为了研究生物质烘焙后冷却速度对其表面形貌及后续热解产生的影响,以不同温度(200、230、260、290 ℃)对玉米秆进行烘焙,并用快速冷却(TF)与缓慢冷却(TS)两种方式进行降温处理。采用扫描电镜(SEM)观察烘焙前后样品的表面形貌发现,TS样品表面相比同一烘焙温度下TF样品及原样表面更加疏松;将烘焙前后样品放入热重分析仪中进行热解实验得出,随着烘焙温度的升高,样品的最大失重速率总体呈下降趋势;同一烘焙温度下,TS样品与TF样品的最大失重速率相差不大,290 ℃烘焙温度下TS样品的最大失重速率最慢,为2.94%/℃;在200、230、290 ℃烘焙温度下TS样品的热解活化能均小于TF样品,260 ℃时则相反,且其TS样品的活化能最高,达到100.43 kJ/mol。
Abstract
In order to study the effect of cooling rate on the surface morphology and subsequent pyrolysis, cornstalks were torrefied at different temperatures (200, 230, 260 and 290 ℃), and were cooled by two methods: fast cooling (TF) and slow cooling (TS).Scanning electron microscopy (SEM) was used to observe the surface morphology of the raw and torrefied samples. It was found that the surface of TS samples was looser than that of TF and raw samples at the same torrefaction temperature. The samples were also put into thermogravimetric analyzer for pyrolysis experiments. The results showed that the maximum weight loss rates of all the torrefied samples decreased with the increasing torrefaction temperature. The maximum weight loss rate of TS samples and TF samples showed little difference at the same torrefaction temperature, and the lowest maximum weight loss rate of TS samples was 2.94%/℃ at 290 ℃. At the same time, the higher the torrefaction temperature, the higher the peak temperature corresponding to the maximum weight loss rate. The pyrolysis activation energy of TS samples at 200, 230 and 290 ℃ were lower than that of TF samples at the same temperature, respectively, but it was opposite for TS260 sample, which has the highest activation energy about 100.43 kJ/mol.
关键词
生物质 /
烘焙 /
热解冷却速度 /
活化能 /
玉米杆
Key words
biomass /
torrefaction /
pyrolysis /
cooling rate /
activation energy /
cornstalks
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参考文献
[1] 余心之, 岑珂慧, 梅珈铭, 等. 烘焙预处理对纤维素热解特性影响的研究[J]. 科学技术与工程, 2017, 17(35): 240-244.
YU X Z, CEN K H, MEI J M, et al.Effect of torrefaction pretreatment on the pyrolysis characteristics of cellulose[J]. Science technology and engineering, 2017, 17(35): 240-244.
[2] ARSHANITSA A, AKISHIN Y, ZILE E, et al.Microwave treatment combined with conventional heating of plant biomass pellets in a rotated reactor as a high rate process for solid biofuel manufacture[J]. Renewable energy, 2016, 91(6): 386-396.
[3] HE Z, ZHANG F, TU R, et al.The influence of torrefaction on pyrolysed biomass: the relationship of bio-oil composition with the torrefaction severity[J]. Bioresource technology, 2020, 314(10): 123780.
[4] GRANADOS D A, RUIZ R A, VEGA L Y, et al.Study of reactivity reduction in sugarcane bagasse as consequence of a torrefaction process[J]. Energy, 2017, 139(11): 818-827.
[5] SIMONIC M, GORICANEC D, URBANCL D.Impact of torrefaction on biomass properties depending on temperature and operation time[J]. Science of the total environment, 2020, 740(10): 140086.
[6] ASLAM U, RAMZAN N, ASLAM Z, et al.Enhancement of fuel characteristics of rice husk via torrefaction process[J]. Waste management and research, 2019, 37(7): 737-745.
[7] 姚锡文, 许开立. 玉米芯的热解特性及气相产物的释放规律[J]. 农业工程学报, 2015, 31(3): 275-282.
YAO X W, XU K L.Pyrolysis characteristics of corn cob and release rule of gas products[J]. Transactions of the Chinese Society of Agricultural Machinery, 2015, 31(3): 275-282.
[8] SARKAR J K, WANG Q.Characterization of pyrolysis products and kinetic analysis of waste jute stick biomass[J]. Processes, 2020, 8(7): 837-852.
[9] HAYKIRI-ACMA H, YAMAN S, KUCUKBAYRAK S.Effect of heating rate on the pyrolysis yields of rapeseed[J]. Renewable energy, 2006, 31(6): 803-810.
[10] CHEN W H, WANG C W, KUMAR G, et al.Effect of torrefaction pretreatment on the pyrolysis of rubber wood sawdust analyzed by Py-GC/MS[J]. Bioresource technology, 2018, 259(7): 469-473.
[11] 王明峰, 徐建宇, 蒋恩臣, 等. 桉树木屑成型颗粒成分变化和热解特性研究[J]. 太阳能学报, 2020, 41(10): 355-360.
WANG M F, XU J Y, JIANG E C, et al.Study on composition change and pyrolysis properties of eucalyptus sawdust pellets[J]. Acta energiae solaris sinica, 2020, 41(10): 355-360.
[12] 张岚清. 含氧气氛下的稻秆低温烘焙机理及其产物吸附性能研究[D]. 南京: 东南大学, 2017.
ZHANG L Q.Oxidative torrefaction of rice straw under different oxygen concentrations[D]. Nanjing: Southeast University, 2017.
[13] 刘卫山. 玉米秸秆含氧烘焙制备生物质炭结构演化及吸附性能研究[D]. 吉林: 东北电力大学, 2019.
LIU W S.Study on the adsorption capacity and structural revolution of torrefied cornstalk by oxidative torrefaction[D]. Jilin: Northeast Electric Power University, 2019.
[14] HUANG X, CAO J P, ZHAO X Y, et al.Pyrolysis kinetics of soybean straw using thermogravimetric analysis[J]. Fuel, 2016, 169(4): 93-98.
[15] ZENG K, YANG Q, ZHANG Y, et al.Influence of torrefaction with Mg-based additives on the pyrolysis of cotton stalk[J]. Bioresource technology, 2018, 261(8): 62-69.
基金
河南省博士后科研项目启动经费(1902037); 河南理工大学创新型科研团队(T2020-3)