Araştırma Makalesi
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Plastik manşonun yaşam döngüsü değerlendirme analizi

Yıl 2022, Cilt: 28 Sayı: 3, 434 - 443, 30.06.2022

Öz

Plastikler hafif, dayanıklı ve yalıtkan malzemeler olması nedeniyle günümüzde her sektörde sıklıkla kullanılmaktadır. Petrol bazlı plastiklerin yaygın olarak kullanılması sonucu atık miktarında da kaçınılmaz olarak artış olmaktadır. Bu nedenle plastiklerin çevreye olan etkilerinin belirlenmesi önemlidir. Bu çalışmada, sulama ve içme suyu borularında yaygın olarak kullanılan boru bağlantı parçası olan manşonların yaşam döngüsü değerlendirmesi incelenmiştir. Manşonun yaşam döngü değerlendirmesi aşamaları, hammaddenin nakliyesi, manşon parçalarının üretimi, montajı, ambalajlanması ve düzenli depolama alanında bertarafını içermektedir. Manşonun üretim ve bertaraf aşamalarının çevresel etkileri SimaPro 8.0.2 yazılımının Eco-Indicator 99 yöntemi kullanılarak belirlenmiştir. Çalışma sonunda en yüksek çevresel etki manşonun üretimi (%79.9) esnasında ortaya çıkmış ve buna sebep olan en önemli faktörün ise polipropilen plastik (%48.1) kullanımından kaynaklandığı tespit edilmiştir.

