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Tytuł artykułu

Rozwój rynku pianki szklanej jako materiału izolacyjnego w przemyśle i budownictwie

Treść / Zawartość
Identyfikatory
Warianty tytułu
EN
Development of the glass foam market as an insulating material in industry and construction
Języki publikacji
PL
Abstrakty
PL
Materiały z pianki szklanej są równie dobrym izolatorem jak powszechnie wykorzystywane materiały ze spienionych tworzyw sztucznych czy też wełna mineralna. A w wielu zastosowaniach są materiałem zdecydowanie lepszym. Chodzi chociażby o zastosowania kriogeniczne oraz zastosowania wysokotemperaturowe. Rynek pianek szklanych systematycznie się rozwija i coraz śmielej konkuruje z materiałami, które do tej pory były bezkonkurencyjne, zwłaszcza w branży budowlanej. Artykuł ma na celu przybliżyć właściwości materiału jak i sam rynek materiałów związanych ze spienionymi materiałami szklanymi.
EN
Glass foam materials are as good an insulator as commonly used materials made of foamed plastics or mineral wool. And for many applications, they are a much better material. It is about cryogenic and high temperature applications. The market of glass foams is systematically developing and it competes more and more boldly with materials that have been unrivaled so far, especially in the construction industry. The aim of the article is to present the properties of the material as well as the market of materials related to foamed glass materials.
Czasopismo
Rocznik
Strony
44--48
Opis fizyczny
Bibliogr. 35 poz., il., tab., wykr.
Twórcy
  • Politechnika Warszawska, Wydział Mechaniczny Energetyki i Lotnictwa
Bibliografia
  • 1. Salah M. El-Haggar, Sustainability of Municipal Solid Waste Management, Sustainable Industrial Design and Waste Management 2007, 149-196
  • 2. Strona internetowa https://www.marketsandmarkets.com/Market-Reports/foam-glass-market-3506071.html [dostęp 2022- 02-01]
  • 3. Strona internetowa https://www.foamglas.com/ [dostęp 2022- 02-03]
  • 4. Chenxi Zhai, Jing Zhang, Ying Zhong, Xin Tao, Mingchao Wang, Yumei Zhu, Jingjie Yeo, Producing light, strong foam glass under a low sintering temperature with insights from molecular simulations, Journal of Non-Crystalline Solids, Volume 582, 2022, 121447,
  • 5. Ayesha Siddika, Ailar Hajimohammadi, Veena Sahajwalla, Stabilisation of pores in glass foam by using a modified curing-sintering process: sustainable recycling of automotive vehicles’ waste glass, Resources, Conservation & Recycling 179 (2022) 106145
  • 6. Ahmed A.M. El-Amir, Mohammed A.A. Attia, M. Newishy, Thomas Fend, Emad M.M. Ewais: Aluminium dross/soda lime glass waste- derived high-quality glass foam, Journal of Materials Research and Technology 15 (2021), Pages 4940-4948
  • 7. Chenxi Zhai, Jing Zhang, Ying Zhong, Xin Tao, Mingchao Wang, Yumei Zhu, Jingjie Yeo.: Producing light, strong foam glass under a low sintering temperature with insights from molecular simulations, Journal of Non-Crystalline Solids 582 (2022) 121447
  • 8. Robson Coutoda Silva, Fabio NevesPuglieri, Daiane Maria de Genaro Chiroli, Guilherme Antonio Bartmeyer, Evaldo Toniolo Kubaski, Sergio Mazurek Tebcherani, Recycling of glass waste into foam glass boards: A comparison of cradle-to-gate life cycles of boards with different foaming agents, Science of The Total Environment 771 (2021) 145276
  • 9. Junjie Zhang and Bo Liu and Shengen Zhang: A review of glass ceramic foams prepared from solid wastes: Processing, heavy-metal solidification and volatilization, applications, Science of The Total Environment 781 (2021) 146727
  • 10. K. El-Egili: Infrared studies of Na2O–B2O3-SiO2 and Al2O3-Na-2O-B2O3-SiO2 glasses Physica B, 325 (2003), pp. 340-348
  • 11. E. Kim, K. Kim, O. Song: Properties of basalt-fiber reinforced foam glass, J. Asian Ceram. Soc., 8 (2020), pp. 170-175
  • 12. J. Bai, X. Yang, S. Xu, W. Jing, J. Yang: Preparation of foam glass from waste glass and fly ash, Mater. Lett., 136 (2014), pp. 52-54
  • 13. J. Isard: The mixed alkali effect in glass, J. NonCryst. Solids, 1 (1969), pp. 235-261
  • 14. B. Chen, Z. Luo, A. Lu: Preparation of sintered foam glass with high fly ash content, Mater. Lett., 65 (2011), pp. 3555-3558
  • 15. D.I. Saparuddin, N.A.N. Hisham, S. Ab Aziz, K.A. Matori, S. Honda, Y. Iwamoto, M.H.M. Zaid: Effect of sintering temperature on the crystal growth, microstructure and mechanical strength of foam glass-ceramic from waste materials, J. Mater.Res. Technol., 9 (2020), pp. 5640-5647
