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    水泥窑氢能耦合替代燃料高效燃用的中试研究

    Pilot-Scale Study on Highly Efficient Combustion of Hydrogen-Coupled Alternative Fuels Used in Cement Kilns

    • 摘要: 氢能是新能源的灵活载体,本研究提出了氢能耦合替代燃料实现水泥行业低碳能源转型的技术路线。针对氢能在水泥窑上高效燃用的技术瓶颈,从燃料特性和热工计算出发,搭建了氢能热态模拟中试平台,验证了氢自由基作用到宏观能量传递的跨尺度模型,试验了热值比例0~70%氢气掺烧多源替代燃料的燃烧行为,对比研究了氢能耦合掺烧柴油、劣质煤粉、稻壳粉、橡胶粉、木屑粉等燃料的影响规律。结果表明,有效利用氢气的高活性可以促进劣质替代燃料的燃烧。氢气对于热值较低、含固定碳较低的劣质固体燃料的改善作用大于高品质燃料。综合火焰燃烧状态、火焰温度、烟气中CO及NOx减排情况,中试研究发现,氢气与柴油的耦合掺烧比例应控制在24%以内;氢气稻壳粉、劣质煤粉耦合掺烧时,氢气的最佳比例应分别控制在15%、22%以内;当氢气与橡胶粉、木屑粉耦合掺烧时,氢气的替代比例宜分别控制在12%、11%以内。分解炉内主燃区加氢会延缓耦合燃料的燃尽时间,燃尽区加氢可以促进燃料CO转化为CO2。基于中试研究,验证了氢能耦合替代燃料组织燃烧大幅度减少化石燃料技术的可行性,解决了低品位燃料着火困难、火焰不稳定和燃尽不充分等技术瓶颈,可实现吨水泥熟料单位产品碳排放减少180 kg以上。

       

      Abstract: Hydrogen, as a flexible carrier of renewable energy, is investigated for its potential to facilitate a low-carbon transition in the cement industry through coupling with alternative fuels. To address the technical bottlenecks associated with hydrogen combustion in cement kilns, a pilot-scale platform was established by taking fuel properties and thermal characteristics into account. The platform enabled the validation of a cross-scale model bridging microscopic hydrogen radical effects with macroscopic energy transfer. Calcination experiments using hydrogen-coupled multi-source alternative fuels were conducted with blending ratios ranging from 0% to 70% by calorific value, covering diesel, lean coal, rice husk, rubber powder, and wood powder. These experiments established a technical pathway for significantly reducing fossil fuel consumption through the optimized combustion of hydrogen-coupled alternative fuels. The results demonstrate that the high reactivity of hydrogen effectively promotes the combustion of low-quality fuels, with the enhancement being more pronounced for fuels with lower calorific values and fixed carbon contents than for high-quality fuels. Based on a comprehensive evaluation of flame morphology, flame temperature, and flue gas emissions (CO and NOx), pilot-scale studies revealed that the hydrogen co-firing ratio with diesel should be limited to 24%; for co-firing with rice husk powder and lean coal, the optimal hydrogen ratios should be kept within 15% and 22%, respectively; and for co-firing with rubber powder and wood powder, the hydrogen substitution ratios should be controlled within 12% and 11%, respectively. Notably, the hydrogen injection location significantly influences combustion characteristics and pollutant emissions. Injecting hydrogen directly into the main combustion zone of the calciner leads to rapid oxidation and intense localized oxygen consumption, which temporarily starves the primary reaction region and delays the burnout of coupled fuels. To overcome this limitation, staged hydrogen injection is proposed: introducing a secondary hydrogen stream into the burnout zone enhances the conversion of residual CO to CO2, thereby improving fuel utilization efficiency and overall carbon performance. Rigorously validated through pilot-scale testing, this hydrogen-coupled alternative fuel calcination technology achieves a substantial carbon emission reduction of 180 kg CO2 per ton of clinker product while overcoming classical operational hurdles such as ignition difficulty, flame instability, and incomplete burnout. This study provides a practical pathway for decarbonizing the cement industry by integrating hydrogen into existing production systems.

       

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