyst for multiscale modeling and simulation-based design of materials and structures in the aerospace industry. While these advances have driven significant progress in the development of aerospace components and systems, that progress has been limited by persistent technology and infrastructure challenges that must be overcome to realize the full potential of integrated materials and systems design and simulation modeling throughout the supply chain. As a result, NASA's Transformational Tools and Technology (TTT) Project sponsored a study (performed by a diverse team led by Pratt & Whitney) to define the potential 25-year future state required for integrated multiscale modeling of materials and systems (e.g., load-bearing structures) to accelerate the pace and reduce the expense of innovation in future aerospace and aeronautical systems. This report describes the findings of this 2040 Vision study (e.g., the 2040 vision state; the required interdependent core technical work areas, Key Element (KE); identified gaps and actions to close those gaps; and major recommendations) which constitutes a community consensus document as it is a result of over 450 professionals input obtain via: 1) four society workshops (AIAA, NAFEMS, and two TMS), 2) community-wide survey, and 3) the establishment of 9 expert panels (one per KE) consisting on average of 10 non-team members from academia, government and industry to review, update content, and prioritize gaps and actions. The study envisions the development of a cyber-physical-social ecosystem comprised of experimentally verified and validated computational models, tools, and techniques, along with the associated digital tapestry, that impacts the entire supply chain to enable cost-effective, rapid, and revolutionary design of fit-for-purpose materials, components, and systems. Although the vision focused on aeronautics and space applications, it is believed that other engineering communities (e.g., automotive, biomedical, etc.) can benefit as well from the proposed framework with only minor modifications. Finally, it is TTT's hope and desire that this vision provides the strategic guidance to both public and private research and development decision makers to make the proposed 2040 vision state a reality and thereby provide a significant advancement in the United States global competitiveness

    CHARACTERIZATION AND MEASUREMENT OF MICROSTRUCTURAL FEATURES IN LASER PROCESSED ALLOYS

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    Laser processes such as laser-powder bed fusion, surface laser polishing, and laser engraving are under intense investigation due to their great potential in design and manufacturing of complex structural materials. The localized thermal environment including large thermal gradients and fast cooling rates inherent in laser processing result in unique microstructures and mechanical properties which are not currently predictable. Residual stress is a prominent defect in laser processed metals and has resulted in decreased mechanical life for AM parts, while phase transformations which accompany laser processes have been reported to decrease certain mechanical properties even while improving properties such as corrosion resistance in steels. The absence of measurement techniques for microscale residual stress has inhibited the full characterization of the microstructure of laser processed alloys, although its magnitude and distribution are known to affect component failure. The microstructure of laser processed alloys typically contains non-equilibrium dislocation cells due to cellular solidification at steep thermal gradients and fast solidification rates. These cells have been reported to improve mechanical properties, however their non-equilibrium nature means that they can be processed away in certain conditions. The evolution of these cells is not fully understood, although recent results suggest that residual strain is crucial to their formation during laser additive manufacturing. The characterization of microscale elastic strain and dislocation density combined with statistical analysis and thermal simulation enables the establishment of processing-structure relationships during laser processing. In this thesis, electron microscopy combined with thermal simulations is used to describe the evolution of elastic strain and non-equilibrium dislocation cells in laser processed metals. A method of microscale elastic strain calculation is optimized for laser processed alloys and is used to connect the thermal gradients in additive manufacturing to the evolution of dislocation cell structures during processing. The relationship between cell structure evolution and elastic strain distribution during laser processing impacts the final material and mechanical properties of a component, and the description of that relationship move toward improved predictive capabilities of laser processing

    Numerical Modelling and Simulation of Metal Processing

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    This book deals with metal processing and its numerical modelling and simulation. In total, 21 papers from different distinguished authors have been compiled in this area. Various processes are addressed, including solidification, TIG welding, additive manufacturing, hot and cold rolling, deep drawing, pipe deformation, and galvanizing. Material models are developed at different length scales from atomistic simulation to finite element analysis in order to describe the evolution and behavior of materials during thermal and thermomechanical treatment. Materials under consideration are carbon, Q&T, DP, and stainless steels; ductile iron; and aluminum, nickel-based, and titanium alloys. The developed models and simulations shall help to predict structure evolution, damage, and service behavior of advanced materials
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