Steam tables / Specific volume, saturated vapour

Specific volume of saturated steam against temperature

Specific volume is how much room a kilogram of dry saturated steam takes up, and it collapses by four orders of magnitude across this chart. At 0 °C a kilogram fills 206.14 m³, which is a cube 5.9 metres on a side. At 100 °C it is 1.6719 m³, at 300 °C 0.021663 m³. That collapse is why a high pressure main carries the same duty in a fraction of the pipe, and why a vacuum steam system needs pipe the size of ductwork.

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.
Specific volume, saturated vapour m³/kg (log scale)
Specific volume of saturated steam in cubic metres per kilogram against temperature, on a logarithmic axis, from 0 to 373.946 °C0.010.1110100020406080100120140160180200220240260280300320340360Saturation temperature (°C)Specific volume, saturated vapour (m³/kg (log scale))
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
Saturated liquid enthalpy h_f419.1 kJ/kg
Saturated vapour enthalpy h_g2,675.6 kJ/kg
Specific volume, saturated vapour along the whole saturation line
Temperature°CTemperature°FPressurebar aPressurepsigSpecific volume, saturated vapourm³/kgSpecific volume, saturated vapourft³/lb
032.00.006112-14.6206.13,302
2577.00.0317-14.243.34694.3
50122.00.1235-12.912.03192.7
75167.00.386-9.14.12966.14
100212.01.0140.01.67226.78
125257.02.32219.00.770112.34
150302.04.76154.40.39256.287
175347.08.9241150.21663.47
200392.015.552110.12722.038
225437.025.493550.078411.256
250482.039.765620.050090.8023
275527.059.468480.032770.5249
300572.085.881,2310.021660.347
325617.0120.51,7330.014190.2273
350662.0165.32,3830.0088010.141
373.946705.1220.63,1850.0031040.04972

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

Why the axis is logarithmic

The span is 206.14 m³/kg down to 0.0031039 m³/kg, which is five orders of magnitude. On a linear axis the entire useful range of a heating system would be one flat line along the bottom and the vacuum end would be the only thing visible. A log axis gives every decade the same amount of paper, which is the right choice for a quantity nobody thinks about additively.

What it sizes

Velocity in a steam main is mass flow times specific volume divided by area, so this curve is the pipe sizing chart with one step removed. Drop a header from 100 psig to 14.1 psig and the same kilograms per hour need about 3.7 times the pipe area to hold the same velocity. It is also the reason a vacuum steam system looks wrong to anybody who has only sized high pressure mains: at 40 °C a kilogram of steam fills 19.517 m³, and the pipe has to be big enough to let it move.

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