有机朗肯循环
铝
冶炼
余热回收装置
环境科学
废物管理
阶段(地层学)
余热
朗肯循环
冶金
材料科学
工程类
机械工程
热力学
热交换器
地质学
物理
古生物学
功率(物理)
作者
Mohamed I. Hassan Ali,Mostafa M. Abdelsamie
标识
DOI:10.1016/j.ecmx.2024.100648
摘要
The primary aluminium industry stands as one of the most energy-consuming and, at times, the most inefficient, with approximately 50 % of energy being lost in the form of waste heat. The multiplicity of wasted heat sources in aluminium smelters presents a challenge in how to recover and integrate them, given their variations in both quantity and temperature levels. In this context, the study adopts the Parallel Two-stage Organic Rankine Cycle (PTORC) to separately integrate the wasted heat from the cathode sidewalls and the exhaust gases within a unified recovery system. The influence of primary and secondary evaporation temperatures, their pinch points, the number of integrated aluminium pots, and the working fluid on the thermodynamic performance and economic feasibility of PTORC are examined. At a given design condition, the findings indicate that decreasing the primary evaporation temperature while increasing the secondary evaporation temperature achieves the optimal operating condition of the system, resulting in a significant improvement in both output power and economic performance, while also reducing exergy destruction. At the primary evaporation temperature of 111.5 °C and the secondary evaporation temperature of 78.5 °C, the net output power reaches the optimal value of 3,840 kW. Furthermore, maintaining a lower pinch temperature difference in both evaporators proves advantageous for enhancing PTORC performance. Pentane, R236ea, and isopentane demonstrate outstanding maximum net power output at a constant secondary evaporation temperature, respectively. Meanwhile, R236ea and isobutane emerge as the most suitable working fluids for PTORC from an economic standpoint.
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