“Benefits of the full-flow staged combustion cycle include turbines that run cooler and at lower pressure, due to increased mass flow, leading to a longer engine life and higher reliability.” TL; DR Full flow lowers turbine temperatures at the expense of parts complexity. Given turbopumps are the devil’s ass part of rocketry, this has been a sought-after technology. The pay-off isn’t so much efficiency as much as lon…
> TL; DR Full flow lowers turbine temperatures at the expense of parts complexity. Ehhh. I'd argue it also lowers part complexity, because it eliminates interpropellant seals. > The pay-off isn’t so much efficiency It improves achievable chamber pressure (assuming similar maximum pressures and temperatures at the turbines), which improves both thrust and Isp. > (This also explains why full flow hasn’t been a priority…
But it adds the whole second gas generator and turbine. No, it doesn't lower part complexity as a whole :) .
> It improves achievable chamber pressure
Yes, I'd even argue that's the penultimate goal of full-flow scheme.
1) For a rocket engine you usually (almost always) want as high Isp (which is approximately the speed of gasses flowing from the rocket engine) as possible.
2) To get that Isp, you need as high pressure in the chamber as possible.
3) To get that high pressure, you want to supply your pumps with as much power (in Watts) as possible from the given overall fuel flow (in kilograms per second) - while not melting turbines blades (so fuel:oxidizer ratio is limited).
4) To get most power to the turbines blades at fixed (maximum) gas temperature and fixed overall fuel flow, you want to use all of that flow (classical staged combustion uses only one component, which is essentially not using the whole fuel flow) and adjust ratios fuel:oxidizer at both gas generators so that total power would be maximum. You want maximum flow both because that increases turbine efficiency and because that actually provides more power to the turbine.