Lecture 1 - Mechatronic System Design Principles

Mechatronics and Synergy

Mechatronic Systems Design Process

Industrial Revolutions

Highlights


It complements the existing "Industry 4.0" approach by specifically putting research and innovation at the service of the transition to a sustainable, human-centric and resilient European industry.

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Industries can play an active role in providing solutions to challenges for society including the preservation of resources, climate change and social stability.

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This approach to industry contributes to 3 of the Commission’s priorities : "An economy that works for people", "European Green Deal" and "Europe fit for the digital age". Elements related to the future of industry are already part of major Commission policy initiatives adopting a human-centric approach for digital technologies including artificial intelligence, up-skilling and re-skilling European workers, particularly digital skills modern, resource-efficient and sustainable industries and transition to a circular economy, a globally competitive and world-leading industry, speeding up investment in research and innovation

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These are just some examples that demonstrate the strong links between the industrial transition and other societal developments.

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- Industry 5.0 is distinguished by this human-centric approach

Cyber-Physical Systems

Highlights


The principle idea behind the implementation of Industry 4.0 solutions is to empower manufacturing companies to enhance collaboration among various departments, making the right information available to the right people on a real-time basis. The goal is to facilitate appropriate decision-making at the right time, thereby increasing efficiency and productivity.

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cyber-physical systems are smart systems that include engineered interacting networks of physical and computational components. The publication highlights that these highly interconnected and integrated systems provide new functionalities to improve quality of life and enable technological advances in critical areas, such as personalized health care, emergency response, traffic flow management, smart manufacturing, defense and homeland security, and energy supply and use.

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Cyber-physical systems: Directly record physical data using sensors and affect physical processes using actuators Evaluate and save recorded data and actively or reactively interact both with the physical and digital world Are connected with one another and in global networks via digital communication facilities Use globally available data and services Have a series of dedicated, multimodal human-machine interfaces

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From a manufacturing industry perspective, a cyber-physical system is an internet-enabled physical entity, such as a pump or compressor, embedded with computers and control components consisting of sensors and actuators. Such an entity, which is IP address-assigned, is capable of self-monitoring, generating information about its own functioning, and communicating with other associated entities or even outside. It is a self-regulating and autonomous operation.

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The tenet of Industry 4.0 is that a manufacturing company will be able to achieve higher efficiency, productivity, and the autonomous operation of production processes by ensuring that machines/plant equipment, logistics systems, work-in-progress components, and such other elements (including people) directly communicate with each other to achieve collaboration. A manufacturing company that wants to align its vision with that of Industry 4.0 must take steps to convert existing physical entities into cyber-physical systems.

The professor said that the collaboration between robots/machines and humans is unique to industry 5.0. This feels like going backwards. I will ask the professor and update it.

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!Lecture 01, p.13
- A robot is a cyber-physical system

I3 Mechatronics (Smart Factory)

!Lecture 01, p.15

Microlecture - How to Engineer a Robotic Dog

Mechanical Design Considerations for Building Successful Machines

!Lecture 01, p.19

Follow Mechatronic Systems Design Process

!Lecture 01, p.22

Product Design = Problem/Need → Engineering Requirements

!Lecture 01, p.24

Functional Structure Diagram = Requirements → Conceptual Design (Functional Block Diagram)

Note: in the context of mechatronic systems design, functional block diagrams are mechatronic block diagrams

How to Innovate and Solve Problems