Hydraulic Modal Analysis in Theory and Practice

Author:

Mikota Gudrun1,Manhartsgruber Bernhard1,Hammerle Franz1,Brandl Andreas2

Affiliation:

1. Institute of Machine Design and Hydraulic Drives, Johannes Kepler University Linz, Altenbergerstrasse 69, Linz A-4040, Austria e-mail:

2. Institute of Technical Mechanics, Johannes Kepler University Linz, Altenbergerstrasse 69, Linz A-4040, Austria e-mail:

Abstract

Theoretical and experimental modal analyses are treated for hydraulic systems modeled by discrete capacities, inductances, resistances, and fluid lines with dynamic laminar flow. Based on an approximate multi-degrees-of-freedom description, it is shown how hydraulic natural frequencies, damping ratios, and mode shapes can be identified from measured frequency response functions between flow rate excitation and pressure response. Experiments are presented for a pipeline system that includes three side branches and an accumulator. In view of practical applications, two different types of servovalve excitation as well as impact hammer excitation are considered. Pressure is measured by 19 sensors throughout the system. Results are compared in terms of frequency response functions between 50 and 850 Hz, the first five hydraulic modes, and weighted auto modal assurance criteria of experimental mode shapes. Out of the tested excitation devices, the servovalve is clearly preferred; if valves cannot be used, the impact hammer offers a reasonable workaround. For a reduced number of five sensors, different sensor arrangements are assessed by the respective weighted auto modal assurance criteria of experimental mode shapes. A theoretical hydraulic modal model provides a similar assessment. The quality of the theoretical model is confirmed by the weighted modal assurance criterion of theoretical and experimental mode shapes from servovalve excitation.

Publisher

ASME International

Subject

Computer Science Applications,Mechanical Engineering,Instrumentation,Information Systems,Control and Systems Engineering

Reference31 articles.

1. Mikota, G., 2004, “Duality Applied to Experimental Modal Analysis,” Bath Workshop on Power Transmission and Motion Control (PTMC), Bath, UK, Sept. 1–3, pp. 111–122.

2. Modal Analysis of Hydraulic Pipelines;J. Sound Vib.,2013

3. Hametner, G., and Scheidl, R., 2003, “Duality and Its Application for the Dynamic Analysis of Hydraulic Systems,” Bath Workshop on Power Transmission and Motion Control (PTMC), Bath, UK, Sept. 10–12, pp. 65–76.

4. Augusztinovicz, F., and Sas, P., 1996, “Acoustic Modal Analysis at Low Frequencies: Similarities and Differences in Formulations,” International Conference on Noise and Vibration Engineering (ISMA21), Leuven, Belgium, Sept. 18–20, pp. 1685–1699.

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