Araştırma Makalesi

LIFE CYCLE COST ANALYSIS IN DETERMINING OPTIMUM PIPE INSULATION THICKNESS WITH AIR GAP FOR DIFFERENT CLIMATE CONDITIONS

Cilt: 4 Sayı: 1 27 Haziran 2018
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LIFE CYCLE COST ANALYSIS IN DETERMINING OPTIMUM PIPE INSULATION THICKNESS WITH AIR GAP FOR DIFFERENT CLIMATE CONDITIONS

Öz

This study is about determining air gap, insulation material in pipes between 50 mm and 1000 mm in mechanical installation, and determining optimum insulation thickness, energy saving and payback period in cases where both are being used. For this calculation, life cycle cost analysis containing heating degree day has been used. Even though Afyon province climate conditions have been used as the case study, the study has been expanded for cold, temperate and warm climate conditions. This made it possible to make comparative assessments for insulation thickness, air gap, pipe diameter and heating degree day values. In 50 mm and 1000 mm pipes using air gap, the optimum insulation thickness was reduced by 81% and 39% respectively. It is recommended to use air gap in mild climates and to use insulation in cold climates. When insulation with air gap is applied, optimum insulation thickness is reduced, and in pipes with greater diameter energy cost saving is increased while in pipes with smaller diameter the payback period is reduced.

Anahtar Kelimeler

Kaynakça

  1. Kecebas, A., Alkan, M.A. and Bayhan, M., “Thermo-economic analysis of pipe insulation for district heating piping systems”, Applied Thermal Engineering, Vol. 31, 3929–3937, 2011.
  2. Mohsen, M.S. and Akash, B.A., “Some prospects of energy saving in buildings”, Energy Conversion and Management, Vol. 42, 1307–1315, 2001.
  3. Suman, B.M. and Srivastava, R.K., “Effect of air gap on thermal performance of composite wall section,” Indian Journal of Science and Technology, Vol. 1, 1–4, 2008.
  4. Mahlia, T.M.I. and Iqbal, A., “Cost benefits analysis and emission reductions of optimum thickness and air gaps for selected insulation materials for building walls in Maldives”, Energy, Vol. 35, 2242–2250, 2010.
  5. Kurt, H., “The usage of airgap in the composite wall for energy saving and air pollution”, Environmental Progress & Sustainable Energy, Vol. 30, 450–458, 2011.
  6. Dasdemir, A., “Economical and environmental analysis of the usage of air gap in the composite wall”, Electronic Journal of Machine Technologies, Vol. 8, 49–61, 2011.
  7. Ridouane EH, Bianchi MVA. Thermal performance of uninsulated and partially filled wall cavities. ASHRAE Annual Conference Montreal, Quebec, June 25–29, 2011.
  8. Mahlia, T.M.I., Ng, H.M., Olofsson, T. and Andriyana, A., “Energy and cost savings of optimal thickness for selected insulation materials and air gaps for building walls in tropical climate”, Energy Education Science and Technology Part A: Energy Science and Research, Vol. 29, 597–610, 2012.

Ayrıntılar

Birincil Dil

İngilizce

Konular

Mühendislik

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

27 Haziran 2018

Gönderilme Tarihi

11 Şubat 2018

Kabul Tarihi

6 Haziran 2018

Yayımlandığı Sayı

Yıl 2018 Cilt: 4 Sayı: 1

Kaynak Göster

APA
Başoğul, Y. (2018). LIFE CYCLE COST ANALYSIS IN DETERMINING OPTIMUM PIPE INSULATION THICKNESS WITH AIR GAP FOR DIFFERENT CLIMATE CONDITIONS. Mugla Journal of Science and Technology, 4(1), 89-101. https://doi.org/10.22531/muglajsci.422979
AMA
1.Başoğul Y. LIFE CYCLE COST ANALYSIS IN DETERMINING OPTIMUM PIPE INSULATION THICKNESS WITH AIR GAP FOR DIFFERENT CLIMATE CONDITIONS. MJST. 2018;4(1):89-101. doi:10.22531/muglajsci.422979
Chicago
Başoğul, Yusuf. 2018. “LIFE CYCLE COST ANALYSIS IN DETERMINING OPTIMUM PIPE INSULATION THICKNESS WITH AIR GAP FOR DIFFERENT CLIMATE CONDITIONS”. Mugla Journal of Science and Technology 4 (1): 89-101. https://doi.org/10.22531/muglajsci.422979.
EndNote
Başoğul Y (01 Haziran 2018) LIFE CYCLE COST ANALYSIS IN DETERMINING OPTIMUM PIPE INSULATION THICKNESS WITH AIR GAP FOR DIFFERENT CLIMATE CONDITIONS. Mugla Journal of Science and Technology 4 1 89–101.
IEEE
[1]Y. Başoğul, “LIFE CYCLE COST ANALYSIS IN DETERMINING OPTIMUM PIPE INSULATION THICKNESS WITH AIR GAP FOR DIFFERENT CLIMATE CONDITIONS”, MJST, c. 4, sy 1, ss. 89–101, Haz. 2018, doi: 10.22531/muglajsci.422979.
ISNAD
Başoğul, Yusuf. “LIFE CYCLE COST ANALYSIS IN DETERMINING OPTIMUM PIPE INSULATION THICKNESS WITH AIR GAP FOR DIFFERENT CLIMATE CONDITIONS”. Mugla Journal of Science and Technology 4/1 (01 Haziran 2018): 89-101. https://doi.org/10.22531/muglajsci.422979.
JAMA
1.Başoğul Y. LIFE CYCLE COST ANALYSIS IN DETERMINING OPTIMUM PIPE INSULATION THICKNESS WITH AIR GAP FOR DIFFERENT CLIMATE CONDITIONS. MJST. 2018;4:89–101.
MLA
Başoğul, Yusuf. “LIFE CYCLE COST ANALYSIS IN DETERMINING OPTIMUM PIPE INSULATION THICKNESS WITH AIR GAP FOR DIFFERENT CLIMATE CONDITIONS”. Mugla Journal of Science and Technology, c. 4, sy 1, Haziran 2018, ss. 89-101, doi:10.22531/muglajsci.422979.
Vancouver
1.Yusuf Başoğul. LIFE CYCLE COST ANALYSIS IN DETERMINING OPTIMUM PIPE INSULATION THICKNESS WITH AIR GAP FOR DIFFERENT CLIMATE CONDITIONS. MJST. 01 Haziran 2018;4(1):89-101. doi:10.22531/muglajsci.422979

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