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Design and thermodynamic and thermoeconomic analysis of an organic Rankine cycle for naval surface ship applications

机译:海军水面舰艇应用有机朗肯循环的设计以及热力学和热经济分析

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This paper presents the thermodynamic modeling of an organic Rankine cycle (ORC) that uses waste exhaust energy of a 1000 kW diesel generator on a naval ship. Seven different working fluids have been selected as the ORC fluids. The commercial software (EES) has been used to predict the thermodynamic properties of the selected fluids. The efficiency of the ORC goes up to 32% with toluene. For the needed generator power of 500 kW on cruising, the ideal ORC can produce 118 kW power with the working fluid toluene. Assuming an isentropic efficiency for the turbine and the pump of the case ORC to be 0.75 and 0.20, respectively, and neglecting the losses at the ORC electric generator, the electric power output of the ORC cycle becomes 92 kW. The power of the diesel-ORC system becomes 592 kW while the combined efficiency is calculated as 0.349. The ORC saves 25,500 L of diesel fuel (US$24,870) and reduces 67.2 tons of CO2 emissions at the end of 1000 operating hours. ORC working fluids may result different efficiencies at different temperatures. Therefore, a combined ORC system is proposed to get higher efficiencies at different thermal loads. The exergy efficiencies and irreversibilities were calculated. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文介绍了有机朗肯循环(ORC)的热力学模型,该循环利用海军舰船上1000 kW柴油发电机的废废气能量。已经选择了七种不同的工作流体作为ORC流体。商业软件(EES)已用于预测所选流体的热力学性质。使用甲苯,ORC的效率高达32%。对于巡航时所需的500 kW发电机功率,理想的ORC可以与工作流体甲苯一起产生118 kW功率。假设壳体ORC的涡轮和泵的等熵效率分别为0.75和0.20,而忽略了ORC发电机的损耗,则ORC循环的电力输出变为92kW。柴油ORC系统的功率变为592 kW,而综合效率经计算为0.349。在1000个工作小时结束时,ORC节省了25,500升柴油(24,870美元),减少了67.2吨的二氧化碳排放。 ORC工作流体在不同温度下可能会产生不同的效率。因此,提出了一种组合的ORC系统,以在不同的热负荷下获得更高的效率。计算了(火用)效率和不可逆性。 (C)2017 Elsevier Ltd.保留所有权利。

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