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Plastik Atıkların ve Yapıda Kullanım Olanaklarının İncelenmesi

Year 2020, Volume: 3 Issue: 3, 148 - 157, 30.09.2020

Abstract

Plastikler dayanıklı, yalıtkan ve hafif malzemelerdir. Şekil verilebilme özelliği yüksek, esnek veya rijit olarak üretilebildikleri için kullanım alanı da geniştir. Plastiklerin günümüzden her sektöründe kullanılması, atık miktarının da her geçen gün kaçınılmaz olarak artması anlamına gelmektedir. Plastik atıklarının azaltımına yönelik en önemli çözüm, kaynakta azaltma yöntemi olup, sonrasında ise yeniden kullanım ve geri dönüşümdür. Mümkün olduğunca düşük tüketim sonrasında kullanım ömrünü tamamlayan plastik atıkların yeniden kullanılması ya da yapıda veya çeşitli sektörlerde farklı işlevlerde geri dönüşümü, atık azaltımını güçlendiren yöntemler arasında görülmektedir. Plastik tüketiminin azaltılması, kullanılmış plastik ürünlerin sektöre döndürülmesi atık oranının azaltılmasının yanı sıra ülke ekonomisi bağlamında da büyük önem arz etmektedir. Çalışma kapsamında Türkiye’de plastik kullanımının niceliği ve atık plastiklerin azaltılmasına yönelik yöntemlere yer verilirken, plastik atıkların azaltılmasına yönelik atık plastik kullanılarak üretilen kompozit malzeme çalışmaları ve yapıda kullanım olanakları detaylı bir literatür çalışması ile ele alınmıştır.

References

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Investigation of Plastic Wastes and Possibilities for Use in Construction

Year 2020, Volume: 3 Issue: 3, 148 - 157, 30.09.2020

Abstract

Plastics are durable, insulating and lightweight materials. Since they can be produced with high shapeability, flexible or rigid usage area is also wide. The use of plastics in every sector of today means that the amount of waste inevitably increases with each passing day.The most important solution for the reduction of plastic wastes is the method of reduction at the source, and then reuse and recycling. Reuse of plastic wastes that have completed their lifetime after consumption as low as possible, or recycling in different functions in the building or in various sectors, are among the methods that strengthen waste reduction. Reducing plastic consumption, returning used plastic products to the industry is of great importance in the context of the country's economy as well as reducing the waste rate. In this study, the quantity of plastic used in Turkey and the methods for the reduction of waste plastic were evaluated. Then composite material studies using waste plastic to reduce plastic wastes and usage possibilities in the building are discussed with a detailed literature study.

