This content is not included in
your SAE MOBILUS subscription, or you are not logged in.
Experimental Investigation of Low-Frequency Vibration Patterns in Automotive Disk Brake Systems: Utilization Study for Modal Simulation Methods
Technical Paper
2018-01-1513
ISSN: 0148-7191, e-ISSN: 2688-3627
This content contains downloadable datasets
Annotation ability available
Sector:
Language:
English
Abstract
Increasing demands on automotive comfort as well as diminishing vehicle noise levels draw new attention towards low-frequency vibration and noise issues of disk brake systems such as creep groan and moan. In view of this problem, the experimental investigation of relevant phenomena is within the scope of this article. The related experiments concerning two different setups have been performed at a drum driven suspension and brake test rig. Both assemblies consisted of a front axle corner including all parts of the integrated brake system. In order to gain understanding of characteristic triggering mechanisms and fundamental subsystem interactions, and moreover, to verify the suitability of modal methods for simulative evaluations of creep groan or moan, specifically elaborated Operating Deflection Shape (ODS) techniques have been applied. Via analyses of four different creep groan emergences, global stick-slip cycles between disk and pads are revealed. For two dissimilar vibrations in the typical frequency range of moan, mechanisms rather associated with dynamic instabilities are identified. Based on measurement results and further theoretical considerations, the suitability of a disk brake Complex Eigenvalue Analysis (CEA), which is a linear modal simulation method designated to efficiently evaluate disk brake squeal noise, is verified with respect to the relevant friction-induced low-frequency phenomena. Even though the disk brake CEA is inappropriate to estimate a highly non-linear behavior such as involved in all four creep groan signatures, its application for accompanying damped natural oscillations as well as for both observed moan appearances is plausible. By investigation of characteristic pad vibration patterns and speeds belonging to the disk rotation, generic parameter spaces for the utilization of modal methods on harmonic low-frequency phenomena are deduced.
Recommended Content
Technical Paper | Considering the Dynamic Pad Stiffness in FEM Analysis of Disk Brake Squeal |
Technical Paper | Experimental and Numerical Modelling of Friction Induced Noise in Disc Brakes |
Authors
Citation
Pürscher, M., Huemer-Kals, S., and Fischer, P., "Experimental Investigation of Low-Frequency Vibration Patterns in Automotive Disk Brake Systems: Utilization Study for Modal Simulation Methods," SAE Technical Paper 2018-01-1513, 2018, https://doi.org/10.4271/2018-01-1513.Data Sets - Support Documents
Title | Description | Download |
---|---|---|
Unnamed Dataset 1 | ||
Unnamed Dataset 2 |
Also In
References
- Huemer-Kals , S. , Pürscher , M. , and Fischer , P. Application Limits of the Complex Eigenvalue Analysis for Low-Frequency Vibrations of Disk Brake Systems SAE Technical Paper 2017-01-2494 2017 10.4271/2017-01-2494
- Wallner , D. Experimental and Numerical Investigations on Brake Squeal Graz Verl. der Techn. Univ. Graz 2013 978-3-85125-269-9
- Shivaswamy , A. , Nunes , R. , and Könning , M. A Time Domain Approach towards Analysing Creep Groan Noise in Automobile Brakes EuroBrake 2016 Milano, Italy 2016
- Fransson , N. 2016
- Brecht , J. , Hoffrichter , W. , and Dohle , A. Mechanisms of Brake Creep Groan SAE Technical Paper 973026 1997 10.4271/973026
- Gauterin , F. , Grochowicz , J. , Haverkamp , M. , Marschner , H. et al. Bremsenknarzen: Phänomenologie und Abhilfe Automobiltechnische Zeitschrift 106 7-8 652 659 2004
- Marschner , H. , Leibolt , P. , Pfaff , A. , and Morschel , C. Investigation of the Interaction Mechanisms of Friction Excited Stick-Slip-Vibrations for the Example of Brake Groaning and analogue Vibration Phenomena XXXV International μ Symposium Brake Conference Breuer B. Düsseldorf VDI Verlag GmbH 2016 206 224 978-3-18-380012-4
- Woo , J. , Kim , J. , Kim , K. , and Ko , D. A Study on the Transfer Path Analysis of Brake Creep Groan Noise SAE Technical Paper 2014-01-2510 2014 10.4271/2014-01-2510
- Yoon , K. , Lee , J. , and Cho , S. The Study of Vehicle Structural Characteristics for Creep Groan Noise SAE Technical Paper 2011-01-2363 2011 10.4271/2011-01-2363
- Jung , T. and Chung , S. Research for Brake Creep Groan Noise with Dynamometer SAE Int. J. Passeng. Cars - Mech. Syst. 5 4 1224 1229 2012 10.4271/2012-01-1824
- Kim , Y. , Jeong , U. , Kim , J. , Park , T. et al. Identification of Moan-Noise Generation Mechanisms by an Experimental Method and Verification of the Mechanism by Finite Element Analysis Proc. Inst. Mech. Eng. Pt. D: J. Automobile Eng. 229 10 1392 1405 2015 10.1177/0954407014562618
- Müller , D. , Wallner , D. , Carvajal , S. , and Gauterin , F. Simulation der Frequenzantwort des Rad-Bremse Verbundes auf gemessene Anregungssignale SIMVEC 2016 Baden-Baden, Germany 2016
- Bauer , J. , Körner , M. , and Pfaff , A. Moan Noise - The Phenomenon and Solution Approaches EuroBrake 2017 Dresden, Germany 2017
- Nishiwaki , M. and Langthjem , M. A Study on Brake Noise of Low-Frequency Disk Brake Squeal and Moan Noise EuroBrake 2012 Dresden, Germany 2012
- Gräbner , N. 2016 10.14279/depositonce-5577
- Carvajal , S. , Wallner , D. , Helfrich , R. , and Klein , M. Excellent Brake NVH Comfort by Simulation - Use of Optimization Methods to Reduce Squeal Noise SAE Technical Paper 2016-01-1779 2016 10.4271/2016-01-1779
- Pürscher , M. and Fischer , P. Systematic Experimental Creep Groan Characterization Using a Suspension and Brake Test Rig SAE Technical Paper 2017-01-2488 2017 10.4271/2017-01-2488