Earlier quoted context omitted.
The RAD750 (edit - the whole RAD family, there are newer models available) remains the standard because it's the highest performance rad-hard design available, period. If you're putting an expensive satellite in orbit for 5,10 years, the cost of the processors is insignificant compared to everything else. The real problem is that we don't have good solutions for improving the performance of rad-hard designs, so we're…
Could they not offload a lot of compute to ground based computers and submit results back via radio? Or are these real-time applications?
The CPUs of Spacecraft Computers in Space
41–50 of 90 posts
Re: The CPUs of Spacecraft Computers in Space
#42Earlier quoted context omitted.
The RAD750 (edit - the whole RAD family, there are newer models available) remains the standard because it's the highest performance rad-hard design available, period. If you're putting an expensive satellite in orbit for 5,10 years, the cost of the processors is insignificant compared to everything else. The real problem is that we don't have good solutions for improving the performance of rad-hard designs, so we're…
Could they not offload a lot of compute to ground based computers and submit results back via radio? Or are these real-time applications?
Re: The CPUs of Spacecraft Computers in Space
#43Space flight computers in the public sector are generally 15-20 years behind the types of hardware we commonly work with on the ground, as I think this page shows. We now have pretty capable low-power SoCs and FPGAs that we've yet to see broadly leveraged for govt. space applications. SpaceX flies Starlink with Xilinx FPGAs, while NASA and DoD are still baselining new platforms on incredibly expensive (albeit rad-har…
The RAD750 (edit - the whole RAD family, there are newer models available) remains the standard because it's the highest performance rad-hard design available, period. If you're putting an expensive satellite in orbit for 5,10 years, the cost of the processors is insignificant compared to everything else. The real problem is that we don't have good solutions for improving the performance of rad-hard designs, so we're…
The RAD750 in particular is a bit of a nightmare because of the high pin count, need for a support chip, and the 32-bit bus forces the use of more RAM and ROM than a smaller micro would need. I took a pass on that. I also never have liked IBM's reverse bit numbering and the implications it has on SRAM power consumption.
Re: The CPUs of Spacecraft Computers in Space
#44Earlier quoted context omitted.
My understanding is that certification is the bottle neck, in both time and cost. No one wants to spend the money or time to flight certify something new when something already battle tested will suffice. But your comment makes me wonder if the private sector doesn't have those certification requirements? The other differentiating factor is that the private sector is not sending multi-year (indeed multi-decade) deep…
How do you battle test a RAD prototype? Stick it in microwave like device with ionizing radiation and see how many bit-flips occur?
Re: The CPUs of Spacecraft Computers in Space
#45Earlier quoted context omitted.
The RAD750 (edit - the whole RAD family, there are newer models available) remains the standard because it's the highest performance rad-hard design available, period. If you're putting an expensive satellite in orbit for 5,10 years, the cost of the processors is insignificant compared to everything else. The real problem is that we don't have good solutions for improving the performance of rad-hard designs, so we're…
Could they not offload a lot of compute to ground based computers and submit results back via radio? Or are these real-time applications?
Re: The CPUs of Spacecraft Computers in Space
#46Re: The CPUs of Spacecraft Computers in Space
#47Space flight computers in the public sector are generally 15-20 years behind the types of hardware we commonly work with on the ground, as I think this page shows. We now have pretty capable low-power SoCs and FPGAs that we've yet to see broadly leveraged for govt. space applications. SpaceX flies Starlink with Xilinx FPGAs, while NASA and DoD are still baselining new platforms on incredibly expensive (albeit rad-har…
Ignoring that Starlink isn't very far away, I would assume NASA stuff would also have FPGAs and ASICs on them - they aren't CPUs and aren't used like them.
Re: The CPUs of Spacecraft Computers in Space
#48Earlier quoted context omitted.
My understanding is that certification is the bottle neck, in both time and cost. No one wants to spend the money or time to flight certify something new when something already battle tested will suffice. But your comment makes me wonder if the private sector doesn't have those certification requirements? The other differentiating factor is that the private sector is not sending multi-year (indeed multi-decade) deep…
How do you battle test a RAD prototype? Stick it in microwave like device with ionizing radiation and see how many bit-flips occur?
Re: The CPUs of Spacecraft Computers in Space
#49Earlier quoted context omitted.
There's three basic ways this is done: 1: By process, where chips are created with special or larger features to better resist cosmic rays. This is Expensive since they're made in very low volumes and the cost of the new fab line can't be spread among many millions of units. Instead, a few thousand chips might be made. 2: By design, where redundant systems such as triple redundant memory or voting computers are used.…
As sending mass to space becomes cheaper I wonder if shielding will become more popular... Maybe there is some oil-like material that could serve bath as a cooling bath and as a radiation shield?
Re: The CPUs of Spacecraft Computers in Space
#50Space flight computers in the public sector are generally 15-20 years behind the types of hardware we commonly work with on the ground, as I think this page shows. We now have pretty capable low-power SoCs and FPGAs that we've yet to see broadly leveraged for govt. space applications. SpaceX flies Starlink with Xilinx FPGAs, while NASA and DoD are still baselining new platforms on incredibly expensive (albeit rad-har…
> Starlink with Xilinx FPGAs, while NASA and DoD are still baselining new platforms on incredibly expensive (albeit rad-hard) PowerPC RAD750 and similar. Ignoring that Starlink isn't very far away, I would assume NASA stuff would also have FPGAs and ASICs on them - they aren't CPUs and aren't used like them.