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  • 2201 Cartwright - Creme De La Creme Of Listings
    2201 Cartwright - Creme De La Creme Of Listings


    Price: 144 € | Shipping*: 0.00 €
  • Shape Memory Alloys : Sma 2018
    Shape Memory Alloys : Sma 2018


    Price: 90.00 £ | Shipping*: 0.00 £
  • Superconductivity Of Metals And Alloys
    Superconductivity Of Metals And Alloys

    Drawn from the author's introductory course at the University of Orsay, Superconductivity of Metals and Alloys is intended to explain the basic knowledge of superconductivity for both experimentalists and theoreticians.These notes begin with an elementary discussion of magnetic properties of Type I and Type II superconductors.The microscopic theory is then built up in the Bogolubov language of self-consistent fields.This text provides the classic, fundamental basis for any work in the field of superconductivity.

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  • CNC Machining Titanium Alloys For Agriculture
    CNC Machining Titanium Alloys For Agriculture

    CNC Machining Titanium Alloys For Agriculture

    Price: 3.89 € | Shipping*: 573.79 €
  • What are important alloys?

    Important alloys are mixtures of two or more metals, or a metal and a non-metal, that have been combined to enhance specific properties such as strength, durability, or resistance to corrosion. Some important alloys include steel (iron and carbon), brass (copper and zinc), and bronze (copper and tin). These alloys are widely used in various industries, including construction, manufacturing, and transportation, due to their unique combination of properties that make them valuable for specific applications.

  • How are gold alloys used?

    Gold alloys are used in a variety of applications due to their unique properties. They are commonly used in jewelry making to increase the strength and durability of the gold. Gold alloys are also used in dentistry for dental crowns and bridges due to their biocompatibility and resistance to corrosion. Additionally, gold alloys are used in electronics for their excellent conductivity and resistance to tarnishing.

  • What are alloys and composite materials?

    Alloys are materials made by combining two or more metallic elements to create a new material with enhanced properties, such as increased strength or corrosion resistance. Common examples of alloys include steel (iron and carbon) and brass (copper and zinc). Composite materials are made by combining two or more different materials to create a new material with unique properties that are different from the individual components. These materials often consist of a matrix material reinforced with fibers or particles. Examples of composite materials include carbon fiber reinforced polymers (CFRP) and fiberglass.

  • Where is the use of alloys meaningful?

    The use of alloys is meaningful in a wide range of applications, including in the manufacturing of aircraft, automobiles, and industrial equipment. Alloys are used in these industries because they offer improved strength, durability, and corrosion resistance compared to pure metals. Additionally, alloys can be tailored to have specific properties, making them suitable for a variety of specialized applications. Overall, the use of alloys is meaningful in any situation where the properties of pure metals are insufficient for the desired performance requirements.

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  • Titanium-Based Alloys for Biomedical Applications
    Titanium-Based Alloys for Biomedical Applications

    The book presents the state-of-the-art of biomaterials used in the human body and reports new research on various Ti-based alloys with non-toxic elements (Mo, Zr, Ta, Si, Nb, etc.) aimed at improved mechanical properties, corrosion resistance and biocompatibility. Specific laboratory tests are reported for structural characterization, mechanical properties and corrosion resistance testing, and cytotoxicity assessment. Keywords: Titanium Alloys, Biomedical Materials, Cytotoxicity Assessment, Biocompatibility, Production and Properties of Ti-Mo-Zr-Ta Alloys, Surface Modification, Powder Metallurgy, Characterization of Ti-Mo-Zr-Ta-Alloys, Mechanical Properties, Differential Scanning Calorimetry, Electrochemical Behavior, Optical Microstructure, X-ray Diffraction, Thermal Characterization, Corrosion Resistance, Medical Applications.

    Price: 80.00 £ | Shipping*: 0.00 £
  • Ultrasonic Cavitation Treatment of Metallic Alloys
    Ultrasonic Cavitation Treatment of Metallic Alloys

    This Special Issue scrutinizes the use of ultrasonic-cavitation melt treatment in technology of high-quality metallic alloys with improved mechanical properties, and assesses the driving mechanisms of cavitation-induced effects, such as grain refinement, degassing, wetting, and particle distribution. In this context, the research published in this Special Issue considers the interaction between the cavitation field and acoustic streaming with the melt flow and the suspended solid/liquid phases, the characterization and mapping of cavitation activity in a melt volume, and the possibility of achieving high efficiency in processing large melt volumes through technological approaches for the commercial implementation of ultrasonic processing technology.

