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Influence of biomass ash additive on fusion characteristics of high-silicon-aluminum coal ash

机译:生物质灰添加剂对高硅 - 铝煤灰融合特性的影响

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摘要

The influence of cow dung ash (CDA) additive on the ash fusion characteristics of high-silicon-aluminum coal ash (SHA) was investigated using ash fusion temperature analyzer (AFTA), X-ray diffraction (XRD), thermogravimetric analyzer (TG-DSC) and FactSage thermodynamics software. In order to clarify the shrinkage/expansion and flow behavior of ash, high-temperature heating stage coupled with optical microscope (HSOM) was used to record the morphological change of ash in the heating process. The results show that the ash fusion temperatures (AFTs) decreased firstly and then increased with the addition of CDA. There was a minimum value of AFTs when the addition amount of CDA was 60%. Due to the high content of silicon and aluminum in SHA, the mullite with skeleton structure became the main crystalline phase in molten ash, which led to the high AFTs of SHA. The addition of CDA resulted in the increase of calcium and phosphorus in coal ash. Consequently, low-melting-temperature minerals such as anorthite and chlorapatite, which were responsible for the decrease in AFTs of blended ash, would be formed. With the continuous addition of CDA, the decrease of amorphous content led to the increase of AFTs. According to the results of ash fusion characteristics, SHA melting process only underwent the sintering stage due to the high AFTs, and its ash fusion behavior followed "softening-melting" mechanism. For CDA and blended ash (60% CDA), the melting process went through the sintering and melting stages, and the ash fusion behavior followed the "melting-dissolution" mechanism.
机译:使用灰融合温度分析仪(AFTA),X射线衍射(XRD),热重分析仪(TG-)研究了牛粪(CDA)添加剂对高硅 - 铝煤灰(SHA)灰熔化特性的影响DSC)和Factsage热力学软件。为了阐明灰的收缩/膨胀和流动行为,用光学显微镜(HSOM)耦合的高温加热阶段来记录加热过程中灰分的形态变化。结果表明,灰分熔化温度(弃头)首先下降,然后加入CDA增加。当CDA的添加量为60%时,缩小的最小值。由于SHA中硅和铝的含量高,具有骨架结构的莫来石成为熔融灰中的主要结晶相,这导致了SHA的高端。添加CDA导致煤灰中钙和磷的增加。因此,将形成低熔化 - 温度矿物如钙酸盐和氯磷灰石,其负责混合灰末端的减少。随着CDA的连续添加,无定形内容的降低导致了缩短的增加。根据灰熔化特性的结果,SHA熔化过程仅由于高缩小而磨损阶段,其灰熔化行为遵循“软化 - 熔化”机制。对于CDA和混合灰(60%CDA),熔化过程通过烧结和熔化阶段,并且灰分融合行为沿着“熔化溶解”机制。

著录项

  • 来源
    《Fuel》 |2020年第15期|118876.1-118876.10|共10页
  • 作者单位

    Ningxia Univ State Key Lab High Efficiency Utilizat Coal & Gre Yinchuan 750021 Ningxia Peoples R China;

    Ningxia Univ State Key Lab High Efficiency Utilizat Coal & Gre Yinchuan 750021 Ningxia Peoples R China;

    Ningxia Univ State Key Lab High Efficiency Utilizat Coal & Gre Yinchuan 750021 Ningxia Peoples R China;

    Ningxia Univ State Key Lab High Efficiency Utilizat Coal & Gre Yinchuan 750021 Ningxia Peoples R China;

    CHN Energy Ningxia Coal Ind Co Ltd Yinchuan 750000 Ningxia Peoples R China;

    Ningxia Univ State Key Lab High Efficiency Utilizat Coal & Gre Yinchuan 750021 Ningxia Peoples R China|East China Univ Sci & Technol Inst Clean Coal Technol Shanghai 200237 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Biomass ash; High-silicon-aluminum coal; Ash fusion characteristics; Mineral matter;

    机译:生物质灰;高硅煤;灰融合特性;矿物质;

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