Preparing your Path…
Preparing your Path…
Path Catalog
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This path introduces graduate chemical engineering students to the fundamental principles of nanotechnology and its applications in chemical processes, focusing on nanomaterials synthesis, catalysis, and sensing. It covers essential concepts from quantum effects and synthesis methods to catalytic mechanisms and sensor design, culminating in the integration of these technologies into chemical process intensification.
This advanced professional learning path equips industry professionals with a comprehensive understanding of chemical engineering principles as applied across the oil and gas value chain. It covers the fundamental thermodynamics and fluid flow underlying upstream production, the separation and reaction engineering central to midstream processing, and the refinery operations and process safety that define downstream activities. The path emphasizes practical applications, process integration, and safety, preparing learners to tackle complex challenges in the industry.
This learning path equips plant engineers with a systematic methodology to identify and solve process problems. It covers data-driven problem identification, root cause analysis, and solution development within the context of process design, emphasizing practical application and safety.
This learning path equips process engineers with the knowledge to design membrane-based separation systems. It covers membrane fundamentals, module configurations, application-specific considerations, and design methodology, culminating in a capstone design project.
This advanced professional path equips materials engineers with the knowledge to understand corrosion mechanisms, select appropriate materials, and implement effective prevention strategies in chemical plant environments. It covers fundamentals, localized corrosion, environmental factors, materials selection, and protection methods, culminating in design and risk management.
This learning path equips quality engineers with the knowledge and skills to apply quality management principles to chemical processes. It covers basic statistics, statistical process control (SPC), Six Sigma methodology, and root cause analysis, providing a structured approach to process improvement and quality assurance.
This learning path equips chemical engineers and managers with the core skills to plan, execute, and control chemical engineering projects. It covers scheduling, cost estimation and control, communication, and contract management, building from foundational project management principles to advanced application in the chemical industry.
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.