应用研究

基于气凝胶保温涂料的复合保温结构研究及应用

  • 荣雁
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  • 中石化胜利油田新疆新春石油开发有限责任公司,新疆克拉玛依 834000
荣雁(1972—),男,高级工程师,主要从事石油工程研究。

收稿日期: 2019-06-20

  修回日期: 2019-12-07

  网络出版日期: 2020-02-01

基金资助

国防预研基金:隔热涂层材料应用基础研究(ZZJ-W-01)

Research and Application of Composite Insulation Structure Based on Aerogel Insulation Coatings

  • RONG Yan
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  • Xinjiang XinChun Petroleum Development Co., Ltd., Shengli Oilfield,SINOPEC,Kelamaye, Xinjiang Uygur Autonomous Region 834000,China

Received date: 2019-06-20

  Revised date: 2019-12-07

  Online published: 2020-02-01

摘要

本文以纳米气凝胶、 TiO2、SiO2、SiC三种隔热粉体作为填料,氧化铝纤维和硅酸铝纤维作为增强材料,有机-无机复合胶体作为粘结剂,制备了纳米气凝胶保温涂料。考查了气凝胶用量对涂料的干密度、隔热性能和导热系数的影响。结果表明:粘结剂量为 35%、纤维总加入量为 25%(氧化铝纤维和硅酸铝纤维质量比 1∶1)、填料量为 40%(TiO2、SiO2、SiC粉体质量比例为 2∶1∶1且保持与气凝胶量的总和占涂料的 40%),当气凝胶量为 15%时,涂料的导热系数为 0.04 W/m.K,干密度为 158 kg/m3,涂料的隔热性能最好。以纳米气凝胶保温涂料为基础,研究了一种适用于稠油热采蒸汽管保温的复合保温结构,将耐热纤维层、保温涂料层和金属外壳进行复合,这一复合保温结构成功应用在稠油注蒸汽管道外层保温改造项目中。与原有保温结构相比,年估算节能量约为 94.8 t标准煤,有效提高了稠油热注蒸汽管线的保温效果。

本文引用格式

荣雁 . 基于气凝胶保温涂料的复合保温结构研究及应用[J]. 涂料工业, 2020 , 50(1) : 47 -52 . DOI: 10.12020/j.issn.0253-4312.2020.1.47

Abstract

In this paper,nano-aerogel thermal insulation coatings were prepared with nano-aerogel,TiO2,SiO2 and SiC as the fillers,alumina fiber and aluminosilicate fiber as the reinforcing material,and water-based acrylic resin as the binder. The effects of the amount ofaerogel on the dry density,thermal insulation performance and thermal conductivity of the coatings were examined. The resu-lts showed that the performance of the insulation coatings was the best when the amount of binder is 35%,the total amount of fiber added was 25%(mass ratio of alumina fiber and aluminum silicate fiber was 1∶1),and the amount of filler was 40%(mass ratio of TiO2,SiO2,SiC powder is 2∶1∶1 and keep the sum of the amount of aerogel to 40% of the coatings), when the amount of aerogel is 15%,the thermal conductivity of the coatings was 0. 04 W /mK,and the dry density was 158 kg /m3. Based on the nano-aerogel thermal insulation coatings,it was studied the composite thermal insulation structure suitable for heavy oil thermal recovery steam pipe insulation. The heat-resistant fiber layer,thermal insulation coatings layer and metal shell were compounded. This composite insulation structure was successfully used in the thermal insulation renovation project of the outer layer of the heat transfer pipeline. Compared with the original thermal insulation structure,the estimated annual energy saving was equivalent to 94. 8 t standard coal,which effectively improved the thermal insulation effect of the heavy oil hot steam injection pipeline.

参考文献

[1]刘晓燕,刘立君,贾永英.复合硅酸盐保温材料在稠油热采注蒸汽管道上的应用[J].硅酸盐通报, 2003, (4):41-45
[2]何雅玲,谢涛.气凝胶纳米多孔材料传热计算模型研究进展[J].科学通报, 2015, 60(2):137-163
[3]XUX,ZHENG Q Q G,HAO M L,et al. Double negative-indexceramic aerogels for thermal superinsulation [J].[J].Science, 2019, 363:723-727
[4]王卫,费阳,汪涛.红外遮光剂对硅酸盐隔热保温涂料性能的影响[J].硅酸盐通报, 2017, 36(6):2079-2082
[5]FILHOBJP,SANTOS O T V . Thermal analysis of roofswith thermal insulation layer and reflective coatings insubtropical and equatorial climate regions in Brazil[J].[J].Energy and Buildings, 2014, 84:466-474
[6]王衍行.硅酸锆粉体的合成研究[J].功能材料, 2015, 46(s2):8-12
[7]高桂兰,段学臣.纳米金红石型二氧化钛粉末的制备及表征[J].硅酸盐通报, 2004, 23(1):88-90
[8]王志发,李茹春,郝俊杰.高温节能复合陶瓷涂料的研制[J].耐火材料, 1997, (3):143-146
[9].李庆彬潘志华 .轻质隔热材料的研究现状及其发展趋势[J].硅酸盐通报 . ., 2011, 30(5):1089-1093
[10]刘成楼,郑德莲,刘昊天.纳米耐高温绝热涂料的研制[J].上海涂料, 2015, 53(1):10-13
[11]刘承婷 .蒸汽管道保温材料与保温结构优化研究[D].大庆:东北石油大学,2013.
[12]BARLETTA M,GUARINO S,RUBINO G,et al. Environ-mentally friendly wooden -based coatings for thermal[J].[J].EnvironmentallyFriendlyWooden-based CoatingsforThermal, 2014, 77:701-711
[13]BOZSAKY D. Laboratory tests with liquid nano-ceramicthermal insulation coating[J].[J].Procedia Engineering, 2015, 123:68-75
[14]中华人民共和国国家质量监督检验检疫总局,中国国家标准化管理委员会 .硅酸盐复合绝热涂料:GB/T 17371— 2008[S].北京:中国标准出版社,2008.
[15]中华人民共和国国家质量监督检验检疫总局,中国国家标准化管理委员会 .设备及管道绝热效果的测试与评价:GB/T 8174—2008[S].北京:中国标准出版社,2008.
[16]中华人民共和国国家质量监督检验检疫总局,中国国家标准化管理委员会 .设备及管道绝热层表面热损失现场测定热流计法和表面温度法:GB/T 17357—2008[S].北京:中国标准出版社,2008.
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