Difference between revisions of "Energy conversion"
From apm
m (→Makroscale) |
m |
||
Line 9: | Line 9: | ||
['''Todo:''' add infographic] | ['''Todo:''' add infographic] | ||
+ | |||
+ | Different power converters have heterogeneity residing on different size scales. | ||
== Nanoscale: molecular power converters == | == Nanoscale: molecular power converters == |
Revision as of 22:46, 26 May 2015
Atomically precise technology for energy conversion can:
- solve the enegry storage problem making renewable energy storable and fossile or nuclear fission baseload power plants unnecessary
- circumvent burning processes that unnecessarily devaluates energy
[Todo: add infographic]
Different power converters have heterogeneity residing on different size scales.
Contents
Nanoscale: molecular power converters
AP technology provides several possibilities for energy conversion that work in a mill/zip/conveyor belt like style:
- chemomechanical converters
- electromechanical converters - the link for massive and efficient energy storage that is missing today
- entropomechanical converters
- optoelectric / solarelectric
Mesoscale
thermomechanical:
diamondoid heat pump system
Used base technologies can be: microcapsules, infinitesimal bearings and thermal switching cells
Note that although the efficiency is limited by the Carnough-cycle the conversion can be near reversible.
Makroscale
thermonuclear
Complex macroscopic systems made from advanced diamondoid metamaterials may lead to significant improvements here.
Related
- wikipedia: transducer, actuators, ...
- energy transmission