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Industry 4.0: Transforming Automation and Applications

Industry 4.0: Transforming Automation and Applications banner
Preview this course
Self-paced Beginner

Industry 4.0: Transforming Automation and Applications

4(4)
1404 views
₹ 349
163 min
Anytime
English
1404 views
J Aatish Rao
J Aatish RaoMechanical Engineering Professional
  • 7-day money-back guarantee
  • Lifetime access
  • Certificate of completion
Volume pricing for groups of 5+

Why enroll

Participants join this course to understand the latest technologies transforming manufacturing, like AI, robotics, and IoT. They learn practical skills to automate processes and make industries more efficient. The course helps them stay ahead in their careers by mastering Industry 4.0 tools. It’s a chance to innovate, solve real-world problems, and grow professionally.

Is this course for you?

You should take this if

  • You work in Oil & Gas Upstream
  • You're a Mechanical Engineering professional
  • You prefer self-paced learning you can revisit

You should skip if

  • You need a different specialisation outside Mechanical Engineering
  • You need live interaction with an instructor

Course details

This course introduces Industry 4.0, the fourth industrial revolution, which is changing the way manufacturing works through automation and smart technologies. It focuses on automation and applications in modern factories, helping both students and working professionals understand how to improve productivity and reduce downtime. Participants will learn about automation systems, their types, control methods, and challenges. The course covers robotics, including components, types, degrees of freedom, and real-world industrial robots. Numerical control (NC & CNC) machines are also explained, along with programming (G-Code) and applications. 3D printing methods, materials, procedures, and industrial uses are included as well. By learning these technologies, participants will understand how smart manufacturing can optimize production, maintain equipment efficiently, and create innovative solutions. This knowledge is useful for engineers and professionals aiming to stay ahead in modern manufacturing.

Course suitable for

Key topics covered

  • Classification of automation & types of control systems, Ethical dilemma of automation.

  • Robotics - Robot definition, classification, components & configuration, Laws of robotics, degree of freedom in robotics.

  • NC & CNC machines components, types, higher-axes machining, G CODE & M CODE, programming format, applications.

  • 3D Printing Procedures, processes, materials & applications.

Course content

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

35 lectures2 hr 43 min

Opportunities that await you!

Career opportunities

₹349

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Questions and Answers

A: The electric option would still create a common-cause failure between power, controls, and shutdown response. The hydraulic choice solves force but introduces fluid management risk that doesn't align with a simple ESD duty. The double-acting pneumatic design removes the very fail-safe behavior the valve is meant to provide. The spring-return pneumatic actuator preserves deterministic closure even when Industry 4.0 layers go dark.

A: Raising gain reacts to noise rather than liquid inventory and amplifies instability. Removing damping exposes the valve to every spike generated by networking latency. Turning off data export hides the symptom but leaves the process vulnerable during upset. Adding damping while separating analytics traffic from the control task stabilizes level without sacrificing insight.

A: Redundancy without diagnostics leaves dangerous failures latent longer than the SIL target allows. Shortening proof tests without analysis drives operational risk and manpower load. BPCS reliability data doesn't translate directly to safety integrity. Matching diagnostic coverage and test interval to PFDavg aligns the design with IEC 61511 intent.

A: Alarm suppression masks a potential miswire that could trip the unit later. Assuming a simulation error ignores the possibility of undocumented field changes. Live testing without isolation risks personnel and equipment. Physical trace-back establishes what is actually installed before introducing pressure.