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Production of nanocellulose fibers from pinecone biomass: Evaluation and optimization of chemical and mechanical treatment conditions on mechanical properties of nanocellulose films

机译:用松果仁生物质生产纳米纤维素纤维:化学和机械处理条件对纳米纤维素膜力学性能的评估和优化

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Nanocellulose fibers were produced from pinecone (Jack pine: Pinus banksiana Lamb) using chemical and mechanical treatments. The effects of pretreatment and mechanical grinding on the tensile strength and modulus of the cellulosic fiber sheets were studied to optimize the treatment conditions and grinding process used for the generation of high strength nanocellulose fibers. Pinecone and cellulose fibers were characterized for their chemical composition, morphology, crystallinity, and thermal properties using HPLC, FTIR, SEM, ESEM, XRD, and TGA to provide insight into the mechanism involved in the reactions. Cellulose suspensions that had different pretreatments were processed for different time periods in a Supermasscolloider to produce cellulose nanofibers. The cellulose fibers produced at the optimum chemical concentrations of 4 wt% NaOH and 5 wt% of acidified sodium chlorite solution contained approximately 89% of cellulose, 4% hemicellulose, and 6% lignin. About 67% of the prepared nanocellulose fibers showed a diameter range between 5 and 25 nm. The tensile strength and modulus of the nano fiber films prepared at the optimized grinding condition were 273 MPa and 17 GPa, respectively. The high crystalline index (70%) and improved thermal stability of the nanofibers indicate their suitability for manufacturing bionanocomposites. (C) 2015 Published by Elsevier B.V.
机译:纳米纤维素纤维是使用化学和机械处理方法从松果酮(Jack pine:Pinus bankiana Lamb)生产的。研究了预处理和机械研磨对纤维素纤维片材的拉伸强度和模量的影响,以优化用于产生高强度纳米纤维素纤维的处理条件和研磨工艺。使用HPLC,FTIR,SEM,ESEM,XRD和TGA对Pinecone和纤维素纤维的化学组成,形态,结晶度和热性能进行了表征,以深入了解反应涉及的机理。具有不同预处理的纤维素悬浮液在Supermasscolloider中处理了不同的时间段,以生产纤维素纳米纤维。在最佳化学浓度为4 wt%NaOH和5 wt%的酸化亚氯酸钠溶液的最佳化学浓度下生产的纤维素纤维包含约89%的纤维素,4%的半纤维素和6%的木质素。大约67%的制备的纳米纤维素纤维的直径范围在5到25 nm之间。在最佳研磨条件下制备的纳米纤维薄膜的拉伸强度和模量分别为273 MPa和17 GPa。纳米纤维的高结晶指数(70%)和改善的热稳定性表明它们适用于制造仿生纳米复合材料。 (C)2015由Elsevier B.V.发布

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