Like most houses with solar, our house is capable of generating a lot
of power, and it's basically useless [1] in a disaster. If the grid
is down, the panels shut down automatically. This is a lot of value
lost, since in a long-term disaster, electricity would be incredibly
valuable (
air
cleaning, gas boiler or a tiny bit of resistive heat, sump pump,
cooking, refrigeration, tools). When we installed a
second round of
solar in 2024 we considered either a battery backup or "best
effort when the sun is shining" power. They priced out at many
thousands of dollars and we decided it wasn't worth it, but recently
three things have changed my mind:
Massachusetts has the ConnectedSolutions
program, where you can get paid to send battery power to the grid
during times of very high demand. With 10 kWh of storage that I'm ok
draining fully this would be about $1k/y. [2] I don't care about
reserving capacity because I'm trying to reduce risk from serious
disasters lasting weeks or more, and losing power until the next
morning is more of an inconvenience.
It also has HEAT
loans, which offer seven-year 0% financing for eligible energy
improvements, including installing batteries. Though our family has a
$12.4k cap here because we used some on heating improvements in 2015.
As I touched on a
few days ago, when I think about how AI is likely to impact the
world I'm putting increasing probability on a messy middle path. That
is, regardless of whether the long-term outcome is good or bad, we
might have very large scale disruptions in the near future. I want to
have power even if the grid becomes unreliable or is down for an
extended period.
Getting a 10 kWh system installed looks like it would cost about
$16.2k (for the Enphase
10C, which works well with the existing panels' IQ8
microinverters). Since our property is only eligible for $12.4k
available for a HEAT loan, we'd be spending $3.8k up front, and then
~$800/y after incentives during the next seven years. [3] After that
we'd make some money, but this is definitely not competitive as
long-term investments go and I don't think money earned that far out
helps much. Overall, this seems likely worth it for us for reducing
our personal risk in future long-term disasters, though it's still a
lot of money and I'm not fully decided yet.
[1] Not quite useless: panels have standard MC4 connectors so you
could go up on the roof (yikes) in the dark so you don't get shocked
(yikes!) and connect them to cables that would power a solar
generator (portable power station with solar input). And then in
our specific case we do also have a small amount
of best-effort solar on one side of our roof.
[2] They pay $275 per kW delivered, averaging across each summer's
events. A 10 kWh battery emptied over a ~2.5hr average event is
~3.6kW. At $275/kW that's ~$1k.
[3] The rate is only guaranteed for the first five years, so it could
be a bit worse than this in years 6 and 7.
Like most houses with solar, our house is capable of generating a lot of power, and it's basically useless [1] in a disaster. If the grid is down, the panels shut down automatically. This is a lot of value lost, since in a long-term disaster, electricity would be incredibly valuable ( air cleaning, gas boiler or a tiny bit of resistive heat, sump pump, cooking, refrigeration, tools). When we installed a second round of solar in 2024 we considered either a battery backup or "best effort when the sun is shining" power. They priced out at many thousands of dollars and we decided it wasn't worth it, but recently three things have changed my mind:
Massachusetts has the ConnectedSolutions program, where you can get paid to send battery power to the grid during times of very high demand. With 10 kWh of storage that I'm ok draining fully this would be about $1k/y. [2] I don't care about reserving capacity because I'm trying to reduce risk from serious disasters lasting weeks or more, and losing power until the next morning is more of an inconvenience.
It also has HEAT loans, which offer seven-year 0% financing for eligible energy improvements, including installing batteries. Though our family has a $12.4k cap here because we used some on heating improvements in 2015.
As I touched on a few days ago, when I think about how AI is likely to impact the world I'm putting increasing probability on a messy middle path. That is, regardless of whether the long-term outcome is good or bad, we might have very large scale disruptions in the near future. I want to have power even if the grid becomes unreliable or is down for an extended period.
Getting a 10 kWh system installed looks like it would cost about $16.2k (for the Enphase 10C, which works well with the existing panels' IQ8 microinverters). Since our property is only eligible for $12.4k available for a HEAT loan, we'd be spending $3.8k up front, and then ~$800/y after incentives during the next seven years. [3] After that we'd make some money, but this is definitely not competitive as long-term investments go and I don't think money earned that far out helps much. Overall, this seems likely worth it for us for reducing our personal risk in future long-term disasters, though it's still a lot of money and I'm not fully decided yet.
[1] Not quite useless: panels have standard MC4 connectors so you could go up on the roof (yikes) in the dark so you don't get shocked (yikes!) and connect them to cables that would power a solar generator (portable power station with solar input). And then in our specific case we do also have a small amount of best-effort solar on one side of our roof.
[2] They pay $275 per kW delivered, averaging across each summer's events. A 10 kWh battery emptied over a ~2.5hr average event is ~3.6kW. At $275/kW that's ~$1k.
[3] The rate is only guaranteed for the first five years, so it could be a bit worse than this in years 6 and 7.