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Thermodynamic Analysis of Blast Furnace Slag Waste Heat-Recovery System Integrated with Coal Gasification

机译:高炉渣废热回收与煤气化一体化的热力学分析

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The blast furnace (BF) slag waste heat was recovered by an integrated system stage by stage, which combined a physical and chemical method. The water and coal gasification reactions were used to recover the heat in the system. Based on the first and second law of thermodynamics, the thermodynamic analysis of the system was carried out by the enthalpy-exergy diagram. The results showed that the concept of the "recovery-temperature countercurrent, energy cascade utilization" was realized by this system to recover and use the high-quality BF slag waste heat. In this system, the high-temperature waste heat was recovered by coal gasification and the relatively low-temperature waste heat was used to produce steam. The system's exergy and thermal recycling efficiency were 52.6% and 75.4%, respectively. The exergy loss of the integrated system was only 620.0 MJ/t(slag). Compared with the traditional physical recycling method producing steam, the exergy and thermal efficiencies of the integrated system were improved significantly. Meanwhile, approximately 182.0 m(3)/t(slag) syngas was produced by coal gasification. The BF slag waste heat will be used integrally and efficiently by the integrated system. The results provide the theoretical reference for recycling and using the BF slag waste heat.
机译:高炉渣废热通过物理和化学相结合的逐步集成系统进行回收。水和煤气化反应用于回收系统中的热量。基于热力学第一定律和第二定律,利用焓-能值图对系统进行了热力学分析。结果表明,该系统实现了“回收温度逆流,能量级联利用”的概念,以回收利用高质量的高炉渣废热。在该系统中,通过煤气化回收高温废热,并使用相对较低温度的废热产生蒸汽。该系统的火用效率和热循环效率分别为52.6%和75.4%。集成系统的火用损失仅为620.0 MJ / t(炉渣)。与产生蒸汽的传统物理回收方法相比,该集成系统的火用效率和热效率得到了显着提高。同时,通过煤气化生产了大约182.0 m(3)/ t(炉渣)合成气。高炉渣废热将被集成系统整体有效地利用。研究结果为高炉渣余热的回收利用提供了理论参考。

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