References

  • [1] Akyüz, M., 1997, Endüstriyel Atıkların Çevre Üzerindeki Etkileri ve Alınması Gereken Önlemler. III. Ulusal Ekoloji ve Çevre Kongresi, 3-5 Eylül, Kırşehir, 1-8.
  • [2] Edwards, D. W., and Schelling, J., 1999, Municipal waste life cycle assessment: Part 2: transport analysis and glass case study. Process Safety and Environmental Protection, 77(5), 259-274.
  • [3] PAGÇEV. URL(2020): http://www.pagcev.org/yonetmelikler
  • [4] Yapı malzemeleri yönetmeliği, 2013, (305/2011/AB), Çevre ve Şehircilik Bakanlığı, Türkiye.
  • [5] Ryan, P.G., 2015, A brief history of marine litter research. In: Bergmann, M., Gutow, L., Klages, M. (Eds.), Marine Anthropogenic Litter. Springer, Cham, pp. 1–25. https:// doi.org/10.1007/978-3-319-16510-3_1.
  • [6] PLASFED, Demirci, B. (2014). Plastik Sanayicileri Federasyonu, Türkiye Plastik Sektör İzleme Raporu.
  • [7] PAGEV. URL: https://www.pagev.org/upload/files/Hammadde%20Yeni%20Tebli%C4%9F%20Bilg.%203/T%C3%BCrkiye%20Plastik%20Sekt%C3%B6r%20Raporu%202016.pdf
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  • [16] Thornton Kay, Salvo in Germany, 1994, Reiner Pilz, SalvoNEWS, 99, 14.
  • [17] Demirbas, A., 2011, Waste management, waste resource facilities and waste conversion processes. Energy Conversion and Management, 52(2), 1280-1287.
  • [18] European Commission, 2008, Integrated Pollution Prevention and Control (IPPC), European Commission.
  • [19] Stein, von L.E., 1993, Construction and demolition debris, book section of recycling handbook, USA: McGraw Hill, 20,14.
  • [20] Vefago, L. H. M., & Avellaneda, J., 2013, Recycling concepts and the index of recyclability for building materials. Resources, conservation and recycling, 72, 127-135.
  • [21] Wu, Z., Yu, T.W., Shen, L., and Liu, G., 2014, Quantifying construction and demolition waste: An analytical review. Waste Management, 34, 1683–1692
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  • [24] Furukawa, T., 1998, Plastic as Ironmaking Fuel at NKK, New Steel, 5
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  • [26] Ogaki, Y., Tomioka, K., Watanabe, A., Arita, K., Kuriyama, I., and Sugayoshi, T., 2001, Recycling of waste plastic packaging in a blast furnace system. NKK Technical Review, 84, 1-7.
  • [27] Sarıdede, M. N., 2004, Yüksek Fırında Atık Plastik Kullanımı, Metalurji Dergisi, 138, 58-63.
  • [28]Tam, V. W., Tam, C. M., 2006, A review on the viable technology for construction waste recycling. Resources, Conservation and Recycling, 47(3), 209-221.
  • [29]Geyer, R., Jambeck, J.R., Law, K.L., 2017. Production, use, and fate of all plastics ever made. Sci. Adv. 3 (7), e1700782. https://doi.org/10.1126/sciadv.1700782.
  • [30] Bajracharya, R. M., Manalo, A. C., Karunasena, W., and Lau, K. (2014). An overview of mechanical properties and durability of glass-fibre reinforced recycled mixed plastic waste composites, Materials and Design, 62, 98–112.
  • [31]Eurostat (2020) URL: https://ec.europa.eu/eurostat/documents/4187653/9451024/Recycling_rate_of_plastic_2019_3/3d36f6f7-6662-c70a-b29d-55f1f0cfa10c?t=1572896410205
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  • [34] Urreaga, J. M., González-Sánchez, C., Martínez-Aguirre, A., Fonseca-Valero, C., Acosta, J. and de la Orden, M. U., 2015, Sustainable eco-composites obtained from agricultural and urban waste plastic blends and residual cellulose fibers. Journal of Cleaner Production, 108, 377-384.
  • [35] González-Sánchez, C., Martínez-Aguirre, A., Pérez-García, B., Martínez-Urreaga, J., María, U., & Fonseca-Valero, C., 2014, Use of residual agricultural plastics and cellulose fibers for obtaining sustainable eco-composites prevents waste generation. Journal of Cleaner Production, 83, 228-237.
  • [36] La Mantia, F. P., Morreale, M., 2006, Mechanical properties of recycled polyethylene ecocomposites filled with natural organic fillers. Polymer Engineering & Science, 46(9), 1131-1139.
  • [37] De la Orden, M. U., Sánchez, C. G., Quesada, M. G., and Urreaga, J. M., 2007, Novel polypropylene–cellulose composites using polyethylenimine as coupling agent. Composites Part A: Applied Science and Manufacturing, 38(9), 2005-2012.
  • [38] Faruk, O., Bledzki, A. K., Fink, H. P., and Sain, M., 2012, Biocomposites reinforced with natural fibers: 2000–2010. Progress in Polymer Science, 37(11), 1552-1596
  • [39] Kazemi, N. S., 2013, Use of recycled plastics in wood plastic composites-a review. Waste management, 33(9), 1898-1905.
  • [40] Koronis, G., Silva, A., and Fontul, M., 2013, Green composites: a review of adequate materials for automotive applications. Composites Part B: Engineering, 44(1), 120-127
  • [41] Al-Oqla, F. M., Sapuan, S. M., 2014, Natural fiber reinforced polymer composites in industrial applications: feasibility of date palm fibers for sustainable automotive industry. Journal of Cleaner Production, 66, 347-354.
  • [42] Bilici, İ., 2012, Atık plastiklerden kompozit malzeme üretimi ve karakterizasyonu, Doktora Tezi, Ankara Üniversitesi Fen Bilimleri Enstitüsü, Ankara, 87.
  • [43] Sommerhuber, P. F. , Welling, J., and Krause, A., 2015, Substitution potentials of recycled HDPE and wood particles from post-consumer packaging waste in Wood–Plastic Composites, Waste Management, 46, 76–85.
  • [44] Boeglin, N., Triboulot, P., and Masson, D., 1997, A feasibility study on boards from wood and plastic waste: bending properties, dimensional stability and recycling of the board. Holz als Roh-und Werkstoff, 55(1), 13-16.
  • [45] Balasuriya, P. W., Ye, L., and Mai, Y. W., 2003, Morphology and mechanical properties of reconstituted wood board waste-polyethylene composites. Composite Interfaces, 10(2-3), 319-341.
  • [46] Chen, H. C., Chen, T. Y., and Hsu, C. H., 2006, Effects of wood particle size and mixing ratios of HDPE on the properties of the composites. Holz als Roh-und Werkstoff, 64(3), 172-177.
  • [47] Adhikary, K. B., Pang, S., and Staiger, M. P. (2008). Dimensional stability and mechanical behaviour of wood–plastic composites based on recycled and virgin high-density polyethylene (HDPE). Composites Part B: Engineering, 39(5), 807-815.
  • [48] Migneault, S., Koubaa, A., and Perré, P., 2014, Effect of fiber origin, proportion, and chemical composition on the mechanical and physical properties of wood-plastic composites. Journal of Wood Chemistry and Technology, 34(4), 241-261.
  • [49] Gozdecki, C., Wilczyński, A., Kociszewski, M., and Zajchowski, S., 2015, Properties of wood–plastic composites made of milled particleboard and polypropylene. European Journal of Wood and Wood Products, 73(1), 87-95.
  • [50] Hu, B., Serranti, S., Fraunholcz, N., Di Maio, F., and Bonifazi, G., 2013, Recycling-oriented characterization of polyolefin packaging waste, Waste Management, 33 (3), 574–584.
  • [51] Yam, K. L., Gogoi, B. K., Lai, C. C., and Selke, S. E., 1990, Composites from compounding wood fibers with recycled high density polyethylene. Polymer Engineering & Science, 30(11), 693-699.
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There are 64 citations in total.

