An Approach for the Optimization of Thermal Conductivity and Viscosity of Hybrid (Graphene Nanoplatelets, GNPs: Cellulose Nanocrystal, CNC) Nanofluids Using Response Surface Methodology (RSM)

Author:

Yaw Chong Tak1ORCID,Koh Siaw Paw1,Sandhya Madderla23,Ramasamy Devarajan23ORCID,Kadirgama Kumaran345,Benedict Foo6ORCID,Ali Kharuddin7ORCID,Tiong Sieh Kiong1,Abdalla Ahmed N.8,Chong Kok Hen9

Affiliation:

1. Institute of Sustainable Energy, Universiti Tenaga Nasional (The Energy University), Jalan Ikram-Uniten, Kajang 43000, Malaysia

2. College of Engineering, Universiti Malaysia Pahang, Gambang 26300, Malaysia

3. Advanced Nano Coolant-Lubricant (ANCL), College of Engineering, Universiti Malaysia Pahang, Pekan 26600, Malaysia

4. Faculty of Mechanical and Automotive Engineering Technology, Universiti Malaysia Pahang, Pekan 26600, Malaysia

5. Automotive Engineering Centre, Universiti Malaysia Pahang, Pekan 26600, Malaysia

6. Enhance Track Sdn. Bhd., No. 9, Jalan Meranti Jaya 12, Meranti Jaya Industrial Park, Puchong 47120, Malaysia

7. Faculty of Electrical and Automation Engineering Technology, University College TATI, Teluk Kalong, Kemaman 24000, Malaysia

8. Faculty of Electronic Information Engineering, Huaiyin Institute of Technology, Huai’an 223025, China

9. College of Engineering, Universiti Tenaga Nasional (The Energy University), Jalan Ikram-Uniten, Kajang 43000, Malaysia

Abstract

Response surface methodology (RSM) is used in this study to optimize the thermal characteristics of single graphene nanoplatelets and hybrid nanofluids utilizing the miscellaneous design model. The nanofluids comprise graphene nanoplatelets and graphene nanoplatelets/cellulose nanocrystal nanoparticles in the base fluid of ethylene glycol and water (60:40). Using response surface methodology (RSM) based on central composite design (CCD) and mini tab 20 standard statistical software, the impact of temperature, volume concentration, and type of nanofluid is used to construct an empirical mathematical formula. Analysis of variance (ANOVA) is applied to determine that the developed empirical mathematical analysis is relevant. For the purpose of developing the equations, 32 experiments are conducted for second-order polynomial to the specified outputs such as thermal conductivity and viscosity. Predicted estimates and the experimental data are found to be in reasonable arrangement. In additional words, the models could expect more than 85% of thermal conductivity and viscosity fluctuations of the nanofluid, indicating that the model is accurate. Optimal thermal conductivity and viscosity values are 0.4962 W/m-K and 2.6191 cP, respectively, from the results of the optimization plot. The critical parameters are 50 °C, 0.0254%, and the category factorial is GNP/CNC, and the relevant parameters are volume concentration, temperature, and kind of nanofluid. From the results plot, the composite is 0.8371. The validation results of the model during testing indicate the capability of predicting the optimal experimental conditions.

Funder

Centre of Excellence

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

Reference40 articles.

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