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Application of the Shrinking Particle Model for the Evaluation of Molecular Recyclability of PET versus Semi-Aromatic Polyesters
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作者 Jack van Schijndel Sanne de Krom +2 位作者 Dennis Molendijk Koen van Beurden Amarante Böttger 《Open Journal of Physical Chemistry》 2024年第2期21-35,共15页
The molecular recyclability of poly (ethylene terephthalate) (PET) and three semi-aromatic polyesters poly (phloretic acid) (poly-H), poly (dihydroferulic acid) (poly-G), and poly (dihydrosinapinic acid) (poly-S) is e... The molecular recyclability of poly (ethylene terephthalate) (PET) and three semi-aromatic polyesters poly (phloretic acid) (poly-H), poly (dihydroferulic acid) (poly-G), and poly (dihydrosinapinic acid) (poly-S) is evaluated in this study. PET is an extensively used aromatic polyester, and poly-H, poly-G, and poly-S can be considered semi-aromatic poly (lactic acid) modifications. All these polyesters have been depolymerized at neutral pH and by acid- and base-catalyzed hydrolysis at two temperatures, i.e., 50˚C and 80˚C. Base-catalyzed depolymerization of virgin PET leads to an isolated yield of 38% after 48 hours of reaction at 80˚C. Contrary to these results for PET, almost all the monomers of the semi-aromatic polyesters poly-H, poly-G, and poly-S are recovered with isolated yields larger than 90% at the same temperature after 15 minutes in a facile manner. A shrinking particle model used to determine the global kinetics of the base-catalyzed depolymerization showed that the rate rises with increasing temperature. Using the shrinking particle model, the intrinsic reaction rate constants were determined. It has been demonstrated that the rate coefficients of the depolymerization of the semi-aromatic polyesters poly-H, poly-G, and poly-S are between 2 and 3 orders of magnitude higher than those for PET. 展开更多
关键词 DEPOLYMERIZATION Molecular Recycling Poly-H Poly-G poly-s PET Circular Polymers
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碳硫比和硝酸根投加量对DS-EBPR工艺的影响研究 被引量:2
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作者 赵晴 余美 +3 位作者 程娜 邱林清 孟了 吕慧 《水处理技术》 CAS CSCD 北大核心 2016年第10期71-75,共5页
为获得适宜的硫循环协同反硝化生物除磷工艺(DS-EBPR)运行条件,采用批次实验研究了进水m(C)/m(S)和NO_3^--N投加量对DS-EBPR的影响,同时对工艺代谢机理进行初步研究。结果表明,m(C)/m(S)为150/200时有最大吸磷速度2.4 mg/(g·h),而... 为获得适宜的硫循环协同反硝化生物除磷工艺(DS-EBPR)运行条件,采用批次实验研究了进水m(C)/m(S)和NO_3^--N投加量对DS-EBPR的影响,同时对工艺代谢机理进行初步研究。结果表明,m(C)/m(S)为150/200时有最大吸磷速度2.4 mg/(g·h),而PHA的储存和消耗速度却最低,同时poly-S的储存和消耗速度却最大。DS-EBPR释磷段和吸磷段的反应进行能量平衡分析,说明poly-S在DS-EBPR工艺运行中可作为潜在的能量来源。poly-S在吸磷段可调节NO_3^--N的反硝化作用,可减少NO_3^--N对下一周期释磷段的影响,以达到良好的释磷效果。DS-EBPR工艺的反应机理明显不同于传统的EBPR工艺。 展开更多
关键词 硫循环协同反硝化生物除磷(DS-EBPR) 碳硫质量比 NO_3^--N投加量 poly-s
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