It still doesn’t make sense to me. Technological progress will likely only accelerate. These will be outdated within 2 years easily, and you can’t even recover the chips. The only benefits are the unlimited power without the bottlenecks on earth, lack of political pressure of course, and the low latency for processing satellite data since it doesn’t need to be sent down to earth. These don’t seem beneficial enough to waste this money. It would be good to hear from someone who knows more about this.
Not just that, you’re wasting so much compute due to the risk of bit flips. That the case for any hardware you currently have in space, you need some correction mechanism which generally mean computing the same thing multiple times just to ensure correctness. And the cooling story without an atmosphere is also another obvious pretty massive problem. And the risk of losing an entire payload if the rocket fails. Etc…
I see it exactly like Hyperloop, a cynical attempt at putting political pressure. Hyperloop was a known absurd concept that Musk released to block the development of public transport in the US. And that worked. For compute in space, it’s a way to be able to say to municipalities and states „if you don’t let us use the land how we want, with no oversight, no problem, we won’t negotiate with you and just go to space“
I'm guessing this is part of the whole idea; to get data before its actually doable, and the cost is worth the early data to help with future development
GPUs aren’t becoming outdated in practice. An H100 still rents for something like $3/hour. The only reason to take them offline today would be due to limited data centre capacity. In space, that doesn’t apply.
For now, at least, this market doesn’t behave like the one for CPUs which are more fungible and general purpose.
Rather than thinking about the value of a GPU over time, it’s more useful to think about the value of a model (or generation of models) that will run on the GPU.
Sol 6 launched last week. People will build products/agents/systems on Sol 6. Many of those will end up staying on that model for the lifetime of the end product, which means there will be long-term demand for the model, and that means long-term demand for the GPU set that the model runs on.
For now, at least, models are tuned to a specific GPU and don’t move to the newest hardware very easily.
At the end of the day, will the lifetime value of a GPU exceed the cost of launching it into space? That’s TBD. But there’s growing evidence it might.
Elon lets out a fart and everyone's running after it. This is another misguided attempt to pump-up their share price or give clueless investors the feeling that Google is leading the A.I. pack.
Orbital data centers are a stupid idea conjured up by Musk when he was taking mescaline or ketamine. Anyone with half a brain knows this doesn't make sense.
This definitely feels like Hyperloop, but for data centers instead - a really cool idea that falls apart the moment it meets contact with reality. The most bizarre thing is how any of this and the Hyperloop got any amount of funding and development beyond just an initial feasibility report.
> The satellite, dubbed MVP, is about the size of a refrigerator. Inside, it has four of Google’s custom TPU AI accelerators, which are used to train AI models and run inference to generate tokens for AI workloads.
Yeah, this is a science-fair project. They threw some cards in a box and are paying someone to launch it to generate idiotic news articles.
Its running for 15 minutes and then must shut down for a long time to cool down. Thats exactly why those "science-fluencers" said its a dumb idea. This is far away from proving that its a viable idea.
> The cooling system will only be able to operate in brief spurts of about 15 minutes. After that, the TPUs need to shut down to allow the radiators to catch up.
What you said was just a statement, not something with evidence or reasoning for why it should work. How large of an area is required to dissipate that much heat in a vacuum at a constant rate?
1m² of perfect black body in vacuum at 343K should emit about 700W, according to the Stephan-Bolzmann formula. Should do for a consumer GPU, or an H100.
Since the heat distribution over the radiator is not ideally uniform, I suppose that the emitted power will be less, if they want to keep the chips at 70C.
Since the temperature has the fourth power in the formula, having the GPU work at 100C would increase the radiator efficiency quite a bit.
I am curious about the physical layout for moving the highly-concentrated heat in the GPUs out to the diffuse radiation panels required to keep them at operating temperature. Would it need something like a liquid cooling loop coupled with large radiators?
and also curious how it's cheaper to send all the expensive silicon to space and throw it away when its obsolete compared to just racking it in the midwest somewhere?
That's nit-picking. It's one of the first steps towards this goal. Why would any sane engineer put a complete orbital data centre prototype into space without having any data on how most crucial piece of equipment would perform in the target environment?
First they figure out whether they could get away with using unmodified "off-the-shelf" hardware they already have and how to cool it.
By the time they have a working design, it'll already be a small group of such satellites basically being a fully operational orbital data centre, albeit a rather small one. So yeah, I think there's a point to calling this a test for an "orbital data centre", just like Apollo 1-A was a test for a manned Moon mission despite being suborbital and uncrewed.
