PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 3, 2026Applied Sciences2 citationsOpen Access

Enhancing Wide-Band Vibration Isolation Performance of Passive Isolators via Disk-like ABH and Damping Layer

ZDZheng DaiWLWei LiuJDJingtao Du

Key Points

  • The study aims to improve low-frequency vibration isolation for marine power equipment by integrating acoustic black holes in passive isolators.
  • Developed a passive isolator combining a disk-shaped acoustic black hole and a damping layer.
  • Calculated modal participation factors using finite element modal superposition to detect low-frequency modes.
  • Created a dynamic model to analyze acoustic black hole parameters and damping layer arrangements.
  • Conducted prototype testing on an ISG vertical centrifugal pump.
  • Achieved a vibration level drop of 8.87 dB in the 10–315 Hz range.
  • Recorded a 17.52 dB reduction in the 315 Hz–10 kHz range compared to non-acoustic black hole designs.
  • Simulation-experiment errors were less than 5%.

Abstract

Low-frequency broadband vibration isolation poses a critical limitation for marine power equipment, as conventional passive isolators fail below 50 Hz. Targeting the 10–315 Hz band (dominant for marine pumps), this study proposes a passive isolator integrated with a disk-like acoustic black hole. This article aims to address the core engineering issues in the operating frequency band of marine power equipment, specifically the failure of traditional passive vibration isolators in low-frequency vibration isolation and the insufficient reliability of active/hybrid vibration isolation schemes in the marine high-salt fog environment. Meanwhile, it breaks through the theoretical bottleneck of traditional acoustic black hole (ABH) structures, which have a high cut-off frequency and a weak low-frequency vibration suppression capability. A passive vibration isolator integrating a disk-shaped ABH and a damping layer is proposed to achieve efficient low-frequency broadband vibration isolation. The modal participation factor was calculated via finite element modal superposition to identify the dominant low-frequency modes, and a high-fidelity dynamic model was established to analyze the key ABH parameters and damping layer configurations. A prototype validation was conducted on an ISG vertical centrifugal pump acceleration response. The results show that the isolator (LABH = 95 mm, huni = 10 mm, disk-shaped damping layer) achieves 8.87 dB and a higher vibration level drop of 17.52 dB in 10–315 Hz and 315 Hz–10 kHz, respectively, than non-ABH designs, with simulation–experiment errors of less than 5%. The ABH–dynamic vibration absorber synergistic mechanism overcomes the low-frequency limitation of conventional passive isolators, providing a reliable solution for marine power equipment vibration suppression.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Dai et al. (2026) studied this question.

synapsesocial.com/papers/69cf5e3d5a333a821460c821https://doi.org/10.3390/app16073389
Ask AI
Helpful
Bookmark
Share
View Full Paper