含CO2气体环境中气化过程中生物碳强度和结构的演变

Aki Koskela , Hannu Suopajärvi , Juha Uusitalo , Timo Fabritius
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引用次数: 1

摘要

本工作重点研究了水解木质素生物炭的性质,并展望了生物炭在火法冶金过程中的应用。即使高炉和碱性氧气炉(BF-BOF)工艺路线在未来被二氧化碳排放量较低的新兴技术所取代,钢铁制造业对碳质材料的需求仍然存在。这些应用中的大多数对碳质材料的性能不要求像BF那样高的标准,但要求仍然与BF类似。碳质材料最重要的性能是机械强度和合适的反应性。在生物碳的情况下,表观密度也被认为是重要的。通过等温反应性试验和压缩强度试验研究了未气化和预气化生物碳和参比焦炭样品的反应性和强度特性。焦炭气化的质量损失率(-0.069%/min)显著低于反应性最低的生物碳L1200的质量损失速率(-0.18%/min)。关于样品的抗压强度,与未气化的样品相比,预气化水平为50%的样品的焦炭强度下降了56.44%,而L1200生物碳样品的强度仅下降了40.68%。发现气化水平与孔面积百分比直接相关,在L1200的情况下R2值为0.92,在焦炭的情况下为0.98。此外,孔隙面积百分比与压缩强度相关,在L1200的情况下R2为0.93,在焦炭的情况下为0.98。
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Evolution of biocarbon strength and structure during gasification in CO2 containing gas atmosphere

This work focuses on the properties of hydrolysis lignin biocarbons with a perspective on utilizing the biocarbons in pyrometallurgical processes. Even if the blast furnace and basic oxygen furnace (BF-BOF) process route was replaced by emerging technologies with lower CO2 emissions in the future, the need for carbonaceous materials in the iron and steel making industry will still exist. Most of these applications do not require as high standards for the properties of carbonaceous materials as BF but the requirements are still similar to those for BF. The most important properties of carbonaceous materials are the mechanical strength and suitable reactivity. In the case of biocarbon, the apparent density is also considered important. The reactivity and strength properties are investigated with isothermal reactivity tests and compression strength tests for the non-gasified and pre-gasified biocarbon and reference coke samples. The mass loss rate of coke gasification (-0.069%/min) was considerably lower than that of least reactive biocarbon L1200 (-0.18%/min). Regarding the compression strength of the samples, the strength of coke dropped by 56.44% for the samples of pre-gasification level of 50% compared to non-gasified samples while the drop was only 40.68% for the L1200 biocarbon samples. The level of gasification was found to have direct correlation with pore area percentage with R2 value 0.92 in case of L1200 and 0.98 in case of coke. Further, the pore area percentage correlated with the compression strength with R2 of 0.93 in case of L1200 and 0.98 in case of coke.

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