基于相分离构筑高太阳能反射降温微孔材料的研究任务书
2020-05-01 08:47:28
1. 毕业设计(论文)的内容和要求
反射降温材料是通过对太阳光(波长200 nm ~ 2500 nm)的反射,从而使得材料表内部升温速率下降的功能型材料。
目前,反射降温材料主要是通过在聚合物基体中添加具有高太阳能反射性能的无机粒子来达到降温的效果。
此外,我们实验室前期工作发现,对于聚合物/反射填料反射降温复合材料而言,其太阳能反射率与聚合物和反射填料之间的折光指数差异有关,且折光指数差异越大,其反射性能就越好。
2. 参考文献
[1] V.S. Vishnu, M.L. Reddy, Near-infrared reflecting inorganic pigments based on molybdenum and praseodymium doped yttrium cerate: Synthesis, characterization and optical properties, Solar Energy Materials and Solar Cells, 95 (2011) 2685-2692. [2] L.U. Kai, N.M.N. Sato, V.M. John, Estimating thermal performance of cool colored paints, Energy and Buildings, 42 (2010) 17-22. [3] Kim, A. S., Yun, J. S., Rhee, S. M., Lee, H. S., Hwang, G. I., Temperature increase of foods in car trunk and the potential hazard for;microbial growth, Food Control, 29 (2013) 66-70. [4] X. Xue, J. Yang, W. Zhang, L. Jiang, J. Qu, L. Xu, H. Zhang, J. Song, R. Zhang, Y. Li, The study of an energy efficient cool white roof coating based on styrene acrylate copolymer and cement for waterproofing purpose#8212;Part II: Mechanical and water impermeability properties, Construction and Building Materials, 98 (2015) 176-184. [5] I. Hern#225;ndez-P#233;rez, G. #225;lvarez, J. Xam#225;n, I. Zavala-Guill#233;n, J. Arce, E. Sim#225;, Thermal performance of reflective materials applied to exterior building components#8212;A review, Energy and Buildings, 80 (2014) 81-105. [6] T.R. Oke, G.T. Johnson, D.G. Steyn, I.D. Watson, Simulation of surface urban heat islands under ”ideal#8217; conditions at night part 2: Diagnosis of causation, Boundary-Layer Meteorology, 56 (1991) 339-358. [7] M. Santamouris, Using cool pavements as a mitigation strategy to fight urban heat island#8212;A review of the actual developments, Renewable and Sustainable Energy Reviews, 26 (2013) 224-240. [8] Q. Gao, X. Wu, Y. Fan, Solar spectral optical properties of rutile TiO2 coated mica#8211;titania pigments, Dyes and Pigments, 109 (2014) 90-95. [9] S. Shi, D. Shen, T. Xu, Y. Zhang, Thermal, optical, interfacial and mechanical properties of titanium dioxide/shape memory polyurethane nanocomposites, Composites Science and Technology, 164 (2018) 17-23. [10] G.M. Revel, M. Martarelli, M. Emiliani, A. Gozalbo, M.J. Orts, M.#225;. Bengochea, L.G. Delgado, A. Gaki, A. Katsiapi, M. Taxiarchou, Cool products for building envelope #8211; Part I: Development and lab scale testing, Solar Energy, 105 (2014) 770-779. [11] S. Soumya, A.P. Mohamed, L. Paul, K. Mohan, S. Ananthakumar, Near IR reflectance characteristics of PMMA/ZnO nanocomposites for solar thermal control interface films, Solar Energy Materials and Solar Cells, 125 (2014) 102-112. [12]王世超. 聚烯烃太阳光反射降温材料的结构与性能[D]. 南京工业大学, 2015. [13]余丽蓉, 陆春华, 高树军,等. 隔热功能涂料的研究与发展趋势[J]. 材料导报, 2006, 20(10):52-55.20(10):52-67. [14]王科林, 陈克宁, 牛家嵘,等. 二氧化钛的隔热机理及其在功能织物上的应用[J]. 现代纺织技术, 2009, 17(1):59-62. [15]王世超, 曹宇, 张军.TiO2表面接枝偶联剂对高密度聚乙烯降温性能的影响[J]. 南京工业大学学报(自然科学版), 2016, 38(1):7-12.
3. 毕业设计(论文)进程安排
2.26-3.11 文献查询及文献翻译 3.12-3.18 完成开题报告并开题 3.19-4.22 进行实验工作 4.23-4.29 毕业设计中期检查 4.30-6.10 继续实施实验并撰写论文 6.11-6.22 论文答辩
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