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Energy saving technical progress and optimal capital stock: the role of embodiment

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  • BOUCEKKINE, Raouf
  • POMMERET, Aude

Abstract

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Suggested Citation

  • BOUCEKKINE, Raouf & POMMERET, Aude, 2004. "Energy saving technical progress and optimal capital stock: the role of embodiment," LIDAM Reprints CORE 1703, Université catholique de Louvain, Center for Operations Research and Econometrics (CORE).
  • Handle: RePEc:cor:louvrp:1703
    DOI: 10.1016/S0264-9993(03)00039-7
    Note: In : Economic Modelling, 21, 429-444, 2004
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    Cited by:

    1. Hernando Zuleta, 2008. "Energy Saving Innovations, Non-Exhaustible Sources of Energy and Long-Run: What Would Happen if we Run Out of Oil?," Revista de Economía del Rosario, Universidad del Rosario.
    2. Yuan, Chaoqing & Liu, Sifeng & Wu, Junlong, 2009. "Research on energy-saving effect of technological progress based on Cobb-Douglas production function," Energy Policy, Elsevier, vol. 37(8), pages 2842-2846, August.
    3. Prudence Dato, 2017. "Energy Transition Under Irreversibility: A Two-Sector Approach," Environmental & Resource Economics, Springer;European Association of Environmental and Resource Economists, vol. 68(3), pages 797-820, November.
    4. Goetz, Renan-Ulrich & Hritonenko, Natali & Yatsenko, Yuri, 2008. "The optimal economic lifetime of vintage capital in the presence of operating costs, technological progress, and learning," Journal of Economic Dynamics and Control, Elsevier, vol. 32(9), pages 3032-3053, September.
    5. Feichtinger, Gustav & Hartl, Richard F. & Kort, Peter M. & Veliov, Vladimir M., 2008. "Financially constrained capital investments: The effects of disembodied and embodied technological progress," Journal of Mathematical Economics, Elsevier, vol. 44(5-6), pages 459-483, April.
    6. Agustin, PEREZ BARAHONA, 2007. "Capital Accumulation and Non-Renewable Energy Resources : a Special Functions Case," Discussion Papers (ECON - Département des Sciences Economiques) 2007008, Université catholique de Louvain, Département des Sciences Economiques.
    7. Bruno de Oliveira Cruz & Aude Pommeret, 2006. "Irreversible Investment With Embodied Technological Progress," Discussion Papers 1171, Instituto de Pesquisa Econômica Aplicada - IPEA.
    8. Jouvet, Pierre-André & Schumacher, Ingmar, 2012. "Learning-by-doing and the costs of a backstop for energy transition and sustainability," Ecological Economics, Elsevier, vol. 73(C), pages 122-132.
    9. Bitros, George C., 2016. "A theory of maintenance expenditures tested on automobile data from Greece," MPRA Paper 70820, University Library of Munich, Germany.
    10. Kounetas, Kostas & Tsekouras, Kostas, 2010. "Are the Energy Efficiency Technologies efficient?," Economic Modelling, Elsevier, vol. 27(1), pages 274-283, January.
    11. Gamtessa, Samuel & Olani, Adugna, 2016. "How Does Energy-Cost Lead to Energy Efficiency? Panel Evidence from Canada," Queen's Economics Department Working Papers 274694, Queen's University - Department of Economics.
    12. Thomas Gries & Stefan Jungblut & Tim Krieger & Henning Meyer, 2019. "Economic Retirement Age and Lifelong Learning: A Theoretical Model With Heterogeneous Labor, Biased Technical Change and International Sourcing," German Economic Review, Verein für Socialpolitik, vol. 20(2), pages 129-170, May.
    13. Thomas Gries & Stefan Jungblut & Tim Krieger & Henning Meier, 2009. "Statutory Retirement Age and Lifelong Learning," Working Papers CIE 9, Paderborn University, CIE Center for International Economics.
    14. Yuri Yatsenko, 2009. "Price vs. Quantity Regulation and Technological Modernization," International Journal of Business and Economics, School of Management Development, Feng Chia University, Taichung, Taiwan, vol. 8(3), pages 255-258, December.
    15. Raouf Boucekkine & David Croix & Omar Licandro, 2004. "MODELLING VINTAGE STRUCTURES WITH DDEs: PRINCIPLES AND APPLICATIONS," Mathematical Population Studies, Taylor & Francis Journals, vol. 11(3-4), pages 151-179.
    16. Hritonenko, Natali & Yatsenko, Yuri, 2012. "Energy substitutability and modernization of energy-consuming technologies," Energy Economics, Elsevier, vol. 34(5), pages 1548-1556.
    17. Elliott Joshua & Foster Ian & Judd Kenneth & Moyer Elisabeth & Munson Todd, 2010. "CIM-EARTH: Framework and Case Study," The B.E. Journal of Economic Analysis & Policy, De Gruyter, vol. 10(2), pages 1-34, December.
    18. Agust'n Pérez-Barahona & Benteng Zou, 2006. "Energy-saving technological progress in a vintage capital model," Chapters, in: Carlos de Miguel & Xavier Labanderia & Baltasar Manzano (ed.), Economic Modelling of Climate Change and Energy Policies, chapter 11, pages 166-179, Edward Elgar Publishing.
    19. Hritonenko, Natali & Yatsenko, Yuri, 2010. "Technological innovations, economic renovation, and anticipation effects," Journal of Mathematical Economics, Elsevier, vol. 46(6), pages 1064-1078, November.
    20. Hu, Changshuai & Du, Dan & Huang, Junbing, 2023. "The driving effect of energy demand evolution: From the perspective of heterogeneity in technology," Energy, Elsevier, vol. 275(C).
    21. Perez-Barahona, Agustin & Zou, Benteng, 2006. "A comparative study of energy saving technical progress in a vintage capital model," Resource and Energy Economics, Elsevier, vol. 28(2), pages 181-191, May.
    22. Théophile, AZOMAHOU & Raouf, BOUCEKKINE & Phu, NUYEN VAN, 2003. "Energy consumption, technological progress and economic policy," LIDAM Discussion Papers IRES 2003025, Université catholique de Louvain, Institut de Recherches Economiques et Sociales (IRES).

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