Performance of Poly Alpha Olefin Nanolubricant
The viscosity and tribological behavior of nanofluids formed by dispersed nano-diamond particles within Poly-Alpha-Olefin (PAO6) lubricant is studied at different concentrations. The variation of coefficient of friction with nanoparticle concentration is measured using pin-on-disc tribometry under b...
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doaj-bda266c443844e2a849647d186070f002020-11-25T01:42:26ZengMDPI AGLubricants2075-44422020-02-01821710.3390/lubricants8020017lubricants8020017Performance of Poly Alpha Olefin NanolubricantNader Dolatabadi0Ramin Rahmani1Homer Rahnejat2Colin P. Garner3Charles Brunton4Wolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Leicestershire LE11 3TU, UKWolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Leicestershire LE11 3TU, UKWolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Leicestershire LE11 3TU, UKWolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Leicestershire LE11 3TU, UKSpecialist Lubricants Ltd., Unit 14B2, Brewster Square, Brucefield Industry Park, Livingston EH54 9BJ, UKThe viscosity and tribological behavior of nanofluids formed by dispersed nano-diamond particles within Poly-Alpha-Olefin (PAO6) lubricant is studied at different concentrations. The variation of coefficient of friction with nanoparticle concentration is measured using pin-on-disc tribometry under boundary, mixed, and hydrodynamic regimes of lubrication. A multi-scale multi-physics thermo-mixed lubrication model is developed to provide fundamental understanding of the measured tribometric results. The analytical approach combines continuum contact mechanics, thermal-mixed lubrication comprising the interaction of rough surfaces, as well as a thermal network heat transfer model. In particular, Einstein’s viscosity model for dispersed hard particles together with Vogel’s viscosity-temperature dependence model for fluid viscosity containing nanoparticles represent new contributions to knowledge. This integrated numerical-experimental study of nanofluid thermal and tribological assessment has not hitherto been reported in literature. It is shown that improved heat transfer capability of nanofluids is particularly effective in the reduction of friction under a mixed regime of lubrication.https://www.mdpi.com/2075-4442/8/2/17multiphase thermal flownanofluiddiamond nanoparticlespoly-alpha-olefinfriction |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Nader Dolatabadi Ramin Rahmani Homer Rahnejat Colin P. Garner Charles Brunton |
spellingShingle |
Nader Dolatabadi Ramin Rahmani Homer Rahnejat Colin P. Garner Charles Brunton Performance of Poly Alpha Olefin Nanolubricant Lubricants multiphase thermal flow nanofluid diamond nanoparticles poly-alpha-olefin friction |
author_facet |
Nader Dolatabadi Ramin Rahmani Homer Rahnejat Colin P. Garner Charles Brunton |
author_sort |
Nader Dolatabadi |
title |
Performance of Poly Alpha Olefin Nanolubricant |
title_short |
Performance of Poly Alpha Olefin Nanolubricant |
title_full |
Performance of Poly Alpha Olefin Nanolubricant |
title_fullStr |
Performance of Poly Alpha Olefin Nanolubricant |
title_full_unstemmed |
Performance of Poly Alpha Olefin Nanolubricant |
title_sort |
performance of poly alpha olefin nanolubricant |
publisher |
MDPI AG |
series |
Lubricants |
issn |
2075-4442 |
publishDate |
2020-02-01 |
description |
The viscosity and tribological behavior of nanofluids formed by dispersed nano-diamond particles within Poly-Alpha-Olefin (PAO6) lubricant is studied at different concentrations. The variation of coefficient of friction with nanoparticle concentration is measured using pin-on-disc tribometry under boundary, mixed, and hydrodynamic regimes of lubrication. A multi-scale multi-physics thermo-mixed lubrication model is developed to provide fundamental understanding of the measured tribometric results. The analytical approach combines continuum contact mechanics, thermal-mixed lubrication comprising the interaction of rough surfaces, as well as a thermal network heat transfer model. In particular, Einstein’s viscosity model for dispersed hard particles together with Vogel’s viscosity-temperature dependence model for fluid viscosity containing nanoparticles represent new contributions to knowledge. This integrated numerical-experimental study of nanofluid thermal and tribological assessment has not hitherto been reported in literature. It is shown that improved heat transfer capability of nanofluids is particularly effective in the reduction of friction under a mixed regime of lubrication. |
topic |
multiphase thermal flow nanofluid diamond nanoparticles poly-alpha-olefin friction |
url |
https://www.mdpi.com/2075-4442/8/2/17 |
work_keys_str_mv |
AT naderdolatabadi performanceofpolyalphaolefinnanolubricant AT raminrahmani performanceofpolyalphaolefinnanolubricant AT homerrahnejat performanceofpolyalphaolefinnanolubricant AT colinpgarner performanceofpolyalphaolefinnanolubricant AT charlesbrunton performanceofpolyalphaolefinnanolubricant |
_version_ |
1725036424191803392 |