Experimental comparison of specific heat capacity of three different metal oxides with MWCNT/ water-based hybrid nanofluids: proposing a new correlation

被引:0
作者
Arun Kumar Tiwari
Naimish S. Pandya
Harshang Shah
Zafar Said
机构
[1] Dr. A.P.J. Abdul Kalam Technical University,Mechanical Engineering Department, Institute of Engineering & Technology
[2] Indian Institute of Technology Bombay,Department of Mechanical Engineering
[3] University of Calgary,Department of Mechanical and Manufacturing Engineering, Schulich School of Engineering
[4] University of Sharjah,Sustainable and Renewable Energy Engineering Department
来源
Applied Nanoscience | 2023年 / 13卷
关键词
Specific heat capacity; Nanofluids; Stability; MWCNT; Hybrid; Metal oxide;
D O I
暂无
中图分类号
学科分类号
摘要
The main objective of this study is to investigate three distinct non-commonly used metal oxide-based nanoparticles, i.e., CuO + MWCNT, MgO + MWCNT, and SnO2 + MWCNT with a weight mixture ratio of 80:20 each (by weight ratio) and DI water as a base fluid along with the addition of the CTAB surfactant at 3:2. The study incorporates the effect of varying size, dp (20–50 nm), different temperature range (25–50 °C), and volume concentration range of 0.25–1.5%. After examining the stability of prepared HNF over the 30th day from the preparation day and some of the meticulous experimentation on isobaric heat capacity, a new correlation is developed to predict the specific heat of hybrid nanofluid. Considering various parameters like various volume concentration (φ = 0.25–1.50%) and temperature range (T = 25–50 ℃), specific heat of nanofluid, specific heat of base fluid, density of nanofluid, density of base fluid, and average diameter of used nanoparticles. The developed correlation was with 2.93% and 0.903% maximum and average absolute deviation, respectively. Experimental results show the maximum decrement in specific heat value is about 15.09% compared to base fluid DI water at 25 ℃ and 1.50% volume concentration with an average particle diameter of 20 nm for the MgO + MWCNT (80:20)/water HNF. However, it is found that the rate of decrement decreases with the increase of dp from 20 to 50 nm. From the current experimental results, it is concluded that the usage of HNF on relatively higher temperature significantly influences the overall thermophysical properties such as enhancement in thermal conductivity and decrement in viscosity of the working fluid, by paying the marginal loss in specific heat capacity. Therefore, it recommended that the usage of HNF on higher temperature is more beneficial for critical heat transfer application such as HVAC, effective thermal management of the system, natural and forced convection phenomenon.
引用
收藏
页码:189 / 199
页数:10
相关论文
共 82 条
  • [1] Ahmad S(2020)Entropy generation and temperature-dependent viscosity in the study of SWCNT–MWCNT hybrid nanofluid Appl Nanosci 183 74-82
  • [2] Nadeem S(2019)Predicting the specific heat capacity of alumina/ethylene glycol nanofluids using support vector regression model optimized with Bayesian algorithm Sol Energy 79 202-212
  • [3] Ullah N(2016)Preparation and evaluation of stable nanofluids for heat transfer application: a review Exp Therm Fluid Sci 11 151-170
  • [4] Alade IO(2013)Hydrodynamic and heat transfer study of dispersed fluids with submicron metallic oxide Exp Heat Transf A J Therm Energy Transp 75 80-91
  • [5] Abd Rahman MA(2020)Performance assessment of linear Fresnel solar reflector using MWCNTs/DW nanofluids Renew Energy 135 2221-2235
  • [6] Saleh TA(2020)Heat transfer analysis using zinc Ferrite/water (Hybrid) nanofluids in a circular tube: an experimental investigation and development of new correlations for thermophysical and heat transfer properties Sustain Energy Technol Assessments 279 299-305
  • [7] Babita SSK(2020)On the thermal and thermodynamic analysis of parabolic trough collector technology using industrial-grade MWCNT based nanofluid Renew Energy 6 539-546
  • [8] Gupta SM(2020)Discharging of PCM for ventilation system incorporating nanoparticles J Mol Liq 81 173-190
  • [9] Bock Choon Pak YIC(2020)Numerical analysis of unsteady Carreau nanofluid flow with variable conductivity Appl Nanosci 843 1-81
  • [10] Ghodbane M(2014)Enhanced specific heat capacity of molten salt-based nanomaterials: effects of nanoparticle dispersion and solvent material Acta Mater 94 343-353