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Influence of thermo-pressing conditions on the mechanical properties of biodegradable fiberboards made from a deoiled sunflower cake

机译:热压条件对脱油葵花饼制成的可生物降解纤维板机械性能的影响

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摘要

The objective of this study was to manufacture new biodegradable fiberboards by thermo-pressing. The starting material was deoiled cake (only 0.9% oil content), generated during the biorefinery of sunflower (Helianthus annuus L.) whole plant in a co-rotating twin-screw extruder. All fiberboards were cohesive mixtures of proteins and lignocellulosic fibers, acting respectively as binder and reinforcing fillers. The molding experiments were conducted using a 400 ton capacity heated hydraulic press. The influence of molding conditions on board density, mechanical and thermo-mechanical properties, thickness swelling, and water absorption was examined. Molding conditions included pressure applied (24.5–49.0 MPa), molding time (60–300 s), and mold temperature (156–204◦C), and these greatly affected board density and thus the mechanical and thermo-mechanical properties. Board density increased with increasingly extreme molding conditions, rising from 1162 to 1324 kg/m3. The flexural properties increased at the same time (from 12.2 to 27.7 MPa for flexural strength at break, and from 2183 to 5244 MPa for elastic modulus) and also Shore D surface hardness (from 69.6 to 79.0◦). Conversely, Charpy impact strength was low and quite independent of thermo-pressing conditions. Statistical analysis of the Doehlert’s experimental design was conducted to determine optimal thermo-pressing conditions for flexural properties, giving 49.0 MPa pressure applied, 300 s molding time, and 204◦C mold temperature. Density of boards molded under these conditions was 1267 kg/m3. Flexural strength at break, elastic modulus and Shore D surface hardness were 30.3 MPa, 5946 MPa, and 81.5◦, respectively, and these corresponded to the highest values for the entire study. Such boards largely complied with French standard NF EN 312, type P4 (i.e. load bearing boards for use in dry conditions) for flexural properties. However, thickness swelling (30%) needs to be slightly reduced to achieve the 21% recommended standard value.
机译:这项研究的目的是通过热压制造新的可生物降解的纤维板。起始原料是脱油饼(仅含0.9%的油),该油饼是在同向双螺杆挤出机中向日葵(Helianthus annuus L.)整个植物的生物精制过程中产生的。所有纤维板都是蛋白质和木质纤维素纤维的粘合混合物,分别充当粘合剂和增强填料。模制实验是使用400吨容量的加热液压机进行的。研究了成型条件对板密度,机械和热机械性能,厚度膨胀和吸水率的影响。成型条件包括施加的压力(24.5–49.0 MPa),成型时间(60–300 s)和模具温度(156–204℃),这些因素极大地影响了板的密度,进而影响了机械和热机械性能。随着日益苛刻的成型条件,板密度也随之增加,从1162千克/立方米增加到1324千克/立方米。弯曲性能同时提高(断裂挠度从12.2 MPa升高到27.7 MPa,弹性模量从2183升高到5244 MPa)和肖氏D表面硬度(从69.6升高到79.0°)。相反,夏比冲击强度低,并且完全不依赖于热压条件。对Doehlert实验设计进行了统计分析,以确定弯曲特性的最佳热压条件,施加的压力为49.0 MPa,成型时间为300 s,成型温度为204℃。在这些条件下模制的板的密度为1267 kg / m3。断裂挠曲强度,弹性模量和肖氏D表面硬度分别为30.3 MPa,5946 MPa和81.5°,这对应于整个研究的最高值。这样的板很大程度上符合法国标准NF EN 312,P4型(即在干燥条件下使用的承重板)的抗弯性能。但是,厚度溶胀(30%)需要稍微降低以达到建议的21%标准值。

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