Investigation and evaluation of the solar air collector model to support the solar vortex engine

In this study, mathematical and experimental models were implemented for circular solar air collector. Modeling methodology with conservation equations of continuity, momentum and energy were presented, and model solution is obtained by utilizing a developed code in MATLAB program. An experimental m...

Full description

Saved in:
Bibliographic Details
Main Authors: Mustafa, A.T., Al-Kayiem, H.H., Gilani, S.I.U.
Format: Article
Published: Asian Research Publishing Network 2015
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84937027191&partnerID=40&md5=f0d26298da719b4d46dec2f009fe4734
http://eprints.utp.edu.my/26097/
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.utp.eprints.26097
record_format eprints
spelling my.utp.eprints.260972021-08-30T08:51:57Z Investigation and evaluation of the solar air collector model to support the solar vortex engine Mustafa, A.T. Al-Kayiem, H.H. Gilani, S.I.U. In this study, mathematical and experimental models were implemented for circular solar air collector. Modeling methodology with conservation equations of continuity, momentum and energy were presented, and model solution is obtained by utilizing a developed code in MATLAB program. An experimental model of concentric circles with outer and inner diameters of 8.8 m and 1.0, respectively, was designed and fabricated in order to perform measurements for the thermal and flow processes in the system. The canopy was inclined by 8.5°. The results showed that, at same solar irradiation, the temperatures of air flow, canopy and ground are increasing by decreasing the radius. When the canopy slope increases, air flow temperature decreases and canopy temperature increases for a constant solar radiation. When the solar radiation increases, air flow, canopy and ground temperatures increases for the same collector radius. The validations of the model predictive and therefore comparisons with results of experimental model of this study and Manzanares prototype data have been done. The model results agree with the experimental results. Further investigations are recommended after installation of the vortex generation engine where the residence time of the air particles will be changed, and consequently the air stream temperature and velocity are expected to change, as well. © 2006-2015 Asian Research Publishing Network (ARPN). Asian Research Publishing Network 2015 Article NonPeerReviewed https://www.scopus.com/inward/record.uri?eid=2-s2.0-84937027191&partnerID=40&md5=f0d26298da719b4d46dec2f009fe4734 Mustafa, A.T. and Al-Kayiem, H.H. and Gilani, S.I.U. (2015) Investigation and evaluation of the solar air collector model to support the solar vortex engine. ARPN Journal of Engineering and Applied Sciences, 10 (12). pp. 5309-5319. http://eprints.utp.edu.my/26097/
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Institutional Repository
url_provider http://eprints.utp.edu.my/
description In this study, mathematical and experimental models were implemented for circular solar air collector. Modeling methodology with conservation equations of continuity, momentum and energy were presented, and model solution is obtained by utilizing a developed code in MATLAB program. An experimental model of concentric circles with outer and inner diameters of 8.8 m and 1.0, respectively, was designed and fabricated in order to perform measurements for the thermal and flow processes in the system. The canopy was inclined by 8.5°. The results showed that, at same solar irradiation, the temperatures of air flow, canopy and ground are increasing by decreasing the radius. When the canopy slope increases, air flow temperature decreases and canopy temperature increases for a constant solar radiation. When the solar radiation increases, air flow, canopy and ground temperatures increases for the same collector radius. The validations of the model predictive and therefore comparisons with results of experimental model of this study and Manzanares prototype data have been done. The model results agree with the experimental results. Further investigations are recommended after installation of the vortex generation engine where the residence time of the air particles will be changed, and consequently the air stream temperature and velocity are expected to change, as well. © 2006-2015 Asian Research Publishing Network (ARPN).
format Article
author Mustafa, A.T.
Al-Kayiem, H.H.
Gilani, S.I.U.
spellingShingle Mustafa, A.T.
Al-Kayiem, H.H.
Gilani, S.I.U.
Investigation and evaluation of the solar air collector model to support the solar vortex engine
author_facet Mustafa, A.T.
Al-Kayiem, H.H.
Gilani, S.I.U.
author_sort Mustafa, A.T.
title Investigation and evaluation of the solar air collector model to support the solar vortex engine
title_short Investigation and evaluation of the solar air collector model to support the solar vortex engine
title_full Investigation and evaluation of the solar air collector model to support the solar vortex engine
title_fullStr Investigation and evaluation of the solar air collector model to support the solar vortex engine
title_full_unstemmed Investigation and evaluation of the solar air collector model to support the solar vortex engine
title_sort investigation and evaluation of the solar air collector model to support the solar vortex engine
publisher Asian Research Publishing Network
publishDate 2015
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84937027191&partnerID=40&md5=f0d26298da719b4d46dec2f009fe4734
http://eprints.utp.edu.my/26097/
_version_ 1738656823257333760
score 13.18916