Niu Xiaofeng, Xu Qing, Zhang Yi, Zhang Yue, Yan Yufeng, Liu Tao
College of Urban Construction, Nanjing Tech University, Nanjing 210009, China.
College of Material Science and Engineering, Anhui University of Technology, Ma'anshan 243032, China.
Nanomaterials (Basel). 2017 Apr 29;7(5):96. doi: 10.3390/nano7050096.
Micro-nanoencapsulated phase change materials (M-NEPCMs) are proposed to be useful in liquid desiccant dehumidification by restraining the temperature rise in the moisture-removal process and improving the dehumidification efficiency. In this paper, the -octadecane M-NEPCMs with desirable thermal properties for internally-cooled dehumidification were fabricated by using compound emulsifiers through the in-situ polymerization method. Melamine-formaldehyde resin was used as the shell material. The effects of the mixing ratio, emulsification methods and amount of the compound emulsifiers on the morphology, size and thermal properties of the M-NEPCMs were investigated experimentally. The optimum weight mixing ratio of the compound emulsifiers is SDS (sodium dodecyl sulfate):Tween80 (polyoxyethylene sorbitan monooleate):Span80 (sorbitan monooleate) = 0.1:0.6:0.3, which achieves the best stability of the -octadecane emulsion. When the compound emulsifiers are 10 wt. % of the core material, the melting enthalpy of M-NEPCMs reaches its maximum of 145.26 J/g of capsules, with an encapsulation efficiency of 62.88% and a mean diameter of 636 nm. The sub-cooling of the prepared M-NEPCMs is lower than 3 °C, with an acceptable thermal reliability after the thermal cycling test. A pre-emulsification prior to the addition of deionized water in the emulsification is beneficial to the morphology of the capsules, as the phase change enthalpy can be increased by 123.7%.
微纳封装相变材料(M-NEPCMs)被认为可通过抑制除湿过程中的温度升高和提高除湿效率,在液体除湿中发挥作用。本文采用复合乳化剂通过原位聚合法制备了具有适用于内冷除湿的热性能的十八烷M-NEPCMs。三聚氰胺-甲醛树脂用作壳材。通过实验研究了复合乳化剂的混合比例、乳化方法和用量对M-NEPCMs的形态、尺寸和热性能的影响。复合乳化剂的最佳重量混合比为十二烷基硫酸钠(SDS):吐温80(聚氧乙烯山梨醇酐单油酸酯):司盘80(山梨醇酐单油酸酯)=0.1:0.6:0.3,此时十八烷乳液的稳定性最佳。当复合乳化剂占芯材的10 wt.%时,M-NEPCMs的熔化焓达到最大值,为145.26 J/g胶囊,封装效率为62.88%,平均直径为636 nm。所制备的M-NEPCMs的过冷度低于3℃,热循环试验后具有可接受的热可靠性。在乳化过程中加入去离子水之前进行预乳化有利于胶囊的形态,因为相变焓可提高123.7%。