首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Preparation of modified-biochar from Laminaria japonica: Simultaneous optimization of aluminum electrode-based electro-modification and pyrolysis processes and its application for phosphate removal
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Preparation of modified-biochar from Laminaria japonica: Simultaneous optimization of aluminum electrode-based electro-modification and pyrolysis processes and its application for phosphate removal

机译:海带的改性生物炭的制备:基于铝电极的电改性和热解工艺的同时优化及其在除磷中的应用

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摘要

The preparation conditions of electro-modification (current density) and pyrolysis (pyrolysis temperature and heating rate) processes were simultaneously optimized using response surface methodology with the quadratic regression model associated with Box-Behnken design. By numerical optimization, the phosphate adsorption capacity of 245.06 mg/g was achieved, corresponding to 99.9% of the predicted values under statistically optimized conditions (current density: 38.78 mA/cm(2), pyrolysis temperature: 584.1 degrees C, heating rate: 6.91 degrees C/min). By considering R-2 and three error functions values, the experimental results of adsorption kinetics, and the equilibrium isotherms at different temperatures (10-30 degrees C) showed that predictive pseudo-second-order and Sips isotherm models could adequately interpret the phosphate adsorption process for 'statistically optimized electrically modified'-biochar (SOEM-biochar). The maximum phosphate adsorption capacities of SOEM-biochar were found to be 273.9, 345.1, and 460.3 mg/g at 10, 20, and 30 degrees C, respectively, which are higher than that of other adsorbents reported in the literature. (C) 2016 Elsevier Ltd. All rights reserved.
机译:使用与Box-Behnken设计相关的二次回归模型,使用响应面方法同时优化了电改性(电流密度)和热解(热解温度和加热速率)过程的制备条件。通过数值优化,实现了磷酸盐吸附量245.06 mg / g,对应于统计优化条件(电流密度:38.78 mA / cm(2),热解温度:584.1摄氏度,加热速率: 6.91摄氏度/分钟)。通过考虑R-2和三个误差函数值,吸附动力学的实验结果以及在不同温度(10-30摄氏度)下的平衡等温线表明,预测的伪二级和Sips等温线模型可以充分解释磷酸盐的吸附“统计优化的电修饰”生物炭(SOEM-biochar)的流程。发现SOEM-生物炭在10、20和30摄氏度下的最大磷酸盐吸附容量分别为273.9、345.1和460.3 mg / g,高于文献中报道的其他吸附剂。 (C)2016 Elsevier Ltd.保留所有权利。

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