Steam tables / Saturated vapour enthalpy h_g

Enthalpy of dry saturated steam against temperature

hg is hf plus hfg, the total heat in a kilogram of dry saturated steam, and the shape of it surprises people. It rises, peaks at 2,803.3 kJ/kg around 235 °C, and then turns back DOWN. Past that point the latent heat is falling faster than the sensible heat is climbing, so a hotter kilogram of saturated steam carries less energy than a cooler one.

Arrive here from a chart on the steam tables page and the temperature you dialled in comes with you, marked on the curve and bolded in the table that prints beside it. The sheet is then about one operating point rather than about water in general.

Table unitsbar, °C, m³/kg, kJ/kg. Both columns of pressure, absolute and gauge, either way.
Saturated vapour enthalpy h_g kJ/kg
Enthalpy of dry saturated steam in kilojoules per kilogram against temperature, peaking near 235 °C and falling to the critical point21002200230024002500260027002800020406080100120140160180200220240260280300320340360Saturation temperature (°C)Saturated vapour enthalpy h_g (kJ/kg)
The rest of the state at 100 °C (default)
Saturation pressure1.0142 bar a · 0.0 psig
Latent heat of vaporisation2,256.5 kJ/kg
Specific volume, saturated vapour1.672 m³/kg
Saturated liquid enthalpy h_f419.1 kJ/kg
Saturated vapour enthalpy h_g along the whole saturation line
Temperature°CTemperature°FPressurebar aPressurepsigSaturated vapour enthalpy h_gkJ/kgSaturated vapour enthalpy h_gBTU/lb
032.00.006112-14.62,500.91,075.2
2577.00.0317-14.22,546.51,094.8
50122.00.1235-12.92,591.31,114.1
75167.00.386-9.12,634.61,132.7
100212.01.0140.02,675.61,150.3
125257.02.32219.02,713.11,166.4
150302.04.76154.42,745.91,180.5
175347.08.9241152,772.71,192.0
200392.015.552112,792.11,200.4
225437.025.493552,802.31,204.8
250482.039.765622,801.01,204.2
275527.059.468482,785.11,197.4
300572.085.881,2312,749.61,182.1
325617.0120.51,7332,684.51,154.1
350662.0165.32,3832,563.61,102.1
373.946705.1220.63,1852,087.2897.4

Every row is a call into IAPWS-IF97 made when this page was built, not a transcription. Gauge pressure is absolute minus one standard atmosphere, 101.325 kPa, so it is negative everywhere below 99.97 °C, which is where water actually boils at one atmosphere, and a real barometer is never exactly that anyway.

Learning zone

The turnover, and what it costs

The peak at 235 °C is the whole economics of a steam plant in one bend of one line. Below it, raising pressure gets you a kilogram carrying more heat. Above it, raising pressure gets you a kilogram carrying LESS. The sensible heat going in keeps climbing, the latent heat coming out is collapsing faster, and past the turnover the second term wins.

What a coil actually receives

hg is the number a heat exchanger is sized against, and it is the number a wet main quietly takes away. Steam at a dryness fraction of 0.9 carries hf plus 0.9 hfg, so at 100 °C that is 2,449.9 kJ/kg instead of 2,675.6. The coil was sized for the second number. That is the argument for drip legs and properly sized traps on a main, said as arithmetic rather than as advice.

IAPWS R7-97(2012), regions 1 to 5 implemented in full · saturation line from 0 °C to 373.946 °C · computed at page build, never transcribed