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采用分布式活化能模型和热解-气相色谱-质谱法对不同微藻生物质的热解动力学和产物分析。

Pyrolysis kinetic and product analysis of different microalgal biomass by distributed activation energy model and pyrolysis-gas chromatography-mass spectrometry.

机构信息

Key Engineering Laboratory for Algal Biofuels, School of Environment and Energy, Peking University at Shenzhen, Shenzhen, China.

Guangzhou Institute of Energy Conversion, Chinese Academy of Science, Guangzhou, China.

出版信息

Bioresour Technol. 2014 Jul;163:335-42. doi: 10.1016/j.biortech.2014.04.040. Epub 2014 Apr 19.

Abstract

To assess the energy potential of different microalgae, Chlorella sorokiniana and Monoraphidium were selected for studying the pyrolytic behavior at different heating rates with the analytical method of thermogravimetric analysis (TG), distributed activation energy model (DAEM) and pyrolysis-gas chromatography-mass spectrometry (Py-GC/MS). Results presented that Monoraphidium 3s35 showed superiority for pyrolysis at low heating rate. Calculated by DAEM, during the conversion rate range from 0.1 to 0.7, the activation energies of C. sorokiniana 21 were much lower than that of Monoraphidium 3s35. Both C. sorokiniana 21 and Monoraphidium 3s35 can produce certain amount (up to 20.50%) of alkane compounds, with 9-Octadecyne (C18H34) as the primary compound. Short-chain alkanes (C7-C13) with unsaturated carbon can be released in the pyrolysis at 500°C for both microalgal biomass. It was also observed that the pyrolysis of C. sorokiniana 21 released more alcohol compounds, while Monoraphidium 3s35 produced more saccharides.

摘要

为了评估不同微藻的能量潜力,选择了小球藻和单歧藻来研究不同加热速率下的热解行为,采用热重分析(TG)、分布活化能模型(DAEM)和热解-气相色谱-质谱联用(Py-GC/MS)的分析方法。结果表明,单歧藻 3s35 在低加热速率下具有优势。通过 DAEM 计算,在转化率范围从 0.1 到 0.7 时,小球藻 21 的活化能远低于单歧藻 3s35。小球藻 21 和单歧藻 3s35 都可以产生一定量(高达 20.50%)的烷烃化合物,主要化合物为 9-十八炔(C18H34)。在 500°C 下,两种微藻生物质都可以释放出具有不饱和碳的短链烷烃(C7-C13)。还观察到,小球藻 21 的热解释放出更多的醇类化合物,而单歧藻 3s35 则产生更多的糖。

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