<link href="https://fonts.googleapis.com/css2?family=Caveat:wght@500;700&family=JetBrains+Mono:wght@400;500;600&family=Plus+Jakarta+Sans:wght@600;700;800&display=swap" rel="stylesheet" /> Skip to main contentEngineering Courses, Mentoring & Jobs | EveryEng
Heat Exchanger Fundamentals: Theory and Applications banner
Preview this course

Heat Exchanger Fundamentals: Theory and Applications

Heat Exchanger Fundamentals: Theory and Applications banner
Preview this course
Self-paced Beginner

Heat Exchanger Fundamentals: Theory and Applications

4(144)
52 enrolled
1279 views
FREE
259 min
Anytime
Hindi
1279 views
Saurabh Kumar Gupta
Saurabh Kumar GuptaMechanical Engineer
  • Lifetime access
  • Certificate of completion
  • Foundational Learning
  • Access to Study Materials
Volume pricing for groups of 5+

Why enroll

People enroll in the course “Heat Exchanger Fundamentals: Theory and Applications” to gain a clear understanding of how heat exchangers work and how to design, select, and operate them efficiently in real-world systems. The course helps learners build strong fundamentals in heat transfer principles while also covering practical applications across industries such as power plants, oil & gas, and HVAC. It is especially valuable for engineers and technicians looking to improve system performance, troubleshoot operational issues, and enhance energy efficiency in thermal systems.

Is this course for you?

You should take this if

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

You should skip if

  • You need a different specialisation outside Chemical & Process
  • You need live interaction with an instructor

Course details

A heat exchanger is a device designed to efficiently transfer heat energy from one fluid to another, either through direct contact or indirect contact via a separating wall. Heat exchangers are widely used in various industries, including power generation, chemical processing, HVAC, and refrigeration, to recover heat energy, cool or heat fluids, and optimize system performance. There are several types of heat exchangers, including shell-and-tube, plate, finned-tube, and regenerative heat exchangers, each with its own unique design characteristics and applications. Heat exchangers can be designed to operate in various flow configurations, such as parallel flow, counterflow, or crossflow, and can be optimized for specific performance requirements, including heat transfer rate, pressure drop, and fluid flow rates. By selecting and designing the appropriate heat exchanger, engineers can improve the efficiency, reliability, and cost-effectiveness of thermal systems, and reduce energy consumption and emissions. Effective heat exchanger design and operation are critical in many industrial and commercial applications.

Course suitable for

Key topics covered

Introduction Of Heat Exchanger
Overall Heat Transfer Coefficient | Fouling Factor
Logarithmic Mean Temperature Difference For Heat Exchanger
Previous Year Numerical Based On LMTD Method
Multipass And Crossflow Heat Exchanger | Correction Factor
The Effectiveness--The NTU Method
Numerical NTU Method Part-2

Course content

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

7 lectures4 hr 19 min
  1. Introduction Of Heat Exchanger
    31 min
  2. Overall Heat Transfer Coefficient | Fouling Factor
    48 min
  3. Logarithmic Mean Temperature Difference For Heat Exchanger
    39 min
  4. Previous Year Numerical Based On LMTD Method
    27 min
  5. Multipass And Crossflow Heat Exchanger | Correction Factor
    30 min
  6. The Effectiveness--The NTU Method
    40 min
  7. Numerical NTU Method Part-2
    44 min

Opportunities that await you!

Career opportunities

FREE

Access anytime

Questions and Answers

A: A feels conservative because it respects the construction-to-operation boundary and avoids heating a dirty bundle. B sounds practical on schedule pressure, but heating before cleaning bakes debris onto tube walls and raises under-deposit corrosion risk. C appeals to corrosion engineers, yet hydrotesting after chemical clean reintroduces oxygenated water and debris unless the loop is perfectly controlled. D mirrors what people do when operations is impatient, but full cold flow before leak testing loads tube-to-tubesheet joints without proof of integrity.

A: A aligns with legal enforceability; auditors care what you committed to, not what changed later. B sounds safety-forward, but unilateral adoption without MOC alters scope and liability. C feels pragmatic, yet creates an undefined acceptance basis that fails traceability. D is common in procurement, though vendor stamps don’t override owner specs under COMAH scrutiny.

A: A is the quiet failure mode; PSV sizing protects pressure, not metal temperature. B is intuitive but the valve failed closed, isolating the header. C borrows from pump protection logic, yet check valves and hydraulics limit this case. D drifts into plant-wide scenarios unrelated to the initiating event.

A: A addresses the measurement chain; water tests live or die on ΔT accuracy. B jumps to design assumptions without validating test conditions. C is tempting if you distrust fabrication, but it’s invasive before basics are checked. D risks erosion and doesn’t explain whether the shortfall is real or an artifact.