A transient model of a variable geometry turbocharger turbine using a passive actuator
The highly pulsated flow output of an engine causes a nonlinear dynamic behavior of a variable geometry turbocharger (VGT). A method, namely active control turbocharger with a passive actuator, was previously developed to recover more energy than the steady-state-based conventional methods. An accur...
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my.utm.952602022-04-29T22:26:00Z http://eprints.utm.my/id/eprint/95260/ A transient model of a variable geometry turbocharger turbine using a passive actuator Bahiuddin, Irfan Mazlan, Saiful Amri Imaduddin, Fitrian oYamasaki, Nobuhik Yamasaki, Nobuhiko Ubaidillah, Ubaidillah T Technology (General) The highly pulsated flow output of an engine causes a nonlinear dynamic behavior of a variable geometry turbocharger (VGT). A method, namely active control turbocharger with a passive actuator, was previously developed to recover more energy than the steady-state-based conventional methods. An accurate transient model is required to optimize and improve the control system performance. This paper focuses on the formulation of the unified control-oriented model of the VGT turbine and passive actuator. The bond graph framework is utilized to build a unified system consisting of three principal parts, which are the VGT turbine, the intake air path, and the passive actuator. The simulation results were then benchmarked with the experimental data by varying two tune-able parameters of the actuator. The model has shown agreeable results showing a similar pattern while being changed from one to another condition with the errors of less than 6.5% of cycle-averaged power for PCT cases. In summary, the model has shown its capability to replicate the VGT system behavior with the passive actuator and its possibility to be applied in the optimization process of the system performance. Springer Science and Business Media Deutschland GmbH 2021 Article PeerReviewed Bahiuddin, Irfan and Mazlan, Saiful Amri and Imaduddin, Fitrian and oYamasaki, Nobuhik and Yamasaki, Nobuhiko and Ubaidillah, Ubaidillah (2021) A transient model of a variable geometry turbocharger turbine using a passive actuator. Arabian Journal for Science and Engineering, 46 (3). pp. 2565-2577. ISSN 2193-567X http://dx.doi.org/10.1007/s13369-020-05158-2 |
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T Technology (General) Bahiuddin, Irfan Mazlan, Saiful Amri Imaduddin, Fitrian oYamasaki, Nobuhik Yamasaki, Nobuhiko Ubaidillah, Ubaidillah A transient model of a variable geometry turbocharger turbine using a passive actuator |
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The highly pulsated flow output of an engine causes a nonlinear dynamic behavior of a variable geometry turbocharger (VGT). A method, namely active control turbocharger with a passive actuator, was previously developed to recover more energy than the steady-state-based conventional methods. An accurate transient model is required to optimize and improve the control system performance. This paper focuses on the formulation of the unified control-oriented model of the VGT turbine and passive actuator. The bond graph framework is utilized to build a unified system consisting of three principal parts, which are the VGT turbine, the intake air path, and the passive actuator. The simulation results were then benchmarked with the experimental data by varying two tune-able parameters of the actuator. The model has shown agreeable results showing a similar pattern while being changed from one to another condition with the errors of less than 6.5% of cycle-averaged power for PCT cases. In summary, the model has shown its capability to replicate the VGT system behavior with the passive actuator and its possibility to be applied in the optimization process of the system performance. |
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Article |
author |
Bahiuddin, Irfan Mazlan, Saiful Amri Imaduddin, Fitrian oYamasaki, Nobuhik Yamasaki, Nobuhiko Ubaidillah, Ubaidillah |
author_facet |
Bahiuddin, Irfan Mazlan, Saiful Amri Imaduddin, Fitrian oYamasaki, Nobuhik Yamasaki, Nobuhiko Ubaidillah, Ubaidillah |
author_sort |
Bahiuddin, Irfan |
title |
A transient model of a variable geometry turbocharger turbine using a passive actuator |
title_short |
A transient model of a variable geometry turbocharger turbine using a passive actuator |
title_full |
A transient model of a variable geometry turbocharger turbine using a passive actuator |
title_fullStr |
A transient model of a variable geometry turbocharger turbine using a passive actuator |
title_full_unstemmed |
A transient model of a variable geometry turbocharger turbine using a passive actuator |
title_sort |
transient model of a variable geometry turbocharger turbine using a passive actuator |
publisher |
Springer Science and Business Media Deutschland GmbH |
publishDate |
2021 |
url |
http://eprints.utm.my/id/eprint/95260/ http://dx.doi.org/10.1007/s13369-020-05158-2 |
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13.211869 |