Preparing your Path…
Preparing your Path…
Path Catalog
Data is pulled live from GET /api/v1/paths, and only Paths with a published version are listed.
7801 Paths · page 312 / 781
This learning path equips process engineers with a solid understanding of instrumentation and control systems used in chemical plants. It covers measurement principles for key process variables, signal transmission, final control elements, and the architecture of DCS and PLC systems, culminating in an integrated view of process control.
This learning path equips plant engineers with the knowledge to design effective plant layouts and piping systems. It covers essential fluid mechanics, equipment arrangement, pipe sizing, stress analysis, and relevant standards, providing a structured approach to creating safe and efficient designs.
This path equips practicing engineers with the skills to design chemical processes from conceptual flowsheet synthesis through heat integration and equipment sizing. It covers core chemical engineering fundamentals, process simulation, and practical design considerations, culminating in a comprehensive plant design project.
This advanced learning path for senior and graduate chemical engineering students explores the science and engineering of carbon capture and utilization (CCU). It covers the core separation processes—absorption, adsorption, membranes, and mineralization—grounded in thermodynamics and mass transfer principles, and concludes with integration and system-level analysis.
This advanced learning path equips senior and graduate chemical engineering students with a deep understanding of the chemical and physical processes used in water treatment, focusing on membrane processes, reverse osmosis, ion exchange, and disinfection. Grounded in mass transfer and separation science, the path progresses from foundational principles to process design and integration, enabling learners to analyze and design effective water treatment systems.
This learning path equips senior and graduate chemical engineering students with the knowledge and skills to design chemical processes that minimize environmental impact. It covers green chemistry principles, lifecycle assessment, waste minimization strategies, and sustainable process design, integrating these concepts into a holistic approach for sustainable chemical engineering.
This advanced learning path equips senior chemical engineering students with the skills to systematically identify, analyze, and mitigate risks in chemical processes. It covers core process safety fundamentals, hazard identification techniques (HAZOP), layer of protection analysis (LOPA), quantitative risk assessment (QRA), and consequence modeling, culminating in an integrated risk mitigation project.
This learning path bridges chemical engineering fundamentals with food processing operations, focusing on preservation, thermal processing, drying, and packaging. It covers essential concepts of heat and mass transfer as applied to food systems, suitable for university students and professionals seeking a structured introduction.
This advanced path equips senior or graduate chemical engineering students with the knowledge to analyze and design systems for energy conversion and storage, focusing on fuel cells, batteries, combustion, and carbon capture. It integrates thermodynamics and reaction engineering principles to understand and optimize these processes.
This advanced learning path equips senior chemical engineering students with the knowledge to apply chemical engineering principles to environmental challenges. It covers mass transfer and reaction engineering fundamentals, their application to air and water pollution control, waste treatment, and sustainability, with a focus on practical design and analysis.