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Design of Pressure Vessel using PV Elite - Components of Pressure vessel banner

Design of Pressure Vessel using PV Elite - Components of Pressure vessel

Design of Pressure Vessel using PV Elite - Components of Pressure vessel banner
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Design of Pressure Vessel using PV Elite - Components of Pressure vessel

3(70)
1593 views
COMPLETED
3 hrs
Next month
English
1593 views
Shanmugam V
Shanmugam VLead / Senior Mechanical Engineer/Static Equipment Engineer
  • 7-day money-back guarantee
  • Session recordings included
  • Certificate of completion
Volume pricing for groups of 5+

Why enroll

1. How elementary and advanced topics of Solid mechanics are applied in development of Pressure vessel codes and standards.

2. Theoretical background behind design code requirements which helps an engineer understand the strengths, weaknesses and applicability of the code requirements.

3. An insight into the newly introduced codes.

4. Bridging the gap between theoretical knowledge and code requirements.

5. University students who want to take up career in static equipment engineering and wants to learn about the most widely used Industrial standard.

6. Experienced engineers who want to understand the background of code rules and requirements

Is this course for you?

You should take this if

  • You work in Oil & Gas Upstream or Pharmaceutical & Healthcare
  • You're a Mechanical Engineering professional
  • You prefer live, instructor-led training with Q&A

You should skip if

  • You need a different specialisation outside Mechanical Engineering
  • You need fully self-paced, on-demand content

Course details

This course will cover basic and advanced topics of Pressure Vessel Engineering Design and Manufacturing requirement to provide a robust understanding of the background theory behind technical requirements of Pressure Vessel codes and standards. This will serve as a refresher course on core and advanced topics of Pressure Vessel Engineering to understand technical background of design and analysis as per codes & standards.

This course covers all important aspects of Pressure Vessel Design, Fabrication and testing, which comprises of

• Design, Analysis and Engineering requirement for Pressure Vessel

• Metallurgy and Material Selection while designing Pressure vessel

• Fabrication prerequisite while Pressure Vessel engineering

• Heat Treatment requirement for Pressure Vessel

• Testing & Inspection essentials for Pressure Vessel Design

All of above topics are covered in different modules of this course hence we encourage you to enroll all modules to learn all major and critical areas of Pressure vessel engineering.

Classifications of Static Equipment Engineering is a specialized discipline of Mechanical Engineering which covers the design of static equipments like Pressure vessels (Process Columns, Drums, Reactors, Separators, Drain vessel), Heat exchangers (Shell and Tube, Plate and Frame, Plate and Shell, Air Coolers), Atmospheric Tanks (Low pressure and LPG Tanks), Flare Stack in chemical, petrochemical, or hydrocarbon facilities. We have different courses to cover above listed equipment & do participate in all courses.

Course suitable for

Key topics covered

This module talks about fundamentals of Pressure vessel Design & Engineering. Following topics are covered in this module

1. Components of Pressure vessel

a. Orientation of vessel

b. Different type of supports

c. Types of Flanges

d. Types of Nozzles

e. Types of Dishend

Do enroll other module to learn more on fundamentals of Design of pressure vessel and understand ASME Code that are critical for a static equipment engineer.

Opportunities that await you!

Skills & tools you'll gain

PVElite

Career opportunities

Training details

This is a live course that has a scheduled start date.

COMPLETED

Coming in Next Month

Questions and Answers

A: A: Thin-shell math with no efficiency penalty sneaks in here; E=0.85 bites harder than people expect at this pressure. B: Using t≈P·R/(S·E−0.6P) lands you just over 20 mm with S in the 130 MPa range at 80°C. That’s the right scale before CA. C: Doubling is a project rule myth, not a code behavior; PV Elite won’t invent thickness like that. D: Temperature helps allowable stress a bit, but not enough to offset 50 barg on a 2.4 m shell.

A: A: The reinforcement zone is bounded for a reason—stress flow is local, not across the course. PV Elite enforces those limits when configured correctly. B: That treats pressure vessels like beams; ASME never intended global averaging. C: Area credit scales with allowable stress; weaker material can’t magically carry more load. D: Weld metal can count if it meets strength and geometry limits; dismissing it outright is a misread.

A: A: Wet H2S at modest temperature triggers SSC concerns first; NACE MR0175 compliance is the gate. B: CO2 matters, but it doesn’t override SSC risk in sour service. C: HIC risk depends on steel quality and environment; jumping to duplex ignores cost and actual mechanism. D: Chlorides don’t drive failure at 60°C in carbon steel gas service.

A: A: Nameplate anchors everything—MAWP sets the PSV limit, not the other way around. Do this cold and documented. B: Instruments don’t protect against overpressure; sequencing is backwards. C: Line sizing without confirming set pressure misses the controlling safeguard. D: Drawings don’t overrule stamped code data, especially with incomplete as-builts.