Fuzzy logic controller design for a small scale industrial hot air blower heating and ventilation system

In this paper, a single-input fuzzy logic controller (SIFLC) is designed and applied on a nonlinear heating and ventilation plant VVS-400 developed from Instrutek, Larvik, Norway. VVS-400 is modeled using Auto-regressive with exogenous input (ARX) model structure and linear black-box technique. The...

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Main Authors: Rahmat, Mohd Fua'ad, Mohd Subha, Nurul Adilla, Jusoff, Kamaruzaman, Abdul Wahab, Norhaliza
Format: Article
Language:English
Published: IDOSI Publications 2010
Online Access:http://psasir.upm.edu.my/id/eprint/14833/1/Fuzzy%20logic%20controller%20design%20for%20a%20small%20scale%20industrial%20hot%20air%20blower%20heating%20and%20ventilation%20system.pdf
http://psasir.upm.edu.my/id/eprint/14833/
http://www.idosi.org/wasj/wasj9%2810%292010.htm
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Institution: Universiti Putra Malaysia
Language: English
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spelling my.upm.eprints.148332020-06-16T06:24:47Z http://psasir.upm.edu.my/id/eprint/14833/ Fuzzy logic controller design for a small scale industrial hot air blower heating and ventilation system Rahmat, Mohd Fua'ad Mohd Subha, Nurul Adilla Jusoff, Kamaruzaman Abdul Wahab, Norhaliza In this paper, a single-input fuzzy logic controller (SIFLC) is designed and applied on a nonlinear heating and ventilation plant VVS-400 developed from Instrutek, Larvik, Norway. VVS-400 is modeled using Auto-regressive with exogenous input (ARX) model structure and linear black-box technique. The proposed SIFLC offers significamt reduction in rule inferences and simplify the tuning of control parameters. Instead of using two input (e, e) in the conventional FLC, this method simplifies the number of input by deriving new solitary input variable known as signed distance, d To verify its effectiveness, this control method is stimulated and performs an online using System Identification approach shile the real plant model is developed by interfacing the Real-time Windows Target toolbox in Matlab with real VVS-plant using data acquisition (DAQ) card PCI-1711. The SILFC provides several advantages over convertional FLC due to its simple inference rule mechanism, require very minimum tuning effort and minimizing the computational time to accomplish the controller algorithm. However, simulations and experiments validate the equivalency of both controllers. Results reveal that SIFLC and conventional FLC have almost similar output performance but SILFC found to be better than FLC due to its less computational time compared to conventional FLC. IDOSI Publications 2010 Article PeerReviewed application/pdf en http://psasir.upm.edu.my/id/eprint/14833/1/Fuzzy%20logic%20controller%20design%20for%20a%20small%20scale%20industrial%20hot%20air%20blower%20heating%20and%20ventilation%20system.pdf Rahmat, Mohd Fua'ad and Mohd Subha, Nurul Adilla and Jusoff, Kamaruzaman and Abdul Wahab, Norhaliza (2010) Fuzzy logic controller design for a small scale industrial hot air blower heating and ventilation system. World Applied Sciences Journal, 9 (10). pp. 1180-1190. ISSN 1818-4952; ESSN: 1991-6426 http://www.idosi.org/wasj/wasj9%2810%292010.htm
institution Universiti Putra Malaysia
building UPM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Putra Malaysia
content_source UPM Institutional Repository
url_provider http://psasir.upm.edu.my/
language English
description In this paper, a single-input fuzzy logic controller (SIFLC) is designed and applied on a nonlinear heating and ventilation plant VVS-400 developed from Instrutek, Larvik, Norway. VVS-400 is modeled using Auto-regressive with exogenous input (ARX) model structure and linear black-box technique. The proposed SIFLC offers significamt reduction in rule inferences and simplify the tuning of control parameters. Instead of using two input (e, e) in the conventional FLC, this method simplifies the number of input by deriving new solitary input variable known as signed distance, d To verify its effectiveness, this control method is stimulated and performs an online using System Identification approach shile the real plant model is developed by interfacing the Real-time Windows Target toolbox in Matlab with real VVS-plant using data acquisition (DAQ) card PCI-1711. The SILFC provides several advantages over convertional FLC due to its simple inference rule mechanism, require very minimum tuning effort and minimizing the computational time to accomplish the controller algorithm. However, simulations and experiments validate the equivalency of both controllers. Results reveal that SIFLC and conventional FLC have almost similar output performance but SILFC found to be better than FLC due to its less computational time compared to conventional FLC.
format Article
author Rahmat, Mohd Fua'ad
Mohd Subha, Nurul Adilla
Jusoff, Kamaruzaman
Abdul Wahab, Norhaliza
spellingShingle Rahmat, Mohd Fua'ad
Mohd Subha, Nurul Adilla
Jusoff, Kamaruzaman
Abdul Wahab, Norhaliza
Fuzzy logic controller design for a small scale industrial hot air blower heating and ventilation system
author_facet Rahmat, Mohd Fua'ad
Mohd Subha, Nurul Adilla
Jusoff, Kamaruzaman
Abdul Wahab, Norhaliza
author_sort Rahmat, Mohd Fua'ad
title Fuzzy logic controller design for a small scale industrial hot air blower heating and ventilation system
title_short Fuzzy logic controller design for a small scale industrial hot air blower heating and ventilation system
title_full Fuzzy logic controller design for a small scale industrial hot air blower heating and ventilation system
title_fullStr Fuzzy logic controller design for a small scale industrial hot air blower heating and ventilation system
title_full_unstemmed Fuzzy logic controller design for a small scale industrial hot air blower heating and ventilation system
title_sort fuzzy logic controller design for a small scale industrial hot air blower heating and ventilation system
publisher IDOSI Publications
publishDate 2010
url http://psasir.upm.edu.my/id/eprint/14833/1/Fuzzy%20logic%20controller%20design%20for%20a%20small%20scale%20industrial%20hot%20air%20blower%20heating%20and%20ventilation%20system.pdf
http://psasir.upm.edu.my/id/eprint/14833/
http://www.idosi.org/wasj/wasj9%2810%292010.htm
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