Polymer Versus Polymerization Fouling: Basic Deposition Mechanisms During Emulsion Polymerization by the Example of a Vinyl Acetate and Versa 10 Copolymer

IF 1.8 4区 工程技术 Q3 ENGINEERING, CHEMICAL
Annika Klinkert, Zoe Friedrich, Elisabeth Glatt, Wolfgang Augustin, Stephan Scholl
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Abstract

The deposition process during emulsion polymerization can be classified as both particulate and reaction fouling, but a deeper understanding of the deposition mechanism, especially in combination with the polymerization process, is lacking. Here, a more in-depth understanding of the deposition mechanism is sought by investigating the fouling formation of a Vinyl acetate and Versa 10 copolymer on a heated stainless steel surface during emulsion polymerization. Its deposition behavior is also compared with the behavior of an already reacted polymer. All possible influencing factors are investigated separately, and the fouling is quantified by the mass based fouling resistance and the fouling layer composition. The fouling rates of both experimental approaches (ongoing reaction versus already reacted polymer) are used to determine the fraction of reaction fouling along the reaction pathway. The solids content and the driving temperature difference are identified as the main factors influencing fouling formation. The deposited material is composed of latex particles and emulsifier with particle size and number depending on the respective equilibrium composition of the fluid phase. The reaction fouling rate is correlated with the proportion of free initiator radicals and the amount of dissolved monomer in the aqueous phase.

Abstract Image

聚合物与聚合污垢:以醋酸乙烯酯和 Versa® 10 共聚物为例:乳液聚合过程中的基本沉积机制
乳液聚合过程中的沉积过程可分为颗粒污垢和反应污垢两种,但对沉积机理,尤其是结合聚合过程的沉积机理还缺乏更深入的了解。在此,我们通过研究醋酸乙烯酯和 Versa® 10 共聚物在乳液聚合过程中在加热的不锈钢表面形成污垢的情况,试图更深入地了解沉积机理。还将其沉积行为与已反应聚合物的行为进行了比较。对所有可能的影响因素分别进行了研究,并通过基于质量的污垢阻力和污垢层组成对污垢进行了量化。两种实验方法(正在反应的聚合物和已经反应的聚合物)的污垢率都用于确定反应路径上的反应污垢比例。固体含量和驱动温差被确定为影响污垢形成的主要因素。沉积物由胶乳颗粒和乳化剂组成,颗粒大小和数量取决于流体相各自的平衡组成。反应结垢率与水相中自由引发剂自由基的比例和溶解单体的数量相关。
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来源期刊
Macromolecular Reaction Engineering
Macromolecular Reaction Engineering 工程技术-高分子科学
CiteScore
2.60
自引率
20.00%
发文量
55
审稿时长
3 months
期刊介绍: Macromolecular Reaction Engineering is the established high-quality journal dedicated exclusively to academic and industrial research in the field of polymer reaction engineering.
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