Kaynakça

  • [1] Kayılı MT, Çelebi G. “Investigation of plastic wastes and possibilities for use in construction”. Ulusal Çevre Bilimleri Araştırma Dergisi, 3(3), 148-157, 2020.
  • [2] Nielsen TD, Hasselbalch J, Holmberg K, Stripple J. “Politics and the plastic crisis: A review throughout the plastic life cycle”. Wires Energy and Environment, 9(360), 1-18, 2020.
  • [3] Turkish Plastics Industry Foundation, Development and Education Association. “Turkish Plastic Industry Report 2016”. https://pagev.org/upload/files/Hammadde%20Yeni%2 0Tebli%c4%9f%20Bilg.%203/T%c3%bcrkiye%20Plasti k%20Sekt%c3%b6r%20Raporu%202016.pdf (10.06.2021).
  • [4] Li WC, Tse HF, Fok L. “Plastic waste in the marine environment: a review of sources, occurence and effects”. Science of Total Environment, 566-567, 333-349, 2016.
  • [5] United Nations Environment Programme. “Valuing Plastics: The Business Case for Measuring, Managing and Disclosing Plastic Use in the Consumer Goods industry. Nairobi, Kenya”. https://wedocs.unep.org/handle/20.500.11822/9238 (08.06.2021)
  • [6] European Commission. “Communication From the Commission to the European Parliament, the Council, the European Economic and Social Committee and the Committee of the Regions–A European Strategy for Plastics in a Circular Economy”. https://eurlex.europa.eu/legalcontent/EN/TXT/?uri=COM%3A2018%3A28%3AFIN (08.06.2021).
  • [7] Plastic Europe. “Plastics-the Facts 2014/2015, An Analysis of European Plastics Production, Demand and Waste Data”. https://www.plasticseurope.org/application/files/5515 /1689/9220/2014plastics_the_facts_PubFeb2015.pdf (30.05.2021).
  • [8] Gülşen HE, Türkay KG, Arıkan BE. “The effects of life cycle assessment and its applications on environment quality management”. 2nd International Symposium on Environment and Morality-ISEM, Adıyaman, Turkey, 24-26 October 2014.
  • [9] Cüce H. “Circular Environmental Policies in The Industrial Production”. Nevşehir Bilim ve Teknoloji Dergisi, 7(2), 111-122, 2018.
  • [10] Salihoğlu G, Poroy Z, Salihoğlu NK. “Life cycle assessment for municipal waste management: Analysis for Bursa”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, 25(6), 692-699, 2019.
  • [11] Dassisti M, Intini F, Chimienti M, Starace G. “Thermography-Enhanced LCA (life cycle assessment) for manufacturing sustainability assessment. The case study of an HDPE (high dentisty polyethylene) net company in Italy”. Energy, 108, 7-18, 2016.
  • [12] Nucci B, Puccini M, Pelagagge L, Vitolo S, Nicolella C. “Improving the environmental performance of vegetable oil processing through LCA”. Journal of Cleaner Production, 64, 310-322, 2014.
  • [13] Benli Yıldız N, Arslan H, Yılmaz E. “Life cycle assessment of building materials: literature review”. Düzce Üniversitesi Bilim ve Teknoloji Dergisi, 8, 210-219, 2020.
  • [14] Davidson GW, Furlong RA, McManus MC. “Developments in the life cycle assessment of chemical recycling of plastic waste-A review”. Journal of Cleaner Production, 293, 126163, 2021.
  • [15] ISO 14040 Environmental Management. “Life Cycle Assessment-Principles and Framework. ISO standards”. https://www.iso.org/standard/37456.html (01.06.2021)
  • [16] Banar M, Çokaygil Z. “A life cycle comparison of alternative cheese packages”. Clean Journal, 37(2), 136-141, 2009.
  • [17] Sonneman, G, Castells F, Schuhmache M. Integrated LifeCycle and Risk Assessment for Industrial Processes. Boca Raton, USA, Lewis Publishers, 2003.
  • [18] Demirer G. Sustainable Production and Consumption Publications-I Life Cycle Assessment. Ankara, Turkey, Regional Environmental Center-REC, 2011.
  • [19] Recio JMB, Guerrero PJ, Ageitos MG, Narvaez RP. “Estimate of Energy Consumption and CO2 Emission Associated with the Production, use and Final Disposal of PVC, HDPE, PP, Ductile iron and Concrete Pipes”. Polytechnic University of Catalonia, Environmental Modelling Laboratory, Barcelona, Spain, Report, PVC-Tub-200512- 12, 2005.
  • [20] Venkatesh G, Hammervold J, Brattebø H. “Combined MFALCA for analysis of wastewater pipeline networks case study of Oslo, Norway”. Research and Analysis, 13(4), 532- 549, 2009.
  • [21] Akhtar S, Reza B, Hewage K, Shahriar A, Zargar A, Sadiq R. “Life cycle sustainability assessment (LCSA) for selection of sewer pipe materials”. Clean Technologies and Environmental Policy, 17, 973-992, 2015.
  • [22] Vahidi E, Jin E, Das M, Singh M, Zhao F. “Environmental life cycle analysis of pipe materials for sewer systems”. Sustainable Cities and Society, 27, 167-174, 2016.
  • [23] Asadi S, Babaizadeh H, Foster N, Broun R. “Environmental and economic life cycle assessment of PEX and copper plumbing systems: A case study”. Journal of Cleaner Production, 137, 1228-1236, 2016.
  • [24] Hajibabaei M, Nazif S, Sereshgi FT. “Life cycle assessment of pipes and piping process in drinking water distribution networks to reduce environmental impact”. Sustainable Cities and Society, 43, 538-549, 2018.
  • [25] Shi SQ, Cai L, Weng Y, Wang D, Sun Y. "Comparative lifecycle assessment of water supply pipes made from bamboo vs. polyvinyl chloride”. Journal of Cleaner Production, 240, 118172, 2019.
  • [26] Poelsan Plastik Sanayi ve Ticaret Anonim Şirketi. “Kaplin Manşon”. https://www.poelsan.com/urun/kablinmanson-2/ (07.06.2021).
  • [27] Ustun S, Büyükgüngör H. “Energy and carbon footprint of plastic coupling production”. EurAsia Waste Management Symposium, İstanbul, Turkey, 28-30 April 2014.
  • [28] Goedkoop M, Oele M, Leijting J, Ponsioen T, Meijer E. “Introduction to LCA with SimaPro”. Pré Consultants, California, USA, Report 5.2, 2016.
  • [29] Doka G. "Life Cycle Inventories of Waste Treatment Services”. Ecoinvent Center, Dübendorf, Switzerland, Report, 13, 2009.
  • [30] Turkish Electricity Transmission Company. “Turkey production electric transmission statistics”. https://www.teias.gov.tr/tr-TR/turkiye-elektrik-uretimiletim-istatistikleri (02.06.2021).
  • [31] Demirel S, Öz HÖ, Çiner F, Güneş M. “Life cycle analysis of self compacting mortar production with waste material in Turkey”. Ömer Halisdemir Üniversitesi Mühendislik Bilimleri Dergisi, 8(1), 1-8, 2019.
  • [32] Intergovernmental Panel on Climate Change. “Guidelines for National Greenhouse Gas Inventories Volume 1”. https://www.ipccnggip.iges.or.jp/public/2019rf/index.html (06.06.2021).
  • [33] Boardman CR, Glass SV. “Basement radon enter and stack driven moisture infiltration reduced by active soil depressurization”. Building and Environment, 85, 220-232, 2015.
  • [34] Gao XF, Tam CM, Gao WZ, “polymer cement plaster to prevent radon gas contamination within concrete building structures”. Building and Environment, 37, 357-361, 2002.

