Heat flux and acoustic power in a T-shaped thermoacoustic system
The present work considers a convection-driven T-shaped standing-wave thermoacoustic system. To gain insights on the conversion process of heat to sound and to study the nonlinear coupling between unsteady heat release and acoustic disturbances, thermodynamic analysis, numerical and experimental inv...
Saved in:
Main Author: | |
---|---|
Other Authors: | |
Format: | Theses and Dissertations |
Language: | English |
Published: |
2015
|
Subjects: | |
Online Access: | https://hdl.handle.net/10356/65026 |
Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
Institution: | Nanyang Technological University |
Language: | English |
id |
sg-ntu-dr.10356-65026 |
---|---|
record_format |
dspace |
spelling |
sg-ntu-dr.10356-650262023-03-11T17:32:11Z Heat flux and acoustic power in a T-shaped thermoacoustic system Li, Shihuai Zhao Dan School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering::Fluid mechanics The present work considers a convection-driven T-shaped standing-wave thermoacoustic system. To gain insights on the conversion process of heat to sound and to study the nonlinear coupling between unsteady heat release and acoustic disturbances, thermodynamic analysis, numerical and experimental investigations are conducted. Three parameters are examined: (1) the inlet flow velocity, (2) heater temperature and (3) heat source location. Their effects on triggering limit cycle oscillations are first investigated in 2D numerical model. As each of the parameters is varied, the head-driven acoustic signature is found to change. The main nonlinearity is identified in the heat fluxes. To characterize the transient (growing) behavior of the pressure fluctuation, the thermoacoustic mode growth rate is defined and calculated. It is found that the growth rate decreases first and then ‘saturates’. Similar behavior is observed by examining the slope of Rayleigh index. Furthermore, the overall efficiency of converting the input thermal energy into acoustical energy is defined and calculated. It is found that the energy conversion efficiency can be increased by increasing the inlet flow velocity. To validate our numerical findings, a cylindrical T-shaped duct made of quartz-glass with a metal gauze attaching on top of a Bunsen burner is designed and tested. Supercritical bifurcation is observed. And the experimental measurements show a good agreement with the numerical results in terms of mode frequency, mode shape, sound pressure level and Hopf bifurcation behavior. MASTER OF ENGINEERING (MAE) 2015-06-11T01:39:21Z 2015-06-11T01:39:21Z 2015 2015 Thesis Li, S. (2015). Heat flux and acoustic power in a T-shaped thermoacoustic system. Master’s thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/65026 10.32657/10356/65026 en 79 p. application/pdf |
institution |
Nanyang Technological University |
building |
NTU Library |
continent |
Asia |
country |
Singapore Singapore |
content_provider |
NTU Library |
collection |
DR-NTU |
language |
English |
topic |
DRNTU::Engineering::Mechanical engineering::Fluid mechanics |
spellingShingle |
DRNTU::Engineering::Mechanical engineering::Fluid mechanics Li, Shihuai Heat flux and acoustic power in a T-shaped thermoacoustic system |
description |
The present work considers a convection-driven T-shaped standing-wave thermoacoustic system. To gain insights on the conversion process of heat to sound and to study the nonlinear coupling between unsteady heat release and acoustic disturbances, thermodynamic analysis, numerical and experimental investigations are conducted. Three parameters are examined: (1) the inlet flow velocity, (2) heater temperature and (3) heat source location. Their effects on triggering limit cycle oscillations are first investigated in 2D numerical model. As each of the parameters is varied, the head-driven acoustic signature is found to change. The main nonlinearity is identified in the heat fluxes. To characterize the transient (growing) behavior of the pressure fluctuation, the thermoacoustic mode growth rate is defined and calculated. It is found that the growth rate decreases first and then ‘saturates’. Similar behavior is observed by examining the slope of Rayleigh index. Furthermore, the overall efficiency of converting the input thermal energy into acoustical energy is defined and calculated. It is found that the energy conversion efficiency can be increased by increasing the inlet flow velocity. To validate our numerical findings, a cylindrical T-shaped duct made of quartz-glass with a metal gauze attaching on top of a Bunsen burner is designed and tested. Supercritical bifurcation is observed. And the experimental measurements show a good agreement with the numerical results in terms of mode frequency, mode shape, sound pressure level and Hopf bifurcation behavior. |
author2 |
Zhao Dan |
author_facet |
Zhao Dan Li, Shihuai |
format |
Theses and Dissertations |
author |
Li, Shihuai |
author_sort |
Li, Shihuai |
title |
Heat flux and acoustic power in a T-shaped thermoacoustic system |
title_short |
Heat flux and acoustic power in a T-shaped thermoacoustic system |
title_full |
Heat flux and acoustic power in a T-shaped thermoacoustic system |
title_fullStr |
Heat flux and acoustic power in a T-shaped thermoacoustic system |
title_full_unstemmed |
Heat flux and acoustic power in a T-shaped thermoacoustic system |
title_sort |
heat flux and acoustic power in a t-shaped thermoacoustic system |
publishDate |
2015 |
url |
https://hdl.handle.net/10356/65026 |
_version_ |
1761781424036249600 |