Numerical investigation of displacer pulse tube refrigerators based on thermoacoustic theory

The displacer pulse tube refrigerator (DPTR) is a work-recovery pulse tube refrigerator, which provides phase shifting and also enables the recovery and reuse of acoustic power that would otherwise be dissipated. The strong coupling among displacer parameters complicates practical design, while a systematic framework for comprehensively characterizing their coupled effects is still lacking. This study developed a unified thermoacoustic numerical model that enables systematic investigation of the DPTR operating mechanism and performance under different displacer configurations, operating conditions, and system control strategies. For the passive system, when the rod diameter ratio is fixed, the displacer with lower mass combined with a spring of low stiffness can satisfy the miniaturization requirement of the DPTR without compromising cooling performance. Introducing an appropriate active motor force can improve the cooling performance of the passive system, but the motor force amplitude and phase required to enhance cooling power are generally different from those required to improve power recovery efficiency. Under the given operating parameters, the maximum achievable cooling power of the system is nearly independent of the rod diameter ratio. However, increasing the rod diameter ratio leads to a pronounced decline in the achievable power recovery efficiency. Therefore, prioritizing cooling power enhancement at low rod diameter ratios and power recovery efficiency improvement at high rod diameter ratios can provide greater performance gains. The proposed model and the resulting findings provide an effective approach and theoretical guidance for the rapid design and optimization of the DPTR.

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Publication Details

Journal
International Journal of Refrigeration
Published
2026-09-12
DOI
https://doi.org/10.1016/j.ijrefrig.2026.107121
Primary Topic
Advanced Thermodynamic Systems and Engines
Type
article
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Numerical investigation of displacer pulse tube refrigerators based on thermoacoustic theory

Wei Shao, Chen Zheng, Longyu Yang, Yu Yan et al.
International Journal of Refrigeration
Advanced Thermodynamic Systems and Engines
article

Numerical investigation of displacer pulse tube refrigerators based on thermoacoustic theory

Wei Shao, Chen Zheng, Longyu Yang, Yu Yan, Zheng Cui, Qun Cao
article en

Abstract

The displacer pulse tube refrigerator (DPTR) is a work-recovery pulse tube refrigerator, which provides phase shifting and also enables the recovery and reuse of acoustic power that would otherwise be dissipated. The strong coupling among displacer parameters complicates practical design, while a systematic framework for comprehensively characterizing their coupled effects is still lacking. This study developed a unified thermoacoustic numerical model that enables systematic investigation of the DPTR operating mechanism and performance under different displacer configurations, operating conditions, and system control strategies. For the passive system, when the rod diameter ratio is fixed, the displacer with lower mass combined with a spring of low stiffness can satisfy the miniaturization requirement of the DPTR without compromising cooling performance. Introducing an appropriate active motor force can improve the cooling performance of the passive system, but the motor force amplitude and phase required to enhance cooling power are generally different from those required to improve power recovery efficiency. Under the given operating parameters, the maximum achievable cooling power of the system is nearly independent of the rod diameter ratio. However, increasing the rod diameter ratio leads to a pronounced decline in the achievable power recovery efficiency. Therefore, prioritizing cooling power enhancement at low rod diameter ratios and power recovery efficiency improvement at high rod diameter ratios can provide greater performance gains. The proposed model and the resulting findings provide an effective approach and theoretical guidance for the rapid design and optimization of the DPTR.

International Journal of RefrigerationVol. 192
Shandong University (CN), Shandong Academy of Sciences (CN), Shandong Institute of Advanced Technology
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Thermodynamic Systems and Engines
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