Study on NOx formation and ash characteristics during co-combustion of semi-coke and biomass under O2/CO2 conditions

IF 7.5 1区 工程技术 Q2 ENERGY & FUELS Fuel Pub Date : 2025-06-15 Epub Date: 2025-02-16 DOI:10.1016/j.fuel.2025.134717
Jinping Zhang , Jingchun Shen , Junyi Fang , Lei Chen , Chang’an Wang , Defu Che
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Abstract

Oxy-fuel co-combustion of semi-coke and biomass has emerged as a promising and environmentally sustainable avenue for reducing carbon emissions and realizing the resource utilization of solid waste. However, the underlying mechanisms of N-containing pollutants release and ash formation during co-combustion process remain somewhat unclear. Herein, the intricate characteristics of NOx formation and ash-related behavior during oxy-fuel co-combustion of semi-coke (SC) and three typical biomass (rice hull (RH), pine wood (PW) and walnut shell (WS)) were investigated based on the effects of various parameters, including blending ratio, temperature and atmosphere in this research. The results show that the minerals in biomass could efficiently inhibit the NOx formation through facilitating the reduction of NOx to N2, and increasing the biomass blending ratio would lead to a significant decrease of NOx emission. Additionally, the conversion of fuel-N to NOx demonstrated a consistent upward trend with increasing temperature from 900 °C to 1350 °C. Significant decreases of NOx are detected when adjusting the ratio of O2/CO2, with an optimal O2 concentration at 30 %. The biomass type and combustion atmosphere contributed greatly to chemical compositions and slagging propensity of the ash. In comparison with RH, PW and WS exhibited notably higher slagging propensity of ash under test conditions. Moreover, increasing the O2 concentration in O2/CO2 atmosphere would elevate the slagging propensity of ash by promoting the formation of calcium sulfate, which subsequently fostered the development of additional low-temperature eutectics. This study provides theoretical support for developing the fuel value of biomass and semi-coke, enabling collaborative disposal approaches and ultimately realizing carbon peak in thermal power industry.
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O2/CO2条件下半焦与生物质共燃过程中NOx生成及灰分特性研究
半焦与生物质的全氧混合燃烧已成为减少碳排放和实现固体废物资源化利用的一种有前景的、环境可持续的途径。然而,在共燃烧过程中含氮污染物释放和灰分形成的潜在机制尚不清楚。本文研究了半焦(SC)与稻壳(RH)、松木(PW)和核桃壳(WS)三种典型生物质混合燃烧过程中NOx生成和灰分相关行为的复杂特征,并考察了混合比例、温度和气氛等参数的影响。结果表明,生物质中矿物质能有效抑制NOx的生成,促进NOx还原为N2,增加生物质掺混比例可显著降低NOx排放。从900℃到1350℃,随着温度的升高,燃料n向NOx的转化率呈上升趋势。当O2/CO2浓度为30%时,NOx浓度显著降低。生物质类型和燃烧气氛对灰的化学成分和结渣倾向有很大影响。与RH相比,PW和WS在试验条件下表现出明显更高的灰化倾向。此外,O2/CO2气氛中O2浓度的增加会促进硫酸钙的形成,从而提高灰分的结渣倾向,从而促进其他低温共晶的发展。本研究为开发生物质和半焦的燃料价值,实现协同处置方式,最终实现火电行业碳峰值提供理论支持。
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来源期刊
Fuel
Fuel 工程技术-工程:化工
CiteScore
12.80
自引率
20.30%
发文量
3506
审稿时长
64 days
期刊介绍: The exploration of energy sources remains a critical matter of study. For the past nine decades, fuel has consistently held the forefront in primary research efforts within the field of energy science. This area of investigation encompasses a wide range of subjects, with a particular emphasis on emerging concerns like environmental factors and pollution.
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