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微胶囊相变材料在太阳能热转换系统中的应用:理解几何依赖性加热效率和系统可靠性。

Microencapsulated Phase Change Materials in Solar-Thermal Conversion Systems: Understanding Geometry-Dependent Heating Efficiency and System Reliability.

机构信息

Stephenson Institute for Renewable Energy, Department of Chemistry, University of Liverpool , Crown Street, Liverpool L69 7ZD, United Kingdom.

Centre for Materials and Structures, School of Engineering, University of Liverpool , Liverpool L69 3GH, United Kingdom.

出版信息

ACS Nano. 2017 Jan 24;11(1):721-729. doi: 10.1021/acsnano.6b07126. Epub 2016 Dec 23.

Abstract

The performance of solar-thermal conversion systems can be improved by incorporation of nanocarbon-stabilized microencapsulated phase change materials (MPCMs). The geometry of MPCMs in the microcapsules plays an important role for improving their heating efficiency and reliability. Yet few efforts have been made to critically examine the formation mechanism of different geometries and their effect on MPCMs-shell interaction. Herein, through changing the cooling rate of original emulsions, we acquire MPCMs within the nanocarbon microcapsules with a hollow structure of MPCMs (h-MPCMs) or solid PCM core particles (s-MPCMs). X-ray photoelectron spectroscopy and atomic force microscopy reveals that the capsule shell of the h-MPCMs is enriched with nanocarbons and has a greater MPCMs-shell interaction compared to s-MPCMs. This results in the h-MPCMs being more stable and having greater heat diffusivity within and above the phase transition range than the s-MPCMs do. The geometry-dependent heating efficiency and system stability may have important and general implications for the fundamental understanding of microencapsulation and wider breadth of heating generating systems.

摘要

通过将纳米碳稳定的微封装相变材料(MPCMs)纳入太阳能热转换系统,可以提高其性能。微胶囊中 MPCMs 的几何形状对于提高其加热效率和可靠性起着重要作用。然而,很少有人努力从关键角度来研究不同几何形状的形成机制及其对 MPCMs-壳相互作用的影响。在这里,通过改变原始乳液的冷却速率,我们在纳米碳微胶囊内获得了具有中空 MPCMs(h-MPCMs)或固体 PCM 核颗粒(s-MPCMs)结构的 MPCMs。X 射线光电子能谱和原子力显微镜表明,h-MPCMs 的胶囊壳富含纳米碳,与 s-MPCMs 相比,具有更大的 MPCMs-壳相互作用。这导致 h-MPCMs 在相变范围内及其以上具有更高的稳定性和更大的热扩散率。这种几何形状依赖性的加热效率和系统稳定性可能对微封装的基本理解和更广泛的加热产生系统具有重要和普遍的意义。

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