Chemistry · Ch 9 — Hydrogen
Dihydrogen as a Fuel
Dihydrogen as a Fuel
Hydrogen's Potential as a Fuel
Burning dihydrogen releases a large quantity of heat, and comparing fuels on a mole, mass and volume basis (Table 9.5) shows just how energy-dense it is.
Table 9.5 — Energy Released by Combustion of Various Fuels
| Basis | H₂ (gas) | H₂ (liquid) | LPG | CH₄ (gas) | Octane (liquid) |
|---|---|---|---|---|---|
| kJ per mole | 286 | 285 | 2220 | 880 | 5511 |
| kJ per gram | 143 | 142 | 50 | 53 | 47 |
| kJ per litre | 12 | 9968 | 25590 | 35 | 34005 |
On a mass basis, dihydrogen releases roughly three times as much energy as petrol, and its combustion produces far fewer pollutants — essentially only oxides of nitrogen, arising from atmospheric mixed in with the hydrogen. Even this can be minimised by injecting a little water into the combustion chamber, which lowers the peak temperature enough to suppress the – reaction.
Practical obstacles: what holds dihydrogen back as a mainstream fuel is largely the challenge of storing and transporting it. A cylinder of compressed dihydrogen weighs roughly 30 times as much as a petrol tank storing the same amount of usable energy. Liquefying it requires cooling to 20 K, which demands expensive, well-insulated tanks. Metal-alloy storage systems — , –, – — are used for smaller-scale storage instead. …
| Energy released on combustion in kJ | Dihydrogen (in gaseous state) | Dihydrogen (in liquid state) | LPG | CH4 gas | Octane (in liquid state) |
|---|---|---|---|---|---|
| per mole | 286 | 285 | 2220 | 880 | 5511 |