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Journal of Synthetic Crystals ›› 2025, Vol. 54 ›› Issue (12): 2127-2135.DOI: 10.16553/j.cnki.issn1000-985x.2025.0138

• Research Articles • Previous Articles     Next Articles

Simulation Study of Low-Frequency Bandgap for Triple Helix Beam Phononic Crystal

XUE Jingyi1(), HU Qiguo1(), YAN Zhaoqiang2, LIU Ying3, ZHANG Pizhu1   

  1. 1. School of Mechatronics and Vehicle Engineering,Chongqing Jiaotong University,Chongqing 400074,China
    2. Sichuan Zhaoqiang Titanium Magnetic Technology Co. ,Ltd. ,Chengdu 611130,China
    3. Beijing Petroleum Machinery Co. ,Ltd. ,Beijing 102206,China
  • Received:2025-07-01 Online:2025-12-20 Published:2026-01-04

Abstract: To mitigate low-frequency vibrational disturbances in engineering applications, this study proposes a triple-helix beam phononic crystal configuration, comprehensive finite element analysis and equivalent modeling demonstrating its superior low-frequency vibration attenuation characteristics. The results indicate that the phononic crystal exhibits a complete bandgap in the range of 47~99 Hz. Within this bandgap, the effective mass became negative, confirming the full reflection vibration isolation mechanism. Transmission loss simulations further corroborate substantial vibration energy attenuation across the bandgap frequencies. Additionally, the phononic crystals demonstrate robust vibration isolation performance under diverse loading conditions, including distributed, concentrated, and torsional loads. The parametric optimization study reveals that precise adjustment of the helix plate thickness, groove width and cylindrical oscillator radius enabled the realization of the band structure with lower frequency and significantly greater bandwidth. This study provides valuable insights and practical engineering significance for low-frequency vibration mitigation.

Key words: phononic crystal; local resonance; low-frequency vibration reduction; bandgap characteristic; equivalent quality; transmission loss

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