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Effect of temperature on Lu’an bituminous char structure evolution in pyrolysis and combustion 被引量:2

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摘要 In the process of pyrolysis and combustion of coal particles, coal structure evolution will be affected by the ash behavior, which will further affect the char reactivity, especially in the ash melting temperature zone. Lu’an bituminous char and ash samples were prepared at the N_(2) and air atmospheres respectively across ash melting temperature. A scanning electron microscope (SEM) was used to observe the morphology of char and ash. The specific surface area (SSA) analyzer and thermogravimetric analyzer were respectively adopted to obtain the pore structure characteristics of the coal chars and combustion parameters. Besides, an X-ray diffractometer (XRD) was applied to investigate the graphitization degree of coal chars prepared at different pyrolysis temperatures. The SEM results indicated that the number density and physical dimension of ash spheres exuded from the char particles both gradually increased with the increasing temperature, thus the coalescence of ash spheres could be observed obviously above 1100℃. Some flocculent materials appeared on the surface of the char particles at 1300℃, and it could be speculated that β-Si_(3)N_(4) was generated in the pyrolysis process under N_(2). The SSA of the chars decreased with the increasing pyrolysis temperature. Inside the char particles, the micropore area and its proportion in the SSA also declined as the pyrolysis temperature increased. Furthermore, the constantly increasing pyrolysis temperature also caused the reactivity of char decrease, which is consistent with the results obtained by XRD. The higher combustion temperature resulted in the lower porosity and more fragments of the ash.
出处 《Frontiers in Energy》 SCIE CSCD 2021年第1期14-25,共12页 能源前沿(英文版)
基金 This work was financial supported by the National Natural Science Foundation of China(Grant No.51576158).
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  • 1张守玉,吕俊复,王文选,朱廷钰,黎永,岳光溪.热处理对煤焦反应性及微观结构的影响[J].燃料化学学报,2004,32(6):673-678. 被引量:33
  • 2[1]Dobiasova L, Stary V, Glogar P, et al. Analysis of carbon fibers and carbon composites by asymmetric X-ray diffraction technique[J]. Carbon, 1999, 37(3): 421-425.
  • 3[2]Morán M, Miguel A, Robert J. Raman spectroscopy study of HM carbon fibres[J]. Carbon, 2002, 40(6): 845-855.
  • 4[3]Kotosonov A S, Vinnekov V A, Polozhichin A I, et al. Effect of chlorine on the changes of electronic properties of pyrolytic carbon in the course of graphitization[J].Carbon, 1970, 8(3): 389-392.
  • 5[4]ZHEN Mei, Chung D D L. Thermal history of carbon-fiber polymer-matrix composites, evaluated by electrical resistance measurement[J]. Thermochemica Acta, 2001, 369: 87-93.
  • 6[9]Barry Granoff. Microstructure of carbon-felt/carbon-matrix composite[J]. Carbon, 1974, 12: 681-683.
  • 7[10]Bourrat X, Trouvat B, Limousin G, et al. Pyrocarbon anisotropy as measured by electron diffraction and polarized light[J]. J Mater Res, 2000, 15(1): 92-101.
  • 8[11]Oberlin A. Pyrocarbons[J]. Carbon, 2002, 40: 7-24.
  • 9[14]Zaldivar R J, Rellick G S. Some observation on stress graphitization in carbon-carbon composites[J]. Carbon, 1991, 29(8): 1155-1163.
  • 10[15]Hishiyama Y, Inagaki M, Kimura S, et al. Graphitization of carbon fiber /glassy carbon composites [J]. Carbon, 1974, 12: 249-258.

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