Gratuito M K B, Panyathanmaporn T, Chumnanklang R-A, Sirinuntawittaya N, Dutta A
Energy Field of Study, School of Environment, Resources and Development, Asian Institute of Technology, PO Box 4, Klongluang, Pathumthani 12120, Thailand.
Bioresour Technol. 2008 Jul;99(11):4887-95. doi: 10.1016/j.biortech.2007.09.042. Epub 2007 Nov 13.
The production of activated carbon from coconut shell treated with phosphoric acid (H3PO4) was optimized using the response surface methodology (RSM). Fifteen combinations of the three variables namely; impregnation ratio (1, 1.5, and 2); activation time (10, 20, and 30 min); and activation temperature (400, 450, and 500 degrees C) were optimized based on the responses evaluated (yield, bulk density, average pore diameter, small pore diameter, and number of pores in a unit area). Pore diameters were directly measured from scanning electron microscope (SEM) images. Individual second-order response surface models were developed and contour plots were generated for the optimization analysis. The optimum range identified for impregnation ratio was from 1.345 to 2, while for the activation time was from 14.9 to 23.9 min. For the activation temperature it was from 394 to 416 degrees C. The optimum points are 1.725, 19.5 min, and 416 degrees C, respectively. The models were able to predict well the values of the responses when the optimum variable parameters were validated as proven by the generally acceptable values of the residual percentages. Direct characterization of the pores using the SEM was found to be a good technique to actually see the pores and get actual measurements. Additionally, RSM has also proven to be a good tool in optimization analysis to get not only optimum production condition points but ranges, which are crucial for the flexibility of the production process, as well.
采用响应面法(RSM)对经磷酸(H₃PO₄)处理的椰壳制备活性炭的工艺进行了优化。研究了浸渍比(1、1.5和2)、活化时间(10、20和30分钟)和活化温度(400、450和500℃)这三个变量的15种组合,并根据所评估的响应(产率、堆积密度、平均孔径、小孔径和单位面积内的孔数)进行了优化。通过扫描电子显微镜(SEM)图像直接测量孔径。建立了各个二阶响应面模型,并生成等高线图进行优化分析。确定的浸渍比最佳范围为1.345至2,活化时间最佳范围为14.9至23.9分钟,活化温度最佳范围为394至416℃。最佳点分别为1.725、19.5分钟和416℃。当通过残余百分比的普遍可接受值验证最佳变量参数时,模型能够很好地预测响应值。利用扫描电子显微镜直接表征孔隙被发现是一种很好的技术,能够实际观察孔隙并获得实际测量值。此外,响应面法也已被证明是优化分析中的一个好工具,不仅可以获得最佳生产条件点,还能得到范围,这对生产过程的灵活性也至关重要。