X-RAY-DIFFRACTION, THERMAL-EXPANSION, ELECTRICAL-CONDUCTIVITY, AND OPTICAL MICROSCOPY STUDIES OF COAL-BASED GRAPHITES

被引:121
作者
SEEHRA, MS
PAVLOVIC, AS
机构
[1] Physics Department, West Virginia University, Morgantown, WV 26506-6315
基金
美国能源部;
关键词
GRAPHITES; COALS; X-RAY DIFFRACTION; THERMAL EXPANSION; CONDUCTIVITY;
D O I
10.1016/0008-6223(93)90109-N
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In this work, the properties of three graphites (WVU-1, WVU-2, WVU-3) produced from solvent-extracted coal feedstocks are reported. The techniques of x-ray diffraction, thermal expansion, electrical conductivity, and optical microscopy were used for these measurements. Parameters determined include crystallite sizes L(c) and L(perpendicular-to), crystalline parameter d(002), Bacon anisotropy parameter, lattice strain, degree of graphitization, longitudinal and transverse coefficients of thermal expansion (CTE), electrical conductivity and density. The long-range goal of this project is to produce a coal-based isotropic graphite comparable in properties to H-451, a commercially available graphite produced from petrocoke feedstocks. Therefore, the properties of the WVU graphites are compared to those of H-451, and a high-purity graphite powder is included in this study for reference. These comparisons show that the x-ray and the CTE anisotropy ratios of the WVU-1 and WVU-3 graphites are comparable to those of H-451. However, WVU-2 is more anisotropic because of the hydrogenation process used for the coal feedstock. The electrical conductivities of the three WVU graphites are about half that of H-451. The lower conductivities and lower densities of the WVU graphites are due to lack of impregnation, a step which needs to be included in future sample preparations.
引用
收藏
页码:557 / 564
页数:8
相关论文
共 32 条
[21]   PREPARATION OF AN ULTRA-LOW ASH COAL EXTRACT UNDER MILD CONDITIONS [J].
RENGANATHAN, K ;
ZONDLO, JW ;
MINTZ, EA ;
KNEISL, P ;
STILLER, AH .
FUEL PROCESSING TECHNOLOGY, 1988, 18 (03) :273-278
[22]  
RULAND W, CHEM PHYS CARBON, V4, P1
[23]   X-RAY MEASUREMENT OF THERMAL EXPANSION PERPENDICULAR TO THE LAYER PLANES OF ARTIFICIAL AND NATURAL GRAPHITES [J].
STEWARD, EG ;
COOK, BP .
NATURE, 1960, 185 (4706) :78-80
[24]   DEPENDENCE ON TEMPERATURE OF THE INTERLAYER SPACING IN CARBONS OF DIFFERENT GRAPHITIC PERFECTION [J].
STEWARD, EG ;
COOK, BP ;
KELLETT, EA .
NATURE, 1960, 187 (4742) :1015-1016
[25]  
Stiller A.H., 1981, US Patent, Patent No. [4,272,356, 4272356]
[26]  
Takahashi H, 1965, CARBON, V2, P432
[27]   BACON ANISOTROPY FACTOR MEASUREMENTS ON PYC BY X-RAY DIFFRACTOMETRY [J].
TASSONE, G .
CARBON, 1970, 8 (03) :387-&
[28]   ON THE DETERMINATION OF LATTICE PARAMETERS BY THE DEBYE-SCHERRER METHOD [J].
TAYLOR, A ;
SINCLAIR, H .
PROCEEDINGS OF THE PHYSICAL SOCIETY OF LONDON, 1945, 57 (320) :126-135
[29]   IMPORTANCE OF STRAIN IN CRYSTALLITE SIZE DETERMINATIONS IN GRAPHITE [J].
THROWER, PA ;
NAGLE, DC .
CARBON, 1973, 11 (06) :663-664
[30]   X-RAY DIFFRACTION STUDIES OF A GRAPHITIZED CARBON - CHANGES IN INTERLAYER SPACING AND BINDING ENERGY WITH TEMPERATURE [J].
WALKER, PL ;
MCKINSTRY, HA ;
WRIGHT, CC .
INDUSTRIAL AND ENGINEERING CHEMISTRY, 1953, 45 (08) :1711-1715