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Technical Paper

Vibration Reduction in Diesel Fuel System Using 1D Simulation

2012-09-24
2012-01-1971
Good performance of fuel system is critical for fuel efficiency, combustion process, emissions, start ability, acceleration and combustion noise. The fuel system design is a complicated process. Simulation tools are playing an important role in virtual design. They are used to evaluate performance, optimize the design, and provide understanding for performance or durability related problem. This paper illustrates how a 1D system simulation tool is utilized to investigate an observed failure of a high pressure hose. The simulation identifies the dominant modes in the fuel system and determines the engine speed at which the fuel system mode is excited. At various engine speeds, the simulation investigates the magnitude of pressure pulsation in the high pressure hose of the fuel system. Finally, the 1D simulation provides the design optimization approach to suppress the oil pressure pulsation and reduce the structure vibration.
Journal Article

Application of Inverse Boundary Element Method for Far Field Sound Pressure Prediction of a Diesel Engine

2010-10-05
2010-01-1984
This paper presents an approach to predict the far field sound pressure for a diesel engine using the inverse boundary element method. In this approach, near field sound pressure is measured first. The particle velocity is then reconstructed to a virtual plane instead of the actual vibrating surfaces and the far field sound pressure can be predicted using the reconstructed particle velocity of the virtual plane. Two sets of inverse sound pressure are employed to validate the approach. One is from the finite element and boundary element methods. The other is from the sound pressure measurement of a diesel engine in a hemi-anechoic chamber. Good correlations between the predicted and the measured sound pressure demonstrate that the method can be used to accurately predict the far field sound pressure.
Technical Paper

Using Boundary Element Analysis to Analyze Multi-Component Exhaust Systems

2007-05-15
2007-01-2182
A process for predicting the transmission and insertion losses of multi-component exhaust systems is detailed in this paper. A two-tiered process incorporating boundary element analysis to evaluate multi-component systems is implemented. At the component level, the boundary element method is used to predict the transfer matrix for larger components where plane wave behavior is not expected within the component. The transfer matrix approach is then used to predict insertion loss for built-up systems with interconnecting duct or pipe work. This approach assumes plane wave behavior at the inlet and outlet of each component so it is limited to the low frequency regime. Results are compared with experimental results for HVAC systems.
Technical Paper

Identification of AeroAcoustic Noise Sources Using Inverse Boundary Element Method

2005-05-16
2005-01-2497
This paper explores the use of inverse boundary element method to identify aeroacoustic noise sources. In the proposed approach, sound pressure at a few locations out of the flow field is measured, followed by the reconstruction of acoustic particle velocity on the surface where the noise is generated. Using this reconstructed acoustic particle velocity, the acoustic response anywhere in the field, including in the flow field, can be predicted. This approach is advantageous since only a small number of measurement points are needed and can be done outside of the flow field, and a relatively fast computational time. As an example, a prediction of vortex shedding noise from a circular cylinder is presented.
Technical Paper

Prediction of Sound-Absorbing Performance of Micro-Perforated Panels Using the Transfer Matrix Method

2005-05-16
2005-01-2282
Micro-perforated panels have tiny pores which attenuate sound based on the Helmholtz resonance principle. That being the case, an appropriate cavity depth should be chosen to fully capitalize on the attenuation potential of the panel. Generally, the panel's sound absorbing performance can be predicted by Maa's theory given information about the panel and the cavity depth. However, in some cases, one cannot use the theory to predict the panel's performance precisely, especially when the micro-perforate has varying diameters and/or irregular hole shapes. In these cases, the sound-absorbing performance of the micro-perforate is different from that of a uniform pore diameter perforate. This paper presents an alternative method to predict the micro-perforated panel's performance precisely. As a first step, the transfer impedance of the micro-perforate should be measured.
Technical Paper

A Review of Current Techniques for Measuring Muffler Transmission Loss

2003-05-05
2003-01-1653
The most common approach for measuring the transmission loss of a muffler is to determine the incident power by decomposition theory and the transmitted power by the plane wave approximation assuming an anechoic termination. Unfortunately, it is difficult to construct a fully anechoic termination. Thus, two alternative measurement approaches are considered, which do not require an anechoic termination: the two load method and the two-source method. Both methods are demonstrated on two muffler types: (1) a simple expansion chamber and (2) a double expansion chamber with an internal connecting tube. For both cases, the measured transmission losses were compared to those obtained from the boundary element method. The measured transmission losses compared well for both cases demonstrating that transmission losses can be determined reliably without an anechoic termination. It should be noted that the two-load method is the easier to employ for measuring transmission loss.
Technical Paper

Measuring Bulk Properties of Sound-Absorbing Materials Using the Two-Source Method

2003-05-05
2003-01-1586
The two-source method was used to measure the bulk properties (complex characteristic impedance and complex wavenumber) of sound-absorbing materials, and results were compared to those obtained with the more commonly used two-cavity method. The results indicated that the two-source method is superior to the two-cavity method for materials having low absorption. Several applications using bulk properties are then presented. These include: (1) predicting the absorptive properties of an arbitrary thickness absorbing material or (2) layered material and (3) using bulk properties for a multi-domain boundary element analysis.
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