Page 123 - Polymer-based Nanocomposites for Energy and Environmental Applications
P. 123
Nanoclay and polymer-based nanocomposites: Materials for energy efficiency 99
[33] Zhang P, Hu Y, Song L, Ni J, Xing W, Wang J. Effect of expanded graphite on properties
of high-density polyethylene/paraffin composite with intumescent flame retardant as a
shape-stabilized phase change material. Sol Energy Mater Sol Cells 2010;94:360–5.
[34] Chen C, Wang L, Huang Y. A novel shape-stabilized PCM: electrospun ultrafine
fibers based on lauric acid/polyethylene terephthalate composite. Mater Lett 2008;
62:3515–7.
[35] Wen R, Huang Z, Huang Y, Zhang X, Min X, Fang M, et al. Synthesis and characteri-
zation of lauric acid/expanded vermiculite as form-stabilized thermal energy storage
materials. Energy Build 2016;116:677–83.
[36] Kuznik F, Virgone J. Experimental assessment of a phase change material for wall build-
ing use. Appl Energy 2009;86:2038–46.
[37] Kuznik F, Virgone J, Johannes K. In-situ study of thermal comfort enhancement in a
renovated building equipped with phase change material wallboard. Renew Energy
2011;36:1458–62.
[38] Kuznik F, Virgone J. Experimental investigation of wallboard containing phase change
material: data for validation of numerical modeling. Energy Build 2009;41:561–70.
[39] Shilei L, Neng Z, Guohui F. Eutectic mixtures of capric acid and lauric acid applied in
building wallboards for heat energy storage. Energy Build 2006;38:708–11.
[40] Kuznik F, Virgone J, Noel J. Optimization of a phase change material wallboard for
building use. Appl Therm Eng 2008;28:1291–8.
[41] Carbonari A, De Grassi M, Di Perna C, Principi P. Numerical and experimental ana-
lyses of PCM containing sandwich panels for prefabricated walls. Energy Build
2006;38:472–83.
[42] Hadjieva M, Stoykov R, Filipova T. Composite salt-hydrate concrete system for building
energy storage. Renew Energy 2000;19:111–5.
[43] Bentz DP, Turpin R. Potential applications of phase change materials in concrete tech-
nology. Cem Concr Compos 2007;29:527–32.
[44] Lee T, Hawes DW, Banu D, Feldman D. Control aspects of latent heat storage and recov-
ery in concrete. Sol Energy Mater Sol Cells 2000;62:217–37.
[45] Hawes DW, Banu D, Feldman D. The stability of phase change materials in concrete.
Sol Energy Mater Sol Cells 1992;27:103–18.
[46] Cellat K, Beyhan B, G€ ung€ or C, Konuklu Y, Karahan O, D€ undar C, et al. Thermal
enhancement of concrete by adding bio-based fatty acids as phase change materials.
Energy Build 2015;106:156–63.
[47] Xu X, Zhang Y, Lin K, Di H, Yang R. Modeling and simulation on the thermal perfor-
mance of shape-stabilized phase change material floor used in passive solar buildings.
Energy Build 2005;37:1084–91.
[48] Koschenz M, Lehmann B. Development of a thermally activated ceiling panel with PCM
for application in lightweight and retrofitted buildings. Energy Build 2004;36:567–78.
[49] Tyagi VV, Buddhi D. PCM thermal storage in buildings: a state of art. Renew Sust Energ
Rev 2007;11:1146–66.
[50] Neeper DA. Thermal dynamics of wallboard with latent heat storage. Sol Energy
2000;68:393–403.
[51] Shilei L, Guohui F, Neng Z, Li D. Experimental study and evaluation of latent heat stor-
age in phase change materials wallboards. Energy Build 2007;39:1088–91.
[52] Ahmad M, Bontemps A, Sall ee H, Quenard D. Thermal testing and numerical simulation
of a prototype cell using light wallboards coupling vacuum isolation panels and phase
change material. Energy Build 2006;38:673–81.