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Separation Process of Fine Coals by Ultrasonic Vibration Gas-Solid Fluidized Bed

机译:超声振动气固流化床分离细粉工艺

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摘要

Ultrasonic vibration gas-solid fluidized bed was proposed and introduced to separate fine coals (0.5–0.125 mm fraction). Several technological methods such as XRF, XRD, XPS, and EPMA were used to study the composition of heavy products to evaluate the separation effect. Results show that the ultrasonic vibration force field strengthens the particle separation process based on density when the vibration frequency is 35 kHz and the fluidization number is 1.8. The ash difference between the light and heavy products and the recovery of combustible material obtain the maximum values of 47.30% and 89.59%, respectively. The sulfur content of the heavy product reaches the maximum value of 6.78%. Chemical state analysis of sulfur shows that organic sulfur (-C-S-), sulfate-sulfur (-SO4), and pyrite-sulfur (-S2) are confirmed in the original coal and heavy product. Organic sulfur (-C-S-) is mainly concentrated in the light product, and pyrite-sulfur (-S2) is significantly enriched in the heavy product. The element composition, phase composition, backscatter imagery, and surface distribution of elements for heavy product show concentration of high-density minerals including pyrite, quartz, and kaolinite. Some harmful elements such as F, Pb, and As are also concentrated in the heavy product.
机译:提出并引入了超声振动气固流化床以分离细煤(0.5-0.125 mm)。 XRF,XRD,XPS和EPMA等多种技术方法用于研究重产品的组成,以评估分离效果。结果表明,当振动频率为35 kHz,流化数为1.8时,超声振动力场基于密度增强了颗粒分离过程。轻,重产品之间的灰分差和可燃材料的回收率分别达到最大值47.30%和89.59%。重产品的硫含量达到最大值6.78%。硫的化学状态分析表明,在原始煤和重质产品中确认了有机硫(-C-S-),硫酸盐-硫(-SO4)和黄铁矿-硫(-S2)。有机硫(-C-S-)主要集中在轻质产品中,黄铁矿硫(-S2)大量富含重产品。重产品元素的元素组成,相组成,反向散射图像和元素的表面分布显示出高密度矿物的浓度,包括黄铁矿,石英和高岭石。重产品中还含有一些有害元素,例如F,Pb和As。

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