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Welding Techniques and Processes (Basic To Advance)

Welding Techniques and Processes (Basic To Advance) banner
Preview this course
Self-paced Beginner

Welding Techniques and Processes (Basic To Advance)

4(53)
2030 views
₹ 449
121 min
Anytime
English
2030 views
Chaitanya Purohit
Chaitanya PurohitConsultant
  • 7-day money-back guarantee
  • Lifetime access
  • Certificate of completion

Why enroll

Gaining expertise in various welding processes can boost your career in manufacturing and fabrication, leading to roles like Welding Engineer, Production Supervisor, or Quality Control Inspector, with median salaries ranging from $55,000 to over $90,000. You'll be able to optimize welding techniques, improve product quality, and increase efficiency in industries like shipbuilding, aerospace, automotive, and construction, making you a highly sought-after professional.

Is this course for you?

You should take this if

  • You work in Manufacturing & Industrial
  • You're a Manufacturing Engineering / Mechanical Engineering professional
  • You prefer self-paced learning you can revisit

You should skip if

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

Course details

The Welding Techniques and Processes (Basic to Advanced) course is designed to provide a comprehensive understanding of welding fundamentals and modern industrial practices. It begins with the basics of welding, including different types of welding processes such as arc welding, MIG, TIG, and gas welding, along with safety procedures and equipment handling. As the course progresses, participants gain in-depth knowledge of welding metallurgy, joint design, and material selection. The program also covers advanced techniques such as automated welding, robotic welding, and high-precision processes used in industries. Learners will explore welding defects, inspection methods, and quality control standards to ensure strong and reliable welds. Practical applications and case studies are included to bridge the gap between theory and real-world scenarios. Participants will also learn about codes and standards followed in industries like construction, automotive, and aerospace. By the end of the course, learners will be equipped with the skills required to perform, analyze, and optimize welding processes efficiently. This course is ideal for students, technicians, and engineers aiming to build or advance their careers in welding and fabrication industries.

Course suitable for

Key topics covered

  • Different Power Source

  • Welding Positions

  • Welding Process - SMAW/MMAW/Stick Welding

  • Benefits of electrode flux coating

  • Basic electrode - Handling

  • SMAW AWS Classification

  • Welding Process - GMAW/MIG/MAG

  • Welding Process - GTAW/TIG/Argon Welding

  • Welding Process - SAW








Course content

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

11 lectures2 hr 1 min
  1. Different Power Source
    12 min
  2. Sheild Metal Arc Welding Process
    8 min
  3. Benefits of electrode flux coating
    21 min
  4. Basic of Electrode Handling
    10 min
  5. Low Hydrogen Electrode
    10 min
  6. Common Defects associated with SMAW
    11 min
  7. Gas Metal Arc Welding (GMAW)
    12 min
  8. Gas Tungsten Arc Welding (GTAW)
    13 min
  9. Common Defects associated with GTAW
    7 min
  10. SAW - Welding Process
    9 min
  11. Common defects associated with SAW
    8 min

Opportunities that await you!

Career opportunities

Why people choose EveryEng

Industry-aligned courses, expert training, hands-on learning, recognized certifications, and job opportunities-all in a flexible and supportive environment.

What learners say about this course

Yogendra Sagar Mishra
Yogendra Sagar Mishra
May 3, 2026

Labs assume you’ve already got a note-taking setup; lost a few minutes wrangling that. After that, the exercises forced me to face some sloppy habits, especially jumping to solutions before framing the problem. The Constraint Ladder in Week 3 stuck with me; writing the first arch sketch, then deleting half of it, felt like a PR review in slow motion. Useful tie-ins to day job stuff—how this shows up in prod incidents, or when a CI failure sends you chasing noise. It’s beginner-level, but not fluffy. Short videos, lots of doing. I’ve already changed how I size tasks and decide what actually needs attention vs. what can wait.

Anoop V
Anoop V PIPING LEAD
May 3, 2026

This feels like the reference you open when the machine arch starts wobbling and prod alerts chirp, not a glossy intro. The Chapter 3 lab comparing time-domain plots to FFT windowing, especially the bearing outer-race fault example, stuck and maps cleanly to what I've seen on legacy rigs and newer sensors feeding obs dashboards. mostly it bridges old-school vibration math to modern infra without hype, though I wasn't sold on the brief treatment of automotive NVH and wished for one more failure case. The labs carried it, with data you can rerun from the repo.

ADITHYA POCHE
ADITHYA POCHE
May 3, 2026

FFT basics section using the imbalance vs misalignment spectrum example stuck; it's good, but wished there was more on bearing fault frequencies.

Yogendra Sagar Mishra
Yogendra Sagar Mishra
May 3, 2026

Sat through plenty of intro courses; this one actually has teeth. The Module 2 walkthrough on cold vs hot commissioning—especially the FAT/SAT handoff and interlock verification before first power-on—stuck, because it mapped cleanly to prod cutover with obs checks tied back to the infra arch. Some pacing felt rushed, and I wasn't sold on the quiz gating, but the checklists translate straight to a repo PR or runbook. Walking away with fewer open questions and answers I'm more confident shipping.

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Questions and Answers

A: The right answer enforces location and size exactly as drawn, preventing a DFMEA miss on joint integrity. B drops the field flag meaning. C invents intermittency that isn't shown. D confuses seal weld conventions with structural fillets.

A: The correct value lands in a sane HAZ control range tied to the WPS. B drops arc efficiency. C ignores travel speed basis. D mixes units and underpredicts thermal input.

A: The correct choice targets hydrogen-related cracking risk that kills pressure boundaries. B fits sweet service. C needs elevated temperature. D applies to austenitic alloys with chlorides.

A: This answer enforces geometry without assuming process, keeping GD&T honest. B ignores the contour symbol. C adds a process not called out. D assumes machining that would need a finish letter.