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  • Welding Metallurgy and Weldability of Lightweight Alloys
    Welding Metallurgy and Weldability of Lightweight Alloys

    This book is a guide for applying fundamental knowledge of welding metallurgy and weldability principles to the practical selection of materials, welding processes and process parameters, and post-weld processing to optimize weld properties and performance.It also provides insight into conducting failure analysis of welded lightweight alloy structures.This is followed by an in-depth discussion of the influence of alloy chemical composition, welding process and associated thermal cycles on weld solidification, solid-state phase transformations, microstructure evolution and mechanical properties.The origin and prevention of weld defects such as porosity are also presented.In addition, the book provides insight into conducting failure analysis of welded lightweight ally structures.

    Price: 112.95 £ | Shipping*: 0.00 £
  • High Entropy Alloys : Innovations, Advances, and Applications
    High Entropy Alloys : Innovations, Advances, and Applications

    This book provides a cohesive overview of innovations, advances in processing and characterization, and applications for high entropy alloys (HEAs) in performance-critical and non-performance-critical sectors.It covers manufacturing and processing, advanced characterization and analysis techniques, and evaluation of mechanical and physical properties.With chapters authored by a team of internationally renowned experts, the volume includes discussions on high entropy thermoelectric materials, corrosion and thermal behavior of HEAs, improving fracture resistance, fatigue properties and high tensile strength of HEAs, HEA films, and more.This work will be of interest to academics, scientists, engineers, technologists, and entrepreneurs working in the field of materials and metals development for advanced applications. Features Addresses a broad spectrum of HEAs and related aspects, including manufacturing, processing, characterization, and properties Emphasizes the application of HEAs Aimed at researchers, engineers, and scientists working to develop materials for advanced applicationsT.S.Srivatsan, PhD, Professor of Materials Science and Engineering in the Department of Mechanical Engineering at the University of Akron (Ohio, USA), earned his MS in Aerospace Engineering in 1981 and his PhD in Mechanical Engineering in 1984 from the Georgia Institute of Technology (USA).He has authored or edited 65 books, delivered over 200 technical presentations, and authored or co-authored more than 700 archival publications in journals, book chapters, book reviews, proceedings of conferences, and technical reports.His RG score is 45 with a h-index of 53 and Google Scholar citations of 9000, ranking him to be among the top 2% of researchers in the world.He is a Fellow of (i) the American Society for Materials International, (ii) the American Society of Mechanical Engineers, and (iii) the American Association for Advancement of Science.Manoj Gupta, PhD, is Associate Professor of Materials at NUS, Singapore.He is a former Head of Materials Division of the Mechanical Engineering Department and Director Designate of Materials Science and Engineering Initiative at NUS, Singapore.In August 2017, he was highlighted among the Top 1% Scientists of the World by the Universal Scientific Education and Research Network and in the Top 2.5% among scientists as per ResearchGate.In 2018, he was announced as World Academy Championship Winner in the area of Biomedical Sciences by the International Agency for Standards and Ratings.A multiple award winner, he actively collaborates/visits as an invited researcher and visiting and chair professor in Japan, France, Saudi Arabia, Qatar, China, the United States, and India.

    Price: 155.00 £ | Shipping*: 0.00 £
  • What are the separation methods for alloys?

    The separation methods for alloys include physical separation techniques such as distillation, filtration, and magnetic separation. Distillation involves heating the alloy to separate the components based on their different boiling points. Filtration is used to separate components based on differences in particle size, while magnetic separation uses magnets to separate magnetic components from non-magnetic ones. Additionally, chemical separation methods such as leaching and electrolysis can also be used to separate the components of an alloy based on their chemical properties.

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  • How can different aluminum alloys be welded together?

    Different aluminum alloys can be welded together using a technique called friction stir welding. This process involves rotating a cylindrical tool at high speeds to generate friction and heat, which softens the material and allows the alloys to mix together. Another method is using a filler material that is compatible with both alloys being welded. It is important to carefully select the welding technique and filler material based on the specific alloys being joined to ensure a strong and reliable weld.

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