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Study on the Structure-Property Dependences of Rigid PUR-PIR Foams Obtained from Marine Biomass-Based Biopolyol

机译:从基于海洋生物质的生物多元醇获得的刚性PUR-PIR泡沫的结构-性能依赖性研究

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摘要

The paper describes the preparation and characterization of rigid polyurethane-polyisocyanurate (PUR-PIR) foams obtained with biopolyol synthesized in the process of liquefaction of biomass from the Baltic Sea. The obtained foams differed in the content of biopolyol in polyol mixture (0–30 wt%) and the isocyanate index (I = 200, 250, and 300). The prepared foams were characterized in terms of processing parameters (processing times, synthesis temperature), physical (sol fraction content, apparent density) and chemical structure (Fourier transform infrared spectroscopy), microstructure (computer microtomography), as well as mechanical (compressive strength, dynamic mechanical analysis), and thermal properties (thermogravimetric analysis, thermal conductivity coefficient). The influence of biopolyol and I content on the above properties was determined. The addition of up to 30 wt% of biopolyol increased the reactivity of the polyol mixture, and the obtained foams showed enhanced mechanical, thermal, and insulating properties compared to foams prepared solely with petrochemical polyol. The addition of up to 30 wt% of biopolyol did not significantly affect the chemical structure and average cell size. With the increase in I , a slight decrease in processing times and mechanical properties was observed. As expected, foams with higher I exhibited a higher relative concentration of polyisocyanurate groups in their chemical structure, which was confirmed using principal component analysis (PCA).
机译:本文介绍了在波罗的海生物质液化过程中合成的生物多元醇制得的硬质聚氨酯-聚异氰脲酸酯(PUR-PIR)泡沫的制备和表征。所得的泡沫在多元醇混合物中生物多元醇的含量(0–30 wt%)和异氰酸酯指数(I = 200、250和300)方面有所不同。通过加工参数(加工时间,合成温度),物理(溶胶含量,表观密度)和化学结构(傅里叶变换红外光谱),微观结构(计算机显微照相)以及机械(抗压强度)对制备的泡沫进行表征。 ,动态力学分析)和热特性(热重分析,导热系数)。确定了生物多元醇和I含量对上述性能的影响。与仅用石油化学多元醇制备的泡沫相比,最多添加30 wt%的生物多元醇可以提高多元醇混合物的反应性,并且获得的泡沫具有增强的机械,热和绝缘性能。最多添加30 wt%的生物多元醇不会显着影响化学结构和平均细胞大小。随着I的增加,观察到加工时间和机械性能略有下降。如预期的那样,具有较高I的泡沫在其化学结构中表现出较高的相对浓度的聚异氰脲酸酯基团,这已通过主成分分析(PCA)得以证实。

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