Preparing your Path…
Preparing your Path…
Path Catalog
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7801 Paths · page 285 / 781
This learning path provides a systematic introduction to joining and assembly processes in manufacturing, covering welding, brazing, soldering, adhesive bonding, and mechanical fastening. It builds on fundamental materials science and manufacturing principles to help learners understand process selection, applications, and quality considerations.
A systematic learning path for sophomore university students to understand machining processes including turning, milling, drilling, grinding, and the underlying principles of cutting forces and tool wear. The path builds from foundational materials science and manufacturing principles through to process-specific analysis.
This learning path provides a systematic understanding of major casting and forming processes in manufacturing engineering. It covers the fundamental principles of materials science, then explores sand casting, investment casting, forging, rolling, and extrusion, including their process parameters, capabilities, and applications.
A beginner-friendly path introducing essential safety practices in manufacturing environments, covering hazard identification, PPE, machine safety, hazardous materials, and emergency procedures. Designed for high school students and newcomers to workshop settings.
This learning path introduces high school students to the fundamental manufacturing processes: casting, forming, machining, joining, and additive manufacturing. It builds from basic material properties and measurement skills to understanding how each process works, its applications, and how to select the right process for a given product.
This learning path introduces beginners to the four main classes of engineering materials—metals, polymers, ceramics, and composites—and their key properties relevant to manufacturing. It covers fundamental concepts such as atomic bonding, crystalline structures, and mechanical testing, and explains how processing affects material behavior. Designed for high school students, the path builds a foundation for understanding material selection in manufacturing.
This learning path equips pre-engineering students with the essential mathematical tools used in manufacturing engineering. It progresses from basic algebra through geometry, calculus, statistics, and optimization, emphasizing practical applications in manufacturing contexts.
This learning path introduces high school students to the scope, history, and core concepts of manufacturing engineering. It covers the evolution of manufacturing, materials, processes, systems, automation, and quality, providing a foundational understanding for further study.
This learning path guides graduate students and researchers through the systematic process of conducting research in environmental engineering, from formulating research questions to disseminating findings. It covers problem formulation, literature review, experimental and field study design, data analysis, scientific writing, and research ethics, with an emphasis on interdisciplinary knowledge and practical application.
This graduate-level path explores how atmospheric chemical processes influence climate and vice versa, focusing on ozone, aerosols, greenhouse gases, and climate models within the context of air pollution engineering. It builds from atmospheric fundamentals through chemical kinetics and photochemistry to advanced topics in aerosol-cloud interactions and climate modeling, culminating in an integrated understanding of chemistry-climate feedbacks.