Thermal conductivity of hygroscopic foams based on cellulose nanofibrils and a nonionic polyoxamer

被引:44
作者
Apostolopoulou-Kalkavoura, Varvara [1 ]
Gordeyeva, Korneliya [1 ]
Lavoine, Nathalie [1 ]
Bergstrom, Lennart [1 ]
机构
[1] Stockholm Univ, Dept Mat & Environm Chem, Stockholm, Sweden
关键词
Thermal conductivity; Nanocellulose; Isotropic foams; Moisture transport; Hygroscopic; Empirical modelling; WATER SORPTION ISOTHERMS; OF-THE-ART; INSULATION MATERIALS; FIBROUS INSULATION; BUILDING-MATERIALS; MOISTURE TRANSFER; NANOCELLULOSE; AEROGELS; TEMPERATURE; DIFFUSIVITY;
D O I
10.1007/s10570-017-1633-y
中图分类号
TB3 [工程材料学]; TS [轻工业、手工业、生活服务业];
学科分类号
0805 ; 080502 ; 0822 ;
摘要
Nanocellulose-based lightweight foams are promising alternatives to fossil-based insulation materials for energy-efficient buildings. The properties of cellulose-based materials are strongly influenced by moisture and there is a need to assess and better understand how the thermal conductivity of nanocellulose-based foams depends on the relative humidity and temperature. Here, we report a customized setup for measuring the thermal conductivity of hydrophilic materials under controlled temperature and relative humidity conditions. The thermal conductivity of isotropic foams based on cellulose nanofibrils and a nonionic polyoxamer, and an expanded polystyrene foam was measured over a wide range of temperatures and relative humidity. We show that a previously developed model is unable to capture the strong relative humidity dependence of the thermal conductivity of the hygroscopic, low-density nanocellulose- and nonionic polyoxamer-based foam. Analysis of the moisture uptake and moisture transport was used to develop an empirical model that takes into consideration the moisture content and the wet density of the investigated foam. The new empirical model could predict the thermal conductivity of a foam with a similar composition but almost 3 times higher density. Accurate measurements of the thermal conductivity at controlled temperature and relative humidity and availability of simple models to better predict the thermal conductivity of hygroscopic, low-density foams are necessary for the development of nanocellulose-based insulation materials.
引用
收藏
页码:1117 / 1126
页数:10
相关论文
共 49 条
  • [11] Water sorption behavior and gas barrier properties of cellulose whiskers and microfibrils films
    Belbekhouche, Sabrina
    Bras, Julien
    Siqueira, Gilberto
    Chappey, Corinne
    Lebrun, Laurent
    Khelifi, Bertine
    Marais, Stephane
    Dufresne, Alain
    [J]. CARBOHYDRATE POLYMERS, 2011, 83 (04) : 1740 - 1748
  • [12] Berge A., 2012, Literature Review of High Performance Thermal Insulation
  • [13] Bewi Insulation, 2016, BEW INS
  • [14] Thermal Conductivity and Combustion Properties of Wheat Gluten Foams
    Blomfeldt, Thomas O. J.
    Nilsson, Fritjof
    Holgate, Tim
    Xu, Jianxiao
    Johansson, Eva
    Hedenqvist, Mikael S.
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2012, 4 (03) : 1629 - 1635
  • [15] The impact of thermal conductivity change of moist fibrous insulation on energy performance of buildings under hot-humid conditions
    Budaiwi, I.
    Abdou, A.
    [J]. ENERGY AND BUILDINGS, 2013, 60 : 388 - 399
  • [16] *COMM FUND TASK FO, 2002, TRAIN TOM DOCT MED E, P1
  • [17] Conversion Factors, 2000, TEST 2002, P1, DOI [10.1520/E0096, DOI 10.1520/E0096]
  • [18] Dixon C., 2000, International Journal of Microcircuits and Electronic Packaging, V23, P494
  • [19] Duong HM, 2016, NANO BIOTECH BASED M
  • [20] Stabilizing nanocellulose-nonionic surfactant composite foams by delayed Ca-induced gelation
    Gordeyeva, Korneliya S.
    Fall, Andreas B.
    Hall, Stephen
    Wicklein, Bernd
    Bergstrom, Lennart
    [J]. JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2016, 472 : 44 - 51