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Thermo-mechanical behaviour of the raffinate resulting from the aqueous extraction of sunflower whole plant in twin-screw extruder: manufacturing of biodegradable agromaterials by thermo-pressing

机译:在双螺杆挤出机中对向日葵整株植物进行水提取而得到的萃余液的热机械行为:通过热压制造可生物降解的农用材料

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摘要

Biorefinery of sunflower whole plant can be realized using a twin-screw extruder. Thermo-mechanical fractionation and aqueous extraction are conducted simultaneously. A filter section is outfitted along the barrel to collect continuously an extract and a raffinate (cake meal). Oil yield obtained is 53%. Proteins are partly extracted at the same time, just as pectins and hemicelluloses. Protein yield is 46%. Cake meal is relatively moist (66% for the moisture content). It is first dried to make easier its conservation. It is largely composed of lignocellulosic fibres (59% of the dry matter) from depithed stalk. Lipid content is 13% of the dry matter or 35% of the oil in whole plant. Protein content is 7% of the dry matter or 45% of the proteins in whole plant. DSC measurements indicate that denaturation of proteins is almost complete in the cake meal. DMTA spectrum of its milled powder reveals a significant peak at high temperature (between 175 and 200°C). As already observed with industrial sunflower cake meal, it can be associated with the glass transition of proteins. As a mixture of fibres and proteins, the cake meal can be considered as a natural composite. It is successfully processed into biodegradable and value-added agromaterials by thermo-pressing. As for DMTA analysis, the glass transition of proteins in the cake meal is also observed with PVT analysis at around 180°C. It makes easier the choice of the best thermo-pressing conditions to produce panels with higher mechanical properties in bending. These properties increase simultaneously with temperature, pressure and time chosen for molding operation. The highest flexural strength at break (11.5 MPa) and the highest elastic modulus (2.22 GPa) are obtained for the next molding conditions: 200°C and 320 kgf/cm2 during 60 s. Drop angle measurements show that the corresponding panel is also the most resistant to water. No significant transition is observed inside this panel above 0°C and until 200°C with DMTA analysis. Proteins ensure the agromaterial cohesion without any phase change in this temperature range, and fibres entanglement also acts like reinforcement. This panel could be used as inter-layer sheets for pallets or for the manufacturing of biodegradable containers (composters, crates for vegetable gardening) by assembly of panels.
机译:向日葵整株植物的生物精炼可以使用双螺杆挤出机来实现。同时进行热机械分馏和水萃取。沿着筒体装有过滤器部分,以连续收集提取物和残液(蛋糕粉)。获得的油收率为53%。蛋白质与果胶和半纤维素同时被部分提取。蛋白质产率为46%。蛋糕粉相对湿润(水分含量为66%)。首先将其干燥以使其易于保存。它主要由腐烂茎秆的木质纤维素纤维(占干物质的59%)组成。脂质含量是整个植物中干物质的13%或油的35%。蛋白质含量是整个植物中干物质的7%或蛋白质的45%。 DSC测量表明,蛋糕粉中蛋白质的变性几乎完成。研磨粉的DMTA光谱在高温(175至200°C)之间显示出明显的峰。正如工业向日葵蛋糕粉所观察到的,它可能与蛋白质的玻璃化转变有关。作为纤维和蛋白质的混合物,饼粕可以被认为是天然的复合物。通过热压成功将其加工成可生物降解和增值的农用材料。至于DMTA分析,在180°C左右通过PVT分析也可以观察到饼粉中蛋白质的玻璃化转变。这样可以更轻松地选择最佳的热压条件,以生产出在弯曲时具有更高机械性能的面板。这些性能会随模塑操作选择的温度,压力和时间而同时增加。在下一个成型条件下,在200℃和320千克力/平方厘米的60秒内,可获得最高的断裂挠曲强度(11.5 MPa)和最高弹性模量(2.22 GPa)。落角测量显示相应的面板也最耐水。在DMTA分析中,在0°C以上直至200°C的温度下,该面板内部未观察到明显的转变。在此温度范围内,蛋白质可确保农业材料的内聚力而不会发生任何相变,纤维缠结也可起到增强作用。该面板可用作面板的夹层板,或用于通过组装面板来制造可生物降解的容器(堆肥机,用于蔬菜园艺的板条箱)。

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