TY - JOUR
T1 - Novel Na2SO4@SiO2 phase change material with core-shell structures for high temperature thermal storage
AU - Wu, Xiaodong
AU - Fan, Maohong
AU - Cui, Sheng
AU - Tan, Gang
AU - Shen, Xiaodong
N1 - Publisher Copyright:
© 2018 Elsevier B.V.
PY - 2018/5
Y1 - 2018/5
N2 - Microencapsulated composite material using Na2SO4 as core and SiO2 as shell for high temperature thermal energy storage is prepared. The effects of silica mass percentages within the Na2SO4@SiO2 PCM composites on thermal conductivity, thermal stability, melting temperature, and latent heat are investigated. No new phases are formed during the encapsulation process. The spherical silica nanoparticles with diameters at around 300 nm are well decorated on the surface of Na2SO4. The PCM composite with 5.4% silica addition is determined as the optimal sample due to its excellent comprehensive properties. The inhibition of liquid leakage during melting can be effectively realized. The thermal conductivity of Na2SO4@SiO2 PCM under high temperatures (600–800 °C) can be increased to 0.59 W/(m K), 0.62 W/(m K), and 0.87 W/(m K), respectively. The initial and peak melting temperatures of the Na2SO4@SiO2 are tested at 885.20 °C and 887.91 °C, respectively. The latent heat is determined as high as 170.6 J/(g K), and the total heat storage density including latent and sensible heat with a temperature span of 100 °C is 390.6 J/g, and the mass loss is observed < 1% under 1000 °C. In addition, the latent heat loss percentage after 50 thermal cycle tests is ≤ 4.3%.
AB - Microencapsulated composite material using Na2SO4 as core and SiO2 as shell for high temperature thermal energy storage is prepared. The effects of silica mass percentages within the Na2SO4@SiO2 PCM composites on thermal conductivity, thermal stability, melting temperature, and latent heat are investigated. No new phases are formed during the encapsulation process. The spherical silica nanoparticles with diameters at around 300 nm are well decorated on the surface of Na2SO4. The PCM composite with 5.4% silica addition is determined as the optimal sample due to its excellent comprehensive properties. The inhibition of liquid leakage during melting can be effectively realized. The thermal conductivity of Na2SO4@SiO2 PCM under high temperatures (600–800 °C) can be increased to 0.59 W/(m K), 0.62 W/(m K), and 0.87 W/(m K), respectively. The initial and peak melting temperatures of the Na2SO4@SiO2 are tested at 885.20 °C and 887.91 °C, respectively. The latent heat is determined as high as 170.6 J/(g K), and the total heat storage density including latent and sensible heat with a temperature span of 100 °C is 390.6 J/g, and the mass loss is observed < 1% under 1000 °C. In addition, the latent heat loss percentage after 50 thermal cycle tests is ≤ 4.3%.
KW - Core-shell
KW - Latent heat
KW - Liquid leakage
KW - Phase change material
KW - Thermal conductivity
UR - http://www.scopus.com/inward/record.url?scp=85041449796&partnerID=8YFLogxK
U2 - 10.1016/j.solmat.2018.01.030
DO - 10.1016/j.solmat.2018.01.030
M3 - 文章
AN - SCOPUS:85041449796
SN - 0927-0248
VL - 178
SP - 280
EP - 288
JO - Solar Energy Materials and Solar Cells
JF - Solar Energy Materials and Solar Cells
ER -