Genuine question: why are there so many people up-in-arms on orbital data centers? Like they have a personally vested interest in ensuring their opinions on failure are correct? There are many people on HN that despise it and say it will not and will never work, but here we are, they are flying them up to space and presumably, will start working soon.
Because when things are getting built that obviously should not work, in one's view of the world, it threatens that view of the world. Finding out that your common sense and understating of basic physics and economics has a sizable hole is pretty unpleasant for most people.
But if the project fails, then the view of the world is proved correct again, which feels moderately pleasant.
It's like watching flat earthers launch yet another experiment to prove the earth is flat. We already know the outcome, including the subsequent press release that has the words "very promising" and "flawed assumptions" in the same sentence. But this "flat earther" has billions to burn and enough clout to keep investors and the media in the carousel for the better part of the next few years.
> Like they have a personally vested interest in ensuring their opinions on failure are correct?
I haven't commented on this topic before (here or elsewhere) but I don't understand your surprise at people being critical. Everyone has a vested interest in keeping the planet usable. We could try lots of things in space, like agriculture or power production. It takes a lot of fuel to push a usable kilogram of stuff into a low orbit (laser propulsion and spin launches aren't quite there yet), so moving operations into orbit has various major downsides. So long as nobody states an upside, yeah, my mind is quite blown about wasting investor money on this. Even when not considering the opportunity cost of that used money (alternative positive uses), it seems like burning the equivalent amount of cash in a bonfire or otherwise disappearing the money would be a lesser evil
>... but here we are, they are flying them up to space and presumably, will start working soon.
No, this isn't "here we are". This is not an orbital data center, this is just something that will test TPU cooling functionality in orbit for only 15 minutes at a time.
This argument sounds reminiscent of "this is not AGI/ASI". Arguing over definitions is arbitrary. This is an operational data-center that is processing data on TPUs. That alone qualifies as an orbital data center.
Whether we like AI or not, LLMs did open up a horde of use cases that were impossible a few years ago. Orbital data centers are not like that: their value proposition is that they will provide the exact same service already offered by land-based data centers. So the only way for it to make economical sense is if it's cheaper. It's not.
It's more like blockchain than LLM: there's no clear value proposition and you have to squint really hard to see any perceived benefit.
Anyone managing a terrestrial data center that had this level of performance and called it a “data-center” much less “operational” would be fired for cause.
And ah, I see you’ve been dancing around with definitions and goomba fallacies around this thread. You definitely asked your question in good faith.
The hardest thing about AI datacenters is power. The second hardest thing is cooling. All of these are physical challenges and exponentially harder in space.
So why do it? Because datacenter regulations on earth are becoming a referendum by proxy on AI. "Texas has no jurisdiction in low earth orbit!" is the general idea. Critics point out that this is a transparent move to moot the argument over AI, and that it doesn't even work in principle, due to above mentioned physics.
It’s simply a stupid idea that indeed will not work, and this little tech demo is mostly a proof of that. It’s awful to many people, especially engineers, to witness incompetence, waste, and inefficiency. Especially when we’re talking about investments of billions of dollars and orbital launches.
Oh I'm just against it because I love the night sky and I don't want it littered with even more trash from obscenely rich American oligarchs. This tech doesn't help me, or anyone that is not in power. Instead it (and light pollution, but that at least not everywhere on the planet) destroys one of the few things that is there, commonly available for everyone to enjoy: the majestic view of the night sky.
Everything about technological progress is like this. It props up their ego, and they risk nothing. The man in the arena is always dangerously close to being the villain.
Actually, some of us predicted exactly what’s about to happen: these companies will launch a handful of GPUs into space, declare that it’s “working”, and then continue to build out terrestrial data centers at orders of magnitude faster rate.
No one is saying it’s impossible to put operating GPUs in space. People are saying that the economics of this make zero sense, and there seem to be hard physical limits for how much you can change parts of the reasons why. This test does absolutely nothing to disprove that.
Are you moving the goalpost? There are other people in this thread right now that are stating exactly that running orbital GPUs in space will not physically be possible (heat limits, etc).
Soon the musical chairs game will come to a screeching halt. Interest rates are skyrocketing and not even a Presidential decree will make them come down.
To me it's clear the U.S. is heading for a default. Instead of toning down the deficit Trump made it much worse with his "Big Beautiful Bill" and is bankrupting the country.
What happens next is anyone's guess, but it won't be pretty.
Because it’s so fucking stupid for the stated benefits that you get
- people getting nerd sniped and explaining why it’s wrong
- people who assume it isn’t wrong given the level of competence these groups have demonstrated already and are incensed by what they feel are bald faced lies to pump up stock prices like has been done before
- people who think this is some conspiracy(rightly or wrongly) to surreptitiously get weapon platforms or other support for weapon platforms into space.
