Validated mathematical models of a solar water heater system with thermosyphon evacuated tube collectors

An evacuated tube solar water heater system using thermosyphon heat exchange was experimentally and theoretically investigated. Solar radiation and ambient temperature data from Chiang Mai Province were used as the modeling system by an Explicit Finite Difference Method (EFDM). The experimental setu...

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Main Authors: C. Wannagosit, P. Sakulchangsatjatai, N. Kammuang-lue, P. Terdtoon
Format: Article
Language:English
Published: Elsevier 2018-09-01
Series:Case Studies in Thermal Engineering
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X18301187
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spelling doaj-98bba0612bda43de85dee97bc56338e32020-11-25T00:47:50ZengElsevierCase Studies in Thermal Engineering2214-157X2018-09-0112528536Validated mathematical models of a solar water heater system with thermosyphon evacuated tube collectorsC. Wannagosit0P. Sakulchangsatjatai1N. Kammuang-lue2P. Terdtoon3Department of Mechanical Engineering, Faculty of Engineering, Chiang Mai University, Chiang Mai 50200, Thailand,Corresponding author.; Department of Mechanical Engineering, Faculty of Engineering, Chiang Mai University, Chiang Mai 50200, Thailand,Department of Mechanical Engineering, Faculty of Engineering, Chiang Mai University, Chiang Mai 50200, Thailand,Department of Mechanical Engineering, Faculty of Engineering, Chiang Mai University, Chiang Mai 50200, Thailand,An evacuated tube solar water heater system using thermosyphon heat exchange was experimentally and theoretically investigated. Solar radiation and ambient temperature data from Chiang Mai Province were used as the modeling system by an Explicit Finite Difference Method (EFDM). The experimental setup consisted of 8 evacuated tube collectors (ETCs) with thermosyphon diameters of 15.88 mm for the evaporator and 22.22 mm for the condenser. Lengths of the evaporator, adiabatic, and condenser sections were 1700 mm, 150 mm and 100 mm, respectively. Mathematical model results of both thermal resistance method and EFDM were validated by experimental results. Theoretical results for temperature and thermal efficiency concurred with experimental results and previous research. Experimental result, thermal resistance method and EFDM results indicated that maximum temperature of hot water occurred at 4:00 p.m. as 65.25 °C, 71.19 °C, and 69.46 °C, respectively. Thermal efficiency of the solar water heater system was 58.28% of the experimental result, 55.97% of the thermal resistance method and 57.60% of the EFDM result. EFDM provided better accuracy than the thermal resistance method by 2.97%. Keywords: Evacuated tube collector, Solar water heating, Two-phase closed thermosyphon, Explicit Finite Difference Methodhttp://www.sciencedirect.com/science/article/pii/S2214157X18301187
collection DOAJ
language English
format Article
sources DOAJ
author C. Wannagosit
P. Sakulchangsatjatai
N. Kammuang-lue
P. Terdtoon
spellingShingle C. Wannagosit
P. Sakulchangsatjatai
N. Kammuang-lue
P. Terdtoon
Validated mathematical models of a solar water heater system with thermosyphon evacuated tube collectors
Case Studies in Thermal Engineering
author_facet C. Wannagosit
P. Sakulchangsatjatai
N. Kammuang-lue
P. Terdtoon
author_sort C. Wannagosit
title Validated mathematical models of a solar water heater system with thermosyphon evacuated tube collectors
title_short Validated mathematical models of a solar water heater system with thermosyphon evacuated tube collectors
title_full Validated mathematical models of a solar water heater system with thermosyphon evacuated tube collectors
title_fullStr Validated mathematical models of a solar water heater system with thermosyphon evacuated tube collectors
title_full_unstemmed Validated mathematical models of a solar water heater system with thermosyphon evacuated tube collectors
title_sort validated mathematical models of a solar water heater system with thermosyphon evacuated tube collectors
publisher Elsevier
series Case Studies in Thermal Engineering
issn 2214-157X
publishDate 2018-09-01
description An evacuated tube solar water heater system using thermosyphon heat exchange was experimentally and theoretically investigated. Solar radiation and ambient temperature data from Chiang Mai Province were used as the modeling system by an Explicit Finite Difference Method (EFDM). The experimental setup consisted of 8 evacuated tube collectors (ETCs) with thermosyphon diameters of 15.88 mm for the evaporator and 22.22 mm for the condenser. Lengths of the evaporator, adiabatic, and condenser sections were 1700 mm, 150 mm and 100 mm, respectively. Mathematical model results of both thermal resistance method and EFDM were validated by experimental results. Theoretical results for temperature and thermal efficiency concurred with experimental results and previous research. Experimental result, thermal resistance method and EFDM results indicated that maximum temperature of hot water occurred at 4:00 p.m. as 65.25 °C, 71.19 °C, and 69.46 °C, respectively. Thermal efficiency of the solar water heater system was 58.28% of the experimental result, 55.97% of the thermal resistance method and 57.60% of the EFDM result. EFDM provided better accuracy than the thermal resistance method by 2.97%. Keywords: Evacuated tube collector, Solar water heating, Two-phase closed thermosyphon, Explicit Finite Difference Method
url http://www.sciencedirect.com/science/article/pii/S2214157X18301187
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