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The influence of post-production materials on lightweight wood fiberboard parameters

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The aim of this study was to produce a very low-density insulation wood fibreboard, in dry technology, with the use of post-production fibres. During the tests, different amounts of post-production fibres, coming from various stages of processing such as grinding, edges cutting, cutting to the required board size, milling and disqualification of faulty boards, were added to lightweight fibreboard. The amount of possible added post-production wood fibres strongly depends on the characteristic of the fibres and particles size distribution. The parameters of the lightweight board, the most influenced by the dimensions of the fibres used, are mainly thermal conductivity and compressive strength.
Rocznik
Strony
art. no. 1644--3985.399.06
Opis fizyczny
Bibliogr. 27 poz., tab., wykr.
Twórcy
  • STEICO Sp. z o.o., Czarnków, Poland
Bibliografia
  • Antov P., Savov V., Neykov N. [2019]: Possibilities for Manufacturing Insulation Boards with Participation of Recycled Lignocellulosic Fibres, Journal Management and Sustainable Development. DOI: 10.13140/RG.2.2.34391.11680
  • Ding T., Zhao J., Zhu N., Wang Ch. [2020]: A comparative study of morphological characteristics of medium‑density fiberboard dust by sieve and image analyses. J Wood Sci 66:55
  • Benthien J. T., Bähnisch C., Heldner S., Ohlmeyer M. [2014]: Effect of Fiber Size Distribution on Medium-Denstiy Fiberboard Properties Caused by Varied Steaming Time and Temperature of Defibration Process. Wood and Fiber Science no. 2/April 2014: 175-185
  • Bekhta P., Hiziroglu S. [2002]: Theoretical approach on specific surface area of wood particles. January 2002 Forest Products Journal 52(4):72-76
  • Biancoa L., Pollob R., Serraa V. [2017]: Wood fiber vs synthetic thermal insulation for roofs energy retrofit:a case study in Turin, Italy. Energy Procedia 111: 347 – 356
  • Bozsaky D. [2010]: The historical development of thermal insulation materials. Periodica polytechnica Architecture 41/2 (2010): 49–56
  • Bozsaky D. [2019]: Nature-Based Thermal Insulation Materials From Renewable Resources. A State-Of-The-Art Review. Slovak Journal of Civil Engineering Vol. 27, 2019, No. 1, 52 – 59
  • Euring M., Kirsch A., Kharazipour A. [2016]: "Pre-pressing and pre-heating via hot-air/hot-steam process for the production of binderless medium-density fiberboards," BioRes. 11(3): 6613-6624
  • Hagel S., Joy J., Cicala G., Saake B. [2021]: Recycling of Waste MDF by Steam Refining: Evaluation of Fiber and Paper Strength Properties. Waste Biomass Valor (2021)
  • Hwang, C.Y., Hse Ch. [2005]: Effects of recycled fiber on the properties of fiberboard panels. For. Prod. J. 55: 61–64
  • Korjenica A., Zachb J., Hroudováb J., [2016]: The use of insulating materials based on natural fibers in combination with plant facades in building constructions. Energy and Buildings,Volume 116, 15 March 2016, Pages 45-58
  • Lubis M.A.R., Hong M.K., Park B.D., Lee S.M. [2018]: Effects of recycled fiber content on the properties of medium density fiberboard. Eur. J. Wood Prod. 2018, 76, 1515–1526
  • Nicewicz D., Danecki L. [2010]: Recycling of insulation boards by reuse. Ann. Warsaw Univ. Life Sci. SGGW For. Wood Technol. 72: 57–61
  • Sonderegger W, Niemz P [2009]: Thermal conductivity and water vapour transmission properties of wood-based materials. Eur J. Wood Prod 67(3): 313–321
  • Sonderegger W., Niemz P. [2012]: Thermal and moisture flux in soft fibreboards. European Journal of Wood and Wood Products 70 (1-3): 25-35
  • Rebolledo P., Cloutier A., Yemele M.C. [2018]: Effect of Density and Fiber Size on Porosity and Thermal Conductivity of Fiberboard Mats. Fibers 6, 81
  • Wong E.D., Zhang M., Han G. [2000]: Formation of the density profile and its effects on the properties of fiberboard. J Wood Sci 46: 202–209
  • The influence of post-production materials on lightweight wood fiberboard parameters
  • List of standards
  • EN 823:2013-05 Thermal insulating products for building applications — Determination of thickness
  • EN 826:2013-05 Thermal insulating products for building applications — Determination of compression behaviour
  • EN 1602:2013-05 Thermal insulating products for building applications — Determination of the apparent density
  • EN 1607:2013-05 Thermal insulating products for building applications — Determination of tensile strength perpendicular to faces
  • EN 13171:2012+A1:2015 Thermal insulation products for buildings – factory made wood fibre (WF) products, Specification
  • EN ISO 29767:2019-11 Thermal insulating products for building applications — Determination of short term water absorption by partial immersion
  • EN 12667:2002 Thermal performance of building materials and products — Determination of thermal resistance by means of guarded hot plate and heat flow meter methods — Products of high and medium thermal resistance
  • EN ISO 2811-1:2016 Paints and varnishes — Determination of density — Part 1: Pycnometer method
  • EN ISO 14896:2009 Plastics — Polyurethane raw materials EN ISO 3219:1993 Plastics — Polymers/resins in the liquid state or as emulsions or dispersions — Determination of viscosity using a rotational viscometer with defined shear rate
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0440cc7d-cbd5-4e05-bcff-972d8518d7b3
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