Modern engineering is moving beyond static structures toward adaptive systems that can sense, think, and respond to their environment. Understanding how to design these smart systems is becoming an essential skill for engineers across mechanical, aerospace, and civil disciplines. This text-based course guides you from the fundamental physics of active materials to the conceptual design of intelligent, self-regulating systems.
You will start by mastering foundational concepts, exploring the core classification of smart materials, and understanding how they convert energy. Through clear explanations and practical design scenarios, you will learn how to select and integrate these materials into real-world applications, including basic structural health monitoring and active vibration control.
What you'll learn:
- Understand the fundamental physics and governing equations of piezoelectric, shape memory, and magnetorheological materials
- Design basic feedback control loops to create self-responsive engineering systems
- Configure sensor and actuator networks for real-time environmental monitoring
- Apply structural health monitoring principles to detect and localize material fatigue
- Practice modeling smart structures using modern numerical and analytical frameworks
- Evaluate energy harvesting techniques to power autonomous, low-power smart systems
This course begins with essential definitions and material classifications before moving into mathematical modeling, control system integration, and modern design methodologies. Every concept is explained through detailed text and structured engineering examples.
This course is designed for engineering students, product designers, and technical professionals who are new to smart structures. No prior experience with advanced materials or control theory is required.
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