A novel design for solar collector used for water heating application having nanofluid as working medium: CFD modeling and simulation

A solar collector is a simple and cheap device that converts solar radiation into valuable heat energy. The thermal performance of the solar collectors can be enhanced significantly with the suspension of nanoparticles in the base fluid. A novel design for a solar-assisted water heater (SWH) is prop...

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Veröffentlicht in:Environmental science and pollution research international 2023, Vol.30 (2), p.3942-3952
Hauptverfasser: Kumar, Rajneesh, Kharub, Manjeet, Sharma, Rajesh, Hrisheekesha, Periapattana Nagaraj, Goel, Varun, Bhattacharyya, Suvanjan, Tyagi, Vineet Veer, Varun
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container_end_page 3952
container_issue 2
container_start_page 3942
container_title Environmental science and pollution research international
container_volume 30
creator Kumar, Rajneesh
Kharub, Manjeet
Sharma, Rajesh
Hrisheekesha, Periapattana Nagaraj
Goel, Varun
Bhattacharyya, Suvanjan
Tyagi, Vineet Veer
Varun
description A solar collector is a simple and cheap device that converts solar radiation into valuable heat energy. The thermal performance of the solar collectors can be enhanced significantly with the suspension of nanoparticles in the base fluid. A novel design for a solar-assisted water heater (SWH) is proposed in the current study, and the effect of nanofluid has been investigated on the thermal efficiency of the SWH. The use of nanofluid is one of the prominent methods in comparison to other techniques for improving the performance of solar collectors. Therefore, the base working fluid, i.e., water is mixed with the alumina nanoparticles of average particle size of 30 nm, and they are assumed to be spherical. The flow and thermal characteristics of nanofluid through the solar water heater are simulated numerically with the help of the Eulerian–Eulerian two-phase model using the finite volume method (FVM). The commercial package ANSYS Fluent, is used for modeling the problem under transient conditions with a pressure-based solver. In comparison to a conventional flat plate collector, the proposed solar water heater consists of a corrugated absorber-plate and the effect of the radius of curvature has been investigated on the heat transfer and collector efficiency. With the proposed design, the heat transfer area available with the riser tubes increases remarkably and it leads to a 43% and 14% increase in heat transfer augmentation and collector efficiency, in comparison to the conventional solar water heater.
doi_str_mv 10.1007/s11356-022-22404-2
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subjects Aluminum oxide
Aquatic Pollution
Atmospheric Protection/Air Quality Control/Air Pollution
Computer Simulation
Corrugated plates
Design
Earth and Environmental Science
Ecotoxicology
Efficiency
energy
Environment
Environmental Chemistry
Environmental Health
Environmental science
Finite volume method
Flat plates
Heat transfer
Heating
Heating systems
Mathematical models
Modelling
Nanofluids
Nanoparticles
particle size
Radius of curvature
Research Article
Solar collectors
Solar Energy
solar heaters
Solar radiation
Sunlight
Thermodynamic efficiency
Tubes
Waste Water Technology
Water
Water heaters
Water heating
Water Management
Water Pollution Control
Working fluids
title A novel design for solar collector used for water heating application having nanofluid as working medium: CFD modeling and simulation
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