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Article

Research on Inertial Force Balance and Optimization of V-Type High-Pressure Air Compressors for Ships

1
School of Marine Science and Technology, Northwestern Polytechnical University, Xi’an 710072, China
2
Hengyuan Technology Co., Ltd., China State Shipbuilding Corporation, Wanzhou, Chongqing 404100, China
3
School of Energy and Power Engineering, Xi’an Jiaotong University, Xi’an 710049, China
*
Author to whom correspondence should be addressed.
Machines 2026, 14(4), 436; https://doi.org/10.3390/machines14040436
Submission received: 18 March 2026 / Revised: 9 April 2026 / Accepted: 10 April 2026 / Published: 14 April 2026
(This article belongs to the Special Issue High-Performance Compressor Design, Model Analysis and Application)

Abstract

To address the vibration and noise issues induced by inertial forces in marine V-type air compressors during operation, this study systematically investigates inertial force balancing and optimization. Based on dynamic analysis, analytical expressions for the first- and second-order reciprocating inertial forces and the rotating inertial force under unbalanced conditions are precisely derived. Considering the characteristics of a V-type air compressor with a V-angle of γ = 60°, the synthesis model of the first-order reciprocating inertial force is modified. The positive–negative rotating wheel system method is employed for preliminary balancing design, and the rigid–flexible coupling dynamics theory is innovatively introduced to construct a high-precision multi-body dynamics model that accounts for the flexible deformation of the crankshaft and connecting rod. Through joint simulation using ANSYS(2024R1) and Adams(2024.2), the dynamic responses of the pure rigid-body model and the rigid–flexible coupling model are compared to determine the optimal balancing configuration. The Adams/Insight module is utilized to perform multi-objective optimization of the balance iron mass. Results indicate that the rigid–flexible coupling model more accurately reflects the dynamic characteristics of the air compressor compared to the pure rigid-body model, significantly enhancing simulation accuracy. The optimized balance iron configuration effectively suppresses system vibration, with the peak X-direction bearing reaction force decreasing from 3750 N to 3610 N (a reduction of 3.7%), the vibration intensity reducing by 45.3%, and the radiated noise sound power level decreasing by 7.45%. This study provides a systematic theoretical approach and technical pathway for vibration and noise reduction, as well as for structural reliability design of marine air compressors.
Keywords: marine V-type air compressor; inertial force balancing; gear train design with opposing directions; rigid–flexible coupled kinetics; multi-objective optimization; vibration control marine V-type air compressor; inertial force balancing; gear train design with opposing directions; rigid–flexible coupled kinetics; multi-objective optimization; vibration control

Share and Cite

MDPI and ACS Style

Feng, J.; Zou, H.; Liu, J.; Jia, X. Research on Inertial Force Balance and Optimization of V-Type High-Pressure Air Compressors for Ships. Machines 2026, 14, 436. https://doi.org/10.3390/machines14040436

AMA Style

Feng J, Zou H, Liu J, Jia X. Research on Inertial Force Balance and Optimization of V-Type High-Pressure Air Compressors for Ships. Machines. 2026; 14(4):436. https://doi.org/10.3390/machines14040436

Chicago/Turabian Style

Feng, Jun, Huiqing Zou, Jing Liu, and Xiaohan Jia. 2026. "Research on Inertial Force Balance and Optimization of V-Type High-Pressure Air Compressors for Ships" Machines 14, no. 4: 436. https://doi.org/10.3390/machines14040436

APA Style

Feng, J., Zou, H., Liu, J., & Jia, X. (2026). Research on Inertial Force Balance and Optimization of V-Type High-Pressure Air Compressors for Ships. Machines, 14(4), 436. https://doi.org/10.3390/machines14040436

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