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Regenerative Rankine Cycle
P M V Subbarao Professor Mechanical Engineering Department Carnotization of Practicable Cycles for PGS…..
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Carnotization of Rankine Cyce
Supercritical Steam Generation Liquid Liquid +Vapour Vapour h mfuel s
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Reassessment Thru Carnot Model
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Diagnosis of Heat Addition Rankine Cycle
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Diminishing Local Work Conversion
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Diminishing Marginal Work Generation
wturbine
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Diminishing Local Efficiency
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What about a Non-Isentropic Expansion !!!
4 A Macro Carnot Cycle !!!! 3 5 T 2 6 1 7 s
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Ideal Regenerative Cycle
4 5 6 7 3 2 1
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Regenerative Turbine 4 7 T Regenerative heat transfer. Change in kinetic and potential energies are negligible Assuming a single fluid entering and leaving…
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Analysis of Regeneration Cycle
1 2 4 5 6 7 3
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Regeneration Cycle with Bleeding Turbine & Mixer (Open Feed Water Heater)
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Analysis of mixing in OFWH
Constant pressure mixing process Constraint: Maximum allowable value of h3 is p3 Conservation of energy:
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Analysis of Regeneration through OFWH
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Cost to Benefit Ratio for Regenerative Rankine Cycle
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Performance of OFWH Cycle
~ 12MPa hreg pbleed, MPa
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Clues for Optimal Location of FWH
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Comparison of Performance of Bleed & Condensing Steams
hcond hbleed Pregen, MPa
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Gross Work output of bleed Steam
~ 12MPa wbleed pregen, MPa
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Workoutput of bleed Steam
Fractional specific output Fraction of Bleed Steam
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Workoutput of bleed Steam
wbleed
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Progress in Rankine Cycle
Year 1907 1919 1938 1950 1958 1959 1966 1973 1975 MW 5 20 30 60 120 200 500 660 1300 p,MPa 1.3 1.4 4.1 6.2 10.3 16.2 15.9 24.1 Th oC 260 316 454 482 538 566 565 Tr oC -- FHW 2 3 4 6 7 8 Pc,kPa 13.5 5.1 4.5 3.4 3.7 4.4 5.4 h,% ~17 27.6 30.5 35.6 37.5 39.8 39.5 40
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Thermodynamic Analysis of A Power Plant
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Block Diagram of A Large Steam Turbine
Main Steam Reheat Steam HP IP LP Steam for Reheating OFWH 4 CFWH 3 CFWH 2 CFWH 6 CFWH 5 CFWH 1 Condenser
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