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Classifying Hybrids of Energy Cane for Production of Bioethanol and Cogeneration of Biomass-Based Electricity by Principal Component Analysis-Linked Fuzzy C-Means Clustering Algorithm

机译:主成分分析-链接模糊C-均值聚类算法对甘蔗生产生物乙醇和生物质热电联产的杂种进行分类

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The biggest challenge facing in sugar-energy plants is to move towards the biorefinery concept, without threatening the environment and health. Energy cane is the state-of-the-art of smart energy crops to provide suitable whole-raw material to produce upgraded biofuels, dehydrated alcohol for transportation, refined sugar, yeast-fermented alcoholic beverages, soft drinks, silage and high-quality fodder, as well as to cogenerate heat and bioelectricity from burnt lignocellulose. We, accordingly, present fuzzy c-means (FCM) clustering algorithm interconnected with principal component analysis (PCA) as powerful exploratory data analysis tool to wisely classify hybrids of energy cane for production of first-generation ethanol and cogeneration of heat and bioelectricity. From the orthogonally-rotated factorial map, fuzzy cluster I aggregated the hybrids VX12-0277, VX12-1191, VX12-1356 and VX12-1658 composed of higher contents of soluble solids and sucrose, and larger productive yields of fermentable sugars. These parameters correlated with the X-axis component referring to technological quality of cane juice. Fuzzy cluster III aggregated the hybrids VX12-0180 and VX12-1022 consisted of higher fiber content. This parameter correlated with the Y-axis component referring to physicochemical quality of lignocellulose. From the PCA-FCM methodology, the conclusion is, therefore, hybrids from fuzzy cluster I prove to be type I energy cane (higher sucrose to fiber ratio) and could serve as energy supply pathways to produce bioethanol, while the hybrids from fuzzy cluster III are type II energy cane (lower sucrose to fiber ratio), denoting potential as higher fiber yield biomass sources to feed cogeneration of heat and bioelectricity in high temperature and pressure furnace-boiler system.
机译:糖能发电厂面临的最大挑战是在不威胁环境和健康的前提下迈向生物精炼概念。甘蔗是最先进的智能能源作物,可提供合适的全原料来生产升级的生物燃料,运输用的脱水酒精,精制糖,酵母发酵的酒精饮料,软饮料,青贮饲料和优质饲料以及从燃烧的木质纤维素中产生热量和生物电。因此,我们提出了与主成分分析(PCA)互连的模糊c均值(FCM)聚类算法,将其作为功能强大的探索性数据分析工具,以明智地对用于生产第一代乙醇以及热电和生物电联产的甘蔗杂种进行明智地分类。从正交旋转的阶乘图中,模糊聚类I聚合了杂种VX12-0277,VX12-1191,VX12-1356和VX12-1658,这些杂物由可溶性固形物和蔗糖的含量较高,可发酵糖的产量较高。这些参数与X轴分量相关,指的是甘蔗汁的技术质量。模糊簇III聚集了由较高纤维含量组成的杂种VX12-0180和VX12-1022。该参数与涉及木质纤维素的物理化学质量的Y轴成分相关。因此,从PCA-FCM方法学得出的结论是,模糊聚类I的杂种被证明是I型能量甘蔗(较高的蔗糖与纤维比),可以用作生产生物乙醇的能量供应途径,而模糊聚类III的杂种是II型能量棒(蔗糖与纤维的比率较低),表示潜在的纤维产量较高的生物质资源,可在高温高压锅炉-锅炉系统中供热和生物电联产。

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