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Enhanced performances of ORC-based units for low grade waste heat recovery via evaporator layout optimization

机译:通过优化蒸发器布局,提高基于ORC的单元的性能,可用于低品位废热回收

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The full exploitation of the upper thermal source is the key for enhanced energy performances of ORC-based units for medium and low-grade waste heat recovery. The adoption of a dual evaporation pressure cycle layout has the potential to reduce the heat exchange irreversibility at the evaporation section and to assure a higher net power available at the expander shaft, particularly in small scale units and in presence of upper thermal sources with a highly variable heat release characteristic. The adoption of the dual evaporation pressure technology to small scale recovery units represents a major technological breakthrough and an element of novelty, observing that, at present, the possibility to split the evaporation process in multiple pressure levels is considered mostly with reference to steam generators and boilers. The study investigates the potential energy and exergy advantage of a dual pressure heat recovery vapor generator, with respect to a base-single evaporation pressure layout, for a recovery unit with a mechanical power in the 1-15 kW range, for stationary (100 degrees C-150 degrees C hot source temperature) and on-board (350 degrees C-300 degrees C hot source temperature) applications. A dedicated optimization procedure allows the maximization of either the net power recovered or the cycle energy efficiency, dependently on the final application of the unit. The exergy efficiency of the heat recovery vapor generator is assessed and its dependence on the fluid characteristics and the main cycle variables discussed, along with the relationship between the energy and exergy gain for the enhanced heat exchange. A preliminary economic analysis provides a first indication of the financial merit of the dual evaporation pressure layout with respect to a base single evaporation pressure configuration.
机译:充分利用上部热源是提高基于ORC的单元用于中低品位废热回收的能源性能的关键。采用双蒸发压力循环布局有可能减少蒸发部分的热交换不可逆性,并确保在膨胀机轴处有更高的净功率,特别是在小型机组和存在高热源的上部热源的情况下可变的放热特性。在小型回收装置中采用双重蒸发压力技术代表了一项重大技术突破和新颖性,可以观察到,目前主要考虑蒸汽发生器和蒸汽发生器将蒸发过程分为多个压力水平的可能性。锅炉。该研究针对机械功率在1-15 kW范围内的固定式装置(100度),研究了双压力热回收蒸气发生器相对于基本单蒸发压力布局的潜在能量和火用优势。 C-150摄氏度的热源温度)和车载(350摄氏度-300摄氏度的热源温度)应用。专用的优化程序可根据单元的最终应用,使回收的净功率或循环能效最大化。评估了热回收蒸汽发生器的火用效率,并讨论了其对流体特性和主要循环变量的依赖性,以及能量和火用增益之间的关系,以增强换热。初步的经济分析首次说明了双蒸发压力布局相对于基本单蒸发压力配置的财务价值。

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