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Conduction Fundamentals: Understanding Heat Transfer

Conduction Fundamentals: Understanding Heat Transfer banner
Preview this course
Self-paced Beginner

Conduction Fundamentals: Understanding Heat Transfer

4(144)
27 enrolled
1187 views
FREE
491 min
Anytime
Hindi
1187 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

Mastering conduction heat transfer is a valuable skill that can significantly enhance your career prospects in mechanical engineering, materials science, and related fields. By taking this course, you'll gain a competitive edge in the job market and open doors to new career opportunities in industries such as aerospace, automotive, energy, and manufacturing. With expertise in conduction heat transfer, you'll be well-positioned to take on leadership roles, work on cutting-edge projects, and contribute to innovative solutions that impact our daily lives. Whether you're looking to advance in your current role or transition to a new field, this course will provide you with the knowledge, skills, and confidence to achieve your career goals.

Is this course for you?

You should take this if

  • You work in Aerospace or HVAC
  • 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

Conduction Fundamentals: Understanding Heat Transfer" is an introductory course that explores the principles of conduction, a crucial aspect of heat transfer. This course is designed for students and professionals in mechanical engineering, materials science, and related fields who want to gain a deep understanding of conduction and its applications.

Course suitable for

Key topics covered

- Introduction of Heat Transfer

- Law of Heat Transfer

- Thermal Conductivity, Resistance, Diffusivity

- General Heat Conduction Equation For Cartesian Coordinates

- General Heat Conduction Equation For Cylindrical Coordinates 

- Heat Conduction Equation For Plan Slab

- Heat Conduction Equation For Hollow Sphere

- Logarithmic Mean Area Of Hollow Cylinder and Sphere

- Critical Radius Of Insulation

- Uniform Heat Generation In Plan Slab

- Uniform Heat Generation In Cylinder

- Sphere with Uniform Heat Generation

- Heat Transfer From Extended Surface (RectangularFins)

- Efficiency And Effectivness Of Fins

- Lumped Capacitance Method

- Numerical On Lump Capacitance Method

- Heisler charts

- Response Of Temperature Measuring Instruments

Course content

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

25 lectures8 hr 11 min
  1. Introduction of Heat Transfer
    11 min
  2. Law of Heat Transfer
    10 min
  3. Thermal Conductivity, Resistance, Diffusivity
    11 min
  4. Numerical
    17 min
  5. General Heat Conduction Equation For Cartesian Coordinates
    12 min
  6. General Heat Conduction Equation For Cylindrical Coordinates
    11 min
  7. Heat Conduction Equation For Plan Slab
    21 min
  8. Numerical
    32 min
  9. Heat Conduction Equation In Hollow Cylinder
    16 min
  10. Heat Conduction Equation For Hollow Sphere
    6 min
  11. Numerical
    14 min
  12. Logarithmic Mean Area Of Hollow Cylinder and Sphere
    7 min
  13. Critical Radius Of Insulation
    15 min
  14. Numerical Based On Critical radius Of Insulation
    15 min
  15. Plan Slab With Uniform Heat Generation
    25 min
  16. Uniform Heat Generation In Cylinder
    14 min
  17. Numerical Heat Generation In Plan Wall
    34 min
  18. Sphere with Uniform Heat Generation
    13 min
  19. Heat Transfer From Extended Surface (RectangularFins)
    30 min
  20. Efficiency And Effectivness Of Fins
    24 min
  21. Numerical Heat Transfer From Extended Surface
    42 min
  22. Lumped Capacitance Method
    31 min
  23. Numerical On Lump Capacitance Method
    24 min
  24. Heisler charts
    39 min
  25. Response Of Temperature Measuring Instruments
    17 min

Opportunities that await you!

Career opportunities

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Questions and Answers

A: Design notes flag that assuming constant k and no internal generation bounds the temperature field; violating this leads to underestimated gradients that can burn insulation or skin during abnormal loads, a risk often missed when vendor data arrives late.

A: From a certification standpoint, Bi ≪ 0.1 ensures internal gradients are small; skipping this check can mask short-term touch-temperature hazards during ground ops when cooling airflow is absent.

A: Engineering shorthand reduces this to L/(kA); underestimating this term has led to frost formation and secondary damage during flight-test cold soaks.

A: HAZOP reviews highlight contact resistance swings with torque scatter; ignoring it has caused localized overheating and seal degradation in service.