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Reference temperature effects on exergy efficiency, destruction and sustainability index are also presented.
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The exergy efficiency, exergy destruction, environmental impact and sustainability index are investigated for these systems, as well as exergoenvironmental analyses.
Effects of the operating parameters such as turbine inlet temperature and pressure on the thermal efficiency, exergy destruction rate and Second Law efficiency are evaluated.
All thermodynamic quantities, such as energy and exergy efficiencies, exergy destructions are calculated for all system components.
The efficiency of MB destruction appears to be conversely proportional to the MB size; larger MBs were more resistant to destruction, whereas in gene transfer, larger MBs exhibited more enhanced transfection efficiency because MB behavior depends not only on the US parameters but also on the MB size and physicochemical properties.
Results indicate that CPC achieves the highest PFC destruction efficiency.
Exergy efficiency, total exergy destruction, thermal efficiency, and specific capital cost are evaluated for direct vapor generation (DVG) process.
Destruction efficiency for the three VOCs decreased in the order: n-hexane > 1,2-dichloroethane > trichloroethylene.
The efficiency of grain destruction by shocks depends on the properties of the medium into which it propagates.
Exergetic efficiency and exergy destruction ratio are calculated for the whole system according to the second law of thermodynamics.
Mg-doped TiO2 polyscales showed comparatively higher photocatalytic degradation efficiency in the destruction of industrial dyes than pure TiO2.
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