4 ms·
> > You could do the same thing with Lithium Ion, it would just be cost prohibitive... 10x as expensive, supposedly. > Lithium ion can do ‘100 hours’ as well
by coder543 5y ago
> > You could do the same thing with Lithium Ion, it would just be cost prohibitive... 10x as expensive, supposedly.
> Lithium ion can do ‘100 hours’ as well
Did you reply to the wrong person? I already addressed your entire comment several different ways in my original comment, and you didn't address anything I wrote in mine, as far as I can tell. Maybe I'm not the best at explaining things?
> 100 hours... of what?
Cost effective energy storage solutions that can discharge for 100 hours at maximum operating output. "Cost effective" is absolutely the key factor. Lithium ion is not currently cost effective at such durations. It is cost effective at about 4 hours, but some sources will say anywhere from 2 to 8 hours.
If you aren't familiar with a particular industry, it's perfectly logical for that industry's shorthand to sound like total nonsense. You (and most of HN) are not the target audience for a statement like "100 hour battery". Grid scale energy storage operators are the target audience, and they understand what that means. It means slow batteries, which also implies cheap, because no one would buy slower battery technology if it weren't a lot cheaper. Form Energy explicitly declares the technology to be 10x cheaper. We'll see if that holds up in reality.
Someone unfamiliar with computer science who overhears a conversation about "garbage collection" would likely be very confused. "Computers don't emit garbage! RAM is reusable, how could bytes of RAM become garbage?" But, obviously garbage collection is a real thing with computers, even if it sounds like nonsense to someone outside the industry who just knows enough to know what RAM is.
Here's an article[0] that talks about long duration energy storage, and they even mention Form Energy. Relevant quote from the article:
> Lithium-ion batteries have absolutely dominated new storage construction in recent years. But they rarely can deliver their full power capacity for more than four hours — that’s what people mean when they say “discharge duration.” Batteries technically can go for longer, but it generally costs more than it’s worth in today’s market dynamics.
One more choice quote:
> Batteries cannot yet compete with gas plants in providing prolonged power for multiple days. But a cost-effective 24-hour duration storage system could handle longer demand peaks, and a 48-hour system could do even more.
It's all about cost effectiveness.
[0]: https://www.greentechmedia.com/articles/read/so-what-exactly-is-long-duration-storage-explained https://www.greentechmedia.com/articles/read/so-what-exactly...
- lazide 5y agoHuh, that is almost as ridiculous as using nameplate disk capacity units that sound the same, but are are different than the ones used and reported by the operating system. In your first comment you seemed to be talking right by the person, but I guess not. Thanks for the correction.
- warble 5y agoBattery engineer here. 100 hours doesn't mean much by itself
- 2Gkashmiri 5y agohey battery engineer. can you help me out with this stupid solar home battery confusion i have been having? 1 battery system is 12volt X 180AH =2160WH. (lets say lead acid) 2 battery system is 48Volt x 45AH=2160WH(Lets say this is lithium) if i am using an inverter to convert DC to AC viz 220volt where my AC appliances run, does it matter on the battery side? if i have a load, say a pc running 1 KWH, will these two battery systems run for 2 hours both (assuming discharge rate is same, i know i know, just calculating) i am doing this because solar batteries are being sold at 48Volt x small AH to come up with KWH but at the same time lead acid are only sold at 12Volt but high AH. what if i buy 7AH 12Volt x 25 batteries to get same KWH? does battery voltage or amperage matter when converting to AC? how does that work? oh, BTW, i have a 5.2KWH solar array that is grid tied
- lazide 5y agoNot the parent poster, but do have some familiarity here. Higher battery voltage == less copper, smaller wires for the same wattage. Sometimes also a bit more efficiency too (less resistance, smaller absolute voltage drop moving current around). Your units are a bit messed up load wise - is your computer running at 1 kWh per hour? For how long? (Yeah, that is confusing - but that would be the energy used to power a 220 volt, 4.5 amp load for an hour, every hour). One of the confusing things with some of these units is kWh is a measure of energy, even though it has a time component in the name (kWh can be directly converted to joules). It isn’t ACTUALLY a measure of power (aka energy over time), even thought it implies it is because it has ‘hour’ in the name. Power is energy over time. So you have an absolute number for storage (your battery in this example can store 2.1kWh of energy - 2.1kWH is equivalent in energy to 2100 watts drawn out over an hour). Your inverters, panels, chargers, etc. will be rated for a level of output POWER (energy over time) then will draw/convert that (say 4 or 8 kw) to/from the batteries. You can easily have an inverter that can draw down those batteries super fast (say will pull down 8kw continuous, so you’d get less than 15 minutes on that battery - if it doesn’t get damaged or explode), or one that draws power out slowly (say 200 watts max) to make it last 10 hours say. Same with your chargers, etc. You’re solar panels are almost certainly not rated in kWh, but kw- aka maximum instantaneous power they would be producing at any moment under ideal conditions, not aggregate energy they would be producing or storing over time. This is important because they don’t store power and actual energy production will depend on a lot of factors, like amount of time in the sun, etc.