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2 Heat recovery steam cycle Text

University study material for Energy Conversion A in the Energy Engineering degree programme at Politecnico di Milano. The document covers: COURSE OF ENERGY CONVERSION A 2014/2015 Prof. G. Valenti 2nd Project Heat Recovery Steam Cycle Consider a simple cycle gas turbine having the following technical characteristics: - exhaust gases mass flow rate: 657.15 kg/s - exhaust gases flue temperature: 544.6 C - electric

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University study material for Energy Conversion A in the Energy Engineering degree programme at Politecnico di Milano. The document covers: COURSE OF ENERGY CONVERSION A 2014/2015 Prof. G. Valenti 2nd Project Heat Recovery Steam Cycle Consider a simple cycle gas turbine having the following technical characteristics: - exhaust gases mass flow rate: 657.15 kg/s - exhaust gases flue temperature: 544.6 C - electric

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COURSE OF ENERGY CONVERSION A 2014/2015 Prof. G. Valenti 2nd Project Heat Recovery Steam Cycle Consider a simple cycle gas turbine having the following technical characteristics: - exhaust gases mass flow rate: 657.15 kg/s - exhaust gases flue temperature: 544.6 C - electric power at the generator: 235.57 MW - electric efficiency at generator (LHV): 33.82 % Assume a molar mass for the exhaust gases of 28.4 kg/kmol. Moreover, consider the fourth order polynomial coefficients for c0p respectively equal to: c0p= a0+a1T1+a2T2+a3T3+a4T4 where T is expressed in K and c0p in J/kgK. The aim of the project is to design a heat recovery steam cycle with one evaporation level, whose plant configuration is reported in the figure, which exploits the energy available in the gas turbine exhaust gases in order to produce additional electric energy. The following assumptions apply: Ambient temperature: 15 C ad,ST : see below Ambient pressure: 101325 Pa aux : 0.96 Maximum steam temperature: 538 C ad,pump : 0.8 Condensing pressure: 0.05 bar el,ST : 0.985 Deareator pressure: 2.0 bar o,ST : 0.995 Maximum steam pressure: 200 bar th,steam gen: 0.99 Tpp : 10 C oel,pump : 0.93 Tap : 25 C el,GT : 0.99 Tsc : 10 C o,GT : 0.995 PHRSG : 3000 Pa ad,GT : 0.925 P/Peconomiser: 10 % As far as the steam turbine isoentropic efficiency (ad,ST) is concerned, two options shall be considered: a) Constant isoentropic efficiency equal to 0.93 b) Isoentropic efficiency corrected on the basis of the outlet steam fraction. The efficiency is constant and equal to 0.93 until the steam fra ction equals 0.98. The subsequent expansion process is characterised by a nominal isoentropic efficiency (0.93) reduced by a percentage point per each percentage point of outlet liquid fraction less than 2% ,…

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