Life cycle assessment analysis of plastic coupling

Yıl 2022, Cilt: 28 Sayı: 3, 434 - 443, 30.06.2022

Öz

Plastics are often used in every industry today due to their light weight, durable and insulating materials. As a result of the widespread use of petroleum-based plastics, there is also an inevitable increase in the amount of waste. Therefore, it is important to determine the effects of plastics on the environment. In this study, the life cycle assessment of couplings, which are commonly used pipe fittings in irrigation and drinking water pipes, was investigated. The environmental effects of the production and disposal stages of the coupling were determined using the Eco-Indicator 99 method of SimaPro 8.0.2 software. At the end of the study, the highest environmental impact occurred during the production of the coupling (79.9%) and it was determined that the most important factor causing this was the use of polypropylene plastics (48.1%).

Kaynakça

  • [1] Kayılı MT, Çelebi G. “Investigation of plastic wastes and possibilities for use in construction”. Ulusal Çevre Bilimleri Araştırma Dergisi, 3(3), 148-157, 2020.
  • [2] Nielsen TD, Hasselbalch J, Holmberg K, Stripple J. “Politics and the plastic crisis: A review throughout the plastic life cycle”. Wires Energy and Environment, 9(360), 1-18, 2020.
  • [3] Turkish Plastics Industry Foundation, Development and Education Association. “Turkish Plastic Industry Report 2016”. https://pagev.org/upload/files/Hammadde%20Yeni%2 0Tebli%c4%9f%20Bilg.%203/T%c3%bcrkiye%20Plasti k%20Sekt%c3%b6r%20Raporu%202016.pdf (10.06.2021).
  • [4] Li WC, Tse HF, Fok L. “Plastic waste in the marine environment: a review of sources, occurence and effects”. Science of Total Environment, 566-567, 333-349, 2016.
  • [5] United Nations Environment Programme. “Valuing Plastics: The Business Case for Measuring, Managing and Disclosing Plastic Use in the Consumer Goods industry. Nairobi, Kenya”. https://wedocs.unep.org/handle/20.500.11822/9238 (08.06.2021)
  • [6] European Commission. “Communication From the Commission to the European Parliament, the Council, the European Economic and Social Committee and the Committee of the Regions–A European Strategy for Plastics in a Circular Economy”. https://eurlex.europa.eu/legalcontent/EN/TXT/?uri=COM%3A2018%3A28%3AFIN (08.06.2021).
  • [7] Plastic Europe. “Plastics-the Facts 2014/2015, An Analysis of European Plastics Production, Demand and Waste Data”. https://www.plasticseurope.org/application/files/5515 /1689/9220/2014plastics_the_facts_PubFeb2015.pdf (30.05.2021).
  • [8] Gülşen HE, Türkay KG, Arıkan BE. “The effects of life cycle assessment and its applications on environment quality management”. 2nd International Symposium on Environment and Morality-ISEM, Adıyaman, Turkey, 24-26 October 2014.
  • [9] Cüce H. “Circular Environmental Policies in The Industrial Production”. Nevşehir Bilim ve Teknoloji Dergisi, 7(2), 111-122, 2018.
  • [10] Salihoğlu G, Poroy Z, Salihoğlu NK. “Life cycle assessment for municipal waste management: Analysis for Bursa”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, 25(6), 692-699, 2019.
  • [11] Dassisti M, Intini F, Chimienti M, Starace G. “Thermography-Enhanced LCA (life cycle assessment) for manufacturing sustainability assessment. The case study of an HDPE (high dentisty polyethylene) net company in Italy”. Energy, 108, 7-18, 2016.
  • [12] Nucci B, Puccini M, Pelagagge L, Vitolo S, Nicolella C. “Improving the environmental performance of vegetable oil processing through LCA”. Journal of Cleaner Production, 64, 310-322, 2014.
  • [13] Benli Yıldız N, Arslan H, Yılmaz E. “Life cycle assessment of building materials: literature review”. Düzce Üniversitesi Bilim ve Teknoloji Dergisi, 8, 210-219, 2020.
  • [14] Davidson GW, Furlong RA, McManus MC. “Developments in the life cycle assessment of chemical recycling of plastic waste-A review”. Journal of Cleaner Production, 293, 126163, 2021.
