Preparing your Path…
Preparing your Path…
Path Catalog
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7801 Paths · page 288 / 781
This learning path guides senior and graduate students from sustainability fundamentals through the core frameworks of industrial ecology, including material and energy flow analysis, industrial symbiosis, and eco-design. It culminates in applying these concepts to real-world environmental problem-solving.
This advanced learning path equips senior and graduate students with the knowledge and skills to analyze urban environmental issues, focusing on stormwater management, urban heat islands, and green infrastructure. It covers the fundamental sciences, urban systems context, and design principles, culminating in integrated planning and career-ready application.
This learning path equips junior and senior university students with the core GIS skills needed to analyze and address environmental problems. Starting from fundamental GIS concepts and data models, it progresses through spatial analysis, watershed analysis, and environmental data integration, culminating in practical mapping and communication of results.
This learning path equips senior and graduate students in environmental engineering with the skills to analyze complex environmental data using statistical and computational techniques. It covers essential statistics, time series analysis, multivariate methods, and GIS integration, culminating in a capstone project that applies these methods to real-world environmental problems.
This graduate-level learning path builds a systematic understanding of environmental chemistry, focusing on chemical speciation, phase partitioning, photochemical transformations, and advanced analytical techniques. It integrates fundamental chemical principles with applied environmental systems thinking, preparing learners to analyze complex contamination and fate processes.
This graduate-level learning path explores the biochemical processes that govern the fate of organic pollutants in environmental systems. It progresses from foundational chemistry and microbiology through enzyme kinetics to advanced biodegradation pathways and detoxification mechanisms, emphasizing quantitative modeling and practical applications in bioremediation.
This graduate-level learning path equips learners with the knowledge and skills to analyze the transport of pollutants in air, water, and soil. It covers fundamental transport phenomena, environmental chemistry, and mathematical modeling techniques, culminating in the ability to formulate and solve transport equations for real-world contamination problems.
A comprehensive learning path for senior university students to model environmental systems and pollutant fate and transport. Covers mathematical foundations, modeling frameworks, and applications in water quality and air dispersion.
This advanced learning path equips senior environmental engineering students with the knowledge and skills to assess environmental risks and health impacts. It covers hazard identification, dose-response assessment, exposure analysis, and risk characterization, grounded in statistics and environmental chemistry.
This learning path equips senior environmental engineering students with the knowledge and skills to manage hazardous waste and remediate contaminated sites. It covers classification, treatment, disposal, and remediation technologies, emphasizing regulatory frameworks and risk assessment.