TY - JOUR
T1 - Fabrication of palmitic acid-grafted epoxidized natural rubber leakage-resistant phase change composites for energy storage
AU - Chen, Zilong
AU - Liu, Wei
AU - Li, Xiaohang
AU - Chang, Zhengwei
AU - Lin, Jun
AU - Zhang, Liqun
AU - Chen, Lin
AU - He, Shaojian
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/10/30
Y1 - 2026/10/30
N2 - The development of phase change composites (PCCs) with effective leakage-resistant and high latent heat for efficient energy storage remains a significant challenge. Palmitic acid (PA) grafted epoxide natural rubber (ENR) was selected as the matrix (ENR-PA), with PA as the phase change material. PCCs with ENR-PA matrix prepared using different feed ratios of PA-to-ENR were fabricated under PA loading of 50 wt%. The effects of feed ratio on the PCC structure, latent heat, and leakage resistance were systematically investigated. The study revealed that the PCC prepared with a PA-to-ENR feed ratio of 0.5 as the matrix (ENR-PA1) exhibited the optimal overall performance, characterized by the highest latent heat and the lowest leakage rate. PCCs with different PA loadings were prepared based on ENR-PA1. When the PA loading was 60% (ENR-PA1/PA-60%), the latent heat of PCC was 123.6 J/g, and the leakage rate was only 1.3% after 8 h at 75 °C. After 100 cold-hot cycles, the latent heat of ENR-PA1/PA-60% was 121.6 J/g, with only a 1.6% attenuation. This straightforward and feasible PCC preparation strategy offers a promising choice for fabricating thermal energy storage materials with high phase change enthalpy and low leakage rates, demonstrating promising application prospects.
AB - The development of phase change composites (PCCs) with effective leakage-resistant and high latent heat for efficient energy storage remains a significant challenge. Palmitic acid (PA) grafted epoxide natural rubber (ENR) was selected as the matrix (ENR-PA), with PA as the phase change material. PCCs with ENR-PA matrix prepared using different feed ratios of PA-to-ENR were fabricated under PA loading of 50 wt%. The effects of feed ratio on the PCC structure, latent heat, and leakage resistance were systematically investigated. The study revealed that the PCC prepared with a PA-to-ENR feed ratio of 0.5 as the matrix (ENR-PA1) exhibited the optimal overall performance, characterized by the highest latent heat and the lowest leakage rate. PCCs with different PA loadings were prepared based on ENR-PA1. When the PA loading was 60% (ENR-PA1/PA-60%), the latent heat of PCC was 123.6 J/g, and the leakage rate was only 1.3% after 8 h at 75 °C. After 100 cold-hot cycles, the latent heat of ENR-PA1/PA-60% was 121.6 J/g, with only a 1.6% attenuation. This straightforward and feasible PCC preparation strategy offers a promising choice for fabricating thermal energy storage materials with high phase change enthalpy and low leakage rates, demonstrating promising application prospects.
KW - Antileakage performance
KW - Epoxidized natural rubber
KW - Palmitic acid
KW - Phase change material
UR - https://www.scopus.com/pages/publications/105043762768
U2 - 10.1016/j.est.2026.123424
DO - 10.1016/j.est.2026.123424
M3 - 文章
AN - SCOPUS:105043762768
SN - 2352-152X
VL - 176
JO - Journal of Energy Storage
JF - Journal of Energy Storage
M1 - 123424
ER -