The majority of tradeoffs for data centers make them always better on the ground. Just due to maintenance and heat alone.
> There are many people on HN that despise it and say it will not and will never work, but here we are, they are flying them up to space and presumably, will start working soon.
This is the one Google says they can run in 15 minute bursts and I’ve yet to find where they document what the cooldown period is before they can run again.
Also 99% of people saying it’ll never work are talking economically, not that theoretically you could get something up that works in the laws of physics.
Why are you so mad about orbital data centers? Your language is full of hate and vitriol. Let people build things that other people say are impossible or infeasible, find out if they work, turn out they dont work, then make improvements. If someone proposed the combustion engine to you in 1700 Im sure you would reply the same negative way.
Debatable. It's not economically viable under current economics. There's an engineering problem that's solvable in the short term, e.g. the cooling issue.
The economics of mass production of satellites has been demonstrated to work out just fine (see Starlink) and what's missing is the same shift when it comes to space launches. Now I'm not saying that this is going to happen, but that's what the whole purpose of Musk's Starship/Superheavy rocket is.
If - and that's a big if! - the whole Starship concept works out, it'd drastically change the economics of putting satellites in LEO and the whole idea instantly becomes much less stupid.
So basically it's a bet on Starship working as advertised in the very near future. If it does, data centres in space (e.g. in the form of laser-linked satellite swarms) become a compelling alternative to terrestrial data centres. No regulatory issues, no infrastructure problems (power, water, ...), no risk of sabotage or drone strikes (see AWS in Middle East), and no land leases required.
Once you add up all these risks and costs and put them next to the launch cost that SpaceX envisions for Starship, the concept suddenly sounds quite plausible.
I'm sceptical myself - though for very different reasons - but I wouldn't call it an outright scam. It all hinges on one thing: Starship has to work. Cheaply, reliably, and within the next couple of years. If it turns out to be less capable, significantly more expensive, less reliable than F9 and F9 Heavy, or not ready until the mid-2030s, the concept is dead.
The reasons against doing this is obvious. Is there any coherent description of why someone would think it is a good idea? And I don't mean, like, delusional reasons, but an actually rational argument for "here is where it might work out and we need to try and measure to find out".
Google's blog post (https://blog.google/innovation-and-ai/models-and-research/go...) describes the goal of the launch as "designed to gather in-orbit data on how our TPUs handle the physical stress of spaceflight and the radiation and thermal extremes of space." That doesn't sound like a bad idea, obviously it might be useful to have dedicated machine learning hardware on spacecraft or satellites for local processing. Maybe they just framed it as an orbital data center test for marketing, because that's a trendy topic and sounds more newsworthy than "hardware durability test"?
I've heard arguments that cooling will be a hard technical challenge and, given current equipment weights and launch costs, space data centers would be uneconomical. But is there an obvious reason this would be impossible?
Most technologies start out looking hard and economically infeasible. But if you invest in development, you're able to get a few breakthroughs, and suddenly, it's viable.
If they do get things to work, the benefits seem obvious: 24/7 access to clean energy, not upsetting the people who'd rather not have a datacenter next door (or in the same state), and plenty of space to scale up.
Literally no one is saying it’s impossible. Of course it’s possible, and it may one day even be economically viable.
But Elon’s claim that by 2027, the cheapest place to put data centers will be in space? Yeah, that’s impossible. But then again, only a fool would believe him at this point.
I highly doubt that space data centers will be more advantageous than terrestrial before 2035, and that’s very optimistic.
I agree with you about Elon Musk's claims, but that's not what we're discussing here.
If it takes until 2035 or even 2045 for space data centers to have an economic advantage, it still seems like a good investment for someone in Google's position.
I don't think it will even come close to being economically feasible. But the main arguments are that you get a lot more and constant solar power and you avoid permitting/regulations on earth.
The obvious argument in favor that I see: Seizing such a data center is exceedingly difficult and destroying one would be a major international incident
It needs a single use case to justify its existence. And I am pretty sure it has one.
The question is will google reveal it? Probably not.
Even as some sort of failsafe compute for when some meteor hits the earth - already enough for a government to pay 10000x premium for it and it will bring in cash.
Obviously this is not intended to play in the same league as common enterprise datacenter.
No one is going to give a shit about compute if an asteroid hits us. If we survive it, it’ll turn into a resource war within weeks. We’ll be back to the Stone Age.
The only feasible thing I can see is jurisdiction related and that’s not something we should be encouraging. I mean we’ll just end up jamming data centres from the ground.
