亚微米立方体碳酸钙的制备及应用
收稿日期: 2021-10-23
网络出版日期: 2022-07-14
Preparation and application of submicron cubic calcium carbonate
Received date: 2021-10-23
Online published: 2022-07-14
粒径≤100 nm的纳米碳酸钙容易团聚,分散性不好,用于密封胶时具有挤出性能差、模量高等缺点,为了改进这些缺点,研究了石灰的活性度、石灰生浆氢氧化钙的粒径、碳化反应时不同的碳化率和补浆量等关键参数对立方体碳酸钙合成的影响。在石灰的活性度为330~350 mL、氢氧化钙浆料的平均粒径≤2 μm、碳化率达30%~65%、补浆量为原浆的20%~50%的实验条件下,制备了亚微米级碳酸钙。并通过扫描电镜、激光粒度仪对其表面形貌进行表征,发现制备的碳酸钙呈立方体、粒径分布为100~400 nm、比表面积为10~15 m2/g。将其应用于硅烷改性聚醚(MS)密封胶,具有挤出性大、强度高、伸长率高、模量低的优点,符合GB 14683—2017《硅酮和改性硅酮建筑密封胶》中低模量密封胶的标准。
刘亚雄 . 亚微米立方体碳酸钙的制备及应用[J]. 无机盐工业, 2022 , 54(7) : 98 -104 . DOI: 10.19964/j.issn.1006-4990.2021-0642
Nano calcium carbonate with particle size ≤100 nm is easy to agglomerate and has poor dispersion.When it is used in sealant,there is some disadvantages of poor extrusion performance and high modulus.To overcome these shortcomings,the effect of key parameters such as the activity of lime,the particle size of Ca(OH)2 in lime slurry,different carbonation rate and slurry feeding amount on the synthesis of cubic calcium carbonate were studied.Submicron calcium carbonate was prepared under the experimental conditions:the activity of lime was 330~350 mL,the average particle size of Ca(OH)2 slurry was smaller than 2 μm,carbonization rate was 30%~65% and the amount of slurry supplement was 20%~50% of the original slurry.The synthesized calcium carbonate was characterized by scanning electron microscope and laser particle size analyzer.It was found that the prepared calcium carbonate was cubic,the particle size distribution was 100~400 nm,and the specific surface area was 10~15 m2/g.When it was applied to MS sealant,it had good extrudability,high strength and elongation,low modulus and the best comprehensive performance.It met the standard of low modulus sealant in GB 14683—2017 silicone and modified silicone building sealant.
Key words: cubic calcium carbonate; lime activity; Ca(OH)2; carbonation rate
| 1 | 朱勇,谢忠,刘亚雄.立方形纳米碳酸钙的工业制备[J].无机盐工业,2005,37(10):37-39. |
| 1 | ZHU Yong, XIE Zhong, LIU Yaxiong.Industrial preparation of cubic nano calcium carbonate[J].Inorganic Chemicals Industry,2005,37(10):37-39. |
| 2 | 颜鑫,卢云峰.碳化活化一体化纳米碳酸钙生产新工艺[J].无机盐工业,2018,50(12):47-50. |
| 2 | YAN Xin, LU Yunfeng.A new process for production of nano calcium carbonate by integration of carbonization and activation[J].Inorganic Chemicals Industry,2018,50(12):47-50. |
| 3 | 朱勇.菱形(纳米)沉淀碳酸钙的工业制备[C]∥全国碳酸钙行业年会论文集.恩平:中国无机盐工业协会,2010:63-70. |
| 3 | ZHU Yong.Industrial preparation of diamond-shaped(nano-sized) precipitate calcium carbonate[C]∥China calcium carbonate industry annual conference proceedings.Enping:CISIA,2010:63-70. |
| 4 | 邱正松,王在明,胡红福,等.纳米碳酸钙抗团聚机理及分散规律实验研究[J].石油学报,2008,29(1):124-127,131. |
| 4 | QIU Zhengsong, WANG Zaiming, HU Hongfu,et al.Laboratory research on the resistance to reunion mechanism and dispersed regular pattern for nanometer calcium carbonate[J].Acta Petrolei Sinica,2008,29(1):124-127,131. |
| 5 | 杜年军.MS密封胶用纳米碳酸钙的制备[J].中国建筑防水,2019(8):1-3. |
| 5 | DU Nianjun.Preparation of nano calcium carbonate for MS seal- |
| 5 | ant[J].China Building Waterproofing,2019(8):1-3. |
| 6 | 杨超群,陈炳耀,陈德启,等.低模量硅烷改性密封胶的制备及性能研究[J].化学与粘合,2021,43(1):44-47. |
| 6 | YANG Chaoqun, CHEN Bingyao, CHEN Deqi,et al.Study on the development and performance of a silane modified sealant with low modulus[J].Chemistry and Adhesion,2021,43(1):44-47. |
| 7 | 魏浩源,宋信信,曾建刚.石灰消化特性与高活性灰乳之间的关系[J].纯碱工业,2019(3):8-11. |
| 7 | WEI Haoyuan, SONG Xinxin, ZENG Jiangang.Relationship between hydration characteristics of quicklime and high activity lime milk[J].Soda Industry,2019(3):8-11. |
| 8 | 颜鑫,邓新云,欧阳楚理,等.纳米碳酸钙碳化过程中“四膜模型”的研究[J].化学世界,2011,52(12):716-719. |
| 8 | YAN Xin, DENG Xinyun, OUYANG Chuli,et al.Research on“four films model” of carbonization process of nano calcium carbonate[J].Chemical World,2011,52(12):716-719. |
| 9 | 成居正.立方纳米碳酸钙制备及其流变性能研究[D].上海:华东理工大学,2013. |
| 9 | CHENG Juzheng.Study on preparation of nano-calcium carbonate and its rheology[D].Shanghai:East China University of Science and Technology,2013. |
| 9 | 上接第 84 页) |
| 9 | alumina through hydrolysis of aluminum isopropoxide[J].Contemporary Chemical Industry,2017,46(9):1803-1806,1810. |
/
| 〈 |
|
〉 |