TY - JOUR
T1 - Production and Physical–Mechanical Characterization of Peat Moss (Sphagnum) Insulation Panels
AU - Kain, G.
AU - Morandini, M.
AU - Stamminger, A.
AU - Granig, T.
AU - Tudor, E.M.
AU - Schnabel, T.
AU - Petutschnigg, A.
N1 - Cited By :4
Export Date: 14 December 2023
Correspondence Address: Morandini, M.; Department for Forest Products Technology and Timber Construction, Markt 136a, Austria; email: [email protected]
Funding details: Amazon Web Services, AWS
Funding details: European Regional Development Fund, ERDF
Funding text 1: Acknowledgments: The authors gratefully acknowledge EFRE (European Funds for Regional Development), AWS (Austria Wirtschafts Service), and the region of Salzburg for the support in the development of the Salzburg Center for Smart Materials, the support of Friedrich Idam for the research on historic peat moss utilization, Thomas Wimmer for conducting laboratory tests, and Stefanie Mandl for providing the photography of the Bering-Hut in Gosau.
Funding text 2: The authors gratefully acknowledge EFRE (European Funds for Regional De-velopment), AWS (Austria Wirtschafts Service), and the region of Salzburg for the support in the development of the Salzburg Center for Smart Materials, the support of Friedrich Idam for the research on historic peat moss utilization, Thomas Wimmer for conducting laboratory tests, and Stefanie Mandl for providing the photography of the Bering-Hut in Gosau.
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PY - 2021/11/2
Y1 - 2021/11/2
N2 - Peat moss (sphagnum) is a commonly used sealant, fill, and insulation material in the past. During the efforts to rewet drained moors due to ecological considerations, the technical use of peat moss (sphagnum farming) again became the focus of attention. In the framework of this investigation, insulation panels consisting of peat moss, bound with urea formaldehyde, were produced. Panels manufactured in a wet process and mats bound with textiles were also fabricated. The specimens’ thermal conductivity, water vapor diffusion resistance, modulus of rupture, modulus of elasticity, internal bond, compression resistance, water absorption, and thickness swelling were measured. Physical–mechanical properties were adequate with the resin-bound panels, but not with wet process panels. Moss mats had good characteristics for cavity insulation purposes. The thermal conductivity of the moss panels and mats was found to be lowest with a density of 50 kg/m3, accounting for 0.04 W/m·K. The results show that peat moss is a promising resource for production insulation panels, because their thermal conductivity and mechanical stability are comparable to other insulation materials.
AB - Peat moss (sphagnum) is a commonly used sealant, fill, and insulation material in the past. During the efforts to rewet drained moors due to ecological considerations, the technical use of peat moss (sphagnum farming) again became the focus of attention. In the framework of this investigation, insulation panels consisting of peat moss, bound with urea formaldehyde, were produced. Panels manufactured in a wet process and mats bound with textiles were also fabricated. The specimens’ thermal conductivity, water vapor diffusion resistance, modulus of rupture, modulus of elasticity, internal bond, compression resistance, water absorption, and thickness swelling were measured. Physical–mechanical properties were adequate with the resin-bound panels, but not with wet process panels. Moss mats had good characteristics for cavity insulation purposes. The thermal conductivity of the moss panels and mats was found to be lowest with a density of 50 kg/m3, accounting for 0.04 W/m·K. The results show that peat moss is a promising resource for production insulation panels, because their thermal conductivity and mechanical stability are comparable to other insulation materials.
KW - Insulation materials
KW - Natural materials
KW - Peat moss
KW - Renewable materials
KW - Insulating materials
KW - Peat
KW - Shotcreting
KW - Swelling
KW - Thermal conductivity
KW - Thermal insulation
KW - Water absorption
KW - Wetting
KW - Fill materials
KW - Focus of Attention
KW - Insulation panel
KW - Mechanical characterizations
KW - Urea formaldehyde
KW - Wet process
KW - Urea
UR - https://www.mendeley.com/catalogue/fa10b5a7-3764-3408-bf5a-7dca78d90132/
U2 - 10.3390/ma14216601
DO - 10.3390/ma14216601
M3 - Article
C2 - 34772124
SN - 1996-1944
VL - 14
JO - Mater.
JF - Mater.
IS - 21
ER -