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Microwave-Assisted Alkali Pre-Treatment Densification and Enzymatic Saccharification of Canola Straw and Oat Hull

机译:微波辅助油菜秸秆和燕麦壳的碱预处理致密化和酶促糖化

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摘要

The effects of microwave-assisted alkali pre-treatment on pellets’ characteristics and enzymatic saccharification for bioethanol production using lignocellulosic biomass of canola straw and oat hull were investigated. The ground canola straw and oat hull were immersed in distilled water, sodium hydroxide and potassium hydroxide solutions at two concentrations (0.75% and 1.5% w/v) and exposed to microwave radiation at power level 713 W and three residence times (6, 12 and 18 min). Bulk and particle densities of ground biomass samples were determined. Alkaline-microwave pre-treated and untreated samples were subjected to single pelleting test in an Instron universal machine, pre-set to a load of 4000 N. The measured parameters, pellet density, tensile strength and dimensional stability were evaluated and the results showed that the microwave-assisted alkali pre-treated pellets had a significantly higher density and tensile strength compared to samples that were untreated or pre-treated by microwave alone. The chemical composition analysis showed that microwave-assisted alkali pre-treatment was able to disrupt and break down the lignocellulosic structure of the samples, creating an area of cellulose accessible to cellulase reactivity. The best enzymatic saccharification results gave a high glucose yield of 110.05 mg/g dry sample for canola straw ground in a 1.6 mm screen hammer mill and pre-treated with 1.5% NaOH for 18 min, and a 99.10 mg/g dry sample for oat hull ground in a 1.6 mm screen hammer mill and pre-treated with 0.75% NaOH for 18 min microwave-assisted alkali pre-treatments. The effects of pre-treatment results were supported by SEM analysis. Overall, it was found that microwave-assisted alkali pre-treatment of canola straw and oat hull at a short residence time enhanced glucose yield.
机译:研究了微波辅助碱预处理对油菜秸秆和燕麦壳木质纤维素生物质生产生物乙醇的颗粒特性和酶促糖化的影响。将油菜籽秸秆和燕麦壳浸入蒸馏水,氢氧化钠和氢氧化钾溶液中,浓度为两种浓度(0.75%和1.5%w / v),并以功率为713 W的微波辐射和三种停留时间(6、12)浸入和18分钟)。确定了地面生物质样品的体积和颗粒密度。碱性微波预处理和未经处理的样品在Instron万能机中进行了一次制粒测试,预设载荷为4000N。对测得的参数,颗粒密度,拉伸强度和尺寸稳定性进行了评估,结果表明:与未经微波处理或仅通过微波预处理的样品相比,微波辅助碱预处理的颗粒具有显着更高的密度和拉伸强度。化学成分分析表明,微波辅助碱预处理能够破坏和破坏样品的木质纤维素结构,从而形成可与纤维素酶反应的纤维素区域。最佳的酶促糖化结果表明,在1.6毫米筛锤式粉碎机中磨碎的低芥酸菜籽秸秆的高葡萄糖产量为110.05 mg / g干样品,并用1.5%NaOH预处理18分钟,而燕麦则为99.10 mg / g干样品船体在1.6毫米的筛式锤磨机中研磨,并用0.75%的NaOH进行了18分钟的微波辅助碱预处理。 SEM分析支持了预处理结果的影响。总的来说,发现在短停留时间下对菜籽油秸秆和燕麦壳进行微波辅助碱预处理可提高葡萄糖产量。

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