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Finally something concrete from these guys! They've been working for over 10 years on this and shown almost nothing. The capsule looks nice; big curved windows
by JanSolo 11y ago
Finally something concrete from these guys! They've been working for over 10 years on this and shown almost nothing.
The capsule looks nice; big curved windows and no RCS thrusters tell us that this is not an orbital capsule.
The 1st Stage reuse concept is interesting; the ducting near the capsule connector is quite novel. There are 8 large spoilers that protrude into the airflow to help slow descent. I wonder if these can be modulated to give some kind of stability control?
It's interesting to note that although the capsule landed successfully, they make no mention of what happened to the launcher. I presume that it failed to land, but I didn't see any smoking wreckage in the background of the capsule landing video, so maybe it made it down in 1 piece? I'm sure they would have told us if it had.
Anyway, a good day for the US space industry; Blue Origin finally have something cool to show and have proved that they're not just purveyors of vaporware. I'm looking forward to seeing what else they can come up with.
- sqeaky 11y agoAs as you mentioned RCS thrusters I thought, "but reaction wheels are cheaper and don't require fuel, for all but the largest vehicles they are not needed", then I realized this was real life and not Kerbal Space Program.
- wl 11y agoRCS is essential for docking.
- sqeaky 11y agoHelpful, not essential. If you are willing to use smaller engines or can be careful with the throttle (and throttle shutoff) on larger engines you can dock plenty of smaller ships. I wouldn't want to try it with something with a 180 degree turn time of 30+ seconds. I wonder if any of this is true in real life? Doesn't a spaghetti rocket just explode in real life?
- mey 11y agoRocket restart is harder in real life than in KSP. Typically a rocket is designed to be started a limited number of times, this is where RCS fills the gap.
- sqeaky 11y agoThat is fascinating. Why is that the case? Is it simply easier to build something disposable? Or are there fundamental restrictions like the inability to stop a solid rocket motor?
- tankenmate 11y agoOne of the big problems is that in space you not only have low temperatures you also have limited ability to reject heat (no real convection to speak of, only conductivity; which is bad because you can get heat seep into other parts, or radiation, or to a much lesser degree ablation). This means that it is harder to engineer parts for engines; you can have a heat range of +1000C to -200C and also subject often to uneven, and for restartable engines repeated, cooling and/or heating, which all leads to fatigue. Secondly you have issues with fuel/oxidisers; cryogenic fuels/oxidisers need to be regularly stirred in low gravity because convection doesn't work the same as it would in the presence of gravity. This is why most RCS systems use non-cryogenic hypergolic bi-propellant fuels or mono-propellant fuels as the systems are much simpler; pressurised tanks, one or two one-way valve(s), possibly a catalyst, a combustion chamber and bell for the simplest of systems.
- JanSolo 11y agoOne of the main reasons it's hard to restart a rocket in space is simply because there's no gravity to feed the propellant to the outlet of the tank. While the rocket is running, the acceleration caused by the motor causes the propellant to pool at the bottom of the tank where the outlet is. As soon as you stop the motor, the acceleration stops and the liquid starts floating around inside the tank. If you tried to restart it now, you would get an unstable mix of propellant and pressurizing gas which might not allow the rocket to startup properly. To restart reliably, you need to apply a force to the tank to force the liquid back down to the outlet. During Apollo, this was done with many small solid rocket motors called Ullage Rockets. These would fire for just a few seconds just immediately before the rocket was restarted. The force was just enough to get the propellant down to the outlet in time to be sucked into the turbo pumps before ignition.
- vermontdevil 11y agoThe BE-3 engine is under consideration as a second stage engine. They also are developing the BE-4 engine that ULA wants to use for their new Vulcan rocket. The launcher didn't make it back because the hydraulic pressure was lost. But this is great indeed as you said.