Considering half the planet stops working when us-east-1 has a crappy day, no.
Also datacentre in space, even if it works, will have a statistical failure model. At the moment that failure model is based on throwing another one up there because fixing stuff is expensive and risky.
So I ask you what happens when your model starts hitting the tail end of the failure curve and can't launch more capacity because associated asteroid strike driven economic failure cripples your launch capacity.
I see it exactly like Hyperloop, a cynical attempt at putting political pressure. Hyperloop was a known absurd concept that Musk released to block the development of public transport in the US. And that worked. For compute in space, it’s a way to be able to say to municipalities and states „if you don’t let us use the land how we want, with no oversight, no problem, we won’t negotiate with you and just go to space“
I'm guessing this is part of the whole idea; to get data before its actually doable, and the cost is worth the early data to help with future development
For now, at least, this market doesn’t behave like the one for CPUs which are more fungible and general purpose.
Rather than thinking about the value of a GPU over time, it’s more useful to think about the value of a model (or generation of models) that will run on the GPU.
Sol 6 launched last week. People will build products/agents/systems on Sol 6. Many of those will end up staying on that model for the lifetime of the end product, which means there will be long-term demand for the model, and that means long-term demand for the GPU set that the model runs on.
For now, at least, models are tuned to a specific GPU and don’t move to the newest hardware very easily.
At the end of the day, will the lifetime value of a GPU exceed the cost of launching it into space? That’s TBD. But there’s growing evidence it might.
Orbital data centers are a stupid idea conjured up by Musk when he was taking mescaline or ketamine. Anyone with half a brain knows this doesn't make sense.
Yeah, this is a science-fair project. They threw some cards in a box and are paying someone to launch it to generate idiotic news articles.
Curious to see if the experiment changes our understanding of space radiators at a certain scale for non-space exploration purposes.
Edit: @kieranmaine thanks! Wonder how long they have to wait to turn them on again.
> The cooling system will only be able to operate in brief spurts of about 15 minutes. After that, the TPUs need to shut down to allow the radiators to catch up.
Sorry for the snark but that has the same level of credibility as your comment.
If Google did not exist, I don't think the world would be noticeably different.
It's a ground-targeting offensive system to be clear, not just missile defense.
Since the heat distribution over the radiator is not ideally uniform, I suppose that the emitted power will be less, if they want to keep the chips at 70C.
Since the temperature has the fourth power in the formula, having the GPU work at 100C would increase the radiator efficiency quite a bit.
and also curious how it's cheaper to send all the expensive silicon to space and throw it away when its obsolete compared to just racking it in the midwest somewhere?
First they figure out whether they could get away with using unmodified "off-the-shelf" hardware they already have and how to cool it.
By the time they have a working design, it'll already be a small group of such satellites basically being a fully operational orbital data centre, albeit a rather small one. So yeah, I think there's a point to calling this a test for an "orbital data centre", just like Apollo 1-A was a test for a manned Moon mission despite being suborbital and uncrewed.
But if the project fails, then the view of the world is proved correct again, which feels moderately pleasant.
I haven't commented on this topic before (here or elsewhere) but I don't understand your surprise at people being critical. Everyone has a vested interest in keeping the planet usable. We could try lots of things in space, like agriculture or power production. It takes a lot of fuel to push a usable kilogram of stuff into a low orbit (laser propulsion and spin launches aren't quite there yet), so moving operations into orbit has various major downsides. So long as nobody states an upside, yeah, my mind is quite blown about wasting investor money on this. Even when not considering the opportunity cost of that used money (alternative positive uses), it seems like burning the equivalent amount of cash in a bonfire or otherwise disappearing the money would be a lesser evil
>... but here we are, they are flying them up to space and presumably, will start working soon.
No, this isn't "here we are". This is not an orbital data center, this is just something that will test TPU cooling functionality in orbit for only 15 minutes at a time.
It's more like blockchain than LLM: there's no clear value proposition and you have to squint really hard to see any perceived benefit.
And ah, I see you’ve been dancing around with definitions and goomba fallacies around this thread. You definitely asked your question in good faith.
So why do it? Because datacenter regulations on earth are becoming a referendum by proxy on AI. "Texas has no jurisdiction in low earth orbit!" is the general idea. Critics point out that this is a transparent move to moot the argument over AI, and that it doesn't even work in principle, due to above mentioned physics.
Look at the article: they threw 4 cards in a box and launched it. It works for 15 minutes and then it has to snooze for who-knows-how-long.
