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Hydrogen Energy: Storage

Hydrogen Energy: Storage banner
Self-paced Advanced

Hydrogen Energy: Storage

4(12)
2 enrolled
421 views
FREE
723 min
Anytime
English
421 views
Team ChemEE
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  • Certificate of completion
  • Anytime Learning
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Is this course for you?

You should take this if

  • You work in Pharmaceutical & Healthcare or Energy & Utilities
  • You're a Chemical & Process / Petroleum Technology professional
  • You have 3+ years of hands-on experience in this field
  • You prefer self-paced learning you can revisit

You should skip if

  • You're new to this field with no prior experience
  • You need a different specialisation outside Chemical & Process
  • You need live interaction with an instructor

Course details

Course suitable for

Key topics covered

Hydrogen Energy: Storage

  • Introduction to Hydrogen Storage

  • Underground Hydrogen Storage

  • Fundamentals of Hydrogen Compression and Expansion

  • Thermodynamics of Hydrogen Compression Part - 1, 2

  • Reciprocating and Diaphragm compressors for Hydrogen Compression

  • Linear and Liquid Hydrogen Compressors

  • Cryogenic and Metal Hydride based Hydrogen Compressors

  • Electrochemical and Adsorption based Compressors

  • Compressed Hydrogen Tanks

  • Tutorial 5

  • Hydrogen Liquefaction

  • Liquid State Hydrogen Storage

  • Fundamentals of Adsorption based Materials for Hydrogen Storage

  • Adsorption based Solid State Hydrogen Storage Materials

  • Metal Hydrides for Solid State Hydrogen Storage Part -1

  • Fundamentals of Metal hydrides for Solid State Hydrogen Storage Part -1

  • Fundamentals of Metal hydrides for Solid State Hydrogen Storage Part -2

  • Different Types of Hydrides for Hydrogen Storage

  • Tailoring Metal Hydrides for Practical Applications: Nanostructure Part 1

  • Tailoring Metal Hydrides for Practical Applications: Nanostructure Part 2

  • MH System Design and Experimental Facilities on Solid State Hydrogen Storage

  • Tutorial 6

  • Novel Materials and Overall Storage

  • Overview of Storage Methods and Economics

Course content

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

25 lectures12 hr 3 min
  1. Introduction to Hydrogen Storage
    0 min
  2. Underground Hydrogen Storage
    47 min
  3. Fundamentals of Hydrogen Compression and Expansion
    20 min
  4. Thermodynamics of Hydrogen Compression Part - 1
    25 min
  5. Thermodynamics of Hydrogen Compression Part - 2
    21 min
  6. Reciprocating and Diaphragm compressors for Hydrogen Compression
    37 min
  7. Linear and Liquid Hydrogen Compressors
    27 min
  8. Cryogenic and Metal Hydride based Hydrogen Compressors
    30 min
  9. Electrochemical and Adsorption based Compressors
    28 min
  10. Compressed Hydrogen Tanks
    30 min
  11. Tutorial 5
    22 min
  12. Hydrogen Liquefaction
    46 min
  13. Liquid State Hydrogen Storage
    24 min
  14. Fundamentals of Adsorption based Materials for Hydrogen Storage
    37 min
  15. Adsorption based Solid State Hydrogen Storage Materials
    22 min
  16. Metal Hydrides for Solid State Hydrogen Storage Part -1
    32 min
  17. Fundamentals of Metal hydrides for Solid State Hydrogen Storage Part -1
    27 min
  18. Fundamentals of Metal Hydrides for Solid State Hydrogen Storage Part -2
    30 min
  19. Different Types of Hydrides for Hydrogen Storage
    41 min
  20. Tailoring Metal Hydrides for Practical Applications: Nanostructure Part 1
    35 min
  21. Tailoring Metal Hydrides for Practical Applications: Nanostructure Part 2
    29 min
  22. MH System Design and Experimental Facilities on Solid State Hydrogen Storage
    42 min
  23. Tutorial 6
    18 min
  24. Novel Materials and Overall Storage
    28 min
  25. Overview of Storage Methods and Economics
    25 min

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Questions and Answers

A: Governing principle: At 350 bar and ambient temperature, hydrogen deviates from ideal gas behavior and requires a real-gas density. Applied here: NIST/GERG correlations give ~20–22 kg/m³ at 15 °C, so 1.2 m³ holds roughly 24–26 kg before operational losses. Distractor B traps engineers who know PV=nRT but forget compressibility at high pressure.

A: Governing principle: Hydrogen compatibility is governed by material strength and microstructure, not just pressure test margin. Applied here: High-strength carbon steels under cyclic hydrogen service face embrittlement and fatigue per industry guidance, independent of hydrotest results. Distractor D catches those who focus only on MAWP math and ignore damage mechanisms.

A: Governing principle: Even with high-performance insulation, LH₂ tanks experience non-zero heat ingress driving boil-off. Applied here: 0.2–1% of 5,000 kg gives tens of kilograms per day, not hundreds. Distractor B appeals to LNG intuition but ignores hydrogen’s lower density and different thermophysics.

A: Governing principle: Polymer liners allow molecular diffusion of hydrogen even without discrete leaks. Applied here: Passing pressure tests yet elevated ambient readings align with permeation plus inadequate ventilation. Distractor B explains pressure loss but not a clean decay test.