TY - JOUR
T1 - Acoustic analysis and optimal design of bladder attenuator array for fluid-borne noise reduction in variable pressure fluid systems
AU - Wang, Renyuan
AU - Yang, Haodong
AU - Liu, Xincai
AU - Liao, Jian
AU - Xu, Yuanzhi
AU - Jiao, Zongxia
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/11/10
Y1 - 2026/11/10
N2 - Fluid-borne noise induced by pumps’ flow ripples leads to pipe vibrations and lowers the reliability of system components in the fluid system. The bladder attenuator has been proposed to suppress flow ripples due to its advantages of the compact design and broadband frequency attenuation. However, the working pressure range of the bladder attenuator is limited, and the attenuator’s optimization with fluid system is also needed. In this paper, the acoustic model of bladder attenuator considering the wave propagation is firstly proposed. And an attenuator array with different charge pressures is proposed to cover a wider pressure range for variable pressure systems. Since the charge pressure affects the attenuation performance and working pressure range, it is difficult to achieve the best performance manually. To address this, an optimization method for the attenuator array is proposed. Three experiments: frequency sweep test, typical working status test, and varying pressure test are carried out to validate the acoustic model and the optimization method. The frequency sweep test validates the accuracy of the acoustic model for a single attenuator and an attenuator array. The typical working status test obtains optimal charge pressures for the attenuator array. In the varying pressure test, the attenuator array achieves the average reduction ratio of 75.4 % at 100 Hz, 84.4 % at 300 Hz, and 91.9 % at 500 Hz, indicating the effectiveness of the optimization method.
AB - Fluid-borne noise induced by pumps’ flow ripples leads to pipe vibrations and lowers the reliability of system components in the fluid system. The bladder attenuator has been proposed to suppress flow ripples due to its advantages of the compact design and broadband frequency attenuation. However, the working pressure range of the bladder attenuator is limited, and the attenuator’s optimization with fluid system is also needed. In this paper, the acoustic model of bladder attenuator considering the wave propagation is firstly proposed. And an attenuator array with different charge pressures is proposed to cover a wider pressure range for variable pressure systems. Since the charge pressure affects the attenuation performance and working pressure range, it is difficult to achieve the best performance manually. To address this, an optimization method for the attenuator array is proposed. Three experiments: frequency sweep test, typical working status test, and varying pressure test are carried out to validate the acoustic model and the optimization method. The frequency sweep test validates the accuracy of the acoustic model for a single attenuator and an attenuator array. The typical working status test obtains optimal charge pressures for the attenuator array. In the varying pressure test, the attenuator array achieves the average reduction ratio of 75.4 % at 100 Hz, 84.4 % at 300 Hz, and 91.9 % at 500 Hz, indicating the effectiveness of the optimization method.
KW - Acoustic model
KW - Bladder type attenuator
KW - Flow ripple
KW - Optimization method
KW - Variable operating pressures
UR - https://www.scopus.com/pages/publications/105042407696
U2 - 10.1016/j.jsv.2026.119911
DO - 10.1016/j.jsv.2026.119911
M3 - 文章
AN - SCOPUS:105042407696
SN - 0022-460X
VL - 642
JO - Journal of Sound and Vibration
JF - Journal of Sound and Vibration
M1 - 119911
ER -