Dynamic and stability comparison analysis of the high-speed turbocharger rotor system with and without thrust bearing via machine learning schemes

To minimize carbon footprints and improve volumetric efficiency and power output, modern internal combustion engine technology employs turbochargers in automobile and marine engines as well as in several diesel generator sets. During its operation, a minor imbalance or flaw in turbocharger rotors co...

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Published in:JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING
Main Authors: Mutra, Rajasekhara Reddy; Srinivas, J.; Reddy, D. Mallikarjuna; Rani, Muhamad Norhisham Abdul; Yunus, Mohd Azmi; Yahya, Zahrah
Format: Article
Language:English
Published: SPRINGER HEIDELBERG 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001217620900003
author Mutra
Rajasekhara Reddy; Srinivas
J.; Reddy
D. Mallikarjuna; Rani
Muhamad Norhisham Abdul; Yunus
Mohd Azmi; Yahya
Zahrah
spellingShingle Mutra
Rajasekhara Reddy; Srinivas
J.; Reddy
D. Mallikarjuna; Rani
Muhamad Norhisham Abdul; Yunus
Mohd Azmi; Yahya
Zahrah
Dynamic and stability comparison analysis of the high-speed turbocharger rotor system with and without thrust bearing via machine learning schemes
Engineering
author_facet Mutra
Rajasekhara Reddy; Srinivas
J.; Reddy
D. Mallikarjuna; Rani
Muhamad Norhisham Abdul; Yunus
Mohd Azmi; Yahya
Zahrah
author_sort Mutra
spelling Mutra, Rajasekhara Reddy; Srinivas, J.; Reddy, D. Mallikarjuna; Rani, Muhamad Norhisham Abdul; Yunus, Mohd Azmi; Yahya, Zahrah
Dynamic and stability comparison analysis of the high-speed turbocharger rotor system with and without thrust bearing via machine learning schemes
JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING
English
Article
To minimize carbon footprints and improve volumetric efficiency and power output, modern internal combustion engine technology employs turbochargers in automobile and marine engines as well as in several diesel generator sets. During its operation, a minor imbalance or flaw in turbocharger rotors could lead to the system catastrophic failures. The two floating ring bearings that support a turbocharger allow it to operate at high speeds. The exhaust gases impacting the turbine and the inlet air impacting the compressor cause axial forces in the turbine, resulting in axial displacements. To balance these two components of axial forces, a thrust bearing is used in the turbocharger. The present work focuses on the comparative study of the turbocharger with and without the thrust bearing. The thrust bearing's pressure distribution is first calculated, and the nonlinear bearing forces acting on the turbocharger rotor are obtained. The exhaust gas forces are considered radial direction excitations, while blade passing excitations are taken as axial forces. The critical speeds of the rotor are first estimated using the Campbel diagram. An experimental study on an automobile turbocharger rotor is performed to validate the frequencies obtained from the present finite element model. Further, the system stability with and without thrust bearings at different operating speeds is illustrated. The influence of the thrust bearing location and preload is investigated on the system response. It is found that the thrust bearing has a significant effect on the system stability at higher speeds. The system stability condition at different operating conditions is identified by the trained neural network models.
SPRINGER HEIDELBERG
1678-5878
1806-3691
2024
46
5
10.1007/s40430-024-04892-0
Engineering

WOS:001217620900003
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001217620900003
title Dynamic and stability comparison analysis of the high-speed turbocharger rotor system with and without thrust bearing via machine learning schemes
title_short Dynamic and stability comparison analysis of the high-speed turbocharger rotor system with and without thrust bearing via machine learning schemes
title_full Dynamic and stability comparison analysis of the high-speed turbocharger rotor system with and without thrust bearing via machine learning schemes
title_fullStr Dynamic and stability comparison analysis of the high-speed turbocharger rotor system with and without thrust bearing via machine learning schemes
title_full_unstemmed Dynamic and stability comparison analysis of the high-speed turbocharger rotor system with and without thrust bearing via machine learning schemes
title_sort Dynamic and stability comparison analysis of the high-speed turbocharger rotor system with and without thrust bearing via machine learning schemes
container_title JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING
language English
format Article
description To minimize carbon footprints and improve volumetric efficiency and power output, modern internal combustion engine technology employs turbochargers in automobile and marine engines as well as in several diesel generator sets. During its operation, a minor imbalance or flaw in turbocharger rotors could lead to the system catastrophic failures. The two floating ring bearings that support a turbocharger allow it to operate at high speeds. The exhaust gases impacting the turbine and the inlet air impacting the compressor cause axial forces in the turbine, resulting in axial displacements. To balance these two components of axial forces, a thrust bearing is used in the turbocharger. The present work focuses on the comparative study of the turbocharger with and without the thrust bearing. The thrust bearing's pressure distribution is first calculated, and the nonlinear bearing forces acting on the turbocharger rotor are obtained. The exhaust gas forces are considered radial direction excitations, while blade passing excitations are taken as axial forces. The critical speeds of the rotor are first estimated using the Campbel diagram. An experimental study on an automobile turbocharger rotor is performed to validate the frequencies obtained from the present finite element model. Further, the system stability with and without thrust bearings at different operating speeds is illustrated. The influence of the thrust bearing location and preload is investigated on the system response. It is found that the thrust bearing has a significant effect on the system stability at higher speeds. The system stability condition at different operating conditions is identified by the trained neural network models.
publisher SPRINGER HEIDELBERG
issn 1678-5878
1806-3691
publishDate 2024
container_volume 46
container_issue 5
doi_str_mv 10.1007/s40430-024-04892-0
topic Engineering
topic_facet Engineering
accesstype
id WOS:001217620900003
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001217620900003
record_format wos
collection Web of Science (WoS)
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