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Optimum insulation thickness for pipes in district heating systems - review

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Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Energy is an important factor for the social and economic development of communities. The energy performance of insulation systems is an important factor in today's increasing consumption of energy. Insulation in hot water pipelines is done to reduce heat losses caused by building elements. In this study, optimum insulation thickness, annual costs, energy saving and repayment times were evaluated in district heating systems. The evaluations were made for various pipe sizes, various fuel types and various insulation materials considering the heating loads of the regions. In addition, the formulas used for the heat loss and insulation economy are given in the study. As a result, the choice of an optimum insulation thickness in pipelines of district heating systems provides economic and environmental advantages.
Rocznik
Strony
225--232
Opis fizyczny
Bibliogr. 18 poz., rys., tab., wykr.
Twórcy
autor
  • Institute of Sciences, Department of Mechanical Engineering, Balikesir University, Turkey
Bibliografia
  • 1. Başoğul, Y., Keçebaş, A. (2011). Economic and environmental impacts of insulation in district heating pipelines. Energy, Vol. 36, Issue 10, pp. 6156-6164.
  • 2. Oymak, M. (2007). Determination of economic insulation thicknesses in thermal system design by exergy economic method, Publishing House of Trakya University, Edirne. (in Turkish)
  • 3. Daşdemir, A., Ertürk, M., Keçebaş, A., Demircan, C. (2017). Effects of air gap on insulation thickness and life cycle costs for different pipe diameters in pipeline. Energy, Vol. 122, pp. 492-504.
  • 4. Keçebaş, A. (2012). Determination of insulation thickness by means of exergy analysis in pipe insulation. Energy conversion and management, Vol. 58, pp. 76-83.
  • 5. Keçebaş, A. (2012). Determination of optimum insulation thickness for energy saving through pipe insulation in district heating systems. Electronic Journal of Machine Technologies, Vol. 9, No. 1, pp. 1-14.
  • 6. Kaynakli, O. (2014). Economic thermal insulation thickness for pipes and ducts: a review study. Renewable and Sustainable Energy Reviews, Vol. 30, pp.184-194.
  • 7. Başoğul, Y., Demircan, C., Keçebaş, A. (2016). Determination of optimum insulation thickness for environmental impact reduction of pipe insulation. Applied Thermal Engineering, Vol. 101 121-130.
  • 8. Keçebaş, A., Alkan, M. A., Bayhan, M. (2011). Thermo economic analysis of pipe insulation for district heating piping systems. Applied Thermal Engineering, Vol. 31, Issues 17-18, pp. 3929-3937.
  • 9. Kayfeci, M. (2014). Determination of energy saving and optimum insulation thicknesses of the heating piping systems for different insulation materials. Energy and Buildings, Vol. 69, pp. 278-284.
  • 10. Ertürk, M. (2016). Optimum insulation thicknesses of pipes with respect to different insulation materials, fuels and climate zones in Turkey. Energy, Vol. 113, pp. 991-1003.
  • 11. Kayfeci, M., Yabanova, İ., Keçebaş, A. (2014). The use of artificial neural network to evaluate insulation thickness and life cycle costs: Pipe insulation application. Applied Thermal Engineering, Vol. 63, Issue 1, pp. 370-378.
  • 12. Yavuz, C., Atik, K. (2011). Thermo-economic optimization of the pipe diameters of hot water heating systems. Electronic Journal of Machine Technologies, Vol. 8, No. 4, pp. 53-64.
  • 13. Keçebaş, A. (2015). Determination of optimum insulation thickness in pipe for exergetic life cycle assessment. Energy Conversion and Management, Vol. 105, pp. 826-835.
  • 14. Sahin, A. Z., Kalyon, M. (2005). Maintaining uniform surface temperature along pipes by insulation. Energy, Vol. 30(5), pp. 637-647.
  • 15. Öztürk, İ. T., Karabay, H., Bilgen, E. (2006). Thermo economic optimization of hot water piping systems: A comparison study. Energy, Vol. 31, pp. 2094-2107.
  • 16. Kürekci, N. A. (2013). Optimum insulation thickness for pipes in four heating degree days region of Turkey. In: 11th. International Conference of Plant Engineering, İzmir, Turkey, 17-20 April.
  • 17. Keçebaş, A. (2013). Variation of insulation thickness and exergetic cost saving with outdoor temperature in pipe insulation. Environmental Progress & Sustainable Energy, Vol. 32, No. 3, pp. 784-789.
  • 18. Özdemir, M., Parmaksızoğlu, C. İ. (2006). Economic insulation thickness in mechanical installation. Journal of plant engineering, No. 91, pp. 39-41.
Uwagi
PL
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-8852d179-e5a1-4d39-aff5-cb82c6a85940
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