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System simulation and exergetic evaluation of hybrid propulsion system for crude oil tanker: A hybrid of solid-oxide fuel cell and gas engine

机译:原油油轮混合动力推进系统的系统仿真与促进评价:固体氧化物燃料电池和燃气发动机的杂种

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摘要

This study investigates a hybrid electrical propulsion system of gas engines and a solid-oxide fuel cell (SOFC), quantifying the CO2 emission and proposing a way to further reduce CO2 emissions. The indirect-coupling and direct-coupling configurations are proposed and analyzed from the perspectives of energy and exergy. In the indirect-coupling configuration, the engine and fuel cell system are only integrated electrically without the transfer of any heat or material stream. In the direct-coupling configuration, the unused remaining fuel, which is released from the fuel cell, is transported to the gas engine, and the unused surplus steam, which is produced from the engine exhaust, is provided with the reforming section of the fuel cell system. An Aframax-class crude oil tanker is selected as an application; detailed information of its operational mode is used to quantify the CO2 emission of crude oil delivery. Results reveal that the indirect-coupling hybrid system reduces CO2 emission by a maximum of 9% when a 5-MW SOFC system is integrated with 4.7-MW gas engines. For the direct-coupling configuration, a further reduction of 16% in CO2 emission is achieved. Results of the exergy analysis show that the gas engines and SOFC are the primary contributors to the exergy destruction, and contribute to thermodynamic inefficiencies. By implementing the direct-coupling configuration, the exergy destruction of the overall system can be reduced by 32% by utilizing the unused fuel and steam in a more effective way.
机译:本研究研究了燃气发动机的混合电力推进系统和固体氧化物燃料电池(SOFC),量化CO2排放并提出进一步减少二氧化碳排放的方法。从能量和暴露的角度提出并分析了间接耦合和直接耦合配置。在间接耦合配置中,发动机和燃料电池系统仅在不转移任何热或材料流的情况下电气集成。在直接耦合配置中,从燃料电池释放的未使用的剩余燃料被输送到气体发动机,并且由发动机排气产生的未使用的剩余蒸汽具有燃料的重整部分。细胞系统。选择Aframax级原油油轮作为应用;其操作模式的详细信息用于量化原油输送的二氧化碳排放。结果表明,当5MW SOFC系统与4.7mW的燃气发动机集成时,间接耦合混合动力系统最多可将CO2发射减少了9%。对于直接耦合配置,实现了CO 2排放中的进一步减少了16%。 Deergy分析的结果表明,燃气发动机和SOFC是对漏洞破坏的主要贡献者,并有助于热力学效率低下。通过实施直接耦合配置,通过利用未使用的燃料和蒸汽以更有效的方式利用未使用的燃料和蒸汽,可以减少32%的漏洞破坏。

著录项

  • 来源
    《Energy Conversion & Management》 |2020年第11期|113265.1-113265.11|共11页
  • 作者单位

    Korea Inst Machinery & Mat KIMM 156 Gajeongbuk Ro Daejeon 34103 South Korea|Univ Sci & Technol UST KIMM Campus 156 Gajeongbuk Ro Daejeon 34103 South Korea;

    Korea Inst Machinery & Mat KIMM 156 Gajeongbuk Ro Daejeon 34103 South Korea|Univ Sci & Technol UST KIMM Campus 156 Gajeongbuk Ro Daejeon 34103 South Korea;

    Korea Inst Machinery & Mat KIMM 156 Gajeongbuk Ro Daejeon 34103 South Korea;

    Korea Inst Machinery & Mat KIMM 156 Gajeongbuk Ro Daejeon 34103 South Korea|Univ Sci & Technol UST KIMM Campus 156 Gajeongbuk Ro Daejeon 34103 South Korea;

    Korea Shipbldg & Offshore Engn KSOE 75 Yulgok Ro Seoul 03058 South Korea;

    Korea Shipbldg & Offshore Engn KSOE 75 Yulgok Ro Seoul 03058 South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    CO2 emission; Marine propulsion system; Solid-oxide fuel cell (SOFC); Hybrid system; SOFC-engine hybrid; Optimization;

    机译:二氧化碳排放;海洋推进系统;固体氧化物燃料电池(SOFC);混合系统;SOFC发动机杂交;优化;

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