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Performance analysis on novel thermodynamic cycle under the guidance of 3D construction method

Author

Listed:
  • Xu, Weicong
  • Deng, Shuai
  • Zhao, Li
  • Zhang, Yue
  • Li, Shuangjun

Abstract

The efficiency improvement of organic Rankine cycle, which is an efficient way to recover the waste heat of internal combustion engines, is an eternal topic. The 3D construction method of thermodynamic cycle provides a possible way to construct efficient thermodynamic cycles based on zeotropic working fluid, whose core is to improve the thermodynamic performance by using different working fluids in different thermodynamic processes. Based on the 3D construction method of thermodynamic cycle, a composition adjustment organic Rankine cycle was proposed in this paper to recover the waste heat of internal combustion engines. The optimum working fluid used in trunk and branch processes were selected according to the requirements of different thermodynamic processes. The effects of key parameters were analyzed, and the optimized operation conditions and optimal performance were obtained. The results shown that the composition adjustment organic Rankine cycle performs best when using R123/toluene (0.9/0.1) in trunk process and R123/toluene (0.96/0.04), R123/toluene (0.66/0.34) in low-pressure and high-pressure branch processes, respectively. Under the optimal condition, the net output power, thermal efficiency and exergy efficiency are 50.07 kW, 10.96% and 45.79%, respectively. The irreversible losses in evaporator I and evaporator II account for 35.01% and 30.54% of the total irreversible losses in composition adjustment organic Rankine cycle respectively. This work provided an advanced power cycle for the waste heat recovery of internal combustion engines. What’s more, composition adjustment organic Rankine cycle proves the feasibility of the 3D construction method and opens up a novel way to construct efficient thermodynamic cycles.

Suggested Citation

  • Xu, Weicong & Deng, Shuai & Zhao, Li & Zhang, Yue & Li, Shuangjun, 2019. "Performance analysis on novel thermodynamic cycle under the guidance of 3D construction method," Applied Energy, Elsevier, vol. 250(C), pages 478-492.
  • Handle: RePEc:eee:appene:v:250:y:2019:i:c:p:478-492
    DOI: 10.1016/j.apenergy.2019.05.081
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    References listed on IDEAS

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    4. Wang, Enhua & Zhang, Mengru & Meng, Fanxiao & Zhang, Hongguang, 2022. "Zeotropic working fluid selection for an organic Rankine cycle bottoming with a marine engine," Energy, Elsevier, vol. 243(C).
    5. Lai, Xi & Zhao, Li & Nie, Xianhua & Zhang, Yue & Zhang, Qi, 2023. "Hydrate-based composition separation of R32/R1234yf mixed working fluids applied in composition-adjustable organic Rankine cycle," Energy, Elsevier, vol. 284(C).
    6. Sun, Xiaocun & Shi, Lingfeng & Tian, Hua & Wang, Xuan & Zhang, Yonghao & Yao, Yu & Sun, Rui & Shu, Gequn, 2022. "Analysis of an ideal composition tunable combined cooling and power cycle with CO2-based mixture," Energy, Elsevier, vol. 255(C).
    7. Xu, Weicong & Zhao, Li & Mao, Samuel S. & Deng, Shuai, 2020. "Towards novel low temperature thermodynamic cycle: A critical review originated from organic Rankine cycle," Applied Energy, Elsevier, vol. 270(C).
    8. Chen, Ruihua & Deng, Shuai & Zhao, Li & Zhao, Ruikai & Xu, Weicong, 2022. "Energy recovery from wastewater in deep-sea mining: Feasibility study on an energy supply solution with cold wastewater," Applied Energy, Elsevier, vol. 305(C).
    9. Lin, Shan & Zhao, Li & Deng, Shuai & Zhao, Dongpeng & Wang, Wei & Chen, Mengchao, 2020. "Intelligent collaborative attainment of structure configuration and fluid selection for the Organic Rankine cycle," Applied Energy, Elsevier, vol. 264(C).
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