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利用乙酰化纤维素纳米纤维乳化技术实现相变材料的防漏微胶囊化。

Leakage-proof microencapsulation of phase change materials by emulsification with acetylated cellulose nanofibrils.

机构信息

Department of Bioproducts and Biosystems, Aalto University, Espoo 02150, Finland.

Department of Mechanical Engineering, Aalto University, Espoo 02150, Finland.

出版信息

Carbohydr Polym. 2021 Feb 15;254:117279. doi: 10.1016/j.carbpol.2020.117279. Epub 2020 Oct 21.

Abstract

We use acetylated cellulose nanofibrils (AcCNF) to stabilize transient emulsions with paraffin that becomes shape-stable and encapsulated phase change material (PCM) upon cooling. Rheology measurements confirm the gel behavior and colloidal stability of the solid suspensions. We study the effect of nanofiber content on PCM leakage upon melting and compare the results to those from unmodified CNF. The nanostructured cellulose promotes paraffin phase transition, which improves the efficiency of thermal energy exchange. The leakage-proof microcapsules display high energy absorption capacity (ΔH = 173 J/g) at high PCM loading (up to 80 wt%), while effectively controlling the extent of supercooling. An excellent thermal stability is observed during at least 100 heating/cooling cycles. Degradation takes place at 291 °C, indicating good thermal stability. The high energy density and the effective shape and thermal stabilization of the AcCNF-encapsulated paraffin points to a sustainable solution for thermal energy storage and conversion.

摘要

我们使用乙酰化纤维素纳米纤维 (AcCNF) 来稳定含有石蜡的瞬态乳液,冷却后石蜡会变成形状稳定的封装相变材料 (PCM)。流变学测量证实了固体悬浮液的凝胶行为和胶体稳定性。我们研究了纳米纤维含量对 PCM 熔融时泄漏的影响,并将结果与未改性 CNF 的结果进行了比较。纳米结构纤维素促进了石蜡的相变,从而提高了热能交换的效率。防漏微胶囊在高 PCM 负载(高达 80wt%)下显示出高的能量吸收能力(ΔH=173J/g),同时有效地控制过冷程度。在至少 100 次加热/冷却循环中观察到优异的热稳定性。降解发生在 291°C,表明具有良好的热稳定性。AcCNF 封装石蜡的高能量密度以及有效的形状和热稳定性表明,这是一种用于热能存储和转换的可持续解决方案。

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