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Mechatronics

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Preview this course
Self-paced Beginner

Mechatronics

4(1579)
8 enrolled
1202 views
FREE
1353 min
Anytime
English
1202 views
Team EveryEng
Team EveryEngMechanical Engineering
  • Lifetime access
  • Certificate of completion
  • Foundational Learning
  • Access to Study Materials
Volume pricing for groups of 5+

Why enroll

Transform your career with the future of engineering! Our Mechatronics course combines the power of mechanics, electronics, and software to create intelligent systems that are revolutionizing industries. Learn to design, develop, and control robots, drones, and smart devices using cutting-edge technologies. With hands-on projects and expert instruction, you'll gain the skills to innovate and automate. Join the mechatronics revolution and unlock new possibilities in robotics, automation, and beyond. Enroll now and start building the future!

Is this course for you?

You should take this if

  • You work in Aerospace or Automotive
  • You're a Data Science & Analysis / Mechanical Engineering professional
  • You prefer self-paced learning you can revisit

You should skip if

  • You need a different specialisation outside Data Science & Analysis
  • You need live interaction with an instructor

Course details

This course provides a comprehensive introduction to Mechatronics, an interdisciplinary field that integrates mechanical engineering, electrical systems, electronics, computer science, and control engineering to create intelligent and automated systems. Participants will gain a strong foundation in the core concepts of sensors, actuators, microcontrollers, and embedded systems. The course explores how mechanical components interact with electronic circuits and software to perform precise and efficient operations. Learners will understand system modeling, control strategies, and real-time data processing techniques. Practical insights into automation, robotics, and smart product design are also emphasized. Through hands-on examples and case studies, participants will develop the ability to design and analyze mechatronic systems used in industries such as manufacturing, automotive, and aerospace. The course also introduces modern tools and technologies used for simulation and system integration. By the end of the course, learners will be equipped with the skills to design, develop, and optimize intelligent systems for real-world applications.

Source: IIT Roorkee July 2018 (YouTube Channel)
Prof. Pushparaj Mani Pathak, Dept. of Mechanical and Industrial Engineering, IIT Roorkee

Course suitable for

Key topics covered

  • Sensors and actuators

  • Microcontrollers and programming

  • Control systems and algorithms

  • Robotics and automation

  • Human-machine interfaces

  • System design and integration

Course content

The course is readily available, allowing learners to start and complete it at their own pace.

40 lectures22 hr 33 min

Opportunities that await you!

Career opportunities

FREE

Access anytime

Questions and Answers

A: B feels slow and old-school, but it catches wiring damage before silicon gets stressed. A tempts controls folks because software is visible early, yet powering logic without knowing insulation is asking for a blown drive. C is what everyone wants to do, but motion before electrical integrity is backwards. D is a real safety check, just not before you know the motor and cables won’t leak current into the drive on first power.

A: A ties directly to the risk: loss of torque must survive one fault. B sounds plausible if you mix in SELV rules, but ISO 13849 doesn’t draw voltage lines like that. C flips the logic; higher categories usually add, not remove, diagnostic expectations. D imports assumptions from old relay-based machines and doesn’t exist in the standard’s intent.

A: Start with distance: 0.5 m/s over 2,000 h at 30% gives 0.5×720,000 s ≈ 360 km. At 10 mm per rev, that’s 100 rev/m, so ~3.6×10^7 rev. A drops a zero by missing either duty or seconds. C double-counts speed and time. D feels conservative but throws away two orders of magnitude by misusing downtime.

A: A matches physics: more inertia hits the accel phase, not cruise. B sounds like classic control talk, but integral windup won’t fix torque limits. C treats a thermal symptom that hasn’t happened yet. D blames sensors when the plant changed.