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Theoretical and experimental investigation of acoustic field adjustment of a gas-liquid standing-wave thermoacoustic engine

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  • Luo, Jiaqi
  • Zhou, Qiang
  • Jin, Tao

Abstract

Acoustic field is a crucial aspect for designing thermoacoustic engines, especially that in the stack where thermoacoustic effect occurs. The present work analyzes the acoustic field characteristics of a gas-liquid standing-wave thermoacoustic engine, based on which the acoustic field in the stack is adjusted through suitable combination of buffer length and liquid column length. Calculation and experiments have been conducted on the system with different frequencies, working gases and charging pressures to verify the method of acoustic field adjustment. The onset and steady-state characteristics of the system with different acoustic fields in the stack are then experimentally studied. Compared with the lowest onset temperature difference up to 108 K in our previous experiments, the system can be initiated at a temperature difference of 53 K after adjusting the acoustic field in the stack, showing good applicability to recover low-grade heat. Furthermore, the acoustic field in the stack close to the pressure antinode is also found preferred to achieve large acoustic power and high efficiency. This work can be instructive for adjusting the acoustic field in the stack of gas-liquid standing-wave thermoacoustic engines.

Suggested Citation

  • Luo, Jiaqi & Zhou, Qiang & Jin, Tao, 2023. "Theoretical and experimental investigation of acoustic field adjustment of a gas-liquid standing-wave thermoacoustic engine," Energy, Elsevier, vol. 276(C).
  • Handle: RePEc:eee:energy:v:276:y:2023:i:c:s0360544223009106
    DOI: 10.1016/j.energy.2023.127516
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    References listed on IDEAS

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    1. Yang, Rui & Meir, Avishai & Ramon, Guy Z., 2020. "Theoretical performance characteristics of a travelling-wave phase-change thermoacoustic engine for low-grade heat recovery," Applied Energy, Elsevier, vol. 261(C).
    2. Forman, Clemens & Muritala, Ibrahim Kolawole & Pardemann, Robert & Meyer, Bernd, 2016. "Estimating the global waste heat potential," Renewable and Sustainable Energy Reviews, Elsevier, vol. 57(C), pages 1568-1579.
    3. Wang, Kai & Sun, Daming & Zhang, Jie & Xu, Ya & Luo, Kai & Zhang, Ning & Zou, Jiang & Qiu, Limin, 2016. "An acoustically matched traveling-wave thermoacoustic generator achieving 750 W electric power," Energy, Elsevier, vol. 103(C), pages 313-321.
    4. Woodland, Brandon J. & Ziviani, Davide & Braun, James E. & Groll, Eckhard A., 2020. "Considerations on alternative organic Rankine Cycle congurations for low-grade waste heat recovery," Energy, Elsevier, vol. 193(C).
    5. Bao, Junjiang & Zhao, Li, 2013. "A review of working fluid and expander selections for organic Rankine cycle," Renewable and Sustainable Energy Reviews, Elsevier, vol. 24(C), pages 325-342.
    6. Chen, Geng & Tang, Lihua & Mace, Brian & Yu, Zhibin, 2021. "Multi-physics coupling in thermoacoustic devices: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 146(C).
    7. Zolpakar, Nor Atiqah & Mohd-Ghazali, Normah & Hassan El-Fawal, Mawahib, 2016. "Performance analysis of the standing wave thermoacoustic refrigerator: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 54(C), pages 626-634.
    8. Wu, Zhanghua & Zhang, Limin & Dai, Wei & Luo, Ercang, 2014. "Investigation on a 1kW traveling-wave thermoacoustic electrical generator," Applied Energy, Elsevier, vol. 124(C), pages 140-147.
    9. Xu, Jingyuan & Luo, Ercang & Hochgreb, Simone, 2020. "Study on a heat-driven thermoacoustic refrigerator for low-grade heat recovery," Applied Energy, Elsevier, vol. 271(C).
    10. Jin, Tao & Huang, Jiale & Feng, Ye & Yang, Rui & Tang, Ke & Radebaugh, Ray, 2015. "Thermoacoustic prime movers and refrigerators: Thermally powered engines without moving components," Energy, Elsevier, vol. 93(P1), pages 828-853.
    11. Li, Dong-Hui & Chen, Yan-Yan & Luo, Er-Cang & Wu, Zhang-Hua, 2014. "Study of a liquid-piston traveling-wave thermoacoustic heat engine with different working gases," Energy, Elsevier, vol. 74(C), pages 158-163.
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