光聚合壳聚糖基絮凝剂及其絮凝性能
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国家自然科学基金 (51508268、51408215、51408004、41502331);住建部科学技术计划项目(2014-K7-010);江苏省自然科学基金(BK20150951);中国博士后科学基金(2016M591835)


UV induced synthesis of chitosan flocculants and its flocculation performance
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    摘要:

    壳聚糖是一种天然碱性氨基多糖物质,其分子上分布着许多功能性的氨基和羟基,使其能成为潜在的高效絮凝剂。采用紫外光引发壳聚糖(CS)与丙烯酰胺(AM)、丙烯酰氧乙基三甲基氯化铵(DAC)接枝共聚制备P(CS-AD)絮凝剂,探讨了单体浓度、壳聚糖百分比、阳离子度、光引发剂浓度、光照时间对P(CS-AD)的特性粘度的影响,确定了合成的优化条件:单体浓度为30%~40%、壳聚糖百分比为10%~20%、阳离子度为30%~40%、光引发剂浓度为0.3%~0.5%、光照时间为120 min,优化后的制备的P(CS-AD)的特性粘度最高可达1865 mg/L。同时,采用红外光谱、扫描电镜(SEM)、差热热重分析(TG-DTA)对其进行表征。采用模拟硅藻土水样验证其絮凝性能,试验结果表明:P(CS-AD)的絮凝性能显著优于市售聚丙烯酰胺(PAM)。

    Abstract:

    Chitosan is a natural basic amino polysaccharide substance with many functional amino and hydroxyl groups on the molecular chain. So that it can become a potential flocculant. P(CS-AD) flocculant is graft copolymerized by chitosan (CS) and acrylamide (AM), acryloyloxyethyl trimethyl ammonium chloride (DAC) with UV irradiation. The effects of key factors on the intrinsic viscosity such as monomer concentration, chitosan percentage, cationic degree, photoinitiator concentration, and illumination time are discussed. The optimal synthesis conditions are determined:monomer concentration 30% to 40%, the percentage of chitosan 10%~20%, cationic degree 30%~40%, photoinitiator concentration 0.3%~0.5%, illumination time 120 min. The maximum intrinsic viscosity is 1865 mg/L after optimization. Infrared spectroscopy, scanning electron microscopy (SEM), and differential thermal analysis (TG-DTA) are used to characterize the graft copolymer. Diatomite water samples are used to verify its flocculation performance, and flocculation test results show that P (CS-AD) flocculation performance is significantly better than the commercially available polyacrylamide (PAM).

