The operation of the ambient air conditioning systems (ACS) is characterized by considerable fluctuations of the heat load in response to the current climatic conditions. It needs the analyses of the efficiency of the application of compressors with frequency converters for refrigeration capacity regulation in actual climatic conditions. A new method and approach to analyzing the effectiveness of ACS cooling capacity adjusting by using the compressor with changing the rotational speed of the motor as an example have been developed, according to which the overall range of changeable heat loads is divided into two zones: the zone of ambient air processing with considerable fluctuations of the current heat load, that requires effective refrigeration capacity regulation by the compressor with frequency converters (from 100% rated refrigeration capacity down to about 50%) and not an adjustable zone of reduced refrigeration capacity below 50% rated refrigeration capacity of the compressor. The magnitudes of threshold refrigeration capacity between both zones are chosen according to the rational value of installed (design) refrigeration capacity on the ACS, required for cooling the ambient air to a target temperature that ensures the maximum annual refrigeration capacity production in actual current climatic conditions. The proposed method and approach to the analysis of the efficiency of the refrigeration capacity regulation of the ACS compressor by distributing the overall range of changes in current heat loads allows increasing the efficiency of utilizing the installed refrigeration capacity in prevailing climatic conditions.
One of the promising trends to increase the fuel and energy efficiency of gas turbines is contact cooling of cyclic air by using a twophase jet apparatus – an aerothermopressor. The rational parameters of work processes of the aerothermopressor were studied. The experimental setup was designed to simulate the aerothermopressor operation in the cooling air cycle of the gas turbine and to determine pressure losses in the aerothermopressor flow part. Based on the obtained experimental data, an empirical equation was proposed to determine the hydraulic resistance coefficient of the aerothermopressor flow part, depending on the initial pressure and the amount of water injected. The deviation of the calculated hydraulic resistance coefficient from the experimental ones is ± 25 %. The obtained results can be used in the practice of designing the aerothermopressor for gas turbine cyclic air cooling.
When using modern highly efficient internal combustion engines with lowered
potential of exhaust heat the heat recovery systems receive increasing
attention. The efficiency of combustion exhaust heat recovery at the low
potential level can be enhanced by deep cooling the combustion products
below a dew point temperature, which is practically the only possibility for
reducing the temperature of boiler exhaust gas, while ensuring the
reliability, environmental friendliness and economy of power plant. The aim
of research is to investigate the influence of multiplicity of circulation
and temperature difference at the exit of exhaust gas boiler heating
surfaces, which values are varying as 20, 15, 10?C, on exhaust gas boiler
characteristics. The calculations were performed to compare the constructive
and thermal characteristics of the various waste heat recovery circuits and
exhaust gas boiler of ship power plant. Their results showed that due to
application of condensing heating surfaces in exhaust gas boiler the total
heat capacity and steam capacity of exhaust gas boiler increases. The
increase of exhaust gas boiler heat capacity is proportional to the growth
of its overall dimensions. A direct-flow design of the boiler provides a
significant increase in heat efficiency and decrease in dimensions. In
addition, a direct-flow boiler circuit does not need steam separator,
circulation pump, the capital cost of which is about half (or even more) of
heating surface cost.
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