Comment by TwiztidK
2 days ago
My company operates two Jupiter Power owned LFP batteries in the MISO market. Each of them draws .5 - 2MW constantly for the HVAC system. If the cost for sodium batteries is similar to LFP, that alone would be a reason to switch.
> If the cost for sodium batteries is similar to LFP, that alone would be a reason to switch.
Why would that be a reason to switch, given the LFP batteries typically have better operational parameters in everything except cold-weather charging?
My interpretation of TwiztidK's comment is that they could save the cost of that .5–2 MW power draw by switching to a battery chemistry with looser temperature requirements.
Thank you, I was confused as well. This makes sense. Similar fixed cost and much lower/negligible variable cost.
Cost of replacement? Cost of insurance against a fire? Cold weather performance may also be quite important, and not only somewhere in Alaska, but even in places like Dallas, that are hot in summer but cold during winter nights.
> in places like Dallas, that are hot in summer but cold during winter nights.
In this case I’d suggest underground installation. Use the Earth as an insulator and heat sink. Temperatures underground are a lot more stable and predictable.
> Each of them draws .5 - 2MW constantly for the HVAC system
That means nothing without knowing the size of your facility though.
Are your batteries 25MW/100MWH or 250MW/1000MWH.
Sodium going to reach price parity in about 15 years. Until then its strength is cold weather performance and slightly simpler supply chain.
This is exciting but what kinds of things are actually done to improve the price(like if people know the solution already then why not already do it?) and how do you determine 15 years?
Sodium hydroxide is main cost saving, but also there’s slightly cheaper form of graphite anode. So IIRC it’s 20% cost saving once new manufacturing process amortises.
Thing is - LFP process keeps getting cheaper and charts show it’s going to be 15 years until sodium reaches LFP cost.
Not an expert, but from what I read the expectation is for sodium ion batteries to get substantially cheaper than lithium, mainly due to material cost.
Lithium makes up 0.002% of the Earth's crust, meanwhile sodium is 2.36%, and there's quite a lot of it in the ocean.
https://en.wikipedia.org/wiki/Abundance_of_elements_in_Earth...
The main downside is power density, which for grid storage is not as big a deal as it is for vehicles. But it will still be some years of research on sodium batteries for the cost advantage and manufacturing scale to materialize.
AT grid scale, sodium quickly closes the gap on lithium. The safety overhead, active cooling, and physical spacing needed to control lithium’s thermal runaway risk eat away most of its energy density advantage. Plus, CATL is hitting cost parity between full sodium BESS and LFP BESS systems.
The other big reason is the longevity. LFP life span gives you about 2000-5000 cycles depending on where your application can't tolerate the capacity reduction. Sodium Ion can go to 10,000 cycles (27 years) with a 70% capacity reduction at that life.
This makes financing a large grid scale storage plant look way better to the bean counters because the investment continues to work and make money, after the 5 year amortization, typical of a corporate investment. This will be the kicker IMHO.
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SIBs have TR risks as well, no?
https://www.sciencedirect.com/science/article/abs/pii/S24058...
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I’d love a shed sized battery sitting on the corner of my property if it could give me 5-7 days of power.
I'm writing this from my off grid shack.
I have 15kwh of lifepo, and even if it weren't hooked to 4kw of solar I could still run my fridge, charge my phone, and run the fan in my fireplace for 4-6 days... longer if I dump the fridge.
It's 6U of deep 19" rack space.
So 2 x that isn't an entire shed-sized battery.
Though I'd happily have a shed-sized battery... I suspect that delivering and covering something that size would cost more than the batteries I already have, though.
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Check out https://github.com/dalathegreat/Battery-Emulator
Re use old ev batteries unmodified for battery storage
For something like a battery backup that last decades that doesn't need maintenance, maybe you could bury it out of the way (like under a deck or lawn?), maybe even under the frost line.
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That would you pay for that shed size battery?
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It's called diesel fuel.
>The main downside is power density, which for grid storage is not as big a deal
It matters less but it's still a big deal though. You need to inject the power near where you need it otherwise you have to upgrade everything between you and them, roughly speaking. So you can't put your battery in BFE where land is cheap.
Cost increases from that plus environmental and site development regs (which are always more in denser areas) screw you too. So between the upgrades and the overhead there might not be a valley of profitability because all the sites you could toss a battery on and the sites where someone who has a more $$ use case than you will outbid you on the raw land.
So the end result is you wind up having to shoehorn a bunch of little developments into small crappy parcels but then the fixed costs of development come back to bite you so density matters there because the more jiggling electrons you can pack in the more revenue you can have to offset your fixed costs.
That said, anything that lets you tell the NFPA, the environmentalists and the local screeching Karens to take their setbacks and shove them hugely improves density, especially on small sites, so the reduction in cooling needs and runaway protection that sodium gets you might make it denser once the tech is fully vetted. Every foot you can shave off the effective footprint of a battery (after accounting for fire setbacks, service space, etc) hugely increases the number of sites that are developable.
> You need to inject the power near where you need it otherwise you have to upgrade everything between you and them
Or you install them near your solar/wind farm (or where the power connects to shore, if it’s offshore). If it’s a shore install, you might run a desalination side business when you have surplus energy.
A dystopian possibly impractical dream.. imagine a pyramid like structure in every neighborhood, made from blocks of such cheap sodium ion batteries, the outside of the pyramid is covered in soil and greens, the top which could even be a windmill. The green space is for walking around, kids playing, a few bike trails, whatever fun. The whole neighborhood is power buffered through this pyramid. The national power grid only needs to supply these pyramids.. with renewable energy. The houses, parking lots etc have solar panels that feed into the pyramid.
If you make them with Lithium batteries every neighbourhood can have their own volcano.
I’ll show myself out.