scispace - formally typeset
Journal ArticleDOI

Effect of hybrid nanofluid on heat transfer performance of parabolic trough solar collector receiver

Reads0
Chats0
TLDR
In this paper, three-dimensional heat transfer and flow characteristics of hybrid nanofluids under turbulent flow condition in a parabolic trough solar collector (PTC) receiver has been investigated.
Abstract
In this study, three-dimensional heat transfer and flow characteristics of hybrid nanofluids under turbulent flow condition in a parabolic trough solar collector (PTC) receiver has been investigated. Ag–ZnO/Syltherm 800, Ag–TiO2/Syltherm 800, and Ag–MgO/Syltherm 800 hybrid nanofluids with 1.0%, 2.0%, 3.0%, and 4.0% nanoparticle volume fractions are used as working fluids. Reynolds number is between 10,000 and 80,000. The temperature of the fluid is taken as 500 K. The C++ homemade code has been written for the nonuniform heat flux boundary condition for the outer surface of the receiver. Variations of thermal efficiency, heat transfer coefficient, friction factor, PEC number, Nusselt number, and temperature distribution are presented for three different types of hybrid nanofluids and four different nanoparticle volume fractions with different Reynolds numbers. Also, the graphs of the average percent increase according to Syltherm 800 are given for the working parameters. According to the results of the study, all hybrid nanofluids are found to provide superiority over the base fluid (Syltherm 800) with respect to heat transfer and flow features. Heat transfer augments with the growth of Reynolds number and nanoparticle volume fraction. Thermal efficiency, which is one of the important parameters for PTC, decreases with increasing Reynolds number and increases with the increasing volume fraction of nanoparticle. It is obtained that the most efficient working fluid for the PTC receiver is the Ag–MgO/Syltherm 800 hybrid nanofluid with 4.0% nanoparticle volume fraction.

read more

Citations
More filters
Journal ArticleDOI

Energy, exergy, economic and environmental (4E) analysis of a parabolic trough solar collector using MXene based silicone oil nanofluids

TL;DR: In this paper , a 4E analysis of a nanofluid-based parabolic trough collector (PTC) was conducted with a developed model in MATLAB, where MXene (Ti3C2) nanoparticles were added to the silicon oil at weight concentrations of 0.05, 0.08, and 0.10 wt% compared to pure oil.
Journal ArticleDOI

Dynamics of ternary-hybrid nanofluid subject to magnetic flux density and heat source or sink on a convectively heated surface

TL;DR: In this paper , the authors used the 3-stage Lobatto IIIa integration formula for a finite difference (MATLAB package bvp4c) to solve the same problem.
Journal ArticleDOI

Constructal thermodynamic optimization for dual-pressure organic Rankine cycle in waste heat utilization system

TL;DR: In this article, a constructal thermodynamic optimization (CTO) based on a combination of constructal theory and finite-time thermodynamics is proposed for the dual-pressure organic Rankine cycle (DPORC) to solve energy problems.
References
More filters
Book

A Treatise on Electricity and Magnetism

TL;DR: The most influential nineteenth-century scientist for twentieth-century physics, James Clerk Maxwell (1831-1879) demonstrated that electricity, magnetism and light are all manifestations of the same phenomenon: the electromagnetic field as discussed by the authors.
Book

An Introduction to Computational Fluid Dynamics: The Finite Volume Method

TL;DR: This chapter discusses the development of the Finite Volume Method for Diffusion Problems, a method for solving pressure-Velocity Coupling in Steady Flows problems, and its applications.
Journal ArticleDOI

Hydrodynamic and heat transfer study of dispersed fluids with submicron metallic oxide particles

TL;DR: In this article, the authors used a Brookfield rotating viscometer to measure the viscosities of the dispersed fluids with γ-alumina (Al2O3) and titanium dioxide (TiO2) particles at a 10% volume concentration.
Journal ArticleDOI

The Viscosity of Concentrated Suspensions and Solutions

TL;DR: In this paper, an expression for the viscosity of solutions and suspensions of finite concentration is derived by considering the effect of the addition of one solute-molecule to an existing solution, which is considered as a continuous medium.
Related Papers (5)