Details

Primary Language Turkish
Subjects Environmental Sciences
Journal Section Articles
Authors

Merve Kayılı This is me

Gülser Çelebi

Publication Date September 30, 2020
Submission Date April 11, 2020
Published in Issue Year 2020 Volume: 3 Issue: 3

Cite

APA Kayılı, M., & Çelebi, G. (2020). Plastik Atıkların ve Yapıda Kullanım Olanaklarının İncelenmesi. Ulusal Çevre Bilimleri Araştırma Dergisi, 3(3), 148-157.
AMA Kayılı M, Çelebi G. Plastik Atıkların ve Yapıda Kullanım Olanaklarının İncelenmesi. UCBAD. September 2020;3(3):148-157.
Chicago Kayılı, Merve, and Gülser Çelebi. “Plastik Atıkların Ve Yapıda Kullanım Olanaklarının İncelenmesi”. Ulusal Çevre Bilimleri Araştırma Dergisi 3, no. 3 (September 2020): 148-57.
EndNote Kayılı M, Çelebi G (September 1, 2020) Plastik Atıkların ve Yapıda Kullanım Olanaklarının İncelenmesi. Ulusal Çevre Bilimleri Araştırma Dergisi 3 3 148–157.
IEEE M. Kayılı and G. Çelebi, “Plastik Atıkların ve Yapıda Kullanım Olanaklarının İncelenmesi”, UCBAD, vol. 3, no. 3, pp. 148–157, 2020.
ISNAD Kayılı, Merve - Çelebi, Gülser. “Plastik Atıkların Ve Yapıda Kullanım Olanaklarının İncelenmesi”. Ulusal Çevre Bilimleri Araştırma Dergisi 3/3 (September 2020), 148-157.
JAMA Kayılı M, Çelebi G. Plastik Atıkların ve Yapıda Kullanım Olanaklarının İncelenmesi. UCBAD. 2020;3:148–157.
MLA Kayılı, Merve and Gülser Çelebi. “Plastik Atıkların Ve Yapıda Kullanım Olanaklarının İncelenmesi”. Ulusal Çevre Bilimleri Araştırma Dergisi, vol. 3, no. 3, 2020, pp. 148-57.
Vancouver Kayılı M, Çelebi G. Plastik Atıkların ve Yapıda Kullanım Olanaklarının İncelenmesi. UCBAD. 2020;3(3):148-57.

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