Profile
International Journal of Earth & Environmental Sciences Volume 2 (2017), Article ID 2:IJEES-139, 11 pages
https://doi.org/10.15344/2456-351X/2017/139
Review Article
Exergy as Measure of Sustainability of Energy System

Peter Novak

Faculty for Technologies and Systems, Novo mesto, Slovenia
Prof. Peter Novak, Faculty for Technologies and Systems, Novo mesto, Slovenia; E-mail: peter.novak@energotech.si
14 August 2017; 24 October 2017; 26 October 2017
Novak P (2017) Exergy as Measure of Sustainability of Energy System. Int J Earth Environ Sci 2: 139. doi: https://doi.org/10.15344/2456-351X/2017/139

References

  1. ECO Design Directive, 2009/125/EC; Renewable Energy Directive 2009/28/EC; Energy Efficiency Directive 2012/27/EU; EPDB 2010/31/EU; Energy Union /*COM/2015/080final*/, Closing the loop – An EU action plan for the circular economy, /COM (2015) 614 final/,
  2. http://eur-lex.europa.eu/resource.html?uri=cellar:1bd46c90-bdd4-11e4- bbe1-01aa75ed71a1.0001.03/DOC_1&format=pdf. View
  3. http://eur-lex.europa.eu/resource.html?uri=cellar:8a8ef5e8-99a0-11e5- b3b7-01aa75ed71a1.0012.02/DOC_1&format=pdf. View
  4. Kabelac S (2005) Exergy of solar radiation. Int J Energy Technology and Policy 3: 115-122. View
  5. Zamfirescu C, Dincer I (2009) How much exergy one can obtain from incident solar radiation. J of Applied Physics 105: 044911. View
  6. Neri M, Luscietti D, Pilotelli M (2013) Computing the exergy of solar radiation from real radiation data. J Energy Resour Technol 139: 061201. View
  7. Davidsson S (2011) Life Cycle Exergy Analysis of Wind Energy system. View
  8. Rosen AM, Bulucea AC (2009) Using Exergy to Understand and Improve the Efficiency of Electrical Power System. J Entropy 11: 820-835. View
  9. Rant Z (1955) Strojniški vestnik. Ljubljana 1: 1-3.
  10. The exergy calculator
  11. Jacobson MZ, Delucchi MA (2011) Providing all global energy with wind, water, and solar power, Part I, Part II: Technologies, energy resources, quantities and areas of infrastructure, and materials. Energy Policy 39: 1154-1169. View
  12. https://en.wikipedia.org/wiki/Biomass View
  13. https://en.wikipedia.org/wiki/Geothermal_energy View
  14. US DOE: U.S. Energy Information Administration / AEO2017 Levelized Costs /
  15. https://en.wikipedia.org/wiki/Wind_wave View
  16. Novak P (1990) The way to the energy sustainable world. Energy and Buildings 14: 249-256. View
  17. Goe M, Gaustad G (2014) Strengthening the case for recycling photovoltaic: An energy payback analysis. Applied Energy 120: 41-48. View
  18. Yue D, You F, Darling SB (2014) Domestic and overseas manufacturing scenarios of silicon-based photovoltaic: Life cycle energy and environmental comparative analysis. Solar Energy 105: 669-678. View
  19. Krebs FC (2009) Fabrication and processing of polymer solar cells: a review of printing and coating techniques. Solar Energy Materials and Solar Cells 93: 394-412. View
  20. Bhandari KP, Collier JM, Ellingson RJ, Apul DS (2015) Energy payback time (EPBT) and energy return on energy invested (EROI) of solar photovoltaic systems: A systematic review and meta-analysis. Renewable and Sustainable Energy Reviews 47:133-141. View
  21. Bhat VIK, Prakash R (2008) Life Cycle Analysis of Run-of River Small Hydro Power Plants in India. The Open Renewable Energy Journal 1: 11-16. View
  22. Self SJ, Reddy BV, Rosen MA (2015) Energy and exergy analyses of geothermal plants with and without re-injection. Research Journal of Environmental Science 9: 74-87. View
  23. Bhandarib KP, Colliera JM, Ellingsonb RJ, Apul DS (2015) Energy payback time (EPBT) and energy return on energy invested (EROI) of solar photovoltaic systems: A systematic review and meta-analysis. Renewable and Sustainable Energy Reviews 47: 133-141. View
  24. Comparing Energy Options. View
  25. Novak P (2012) Full cycle from solar irradiation to the ethanol, sugar cane to ethanol, Brasilia, EEA Seminaron Biomass, Copenhagen 2010; EEA Seminar: Transport, Mobility and Environment, Ljubljana.
  26. Kewen Li (2013) Comparison of geothermal with solar and wind power generation systems, proceedings, Thirty-Eighth Workshop on Geothermal Reservoir Engineering Stanford University, Stanford, California,
  27. Pandeyr S, Saini H (2014) A techno-energetic review on hydrogen production using wind energy. International Journal of Innovation and Scientific Research 2: 312- 321. View
  28. Kimball J (2011) Energy Return on Investment (EROI) for U.S. Oil and Gas Discovery and Production. View
  29. Gupta AK, Hall CAS (2011) A Review of the Past and Current State of EROI Data. Sustainability 3: 1796-1809. View
  30. https://de.wikipedia.org/wiki/Power-to-Gas View
  31. http://www.biofuelstp.eu/factsheets/methanol-fact-sheet.html View
  32. Wall G, Gong M (2001) On exergy and sustainable development-Part 1: Conditions and concepts. Exergy Int J 1: 128-145. View
  33. Sciuba E, Wall G (2007) A brief Commented History of Exergy From the Beginnings to 2004. Int J of Thermodynamics 10:1-26. View
  34. http://www.greenpeace.org/international/Global/international/publications/ climate/2015/Energy-Revolution-2015-Full.pdf View
  35. Zhen X, Wang Y (2015) An overview of methanol as an internal combustion engine fuel, Renewable and Sustainable Energy Reviews 52: 477-493. View
  36. Barnhart CJ, Dale M, Brandt AR, Bensona SM (2013) The energetic implications of curtailing versus storing solar- and wind-generated electricity. Energy Environ Sci 6: 2804-2810. View
  37. Ferroni F, Hopkirk RJ (2017) Energy Return on Energy Invested (ERoEI) for photovoltaic solar system in regions of moderate insolation. Energy Policy 94: 336-344. View