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Overall, the combination of increased cycle efficiency, increased storage density and reduced parasitics to leads to a predicted electricity cost reduction of 10.8%.
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One possible means of increasing cycle efficiency is to flood the compressor with a large quantity of oil to achieve a quasi-isothermal compression process, in addition to using a regenerator to increase refrigerant subcooling.
The calculations indicated that there exists optimum water conditions for given ambient air conditions which will result in minimum power consumption, thereby increasing the cycle efficiency.
The lager geothermal fluid mass flow rate, the higher geothermal fluid temperature and the lower condensing pressure contribute to the increase of cycle efficiency and net power.
They proved that the existence of regenerator is relatively effective on the increase in cycle efficiency, and in some cases, it reduces the overall costs due to reduction in condenser load.
The results showed that the cycle efficiency increased up to 50%, as cycle temperature ratio increases from 6 to 8, the effective power raised to 11 kW from 5 kW at this range.
With the increase in turbine inlet temperature, the irreversibility will be increased, and thus, exergy cycle efficiency will be reduced.
Improving the mean pressure of gas increased the indicated power, cycle efficiency, shaft power, and electrical power.
The experimental results showed that at constant heat source parameters (temperature and flow rate), the turboexpander power output and cycle efficiency increased with lower cooling water temperatures.
The annual or seasonal performance evaluation of Oil Flooded Scroll Compressor (OFSC) is essential to maximize its performance and increase vapor compression cycle efficiency.
This can increase power-cycle efficiencies and reduce thermal storage costs.
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