Cycles? Operating temp range? Charge speed? Exciting press release, gpt level details
Hopefully gpt-level progress over existing tech :)
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Cycles? Operating temp range? Charge speed? Exciting press release, gpt level details
Hopefully gpt-level progress over existing tech :)
Why does 500wh/kg make electric aircraft possible? 6x less than kerosene. Is that the break even on cost if you can source very cheap electricity? Seems like it would still annihilate the payload/range.
Cool! What didn’t occur to me until I learnt it was that you get a multiplicative benefit with energy density when weight is a major factor (air transport, especially) because you need to spend less energy accelerating mass used by the battery itself.
Cool! What didn’t occur to me until I learnt it was that you get a multiplicative benefit with energy density when weight is a major factor (air transport, especially) because you need to spend less energy accelerating mass used by the battery itself.
For a battery of arbitrary weight you need to spend the same amount of energy accelerating its mass, irrespective of how much energy that battery contains.
Why does 500wh/kg make electric aircraft possible? 6x less than kerosene. Is that the break even on cost if you can source very cheap electricity? Seems like it would still annihilate the payload/range.
Where did you read that kerosene is at 3000Wh/kg? My googling says 12,000Wh/kg
The tweet thread from TFA and its replies just says that for aircraft, weight impact is important. See https://twitter.com/__bdimitrov__/status/1298753593638440960:
"260 to 400 Wh/kg should lengthen flight time by 90.8% --- assuming that 100% of the drone weight is from the battery."
But going from 400 to 500 Wh/kg adds another 39% on top of that, so 2.6x longer total
During their reign:
- solar industry: gone (in the 2000s germany had everything, domestically produced)
- wind energy: gone (well, Siemens did it themselves too)
- existing domestic electronics production: gone (Siemens had highly automated facilities producing state of the art mainboards...)
- in the pandemic masks were bought in China for billions. All the while the automation companies newly taken over by their Chinese joint venture partner were happy to show people how they built those in their chinese factories...
They call it responsible, I call it Seppuku...
Oh and of course they now want to build nuclear plants after they've shown for the last 30years that we have reached a state of more dysfunctional oligarchy than the Soviet Union ever was (they changed their system! Here the mantra is "There Is No Alternative"). I congratulate the chinese oligarchy for somehow keeping an interest in the physical world and fleecing two continents of 1200 million people for all they built and some more while their people are infighting on idiotic frontlines.
Cool! What didn’t occur to me until I learnt it was that you get a multiplicative benefit with energy density when weight is a major factor (air transport, especially) because you need to spend less energy accelerating mass used by the battery itself.
For a battery of arbitrary weight you need to spend the same amount of energy accelerating its mass, irrespective of how much energy that battery contains.
Your car may not need this as much, an aircraft does.
Cycles? Operating temp range? Charge speed? Exciting press release, gpt level details
I like this meme.
Why does 500wh/kg make electric aircraft possible? 6x less than kerosene. Is that the break even on cost if you can source very cheap electricity? Seems like it would still annihilate the payload/range.
- 130 kW engine, Lycoming_O-360 that weighs 117 kg. For comparison, an electric motor of this range would weigh 11-13 kg (at 10-12 kW/kg, [2]). That saves 100+ kg weight immediately and we can put 50+ kWh batteries instead.
- It carries up to 200 liters of kerosene ([3]), which weighs 164 kg. We can place 82 kWh of batteries instead.
- The engine consumes around 30 liters/hour ([1]), which gives us ~6.7 hours of flight time or the equivalent of 6.7*130=871 kWh for an electric-power plane.
- The fuel tank weighs about ~14 kg (source: an LLM, sorry) and gives us another 7 kWh.
So, we can put 50+82+7=139 kWh. By using modern materials, we can probably increase it to ~180 kWh, which will give us about 1.5 hours of flight time / 300 km range. This is much less than 6.7 hours, but quite practical for recreation and short flights. And it would be much cheaper to run too.
That said, still not practical for medium and long flights.
1. https://en.wikipedia.org/wiki/Lycoming_O-360
2. https://cleantechnica.com/2021/03/25/groundbreaking-h3x-moto...
3. https://www.globalair.com/aircraft-for-sale/specifications?s...
Why does 500wh/kg make electric aircraft possible? 6x less than kerosene. Is that the break even on cost if you can source very cheap electricity? Seems like it would still annihilate the payload/range.