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Technical Paper

Reduction of Groan and Grind Noise in Brake Systems

2011-09-18
2011-01-2364
Low frequency brake system noise has been a systemic and ongoing issue for several automakers. The noise is a combined effect of brake and suspension systems working with each other. The noise transmission path is also important. The latest warranty and quality indicators on this has resulted in high degree of dissatisfaction for several vehicles. The customer complaints have been for grind noise, grunt and groan. The team focused on a multi-level integrated approach for this problem. The first step was deep diving and dissecting the customer complaint data. The low frequency noise for grind and groan can be reduced to several contributors. One of the main issues was the movement of pads over the rotor fins resulting in dynamic groan type of noise. It was important to relate this to the customer complaint for grind. In association with that, the grind noise was also caused by in-stop grunt type of noise.
Technical Paper

A Systems Approach to Eliminating Squeal in a Drum Brake

2008-10-12
2008-01-2531
The traditional analysis of squeal noise for drum brakes is done in a separate approach, with CAE and laboratory/experimental techniques done independently or in a non-iterative sequential manner. In this paper, an innovative approach of directing the frequency response testing based on CAE is used and the overall process is embedded in a system approach. The drum brake design was changed to accomplish higher loads in a car. The initial results of the tests came out noise during the vehicle test. After retrieving the noisy parts from the vehicle, it was tested for frequency response, but in a directional manner suggested by the CAE model. This new approach hasn't been done before in industry practice. The CAE identified that two modes (around the noise frequency) swapped their orders compared to the old design and suggested design changes. The new design was evaluated with a mocked up prototype. This was followed by getting cast parts and testing them for frequency response.
Technical Paper

Modified Crack Closure Based Evaluation of Stress Intensity Factor in Symmetric Multi-Zone Curved Galerkin Boundary Element

2008-04-14
2008-01-0244
The Boundary Element method (BEM) is a well established numerical tool for computation of stress intensity factors (SIFs) with a good degree of accuracy. The displacement based boundary element methods have been used with success for determination of SIF's. Another important method for determining SIF is based on a crack closure technique(CCI). This technique has been used by several investigators to determine the SIF by Finite Element techniques. There have been some recent efforts to analyze SIF's in Boundary element technique by this method. However, the boundary element techniques that were used are based on the traditional collocation based approach. In this work the symmetric Galerkin multi-zone boundary element approach is extended to be used along with a modified crack-closure integral based approach for stress-intensity factor calculations.
Technical Paper

Eliminating Drum Brake Squeal by a Damped Iron Drum Assembly

2007-04-16
2007-01-0592
Control of drum brake squeal is difficult to accomplish. After many trials guided by CAE and previous experience, for a passenger car it was felt that changing the metallurgical characteristics of the drum would lead to improved noise performance. The chemistry of the drum casting material was altered. The carbon equivalent was modified by increasing carbon and silicon content of the castings as well as changing the other materials. The integral hub and drum assembly was tested on two different dynamometers. The results were also verified by finite element complex eigenvalue analysis. Finally the solution was validated through vehicle level testing - Los Angeles City Traffic (LACT). For the structural consideration rotary fatigue was evaluated by CAE comparison followed by test rig confirmation. The higher carbon equivalent material drums successfully eliminated the annoying squeal in customer vehicles.
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