  • 16. R.C. da Silva, F.N. Puglieri, D.M. de Genaro Chiroli, G.A. Bartmeyer, E.T. Kubaski, S.M. Tebcherani: Recycling of glass waste into foam glass boards: a comparison of cradle-to-gate life cycles of boards with different foaming agents, Sci. Total Environ., 771 (2021), Article 145276
  • 17. K. Yue, C. Zhai, S. Gu, Y. He, J. Yeo, G. Zhou: Performance-enhanced lithium metal batteries through ionic liquid based electrolytes and mechanism research derived by density functional theory calculations, Electrochim. Acta, 368 (2021), Article 137535
  • 18. C. Zhai, Y. Zhong, J. Liu, J. Zhang, Y. Zhu, M. Wang, J. Yeo: Customizing the properties of borosilicate foam glasses via additions under low sintering temperatures with insights from molecular dynamics simulations, J. NonCryst. Solids, 576 (2022), Article 121273
  • 19. A. Francis, M. Abdel Rahman: Structure characterization and optimization of process parameters on compressive properties of glass-based foam composites, Environ. Prog. Sustain. Energy, 33 (2014), pp. 800-807
  • 20. C. Zhai, Z. Li, Y. Zhu, J. Zhang, X. Wang, L. Zhao, L. Pan, P. Wang: Effects of Sb2O3 on the mechanical properties of the borosilicate foam glasses sintered at low temperature, Adv. Mater. Sci. Eng., 2014 (2014)
  • 21. K.W. Jung, T.U. Jeong, B.H. Choi, J. Kang, K.H. Ahn: Phosphate adsorption from aqueous solution by Laminaria japonica-derived biochar-calcium alginate beads in a fixed-bed column: experiments and prediction of breakthrough curves, Environ. Prog. Sustain. Energy, 36 (2017), pp. 1365-1373
  • 22. M. Jain, V.K. Garg, K. Kadirvelu: Cadmium(II) sorption and desorption in a fixed bed column using sunflower waste carbon calcium–alginate beads, Bioresour. Technol., 129 (2013), pp. 242-248
  • 23. R.D. Letterman, A.W.W. Association: Filtration Strategies to Meet the Surface Water Treatment Rule, Filtration Strategies to Meet the Surface Water Treatment Rule, AWWA (1991)
  • 24. J.M. Ebeling, C.F. Welsh, K.L. Rishel: Performance evaluation of an inclined belt filter using coagulation/flocculation aids for the removal of suspended solids and phosphorus from microscreen backwash effluent, Aquacult. Eng., 35 (2006), pp. 61-77
  • 25. M.L. Berndt: Properties of sustainable concrete containing fly ash, slag and recycled concrete aggregate, Constr. Build. Mater., 23 (2009), pp. 2606-2613
  • 26. C.A. Prochaska, A.I. Zouboulis: Removal of phosphates by pilot vertical-flow constructed wetlands using a mixture of sand and dolomite as substrate, Ecol. Eng., 26 (2006), pp. 293-303
  • 27. J. Puig Bargués, G. Arbat Pujolràs, J. Barragán Fernández, F. Ramírez de Cartagena Bisbe: Effluent particle removal by microirrigation system filters. Span, J. Agric. Res., 3 (2005), pp. 182-191
  • 28. G.-L. Yoon, B.-T. Kim, B.-O. Kim, S.-H. Han: Chemical–mechanical characteristics of crushed oyster-shell, Waste Manag., 23 (2003), pp. 825-834
  • 29. C.A. Arias, M. Del Bubba, H. Brix: Phosphorus removal by sands for use as media in subsurface flow constructed reed beds, Water Res., 35 (2001), pp. 1159-1168
  • 30. G.M. Ayoub, B. Koopman, N. Pandya: Iron and aluminum hydroxy (oxide) coated filter media for low-concentration phosphorus removal, Water Environ. Res., 73 (2001), pp. 478-485
  • 31. R.C. Silva, F.N. Puglieri, D.M.G. Chiroli, et al.: Recycling of glass waste into foam glass boards: a comparison of cradle-to-gate life cycles of boards with different foaming agents, Sci. Total Environ., 771 (2021), p. 145276
  • 32. J. Li, X.G. Zhuang, Eliseo Monfor, et al.: Utilization of coal fly ash from a Chinese power plant for manufacturing highly insulating foam glass: implications of physical, mechanical properties and environmental features, Construct. Build. Mater., 175 (2018), pp. 64-76
  • 33. J. König, R.R. Petersen, Y.Z. Yue: Fabrication of highly insulating foam glass made from CRT panel glass, Ceram. Int., 41 (2015), pp. 9793-9800
  • 34. Z.Q. Jiang, J. Yang, H.W. Ma, et al.: Reaction behaviour of Al2O3, and SiO2, in high alumina coal fly ash during alkali hydrothermal process, T. Nonferr. Metal. Soc., 25 (2015), pp. 2065-207
  • 35. C. Arriagada, I. Navarrete, M. Lopez: Understanding the effect of porosity on the mechanical and thermal performance of glass foam lightweight aggregates and the influence of production factors, Construct. Build. Mater., 228 (2019), p. 116746
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-808036c5-8718-45bf-8795-46d3b1c4bd89
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