"Strategy without tactics is the slow route to victory. Tactics without strategy is the noise before defeat." - Sun Tzu
"Strategy without tactics is the slow route to victory. Tactics without strategy is the noise before defeat." - Sun Tzu
"Before you diagnose yourself with depression or low self-esteem, first make sure that you are not, in fact, just surrounded by assholes." - William Gibson
"What man can you show me who places any value on his time, who reckons the worth of each day, who understands that he is dying daily?
For we are mistaken when we look forward to death; the major portion of death has already passed. Whatever years are behind us are in death's hands." - Lucius Annaeus Seneca
This may or may not be an interesting topic to the random readers that drop by here. I honestly don't know. I've been around steam turbines my entire adult life, and have never given the shaft sealing system much thought - until we had a seal failure that ended up with the accumulation of a bit of new knowledge, which I share here.
As you would guess, steam tends to leak out of a steam turbine at the high pressure end, where steam enters the turbine, and air tends to leak in at the exhaust, where the final stage of the turbine is at 1-3 inHg Absolute pressure (25-27 inHg vacuum). Steam turbines are not sealed like pumps. Pumps use flexible packing or mechanical seals, that actually come in contact with the shaft. Steam turbines do not seal this way, due to large swings in operating temperature from cold to running. Instead turbines are sealed using steam!
I took a quite a few photos while the steam turbine was apart for the seal repair, and thought they were interesting enough to put up. The steam turbine is a General Electric model A-10.
Most modern steam turbines are what we call "self-sealing". What that means is that they only need to be supplied with sealing steam during startup and shutdown. After the turbine reaches a certain load (5-20%), leak-off from the turbine supplies the seal steam, and external sources can be shut down. If there is any excess leak-off, and the seal steam supply pressure gets above the setpoint, a seal steam dump valve opens, and dumps the excess steam into the main condenser.
The symptoms of a failed steam sealing system are these:
Note: Water enters the lube oil system because the turbine shell is very close to the bearing housing. So as steam leaks out along the shaft of the turbine, it can leak right into the adjacent bearing housing. The lube oil system is kept under a light vacuum so that air will leak into the bearing housings, rather than oil leaking out. This will help pull in steam if the steam seal is leaking.
First of all, before any work can begin, the steam turbine must be shut down and allowed to cool.
Following the shutdown, the steam turbine has to be continuously rolled at low speed (typically 4-10 RPM) for about 3 days. Steam turbines operate at very high steam pressures and temperatures, and as a result, the turbine shell is very thick at the high pressure end. The shell is also insulated for thermal efficiency as well as for safety. For these reasons it takes several days before the turbine is cool enough to stop turning.
The purpose of rolling the turbine is to prevent warping the rotor. If the rotor is allowed to stop, it will develop a bow. Once a bow develops, it may sometimes work itself out when the steam turbine is returned to service; the rotor, reheated by steam, becomes ductile again and the bow mostly disappears. Other times, with severe bowing, the machine cannot even be started due to increased vibration caused by the off-center mass of the rotor. The damaged rotor will require machining and the addition of balance weights to compensate for the bowing, if not complete replacement. Needles to say, it's preferable to keep the steam turbine on the turning gear until it cools down.
Interestingly, a steam turbine rotor does not sag if it cannot be rolled during cooldown. Instead it humps up in the middle, because of the temperature differential between the top and bottom of the turbine shell. It is not unusual to have a 200 degree temperature differential between the top of the shell and the bottom. As heat rises inside the shell, the bottom part of a motionless rotor will contract more quickly than the top, which then bows the rotor upwards.
Onward now to the bits and pieces of a smallish high pressure steam turbine outage...
Below, a worker uses a sledge hammer to remove a nut from a through-bolt on the high pressure turbine shell.

This is one of the few outages I have had time to take pictures and learn a few things, because on scheduled outages, I usually have assignments that keep me too busy for that. Was fun to learn, fun to share.
NOTE: There is a continuation to this post with some further useful information HERE.