  • [15] ISO 14040 Environmental Management. “Life Cycle Assessment-Principles and Framework. ISO standards”. https://www.iso.org/standard/37456.html (01.06.2021)
  • [16] Banar M, Çokaygil Z. “A life cycle comparison of alternative cheese packages”. Clean Journal, 37(2), 136-141, 2009.
  • [17] Sonneman, G, Castells F, Schuhmache M. Integrated LifeCycle and Risk Assessment for Industrial Processes. Boca Raton, USA, Lewis Publishers, 2003.
  • [18] Demirer G. Sustainable Production and Consumption Publications-I Life Cycle Assessment. Ankara, Turkey, Regional Environmental Center-REC, 2011.
  • [19] Recio JMB, Guerrero PJ, Ageitos MG, Narvaez RP. “Estimate of Energy Consumption and CO2 Emission Associated with the Production, use and Final Disposal of PVC, HDPE, PP, Ductile iron and Concrete Pipes”. Polytechnic University of Catalonia, Environmental Modelling Laboratory, Barcelona, Spain, Report, PVC-Tub-200512- 12, 2005.
  • [20] Venkatesh G, Hammervold J, Brattebø H. “Combined MFALCA for analysis of wastewater pipeline networks case study of Oslo, Norway”. Research and Analysis, 13(4), 532- 549, 2009.
  • [21] Akhtar S, Reza B, Hewage K, Shahriar A, Zargar A, Sadiq R. “Life cycle sustainability assessment (LCSA) for selection of sewer pipe materials”. Clean Technologies and Environmental Policy, 17, 973-992, 2015.
  • [22] Vahidi E, Jin E, Das M, Singh M, Zhao F. “Environmental life cycle analysis of pipe materials for sewer systems”. Sustainable Cities and Society, 27, 167-174, 2016.
  • [23] Asadi S, Babaizadeh H, Foster N, Broun R. “Environmental and economic life cycle assessment of PEX and copper plumbing systems: A case study”. Journal of Cleaner Production, 137, 1228-1236, 2016.
  • [24] Hajibabaei M, Nazif S, Sereshgi FT. “Life cycle assessment of pipes and piping process in drinking water distribution networks to reduce environmental impact”. Sustainable Cities and Society, 43, 538-549, 2018.
  • [25] Shi SQ, Cai L, Weng Y, Wang D, Sun Y. "Comparative lifecycle assessment of water supply pipes made from bamboo vs. polyvinyl chloride”. Journal of Cleaner Production, 240, 118172, 2019.
  • [26] Poelsan Plastik Sanayi ve Ticaret Anonim Şirketi. “Kaplin Manşon”. https://www.poelsan.com/urun/kablinmanson-2/ (07.06.2021).
  • [27] Ustun S, Büyükgüngör H. “Energy and carbon footprint of plastic coupling production”. EurAsia Waste Management Symposium, İstanbul, Turkey, 28-30 April 2014.
  • [28] Goedkoop M, Oele M, Leijting J, Ponsioen T, Meijer E. “Introduction to LCA with SimaPro”. Pré Consultants, California, USA, Report 5.2, 2016.
  • [29] Doka G. "Life Cycle Inventories of Waste Treatment Services”. Ecoinvent Center, Dübendorf, Switzerland, Report, 13, 2009.
  • [30] Turkish Electricity Transmission Company. “Turkey production electric transmission statistics”. https://www.teias.gov.tr/tr-TR/turkiye-elektrik-uretimiletim-istatistikleri (02.06.2021).
  • [31] Demirel S, Öz HÖ, Çiner F, Güneş M. “Life cycle analysis of self compacting mortar production with waste material in Turkey”. Ömer Halisdemir Üniversitesi Mühendislik Bilimleri Dergisi, 8(1), 1-8, 2019.
  • [32] Intergovernmental Panel on Climate Change. “Guidelines for National Greenhouse Gas Inventories Volume 1”. https://www.ipccnggip.iges.or.jp/public/2019rf/index.html (06.06.2021).
  • [33] Boardman CR, Glass SV. “Basement radon enter and stack driven moisture infiltration reduced by active soil depressurization”. Building and Environment, 85, 220-232, 2015.
  • [34] Gao XF, Tam CM, Gao WZ, “polymer cement plaster to prevent radon gas contamination within concrete building structures”. Building and Environment, 37, 357-361, 2002.
Toplam 34 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Mühendislik
Bölüm İnşaat Müh. / Çevre Müh. / Jeoloji Müh.
Yazarlar

