Reality and Vision of the Architecture for Cogeneration Plants for Energy Recovery

Author:

Ján Ilkovič1,Yakoub Meziani1

Affiliation:

1. Slovak University of Technology in Bratislava , Faculty of architecture and design, Institute of Structure and Engineering Buildings , Námestie slobody 19, 812 45 Bratislava 1 , Slovakia

Abstract

Abstract Energetics is connected with industry development of the country and determines its geographic layout into certain extent. This fact defines an important and also priority position of energetics in a developed society. On the other side it evokes trying to reach sustainability of the environment and nowadays also trying to reach decreasing of the carbon footprint of human activities. The goal of the article is to present general criteria for localisation of energetic cogeneration plants on biogass base, factors presentation and confrontation of current examples and new trends in shaping architecture under the influence of the development of modern technique and technology. The article analyses mass-composition and architectonic aspects of energetic plants of the chosen performed examples and on the model studies it documents the vision of new solutions on the background of equal, non-invasive and eco-friendly architecture in the surroundings.

Publisher

Walter de Gruyter GmbH

Subject

Mechanical Engineering

Reference18 articles.

1. [1] Patrascu, R., Minciuc, E., Diaconescu, L. “Evaluation of the environmental impact of a cogeneration plant for an urban area”, In: Thomas, G., Fleaurant, C., Panagopoulos, T., Chevassus-Lozza, T., Zaharim, A., Sopian, K. (eds.) Recent Researches in Energy, Environment and Landscape Architecture, WSEAS Press, Angers, France, pp. 118-121, 2011.

2. [2] Špaček, R. “Energia je fyzika, biológia, ekonómia aj poézia”, Eurostav, s.r.o., Bratislava, Slovakia, 12(1), pp. 22, 2006. ISSN 1335-1249. (in Slovak)

3. [3] Golušin, M., Dodić, S., Popov, S. “Strategic Priorities of Sustainable Energy Development“, In: Golušin, M., Dodić, S., Popov, S. (eds.) Sustainable Energy Management, Academic Press, Elsevier, pp. 243 – 333, 2013. DOI: 10.1016/B978-0-12-415978-5.00007-210.1016/B978-0-12-415978-5.00007-2

4. [4] David, A., Thangavel, Y. D., Sankriti, R. “Recover, Recycle And Reuse: An Efficient Way To Reduce The Waste“, International Journal of Mechanical and Production Engineering Research and Development. 9(3), pp. 31 – 42, 2019. DOI: 10.24247/ijmperdjun20194.10.24247/ijmperdjun20194

5. [5] Lovins, A. B. “Soft energy paths: Towards a Durable Peace“, 1th ed., Friends of the Earth International, San Francisco, 1977, 231 p. ISBN 0-06-090653-7.

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