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-  2016 

十六醇-十六酸-十二酸/SiO2三元相变体系复合材料的热湿性能
Heat-moisture performance of hexadecanol-palmitic acid-lauric acid/SiO2 ternary phase change system composites

DOI: 10.13801/j.cnki.fhclxb.20160219.002

Keywords: 三元相变体系,SiO2,复合材料,热湿性能,十六醇-十六酸-十二酸
ternary phase change system
,SiO2,composites,heat-moisture performance,hexadecanol-palmitic acid-lauric acid

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Abstract:

以十六醇(H)-十六酸(PA)-十二酸(LA)为相变材料,SiO2为载体材料,采用溶胶-凝胶法制备不同H-PA-LA用量的H-PA-LA/SiO2三元相变体系复合材料。采用等温吸放湿法和步冷曲线法对H-PA-LA/SiO2三元相变体系复合材料的湿性能和热性能进行测试,同时利用FTIR、XRD、SEM、LPSA和DSC对H-PA-LA/SiO2三元相变体系复合材料的组成结构、晶体结构、微观形貌、粒径分布、相变温度和相变焓进行表征。结果表明:当H-PA-LA用量为0.06 mol时,所制备的H-PA-LA/SiO2三元相变体系复合材料在人体舒适度范围内具有良好的热湿综合性能,即相对湿度为40%~65%时,平衡含湿量为0.07~0.10 g/g,相变温度为26.29℃,相变焓为70.55 J/g。 H-PA-LA/SiO2 ternary phase change system composites were prepared with hexadecanol (H)-palmitic acid (PA)-lauric acid (LA) as a phase change material, SiO2 as the carrie material by sol-gel method by different amounts of H-PA-LA. The moisture performance and heat performance of H-PA-LA/SiO2 ternary phase change system composites were tested by isothermal sorption moisture method and cooling curve method, meanwhile composition structure, crystal structure, microstructure, size distribution, phase transition temperature and phase transition enthalpy of H-PA-LA/SiO2 ternary phase change system composites were characterized by FTIR, XRD, SEM, LPSA and DSC. The results show that while H-PA-LA content is 0.06 mol, prepared H-PA-LA/SiO2 ternary phase change system composites have the best heat-moisture comprehensive performance in the range of human comfort, such as equilibrium moisture content is 0.07-0.10 g/g, phase change temperature is 26.29℃, phase change enthalpy is 70.55 J/g in relative humidity 40%-65%. 国家自然科学基金(51206002);高等学校优秀青年人才基金(2010SQRL034)

References

[1]  FANG G Y, CHEN Z, LI H. Synthesis and properties of microencapsulated paraffin composites with SiO2 shell as thermal energy storage materials[J]. Chemical Engineering Journal, 2010, 163(1-2): 154-159.
[2]  MOTAHAR S, NIKKAM N, ALEMRAJABI A A, et al. A novel phase change material containing mesoporous silica nanoparticles for thermal storage: A study on thermal conductivity and viscosity[J]. International Communications in Heat and Mass Transfer, 2014, 56(8): 114-120.
[3]  GIRO-PALOMA J, KONUKLU Y, FERNáNDEZ A I. Preparation and exhaustive characterization of paraffin or palmitic acid microcapsules as novel phase change material[J]. Solar Energy, 2015, 112(112): 300-309.
[4]  尚建丽, 张浩, 熊磊, 等. 基于均匀设计优化制备癸酸-棕榈酸/SiO2复合相变材料[J]. 材料工程, 2015, 43(9): 94-102. SHANG J L, ZHANG H, XIONG L, et al. Optimizing preparation of decanoic-palmitic acid/SiO2 composite phase change materials based on uniform design[J]. Journal of Materials Engineering, 2015, 43(9): 94-102(in Chinese).
[5]  LI M, KAO H T, WU Z S. Study on preparation and thermal properties of binary fatty acid/diatomite shape-stabilized phase change materials[J]. Solar Energy Materials & Solar Cells, 2011, 95(8): 2412-2416
[6]  WEIL E D, LEVCHIK S V. Flame retardants in commercial use or development for textiles[J]. Journal of Fire Sciences, 2008, 26(3): 243-281.
[7]  WANG L Y, TSAI P S, YANG Y M. Preparation of silica microspheres encapsulating phase-change material by sol-gel method in O/W emulsion[J]. Journal of Microencapsulation, 2006, 23(1): 3-14
[8]  付路军, 董发勤, 杨玉山, 等. 二元脂肪酸/SiO2复合相变储能材料的制备与表征[J]. 功能材料, 2013, 44(4): 1-4. FU L J, DONG F Q, YANG Y S, et al. Preparation and characterization of binary fatty acid/SiO2 composite phase chang energy storage materials[J]. Journal of Functional Materials, 2013, 44(4): 1-4(in Chinese).
[9]  张鸿, 武晓华, 王晓磊, 等. 月桂酸/十六醇/二氧化硅复合相变材料的结构与性能[J]. 材料科学与工程学报, 2010, 28(5): 672-674. ZHANG H, WU X H, WANG X L, et al. Structure and properties of lauric acid/cetyl alcohol/silicon dioxide composite phase change material[J]. Journal of Materials Science & Engineering, 2010, 28(5): 672-674(in Chinese).
[10]  SHANG J L, LI Q M, WANG Z J, et al. Preparing and studying of phase change energy storage materials[J]. Journal of Shanghai Jiaotong University (Science), 2010, 15(6): 668-670.
[11]  黄子硕, 于航, 张美玲. 建筑调湿材料吸放湿速度变化规律[J]. 同济大学学报(自然科学版), 2014, 42(2): 310-314. HUANG Z S, YU H, ZHANG M L, Humidity-control materials and their humidity absorption and desorpttion rate variation[J]. Journal of Tongji University (Natural Science), 2014, 42(2): 310-314(in Chinese).
[12]  于永生, 井强山, 宋方方. 十六醇/十六酸/十二酸三元复合相变体系研究[J]. 建筑材料学报, 2013, 12(1): 97-101. YU Y S, JING Q S, SONG F F. Study on the ternary phase change system of H/PA/LA[J]. Journal of Building Materials, 2013, 12(1): 97-101(in Chinese).
[13]  LI M, KAO H T, WU Z S, et al. Study on preparation and thermal property of binary fatty acid and the binary fatty acids/diatomite composite phase change materials[J]. Applied Energy, 2011, 88(5): 1606-1612.
[14]  HUNGE M, ENTROP A G, MANDILARAS I, et al. The behavior of self-compacting concrete containing micro-encapsulated phase change materials[J]. Cement & Concrete Composites, 2009, 31(10): 731-743.
[15]  PARK S K, KIM J H J, NAM J W, et al. Development of anti-fungal mortar and concrete using zeolite and zeocarbon microcapsules[J]. Cement & Concrete Composites, 2009, 31(7): 447-453.
[16]  LI B X, LIU T X, HU L Y, et al. Fabrication and properties of microencapsulated paraffin@SiO2 phase change composite for thermal energy storage[J]. ACS Sustainable Chemistry & Energy, 2013, 1(3): 374-830.
[17]  李魁山, 张旭, 韩星, 等. 建筑材料等温吸放湿曲线性能实验研究[J]. 建筑材料学报, 2009, 12(1): 81-84. LI K S, ZHANG X, HAN X, et al. Experimental research of isothermal sorption curve of building materials[J]. Journal of Building Materials, 2009, 12(1): 81-84(in Chinese).

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