Sevde Üstün Odabaşı Bu kişi benim

Hanife Büyükgüngör Bu kişi benim

Yayımlanma Tarihi 30 Haziran 2022
Yayımlandığı Sayı Yıl 2022 Cilt: 28 Sayı: 3

Kaynak Göster

APA Üstün Odabaşı, S., & Büyükgüngör, H. (2022). Life cycle assessment analysis of plastic coupling. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, 28(3), 434-443.
AMA Üstün Odabaşı S, Büyükgüngör H. Life cycle assessment analysis of plastic coupling. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi. Haziran 2022;28(3):434-443.
Chicago Üstün Odabaşı, Sevde, ve Hanife Büyükgüngör. “Life Cycle Assessment Analysis of Plastic Coupling”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi 28, sy. 3 (Haziran 2022): 434-43.
EndNote Üstün Odabaşı S, Büyükgüngör H (01 Haziran 2022) Life cycle assessment analysis of plastic coupling. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi 28 3 434–443.
IEEE S. Üstün Odabaşı ve H. Büyükgüngör, “Life cycle assessment analysis of plastic coupling”, Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, c. 28, sy. 3, ss. 434–443, 2022.
ISNAD Üstün Odabaşı, Sevde - Büyükgüngör, Hanife. “Life Cycle Assessment Analysis of Plastic Coupling”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi 28/3 (Haziran 2022), 434-443.
JAMA Üstün Odabaşı S, Büyükgüngör H. Life cycle assessment analysis of plastic coupling. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi. 2022;28:434–443.
MLA Üstün Odabaşı, Sevde ve Hanife Büyükgüngör. “Life Cycle Assessment Analysis of Plastic Coupling”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, c. 28, sy. 3, 2022, ss. 434-43.
Vancouver Üstün Odabaşı S, Büyükgüngör H. Life cycle assessment analysis of plastic coupling. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi. 2022;28(3):434-43.





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