Formation of Anti-Wear Tribofilms via α-ZrP Nanoplatelet as Lubricant Additives
Abstract
:1. Introduction
2. Experimental Details
2.1. Materials
2.2. Tribological Evaluation
2.3. Characterization
3. Results and Discussion
3.1. Friction and Wear
3.2. Tribofilm Formation
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Materials | Base Stock | Counterpart | Chemical Composition | Film Thickness | Mechanical Properties | Tribological Performance | Characterization Method | Reference |
---|---|---|---|---|---|---|---|---|
boron based additves | 5W-30 | E52100 | Ca, O, S, B, Cr and ~40 at.% Fe | 15 nm | friction and wear reduction | atom-probe tomography and TEM | [3] | |
Phosphate additives, AD and JD | triethanolamine aqueous solution | GCr15 bearing steel | P is in the form of phosphate or polyphosphate; S mainly exists as FeSO4 and FeS2 | friction and wear reduction | XPS and XANES | [4] | ||
S-based EP additive and MoDTC additive | PAO | nc-WC/a-C(Al) carbon-based nanocomposite coating | WS2 or MoS2 + WS2-containing tribofilm | hardness (H) = 18.3 GPa, elastic modulus (E) = 213.1 GPa, critical load (Lc) = 28 N | Superior low-friction and anti-wear behaviors | XPS and TEM | [5] | |
attapulgite powders (silicate composed of some oxide) | mineral lubricating oil (150SN) | 52100 steel and 1045 steel | FeO, Fe2O3, FeOOH and SiOx | friction and wear reduction | EDS and XPS | [6] | ||
IL [P66614] [DEHP] | Chevron 15W40 and 0W30 | steel–steel and silicon nitride–steel | metal phosphates and oxides | 25 nm | wear reduction | EDS, XPS and TEM | [7] | |
Dithiocarbamate derivative additives | HVI WH150 | GCr15 bearing steel and AISI 52100 steel | organic sulphide, pyrite,sulphite, –SC(=S)–N– part | better antiwear performance and extreme pressure property | XANES | [8] | ||
Halogen-free borate ionic liquids | AISI 52100 steel-steel | phosphate based tribofilm | friction and wear reduction | XPS | [9] | |||
IF-MoS2 | blend of PAO 4 and PAO 40 | AISI 52100 steel-steel | iron oxide and sulfides, MoS2, | 50–100 nm | friction and wear reduction | XPS and FIB | [10] | |
calcium sulphonate | PAO | aluminium–silicon and chromium steel | calcium carbonate and sulphur | wear reduction | ToF-SIMS | [11] | ||
borate ester containing nitrogen | PAO | nitrided AISI 52100 steel | hexagonal BN and B2O3 | friction reduced by 34% and wear reduced by 45% | XPS | [12] | ||
oleic acid-modified serpentine UFPs | mineral base oil (500SN) | GCr15 steel ball and 1045 steel disc | Fe3O4, FeSi, SiO2, AlFe, and Fe3C | 500–600 nm | hardness = 8 GPa within 100 nm, modulus = 240 GPa within 100 nm | friction and wear reduction | EDS, TEM | [13] |
serpentine powder | 5-CST oil | GCr15 bearing steel | iron oxides, silicon oxides, magnesium oxides and organic compounds | friction and wear reduction | XPS and XANES | [14] | ||
Cu nanoparticles and hydrosilicate powders | diesel oil | Ball AISI 52100 and Disk AISI 1045 | iron oxides, silicon oxides, Si–O species, graphite, organic compounds, Cu species | friction and wear reduction | EDS and XPS | [15] |
Roughness Parameter | Base Oil | Base Oil + ZDDP | Base Oil + α-ZrP-ODI |
---|---|---|---|
Roughness Avg. (Sa) | 271.03 nm | 81.47 nm | 40.89 nm |
Root mean square (Sq) | 315.73 nm | 97.56 nm | 59.02 nm |
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Dai, W.; Kheireddin, B.; Gao, H.; Kan, Y.; Clearfield, A.; Liang, H. Formation of Anti-Wear Tribofilms via α-ZrP Nanoplatelet as Lubricant Additives. Lubricants 2016, 4, 28. https://doi.org/10.3390/lubricants4030028
Dai W, Kheireddin B, Gao H, Kan Y, Clearfield A, Liang H. Formation of Anti-Wear Tribofilms via α-ZrP Nanoplatelet as Lubricant Additives. Lubricants. 2016; 4(3):28. https://doi.org/10.3390/lubricants4030028
Chicago/Turabian StyleDai, Wei, Bassem Kheireddin, Hong Gao, Yuwei Kan, Abraham Clearfield, and Hong Liang. 2016. "Formation of Anti-Wear Tribofilms via α-ZrP Nanoplatelet as Lubricant Additives" Lubricants 4, no. 3: 28. https://doi.org/10.3390/lubricants4030028