...
首页> 外文期刊>Energy Conversion & Management >Pyrolysis of biofuels of the future: Sewage sludge and microalgae - Thermogravimetric analysis and modelling of the pyrolysis under different temperature conditions
【24h】

Pyrolysis of biofuels of the future: Sewage sludge and microalgae - Thermogravimetric analysis and modelling of the pyrolysis under different temperature conditions

机译:未来生物燃料的热解:污水污泥和微藻-不同温度条件下热解的热重分析和建模

获取原文
获取原文并翻译 | 示例
           

摘要

The pyrolysis process of both microalgae and sewage sludge was investigated separately, by means of non-isothermal thermogravimetric analysis. The Distributed Activation Energy Model (DAEM) was employed to obtain the pyrolysis kinetic parameters of the samples, i.e. the activation energy Ea and the pre-exponential factor k(0). Nine different pyrolysis tests at different constant heating rates were conducted for each sample in a thermogravimetric analyzer (TGA) to obtain accurate values of the pyrolysis kinetic parameters when applying DAEM. The accurate values of the activation energy and the pre-exponential factor that characterize the pyrolysis reaction of Chlorella vulgaris and sewage sludge were reported, together with their associated uncertainties. The activation energy and pre-exponential factor for the C vulgaris vary between 150-250 kJ/mol and 10(10)-10(15) s(-1) respectively, whereas values ranging from 200 to 400 kJ/mol were obtained for the sewage sludge activation energy, and from 10(15) to 10(25) s-(1) for its pre-exponential factor. These values of Ea and k(0) were employed to estimate the evolution of the reacted fraction with temperature during the pyrolysis of the samples under exponential and parabolic temperature increases, more typical for the pyrolysis reaction of fuel particles in industrial reactors. The estimations of the relation between the reacted fraction and the temperature for exponential and parabolic temperature increases were found to be in good agreement with the experimental values measured in the TGA for both the microalgae and the Sludge samples. Therefore, the values reported in this work for the activation energy and the pre-exponential factor of the C vulgaris can be employed as reference values in numerical studies of the pyrolysis process of this biotite] since its chemical composition is quite homogeneous. In the case of sewage sludge, due to the heterogeneity of its composition, the results reported for the kinetic parameters of the pyrolysis process can be employed to describe the pyrolysis of sludge with similar composition. (C) 2017 Elsevier Ltd. All rights reserved.
机译:通过非等温热重分析,分别研究了微藻和污水污泥的热解过程。使用分布活化能模型(DAEM)获得样品的热解动力学参数,即活化能Ea和指数前因子k(0)。在热重分析仪(TGA)中,对每个样品在不同的恒定加热速率下进行了9次不同的热解测试,以便在使用DAEM时获得热解动力学参数的准确值。报告了表征小球藻和污水污泥热解反应的活化能和指数前因子的准确值,以及相关的不确定性。寻常C的活化能和指数前因子分别在150-250 kJ / mol和10(10)-10(15)s(-1)之间变化,而C的活化能和200到400 kJ / mol范围内的值污水污泥活化能,其前指数因子从10(15)到10(25)s-(1)。 Ea和k(0)的这些值用于估算在指数和抛物线温度升高下样品热解过程中反应馏分随温度的变化,这对于工业反应堆中燃料颗粒的热解反应更为典型。发现反应分数和温度之间的关系的指数和抛物线温度升高的估计与微藻和污泥样品中在TGA中测得的实验值高度吻合。因此,在这项工作中报道的寻常型炭黑的活化能和指数前值可作为该黑云母热解过程数值研究的参考值,因为其化学组成相当均匀。就污水污泥而言,由于其组成的不均一性,所报道的热解过程动力学参数的结果可用于描述组成相似的污泥的热解。 (C)2017 Elsevier Ltd.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号