No one is saying it’s impossible to put operating GPUs in space. People are saying that the economics of this make zero sense, and there seem to be hard physical limits for how much you can change parts of the reasons why. This test does absolutely nothing to disprove that.
Economics are another matter.
To me it's clear the U.S. is heading for a default. Instead of toning down the deficit Trump made it much worse with his "Big Beautiful Bill" and is bankrupting the country.
What happens next is anyone's guess, but it won't be pretty.
- people getting nerd sniped and explaining why it’s wrong
- people who assume it isn’t wrong given the level of competence these groups have demonstrated already and are incensed by what they feel are bald faced lies to pump up stock prices like has been done before
- people who think this is some conspiracy(rightly or wrongly) to surreptitiously get weapon platforms or other support for weapon platforms into space.
The majority of tradeoffs for data centers make them always better on the ground. Just due to maintenance and heat alone.
> There are many people on HN that despise it and say it will not and will never work, but here we are, they are flying them up to space and presumably, will start working soon.
This is the one Google says they can run in 15 minute bursts and I’ve yet to find where they document what the cooldown period is before they can run again.
Also 99% of people saying it’ll never work are talking economically, not that theoretically you could get something up that works in the laws of physics.
The economics of mass production of satellites has been demonstrated to work out just fine (see Starlink) and what's missing is the same shift when it comes to space launches. Now I'm not saying that this is going to happen, but that's what the whole purpose of Musk's Starship/Superheavy rocket is.
If - and that's a big if! - the whole Starship concept works out, it'd drastically change the economics of putting satellites in LEO and the whole idea instantly becomes much less stupid.
So basically it's a bet on Starship working as advertised in the very near future. If it does, data centres in space (e.g. in the form of laser-linked satellite swarms) become a compelling alternative to terrestrial data centres. No regulatory issues, no infrastructure problems (power, water, ...), no risk of sabotage or drone strikes (see AWS in Middle East), and no land leases required.
Once you add up all these risks and costs and put them next to the launch cost that SpaceX envisions for Starship, the concept suddenly sounds quite plausible.
I'm sceptical myself - though for very different reasons - but I wouldn't call it an outright scam. It all hinges on one thing: Starship has to work. Cheaply, reliably, and within the next couple of years. If it turns out to be less capable, significantly more expensive, less reliable than F9 and F9 Heavy, or not ready until the mid-2030s, the concept is dead.
Most technologies start out looking hard and economically infeasible. But if you invest in development, you're able to get a few breakthroughs, and suddenly, it's viable.
If they do get things to work, the benefits seem obvious: 24/7 access to clean energy, not upsetting the people who'd rather not have a datacenter next door (or in the same state), and plenty of space to scale up.
But Elon’s claim that by 2027, the cheapest place to put data centers will be in space? Yeah, that’s impossible. But then again, only a fool would believe him at this point.
I highly doubt that space data centers will be more advantageous than terrestrial before 2035, and that’s very optimistic.
If it takes until 2035 or even 2045 for space data centers to have an economic advantage, it still seems like a good investment for someone in Google's position.
And FWIW, there are quite a few people claiming that space data centers would "go against the laws of physics", etc. For example: https://news.ycombinator.com/item?id=49838152
https://en.wikipedia.org/wiki/Golden_Dome_(missile_defense_s...
It's a multi-trillion dollar program, with Bezos/Musk involvement.
At best it’ll direct a lot of public funds into musk’s and trump’s pockets.
You should probably short UFO, SPCX, ASTS, RKLB, LMT, NOC, RTX etc.. if you believe that.
Let me know when Raytheon / BAE / Lockheed Martin / General Dynamics get in on it.
Negative on: Risk, cost, thermals, radiation, maintenance, latency, complexity, environmental.
The only win they have is making more outlandish shit to inflate value until it goes snap. One trick pony.
Even as some sort of failsafe compute for when some meteor hits the earth - already enough for a government to pay 10000x premium for it and it will bring in cash.
Obviously this is not intended to play in the same league as common enterprise datacenter.
No one is going to give a shit about compute if an asteroid hits us. If we survive it, it’ll turn into a resource war within weeks. We’ll be back to the Stone Age.
The only feasible thing I can see is jurisdiction related and that’s not something we should be encouraging. I mean we’ll just end up jamming data centres from the ground.
Also datacentre in space, even if it works, will have a statistical failure model. At the moment that failure model is based on throwing another one up there because fixing stuff is expensive and risky.
So I ask you what happens when your model starts hitting the tail end of the failure curve and can't launch more capacity because associated asteroid strike driven economic failure cripples your launch capacity.
It's just stupid entirely.