Continuous and rapid preparation of urea-formaldehyde resin microspheres with adjustable sizes and structures in a microchannel reactor

IF 3.9 3区 工程技术 Q3 ENERGY & FUELS Chemical Engineering and Processing - Process Intensification Pub Date : 2025-03-01 Epub Date: 2025-01-19 DOI:10.1016/j.cep.2025.110184
Changfeng Zeng , Hongwei Zhao , Lixiong Zhang , Liang Yu
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Abstract

Urea-formaldehyde (UF) resin microspheres prepared by polymerization of urea and formaldehyde have broad applications because of their unique properties. In this paper, we present the preparation of UF microspheres with particle sizes of several microns at 100–180 °C and 1.5 MPa in 6–24 s in a simple microchannel reactor. A urea aqueous solution and formaldehyde solution containing formic acid as the catalyst were used as raw materials. Porous and flower-like UF microspheres as well as dense ones can be readily produced, with the former obtained mainly at lower temperatures, shorter residence times, and lower reactant concentrations. The porous microspheres can further grow to dense ones by prolonging the residence time, increasing the reaction temperature, or using reactants with higher concentrations. Compared with the present mainly used batch process to prepare UF microspheres using the same raw materials which need 3 h at 50 °C, this preparation method is swift and versatile in adjusting the particle size and structure. Moreover, flower-like UF microspheres could be produced and the pore size could be adjusted without additives. The results indicate a more environmentally friendly and economical synthesis method we developed. A possible formation mechanism of UF microspheres with various structures was proposed.

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在微通道反应器中连续快速制备尺寸和结构可调的脲醛树脂微球
脲醛树脂微球是由脲醛和甲醛聚合而成,具有独特的性能,具有广泛的应用前景。本文在一个简单的微通道反应器中,在100-180℃、1.5 MPa、6-24 s条件下制备了粒径为几微米的UF微球。以甲酸为催化剂的尿素水溶液和甲醛溶液为原料。多孔、花状的UF微球和致密的UF微球都很容易制备,前者主要在较低的温度、较短的停留时间和较低的反应物浓度下制备。通过延长停留时间、提高反应温度或使用更高浓度的反应物,可以使多孔微球进一步致密化。与目前主要采用间歇式工艺制备同样原料的超滤微球在50℃下仅需3 h相比,该制备方法在调整粒径和结构方面具有快速和通用性。此外,在不添加添加剂的情况下,可以制备出花状的UF微球,并且孔径可以调节。结果表明,我们开发了一种更环保、更经济的合成方法。提出了不同结构UF微球的可能形成机理。
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来源期刊
CiteScore
7.80
自引率
9.30%
发文量
408
审稿时长
49 days
期刊介绍: Chemical Engineering and Processing: Process Intensification is intended for practicing researchers in industry and academia, working in the field of Process Engineering and related to the subject of Process Intensification.Articles published in the Journal demonstrate how novel discoveries, developments and theories in the field of Process Engineering and in particular Process Intensification may be used for analysis and design of innovative equipment and processing methods with substantially improved sustainability, efficiency and environmental performance.
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