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Effect of enhanced heat transfer structures on the chemical recuperation process of advanced aero-engine

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Listed:
  • Li, Xin
  • Zhang, Silong
  • Ye, Mai
  • Qin, Jiang
  • Bao, Wen
  • Cui, Naigang
  • Liu, Xiaoyong
  • Zhou, Chaoying

Abstract

Regenerative cooling process of advanced aero-engine with endothermic hydrocarbon fuel is a typical chemical recuperation process that always happens in heated cooling channels with severe thermal stratification. In order to study the effect of enhanced heat transfer structures on the heat sink utilization and non-uniform chemical recuperation process, numerical models of cracking hydrocarbon fuel flow in the cooling channel with the micro-rib and dimple embedded in one-step reaction model were built and validated. The results indicate that the dimple and micro-rib could enhance heat transfer but bring drawbacks to the chemical recuperation process especially under higher heat flux due to the nonlinearity of thermal cracking reaction, which mainly happens in the thermal boundary layer and velocity boundary layer. And the micro-rib will cause larger disturbance than dimple because it gives global enhancement on flow mixing between the mainstream and flow near the wall. Besides, increasing micro-rib height and decreasing its width could not change the situation but make it worse although the nonuniformity of heat absorption is remarkably alleviated. Compared with the single micro-rib unit, the periodic micro-rib array has a significantly continuous influence on heat transfer and heat absorption in the chemical recuperation process of cracking hydrocarbon fuel.

Suggested Citation

  • Li, Xin & Zhang, Silong & Ye, Mai & Qin, Jiang & Bao, Wen & Cui, Naigang & Liu, Xiaoyong & Zhou, Chaoying, 2020. "Effect of enhanced heat transfer structures on the chemical recuperation process of advanced aero-engine," Energy, Elsevier, vol. 211(C).
  • Handle: RePEc:eee:energy:v:211:y:2020:i:c:s0360544220316881
    DOI: 10.1016/j.energy.2020.118580
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    References listed on IDEAS

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    1. Zhang, Silong & Cui, Naigang & Xiong, Yuefei & Feng, Yu & Qin, Jiang & Bao, Wen, 2017. "Effect of channel aspect ratio on chemical recuperation process in advanced aeroengines," Energy, Elsevier, vol. 123(C), pages 9-19.
    2. Jiang, Yuguang & Xu, Yaxing & Zhang, Silong & Chetehouna, Khaled & Gascoin, Nicolas & Qin, Jiang & Bao, Wen, 2017. "Parametric study on the distribution of flow rate and heat sink utilization in cooling channels of advanced aero-engines," Energy, Elsevier, vol. 138(C), pages 1056-1068.
    3. Qin, Jiang & Zhang, Silong & Bao, Wen & Zhou, Weixing & Yu, Daren, 2013. "Thermal management method of fuel in advanced aeroengines," Energy, Elsevier, vol. 49(C), pages 459-468.
    4. Gaber, Christian & Demuth, Martin & Prieler, René & Schluckner, Christoph & Hochenauer, Christoph, 2018. "An experimental study of a thermochemical regeneration waste heat recovery process using a reformer unit," Energy, Elsevier, vol. 155(C), pages 381-391.
    5. Bao, Wen & Zhang, Silong & Qin, Jiang & Zhou, Weixing & Xie, Kaili, 2014. "Numerical analysis of flowing cracked hydrocarbon fuel inside cooling channels in view of thermal management," Energy, Elsevier, vol. 67(C), pages 149-161.
    6. Qin, Jiang & Cheng, Kunlin & Zhang, Silong & Zhang, Duo & Bao, Wen & Han, Jiecai, 2016. "Analysis of energy cascade utilization in a chemically recuperated scramjet with indirect combustion," Energy, Elsevier, vol. 114(C), pages 1100-1106.
    7. Zhang, Silong & Qin, Jiang & Bao, Wen & Feng, Yu & Xie, Kaili, 2014. "Thermal management of fuel in advanced aeroengine in view of chemical recuperation," Energy, Elsevier, vol. 77(C), pages 201-211.
    8. Ni, Mingjiang & Yang, Tianfeng & Xiao, Gang & Ni, Dong & Zhou, Xin & Liu, Huanlei & Sultan, Umair & Chen, Jinli & Luo, Zhongyang & Cen, Kefa, 2017. "Thermodynamic analysis of a gas turbine cycle combined with fuel reforming for solar thermal power generation," Energy, Elsevier, vol. 137(C), pages 20-30.
    9. Zeng, Meirong & Yuan, Wenhao & Li, Wei & Zhang, Yan & Wang, Yizun, 2018. "Investigation of n-dodecane pyrolysis at various pressures and the development of a comprehensive combustion model," Energy, Elsevier, vol. 155(C), pages 152-161.
    10. Bai, Zhang & Liu, Taixiu & Liu, Qibin & Lei, Jing & Gong, Liang & Jin, Hongguang, 2018. "Performance investigation of a new cooling, heating and power system with methanol decomposition based chemical recuperation process," Applied Energy, Elsevier, vol. 229(C), pages 1152-1163.
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    Cited by:

    1. Liu, Penghua & Wang, Renting & Liu, Shaobei & Bao, Zewei, 2023. "Experimental study on the thermal-hydraulic performance of a tube-in-tube helical coil air–fuel heat exchanger for an aero-engine," Energy, Elsevier, vol. 267(C).
    2. Tian, Ke & Tang, Zicheng & Wang, Jin & Ma, Ting & Zeng, Min & Wang, Qiuwang, 2022. "Numerical investigation of pyrolysis and surface coking of hydrocarbon fuel in the regenerative cooling channel," Energy, Elsevier, vol. 260(C).

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