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Preparation of Coke from Indonesian Lignites by a Sequence of Hydrothermal Treatment, Hot Briquetting, and Carbonization

机译:通过一系列水热处理,热压块和碳化从印尼褐煤制备焦炭

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摘要

Production of coke from lignites was studied in continuation of a previous study that demonstrated effectiveness of a sequence of hot briquetting and carbonization on preparation of high strength coke from a lignite. Cokes were prepared from four Indonesian lignites with or without pretreatments such as hydrothermal treatment (HT) at 200-300 ℃, acid washing (AW), and a combination of them (HT-AW). The hot briquetting of the raw lignites at temperature and mechanical pressure of 200 ℃ and 128 MPa, respectively, enabled cokes to be produced with a tensile strength (TS) of 7-22 MPa. The pretreatments, AW and HT at 200 ℃ (HT200), increased TSs of resulting cokes to 18-24 and 13-36 MPa, respectively. A sequence of HT200 and AW further increased TSs of cokes to 27-40 MPa. AW and HT200 modified the macromolecular structure of the lignites by different mechanisms. AW removed alkali and alkaline earth metallic species that played roles of cross-links in the macromolecular network, while HT200 rearranged macromolecules physically. Both HT and AW enhanced plasticization and then deformation/coalescence of lignite particles during the briquetting, which formed high strength briquettes. There were strong correlations between TS of coke and that of briquette and also between TS and bulk density of coke from the individual lignites.
机译:在先前的研究的继续研究中,对褐煤的焦炭生产进行了研究,该研究证明了一系列热压块和碳化对褐煤制备高强度焦炭的有效性。焦炭由四种印度尼西亚褐煤制成,经过或不经过预处理,例如在200-300℃下进行水热处理(HT),酸洗(AW)以及它们的组合(HT-AW)。原始褐煤的热压块分别在200℃和128 MPa的温度和机械压力下进行,可制得焦炭的拉伸强度(TS)为7-22 MPa。预处理,在200℃的AW和HT(HT200)下,最终焦炭的TSs分别增加到18-24 MPa和13-36 MPa。一系列的HT200和AW进一步将焦炭的TS提升至27-40 MPa。 AW和HT200通过不同的机理修饰了褐煤的大分子结构。 AW去除了在大分子网络中起交联作用的碱金属和碱土金属物质,而HT200物理上重新排列了大分子。在压块过程中,HT和AW都增强了褐煤颗粒的增塑作用,然后变形/凝结,形成了高强度的团块。焦炭和煤块的TS之间,TS和与来自各个褐煤的焦炭的堆积密度之间都具有很强的相关性。

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  • 来源
    《Energy & fuels》 |2013年第novaadeca期|6607-6616|共10页
  • 作者单位

    Institute for Materials Chemistry and Engineering, Kyushu University, 6-1, Kasuga Koen, Kasuga 816-8580, Japan;

    Department of Earth Resources Engineering, Graduate School of Engineering, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka 819-0395, Japan;

    Research Centre for Geotechnology, Indonesian Institute of Sciences (LIPI), JI. Sangkuriang Komplek LIPI, Gd. 70, Bandung 40135, Indonesia;

    Research and Education Center of Carbon Resources, Kyushu University, 6-1, Kasuga Koen, Kasuga 816-8580, Japan;

    Institute for Materials Chemistry and Engineering, Kyushu University, 6-1, Kasuga Koen, Kasuga 816-8580, Japan;

    Department of Earth Resources Engineering, Graduate School of Engineering, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka 819-0395, Japan;

    Department of Earth Resources Engineering, Graduate School of Engineering, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka 819-0395, Japan,Research and Education Center of Carbon Resources, Kyushu University, 6-1, Kasuga Koen, Kasuga 816-8580, Japan;

    Research and Education Center of Carbon Resources, Kyushu University, 6-1, Kasuga Koen, Kasuga 816-8580, Japan;

    Institute for Materials Chemistry and Engineering, Kyushu University, 6-1, Kasuga Koen, Kasuga 816-8580, Japan,Research and Education Center of Carbon Resources, Kyushu University, 6-1, Kasuga Koen, Kasuga 816-8580, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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