Preparing your Path…
Preparing your Path…
Path Catalog
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This learning path equips automation engineers with the knowledge and skills to program PLCs using ladder logic and function blocks, covering hardware fundamentals, programming languages, and troubleshooting techniques. It progresses from basic concepts to advanced applications in industrial automation.
This learning path guides product engineers through the complete mechatronic system design lifecycle, from requirements definition to product validation. It covers core mechatronics fundamentals, system architecture, integration, and validation, with an emphasis on interdisciplinary design and real-world constraints.
This learning path guides senior and graduate students through the design of mechatronic systems for environmental monitoring. It covers essential sensor technologies, embedded systems, data acquisition, wireless networking, and drone integration, culminating in a system design project.
This advanced learning path guides senior and graduate students through the interdisciplinary process of designing mechatronic devices for people with disabilities. It covers biomechanics, sensor and actuator selection, embedded systems, control strategies, human-device interaction, and user-centered design, culminating in a capstone project.
This advanced learning path equips senior and graduate students with the knowledge to apply mechatronics principles to renewable energy systems, focusing on wind turbine control, solar tracking, and energy storage. Starting with core mechatronics and control theory, the path progresses through renewable energy fundamentals and culminates in application-specific modules.
This learning path introduces the principles and practices of mechatronics as applied to consumer products. It covers embedded systems, sensors, actuators, control, and user interfaces, with a focus on smart devices and haptics. The path is designed for university students and professionals seeking a practical understanding of how to integrate mechanical, electronic, and software components in product design.
This advanced learning path equips senior and graduate students with the knowledge and skills to apply mechatronics principles to smart manufacturing. It covers the integration of mechanical, electronic, and software systems, along with cyber-physical systems, IoT, and data analytics, enabling learners to design and optimize intelligent manufacturing systems.
This advanced learning path equips senior or graduate students with the knowledge to design and control unmanned aerial systems, focusing on quadcopter dynamics, sensors, control, and navigation. It bridges mechatronics, control systems, and robotics, progressing from fundamental principles to integrated system design.
This learning path equips senior and graduate students with the knowledge to apply mechatronics principles to medical devices, covering foundational mechatronics, core medical device domains (surgical robotics, prosthetics, medical sensors, imaging), and culminating in a capstone project. It emphasizes the integration of mechanical, electronic, and software systems with medical constraints and regulatory considerations.
This learning path equips senior engineering students with the skills to design industrial automation systems, covering PLC programming, SCADA, HMI, industrial networks, safety, and embedded systems integration.