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Tc is the temperature at which the Stirling cycle is rejecting heat from the cold-side heat exchanger.
Our design goal is 10 μW of cooling at 50 mK while rejecting heat to a 6 10 K heat sink.
Liquid sodium with its excellent heat transfer characteristics is able to cool the core debris by natural circulation, rejecting heat to the safety grade decay heat removal system.
The magnetically driven superfluid pulse tube refrigerator (MSPTR) could provide cooling at temperatures below 200 mK while rejecting heat at 1.6 K and contains no moving mechanical parts.
The engine, still to be developed for production, should be able to work with small flow rates and low upper temperature (100 150 °C), rejecting heat at a level still interesting for heating or cooling (with an absorption machine), that is, 50 80 °C.
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The engine receives heat (from the heat source) during the expansion at high temperature, delivers work during the reversible adiabatic expansion, rejects heat (to the heat sink) during the compression at low temperature, and receives work during the reversible adiabatic compression.
It is sent to the condenser and becomes a rejected heat to the environment.
This case corresponds to the minimization of the rejected heat rate.
The intense service provided on these systems generates substantial quantities of rejected heat energy.
Satisfaction of this objective is important because if this rejected heat rate is not used, it corresponds to heat pollution.
The heat source from solar collectors drives the ORC which rejects heat to the generator of the absorption heat pump.
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