Preparing your Path…
Preparing your Path…
Path Catalog
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7801 Paths · page 257 / 781
This learning path covers the fundamental principles and industrial processes for extracting aluminum, copper, and other non-ferrous metals from their ores. It begins with essential chemistry and thermodynamics, then explores specific processes like the Bayer and Hall-Héroult processes for aluminum, and pyrometallurgical and hydrometallurgical routes for copper. The path concludes with electrometallurgical refining and broader applications.
This learning path guides undergraduate engineering students through the fundamental processes of steel production, from raw materials to continuous casting. It covers the chemistry and thermodynamics of ironmaking and steelmaking, including the blast furnace, basic oxygen furnace, electric arc furnace, secondary metallurgy, and continuous casting. The path emphasizes the underlying principles and their practical applications.
This learning path equips undergraduate engineering students with the knowledge and skills to apply corrosion prevention strategies, including material selection, protective coatings, cathodic protection, and inhibitors, to extend the service life of bridges, pipelines, and marine structures. It starts with fundamental corrosion mechanisms and progresses through prevention techniques, design considerations, and practical application.
This learning path equips undergraduate engineering students with the knowledge to analyze the environmental impacts of primary metal production. It starts with foundational concepts in extractive metallurgy and sustainability metrics, then systematically covers life cycle assessment, energy and emissions accounting, water footprinting, and specific challenges and innovations like green steel. The path culminates in a project applying these concepts to a comparative analysis.
A systematic learning path for undergraduate engineering students to analyze the environmental impacts of primary metal production, covering energy and water use, emissions, life cycle assessment, and emerging green production methods.
This learning path equips undergraduate engineering students with a foundational understanding of metal recycling, covering both ferrous and non-ferrous streams, key separation technologies, and the environmental and economic drivers. It emphasizes the circular economy perspective and the role of recycling in sustainable materials management.
This learning path guides undergraduate engineering students through the essential knowledge needed to evaluate metals for implant and medical device applications. It covers fundamental metallurgy, corrosion, mechanical properties, biocompatibility, and specific alloy systems, culminating in a practical assessment framework.
This advanced learning path equips undergraduate students with the knowledge to select lightweight alloys—Al-Li, Ti, and Mg—for aerospace applications. It covers material fundamentals, mechanical behavior, high-temperature performance, fatigue, fracture, and practical selection methodologies.
This learning path guides undergraduate engineering students through the fundamental process-structure-property relationships in metal additive manufacturing (AM), focusing on powder bed fusion and directed energy deposition. It covers feedstock, microstructure evolution, common defects, and post-processing, emphasizing how process parameters influence final material properties. The path builds from basic metallurgy and heat transfer to advanced topics in AM-specific microstructures and property optimization.
This learning path guides undergraduate engineering students through the metallurgical principles underlying welding processes. It covers phase transformations in steels, weld pool solidification, the heat-affected zone, common weld defects, and weldability of steels and aluminum alloys, providing a foundation for careers in materials and welding engineering.