    参考文献
    [1] SUN Y J, ZHENG H L, XIONG Z P, et al. Algae removal by flocculation process from algae-containing raw water and the fractal characteristic of flocs[J]. Desalination and Water Treatment, 2015, 56(4):894-904.
    [2] MA X X, WANG Y A, FENG S Q, et al. Comparison of four flocculants for removing algae in Dianchi Lake[J]. Environmental Earth Sciences, 2015, 74:3795-3804.
    [3] Dao V H, CAMERON N R, SAITO K. Synthesis, properties and performance of organic polymers employed in flocculation applications[J]. RSC Advance, 2016, 7:11-25.
    [4] 仲米贵,王郑. 壳聚糖絮凝性能及其在微污染源水中的应用研究[J].应用化工,2015,44(4):702-706. ZHONG M G, WANG Z. The flocculation efficiency of chitosan and its application research in micro-polluted source water[J]. Applied Chemical Industry, 2015, 44(4):702-706.(in Chinese)
    [5] YANG Z, YUAN B, HUANG X, et al. Evaluation of the flocculation performance of carboxymethyl chitosan-graft-polyacrylamide, a novel amphoteric chemically bonded composite flocculant[J]. Water Research, 2012, 46:107-114.
    [6] 朱贝贝,姚春才,许丽,等. 壳聚糖-甲基丙烯酰氧乙基三甲基氯化铵接枝共聚物的制备与絮凝性能研究[J]. 生物质化学工程,2013,47(2):15-18. ZHU B B, YAO C C, XU L, et al. Preparation and flocculation performance of chitosan-methacryloyloxyethyl trimethyl ammonium chloride graft copolymer[J]. Biomass Chemical Engineering, 2013, 47(2):15-18.(in Chinese)
    [7] 谢龙,邵自强. 紫外光直接引发AM反相微乳液聚合及其机理[J]. 高分子材料科学与工程,2012,28(5):41-43. XIE L, SHAO Z Q. Polymerization of AM Inverse microemulsion initiated directly by UV radiation[J]. Polymer Materials Science & Engineering, 2012, 28(5):41-43.(in Chinese)
    [8] ZHENG H L, SUN Y J, ZHU C J, et al. UV-initiated polymerization of hydrophobically associating cationic flocculants:Synthesis, characterization, and dewatering properties[J]. Chemical Engineering Journal, 2013, 234:318-326.
    [9] RENAULT F, SANCEY B, BADOT P M, et al. Chitosan for coagulation/flocculation processes-An eco-friendly approach[J]. European Polymer Journal, 2009, 45:1337-1348.
    [10] 杜凤龄,王刚,徐敏,等. 新型高分子螯合絮凝剂制备条件的响应面优化[J]. 中国环境科学,2015,35(4):1116-1122. DU F L, WANG G, XU M, et al. Optimization of preparation conditions of novel macromolecule chelating-flocculant by response surface methodology[J]. China Environmental Science, 2015, 35(4):1116-1122.(in Chinese)
    [11] 李万捷,李春,陈庆柏. 紫外光照射下光敏引发丙烯酰胺聚合动力学[J]. 高分子材料科学与工程,2011,27(4):5-8. LI W J, LI C, CHEN Q B. Polymerization kinetics of acrylamide initiated by photosensitizer under UV lamp[J]. Polymer Materials Science & Engineering, 2011, 27(4):5-8.(in Chinese)
    [12] 郑怀礼,熊祖平,孙永军,等. 疏水缔合阳离子聚丙烯酰胺污泥脱水剂的合成及其表征[J]. 土木建筑与环境工程,2014,36(4):104-108. ZHENG H L, XIONG Z P, SUN Y J, et al. Synthesis and characterization of hydrophobic associating cationic polyacrylamide flocculant for sludge dewatering[J]. Journal of Civil, Architectural & Environmental Engineering, 2014, 36(4):104-108.(in Chinese)
    [13] 郑怀礼,尤艳飞,邓晓莉,等. 高分子量高纯度阳离子聚丙烯酰胺的合成[J].环境工程学报, 2012, 6(4):1075-1080. ZHENG H L, YOU Y F, DENG X L, et al. Synthesis of a cationic polyacrylamide with high molecular weight and high purity[J]. Chinese Journal of Environmental Engineering, 2012, 6(4):1075-1080.(in Chinese)
    [14] 孙永军,梁建军,郑怀礼,等. 紫外光引发阳离子聚丙烯酰胺的红外光谱研究[J]. 光谱学与光谱分析,2014,34(5):1234-1239. SUN Y J, LIANG J J, ZHENG H L, et al. Study on infrared spectroscopy of cationic polyacrylamide initiated by ultraviole[J]. Spectroscopy and Spectral Analysis, 2014,34(5):1234-1239.(in Chinese)
    [15] 黄朋,叶林. 壳聚糖/蒙脱土复合絮凝剂的结构及污泥脱水性能[J]. 高分子材料科学与工程, 2014,30(4):119-123. HUANG P, YE L. Structure and sludge dewatering property of chitosan/montmorillonite composite[J]. Polymer Materials Science & Engineering, 2014, 30(4):119-123.(in Chinese)
    [16] ZHENG H L, SUN Y J, GUO J S, et al. Characterization and evaluation of dewatering properties of PADB, a highly efficient cationic flocculant[J]. Industrial & Engineering Chemistry Research, 2014, 53:2572-2582.
    [17] WANG J P, CHEN Y Z, GE X Z, et al. Gamma radiation-induced grafting of a cationic monomer onto chitosan as a flocculant[J]. Chemosphere, 2007, 66:1752-1757.
    [18] ZHU J R, ZHENG H L, Jiang Z Z, et al. Synthesis and characterization of a dewatering reagent:cationic polyacrylamide(P(AM-DMC-DAC)) for activated sludge dewatering treatment[J]. Desalination and Water Treatment, 2013, 51(13/14/15):2791-2801.
    [19] 张文轩,尚亚波,袁博,等. 壳聚糖改性絮凝剂絮凝性能的研究[J]. 高分子通报,2010(4):49-54. ZHANG W X, SHANG Y B, YUAN B, et al. Study on the flocculating properties of chemical modified chitosan flocculants[J]. Polymer Bulletin, 2010(4):49-54.(in Chinese)
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孙永军,任梦娇,徐炎华,马江雅,张鹏,朱国成,肖雪峰,吴慧芳,尤朝阳,朱成雨.光聚合壳聚糖基絮凝剂及其絮凝性能[J].土木与环境工程学报(中英文),2016,38(3):58-64. Sun Yongjun, Ren Mengjiao, Xu Yanhua, Ma Jiangya, Zhang Peng, Zhu Guocheng, Xiao Xuefeng, Wu Huifang, You Chaoyang, Zhu Chengyu. UV induced synthesis of chitosan flocculants and its flocculation performance[J]. JOURNAL OF CIVIL AND ENVIRONMENTAL ENGINEERING,2016,38(3):58-64.10.11835/j. issn.1674-4764.2016.03.009

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  • 收稿日期:2016-01-22
  • 在线发布日期: 2016-06-27
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