DESIGN AND REAL FLUID MODELLING OF MICRO-CHANNEL RECUPERATORS FOR A NOMINAL 100MW CLASS RECUPERATED RECOMPRESSION BRAYTON CYCLE USING SUPERCRITICAL CARBON DIOXIDE
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Schmitt, Joshua
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Univ Cent Florida, Lab Turbine Aerodynam Heat Transfer & Durabil, CATER, Orlando, FL 32816 USAUniv Cent Florida, Lab Turbine Aerodynam Heat Transfer & Durabil, CATER, Orlando, FL 32816 USA
Schmitt, Joshua
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Amos, David
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Univ Cent Florida, Lab Turbine Aerodynam Heat Transfer & Durabil, CATER, Orlando, FL 32816 USAUniv Cent Florida, Lab Turbine Aerodynam Heat Transfer & Durabil, CATER, Orlando, FL 32816 USA
Amos, David
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Kapat, Jayanta
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[1] Univ Cent Florida, Lab Turbine Aerodynam Heat Transfer & Durabil, CATER, Orlando, FL 32816 USA
The goal of this study is to design and assess the effectiveness of a micro-channel recuperator using supercritical carbon dioxide as a working fluid. A one-dimensional thermal analysis is performed for a micro-channel recuperator suitable for a Brayton cycle with a nominal 100 MW class turbomachine. The impact of supercritical carbon dioxide properties near the critical point on the thermal performance of the recuperator is studied in detail. The cycle parameters are first obtained from an overall cycle analysis. Two adjacent flow passages with square cross-section in counter-flow Configuration are considered for this analysis along with appropriate symmetry. The high pressure of SCO2 is also addressed and the structural stresses on the micro-channel walls are analyzed. Only the axial temperature variations in the hot;stream and the cold stream are considered in the one-dimensional analysis. Each channel is discretized in the axial direction. Axial conduction through the wall is included in the,:energy balance. Of particular interest in this analysis is the variation of transport properties of the CO2 working fluid as thermodynamic conditions approach the critical point. These property variations are provided to the computer code through the REFPROP database. Over the length of the heat exchanger local changes in Reynolds number, Nusselt number, and heat Tansfer coefficient are charted. From the results of the heat transfer calculations, the log mean temperature difference and neat exchange effectiveness of the heat exchanger is calculated. Jsing the code to produce multiple results, the optimum heat exchanger design is found. Recommendations on the manufacturing method of a micro-channel recuperator are made.