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OCTOBER 19-20, 2012 - YMCA University of Science & Technology

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Proceedings <strong>of</strong> the National Conference on<br />

Trends and Advances in Mechanical Engineering,<br />

<strong>YMCA</strong> <strong>University</strong> <strong>of</strong> <strong>Science</strong> & <strong>Technology</strong>, Faridabad, Haryana, Oct <strong>19</strong>-<strong>20</strong>, <strong>20</strong>12<br />

1. Combined cycles boost power output and efficiency to levels that are considerably above those <strong>of</strong> steam<br />

power plants.<br />

2. Repowering, when converting an existing steam plant to combined cycle, <strong>of</strong>fers savings in capital cost as<br />

compared to new construction.<br />

3. Combined cycle, when integrated with coal gasification, holds promise in converting coal into electric<br />

power in an efficient, economical and environmentally acceptable manner.<br />

4. The air-bottoming cycle (ABC), chemically recuperated gas turbine, compressed air energy storage<br />

(CAES) and compressed air storage humidification (CASH) are among advanced concepts with promise for<br />

combined cycle applications.<br />

Reference:<br />

1. Ali A., <strong>19</strong>97, Optimum power boosting <strong>of</strong> gas turbine cycle with compressor inlet air refrigeration,<br />

Engineering for Gas Turbine and Power, Transaction <strong>of</strong> the ASME, 1<strong>19</strong>, 124-133.<br />

2. Aljundi I. H., <strong>20</strong>09, “Energy and Exergy Analysis <strong>of</strong> a Steam Power Plant in Jordan,” Applied<br />

Thermal Engineering, 29, pp. 324-328.<br />

3. Allen R. P., and Triassi R. P.,<strong>19</strong>89, GE gas turbine performance characteristics, 33rd GE Turbine<br />

State-<strong>of</strong>-the-Art Seminar, Paper No GER 3567.<br />

4. Ameri M., Ahmadi P., and Khanmohammadi S., <strong>20</strong>08, “Exergy Analysis <strong>of</strong> a 4<strong>20</strong> MW Combined<br />

Cycle Power Plant,” International Journal <strong>of</strong> Energy Research, 32, pp. 175-183.<br />

5. Anonymous, <strong>19</strong>91, Low-cost air bottoming cycle for gas turbines, Gas Turbine World, 61.<br />

6. Bolland O., <strong>19</strong>91, A comparative evaluation <strong>of</strong> advanced combined cycle alternatives, Journal <strong>of</strong><br />

Engineering for Gas Turbines and Power, 113, <strong>19</strong>0-<strong>19</strong>7.<br />

7. Borelli S. J. S., and Junior S. D. O., <strong>20</strong>08, “Exergy-Based Method for Analyzing the Composition <strong>of</strong><br />

the Electricity Cost Generated in Gas-Fired Combined Cycle Plants,” Energy, 33, pp. 153-162.<br />

8. Bruckner H., Emsperger W., <strong>19</strong>89, Retr<strong>of</strong>itting fossil fired power plant with gas turbines as a means<br />

<strong>of</strong> increasing output and efficiency, international forum on Mathematical modeling <strong>of</strong> process in<br />

energy systems, Sarajevo, Yugoslavia.<br />

9. Bruno F., Fiaschi D., Manfrida G., <strong>20</strong>00, Exergy analysis <strong>of</strong> combined cycles using latest generation<br />

gas turbines, Engineering for gas turbine and Power, Transaction <strong>of</strong> the ASME, 122, 233-237.<br />

10. Butcher C.J. and Reddy B.V., <strong>20</strong>07, Second law analysis <strong>of</strong> a waste heat recovery based power<br />

generation system, International Journal <strong>of</strong> Heat and Mass Transfer, 50, 2355–2363.<br />

11. Butcher C.J., and Reddy B.V., <strong>20</strong>07, “Second Law Analysis <strong>of</strong> a Waste Heat Recovery Based Power<br />

Generation System,” International Journal <strong>of</strong> Heat and Mass Transfer, 50, PP. 2355-2363.<br />

12. Cerri G. and Sciubba E., <strong>19</strong>87, Aero-derived reheat gas turbines steam injection into the afterburner,<br />

ASME, Advanced Energy Systems Division Publication, AES, 3(3), 7946.<br />

13. Chase D. L., Tomlinson L. O. and Bjorge R. W., <strong>19</strong>89, GE combined cycle product line and<br />

performance, 33rd GE Turbine State-<strong>of</strong>-the-Art Tech Seminar, Paper No GER 3574A.<br />

14. D. Lee, Power to spare:compressed air energy storage, Mechanical Eng., July (<strong>19</strong>91) 67-71.<br />

15. DeBaisi V., <strong>19</strong>87, Modified 501 powers l0 MW and 25 MW storage peakers, Gas Turbine World, 50-<br />

52.<br />

16. Dellenback P.A., <strong>20</strong>06, A Reassessment <strong>of</strong> the Alternative Regeneration Cycle, Engineering for gas<br />

turbine and Power, Transaction <strong>of</strong> the ASME, 128, 783-788.<br />

17. Dock S., Pang H-S, Kein S-M, <strong>19</strong>96, Exergy analysis for a gas turbines cogeneration system,<br />

Engineering for gas turbine and Power, Transaction <strong>of</strong> the ASME, 118, 782-791.<br />

18. El-Masri M. A., <strong>19</strong>86, On thermodynamics <strong>of</strong> gas turbine cycles: part 3--thermodynamic potential and<br />

limitations <strong>of</strong> cooled reheat gas turbine combined cycles, Journal <strong>of</strong> Engineering for Gas Turbines and<br />

Power, 108, 160-170.<br />

<strong>19</strong>. Ertesvag IS., Kvamsdal H. M., and Bolland O., <strong>20</strong>05, “Exergy Analysis <strong>of</strong> A Gas-Turbine Combined-<br />

Cycle Power Plant with Precombustion CO 2 Capture,” Energy, 30, pp. 5-39.<br />

<strong>20</strong>. Felster S., Favrat D., VonSpakovsky M.R., <strong>20</strong>01, The thermo economic analysis and enivironomic<br />

modeling and optimization <strong>of</strong> the synthesis and operation <strong>of</strong> combined cycle with advanced options,<br />

Engineering for gas turbine and Power, Transaction <strong>of</strong> the ASME 123, 717-726.<br />

21. Gerri G. and Colage A., <strong>19</strong>85, Steam cycle regeneration influence on combined gas-steam power plant<br />

performance, Journal <strong>of</strong> Engineering for Gas Turbines and Power, 117, 574-581.<br />

22. Gyarmathy G., <strong>19</strong>89, On load control methods for combined cycle plants, ASME Cogen-Turbo, 39-50.<br />

87

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