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Path Category
Guided learning journeys that build knowledge step by step.
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This learning path introduces high school students to the world of medical devices, covering basic concepts, types, and their roles in healthcare. It explains how devices are classified based on risk and provides examples across diagnostics, therapeutics, and patient monitoring.
This learning path introduces the fundamental chemistry concepts needed for biomedical engineering, starting with basic atomic structure and bonding, progressing through organic chemistry and biochemistry, and concluding with pH, buffers, and their physiological relevance. It is designed for high school students with no prior chemistry background.
A beginner-friendly learning path covering the fundamental biology needed for biomedical engineering. It starts with cell biology, then explores human anatomy and physiology, and finishes with genetics basics, providing a systematic foundation for further study.
This learning path provides pre-engineering students with the foundational mathematical tools essential for biomedical engineering. It covers algebra, calculus, differential equations, statistics, and linear algebra, with a focus on their applications to biological and medical systems.
This path introduces high school students to the scope, history, and core concepts of biomedical engineering. It covers the essential areas of medical devices, bioinstrumentation, biomaterials, and imaging, providing a foundation for further exploration.
This graduate-level learning path equips aerospace engineering students and researchers with systematic research skills. It covers problem formulation, literature review, experimental and simulation methods, data analysis, scientific writing, and research ethics, with a focus on aerospace applications.
This graduate-level path explores the fundamental astrodynamics, advanced propulsion technologies, and mission architectures required for deep space exploration. It covers the physics of orbital mechanics, the challenges of long-duration missions, and the conceptual design of interstellar and outer-planet missions, emphasizing the critical role of propulsion systems.
This advanced graduate-level learning path provides a comprehensive understanding of Urban Air Mobility (UAM), covering key concepts, aircraft design, avionics, air traffic management, infrastructure, and safety. The path progresses from foundational aerospace principles to specialized UAM topics, culminating in a holistic view of the UAM ecosystem.
This graduate-level learning path provides a comprehensive understanding of the principles and technologies for mining and utilizing space resources, with a focus on asteroid and lunar materials. It integrates orbital mechanics, resource identification, processing techniques, and In-Situ Resource Utilization (ISRU) to build a systems-level perspective on space resource missions.
This path provides a structured learning journey for graduate students aiming to understand electric aircraft propulsion systems. It covers essential electrical engineering fundamentals, battery technology, electric motors, power electronics, thermal management, and certification aspects. The path progresses from foundational concepts to advanced integration and regulatory considerations.