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首页> 外文期刊>Industrial Crops and Products >The influence of crude glycerol and castor oil-based polyol on the structure and performance of rigid polyurethane-polyisocyanurate foams
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The influence of crude glycerol and castor oil-based polyol on the structure and performance of rigid polyurethane-polyisocyanurate foams

机译:粗甘油和蓖麻油基多元醇对刚性聚氨酯 - 多异氰脲酸酯泡沫结构和性能的影响

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In this work, biopolyol obtained from two types of industrial crops' processing products: crude glycerol and castor oil was used for preparation or rigid polyurethane-polyisocyanurate foams. Bio-based polyol was obtained via crude glycerol polymerization and further condensation of resulting polyglycerol with castor oil. Rigid polyurethane-polyisocyanurate foams were prepared at partial substitution (0-70 wt.%) of petrochemical polyol with synthesized bio-based polyol. Influence of the biopolyol content on the chemical and cellular structure, insulation properties, static and dynamic mechanical properties, thermal degradation and fire behavior of foams was investigated. Incorporation of crude glycerol-based polyol into formulation of rigid polyurethane-polyisocyanurate foams had beneficial impact on the structure of material reducing average cell size from 372 to 275 pm and Increasing closed cell content from 94.0 to 95.7%. Such changes resulted in 7% decrease of thermal conductivity coefficient to 21.8 mW/(mK). Mechanical performance of foams was enhanced by partial substitution of petrochemical polyol with synthesized biopolyol. Compressive strength of modified foam was more than 90% higher than for reference sample. The modifications of foams caused changes in thermal degradation pathway, nevertheless thermal stability of the reference foam was maintained. Incorporation of crude glycerol-based polyol into foams' formulation decreased maximum value of heat release rate by 3.5%, increased char residue after combustion by 24% and reduced emission of toxic carbon monoxide during burning of foam by 35%. (C) 2016 Elsevier B.V. All rights reserved.
机译:在这项工作中,从两种类型的工业作物的加工产品中获得的生物化醇:粗甘油和蓖麻油用于制备或刚性聚氨酯 - 多异氰脲酸酯泡沫。通过粗甘油聚合获得生物基多元醇,并进一步冷凝得到的聚甘油与蓖麻油。用合成的生物基多元醇的部分取代(0-70重量%)在部分取代(0-70重量%)中制备刚性聚氨酯 - 多异氰脲酸酯泡沫。研究了生物溶胶含量对泡沫的化学和细胞结构,绝缘性能,静态和动态力学,热降解和火灾行为的影响。将粗甘油基多元醇掺入刚性聚氨酯 - 多异氰脲酸酯泡沫的制剂对材料结构的有益影响,将平均电池大小从372〜275%降低,并将闭合细胞含量从94.0增加到95.7%。这种变化导致导热系数的7%降低至21.8 mw /(mk)。用合成的生物聚溶胶部分取代石化多元醇,增强了泡沫的机械性能。改性泡沫的抗压强度比参考样品高度高于90%。泡沫的修饰导致热降解途径的变化,因此保持参考泡沫的热稳定性。将粗甘油基多醇掺入泡沫的配方减少了3.5%,燃烧后的最大释放速率的最大值降低了3.5%,并在泡沫燃烧过程中减少了毒炭一氧化碳排放量35%。 (c)2016年Elsevier B.v.保留所有权利。

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