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首页> 外文期刊>Energy >Thermodynamic analysis of a dual loop heat recovery system with trilateral cycle applied to exhaust gases of internal combustion engine for propulsion of the 6800 TEU container ship
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Thermodynamic analysis of a dual loop heat recovery system with trilateral cycle applied to exhaust gases of internal combustion engine for propulsion of the 6800 TEU container ship

机译:三边循环双循环热回收系统应用于内燃机废气以推进6800 TEU集装箱船的热力学分析

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摘要

A dual loop waste heat recovery power generation system that comprises an upper trilateral cycle and a lower organic Ranktne cycle, in which discharged exhaust gas heat is recovered and re-used for propulsion power, was theoretically applied to an internal combustion engine for propulsion in a 6800 TEU container ship. The thermodynamic properties of this exhaust gas heat recovery system, which vary depending on the boundary temperature between the upper and lower cycles, were also investigated. The results confirmed that this dual loop exhaust gas heat recovery power generation system exhibited a maximum net output of 2069.8 kW, and a maximum system efficiency of 10.93% according to the first law of thermodynamics and a maximum system exergy efficiency of 58.77% according to the second law of thermodynamics. In this case, the energy and exergy efficiencies of the dual loop system were larger than those of the single loop trilateral cycle. Further, in the upper trilateral cycle, the volumetric expansion ratio of the turbine could be considerably reduced to an adequate level to be employed in the practical system. When this dual loop exhaust gas heat recovery power generation system was applied to the main engine of the container ship, which was actually in operation, a 2.824% improvement in propulsion efficiency was confirmed in comparison to the case of a base engine. This improvement in propulsion efficiency resulted in about 6.06% reduction in the specific fuel oil consumption and specific CO_2 emissions of the main engine during actual operation.
机译:从理论上讲,包括上三边循环和下有机兰肯循环的双回路余热回收发电系统,其中排出的废气热量被回收并重新用于推进动力,已被应用于内燃机中。 6800 TEU集装箱船。还研究了该废气热回收系统的热力学性质,该热力学性质根据上下循环之间的边界温度而变化。结果证实,根据热力学第一定律,该双回路废气热回收发电系统的最大净输出为2069.8 kW,最大系统效率为10.93%,而根据热力学第一定律,最大系统火用效率为58.77%。热力学第二定律。在这种情况下,双回路系统的能量和火用效率大于单回路三边循环的能量和火用效率。此外,在上三边循环中,涡轮机的体积膨胀率可被显着减小到足够在实际系统中采用的水平。当该双回路废气热回收发电系统应用于实际运行的集装箱船的主机时,与基础发动机相比,推进效率提高了2.824%。推进效率的这种提高导致在实际运行期间主机的比燃油消耗和比CO_2排放降低了约6.06%。

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