Effects of Contamination on Selected Rheological and Tribological Properties of Lubricating Greases Working in Underground Mines
Abstract
:1. Introduction
2. Material under Investigation
3. Test Methods
3.1. Raman Spectroscopy
3.2. Rheological Tests
3.3. Friction Tests
3.4. Wear Tests
4. Test Results and Discussion
5. Conclusions
- (1)
- The mining contaminants contained in the spent grease contributed to a change in its viscoelastic properties. As a result, the critical strain value, being the limit of the grease’s linear viscoelasticity, decreased. Moreover, higher values of the storage modulus, the loss modulus and the flow limit were registered in the case of the worked grease.
- (2)
- A significant weakening of the interactions between lithium soap floccules in the grease subjected to contamination, manifesting itself in lower values of its cohesion energy, was noted. The spent grease’s cohesion energy was over 30% lower than that of the fresh grease.
- (3)
- Rheological tests carried out in steady shear rate conditions showed that the stress-shear time plots for the worked grease differed from those for the fresh grease. Changes in shear stress values, especially the ones registered in the initial phase of grease shearing, were much gentler than in the case of the fresh grease. The impact of mining contaminants on the solidification of the grease, manifesting itself in an increase in shear stress and dynamic viscosity registered during the flow of the grease, was clearly visible.
- (4)
- The rheological tests showed a significant contribution of the contaminants and wear products in the grease to an increase in frictional resistance and to a decrease in the grease’s lubricating ability. The friction force values registered during the tests were on average 20% higher than in the case of an analogous friction junction lubricated with the fresh grease. This applies to all the tribological junction load values adopted in the experiment.
- (5)
- Mining contaminants in the worked grease caused much greater wear of the steel disk in comparison with the tests carried out in the presence of the fresh grease. For the heaviest adopted load, i.e., 50 N, the increase in the disk wear profile surface area was almost sixfold. Also, the shape of the wear profile changed considerably.
- (6)
- Spectroscopic tests revealed significant differences between the Raman spectra of the fresh grease and those of the worked grease. The spectra of the spent grease were characterized by markedly lower intensity. Among other things, the degradation of lithium 12-hydroxystearate in the worked grease was noted. Also, the grease’s inorganic part, i.e., the MoS2 particles, underwent structural changes.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Rudna Mine | Polkowice-Sieroszowice Mine | |
---|---|---|
Climatic conditions: | ||
air temperature, °C | 47 | 41 |
air humidity, % | 95 | 97 |
dust, mg/m3 | 20 | 19.31 |
air composition, mg/m3 | ||
carbon monoxide | 180 | 120 |
nitric oxide | 10 | 3.0 |
sulfur dioxide | 5 | 0.2 |
hydrogen sulfide | 10 | 20 |
Water pollution, g/l | ||
total dissolved substances | 270 | 311.2 |
dissolved mineral substances | 250 | 297.2 |
salt content | 250 | 297.2 |
chlorides | 145 | 193.23 |
sulfate content | 2.5 | 5.59 |
sodium content | 85 | 126.7 |
potassium content | 1.2 | 2.14 |
magnesium content | 1.5 | 2.04 |
calcium content | 9 | 2.108 |
mineralization | 250 | 311.2 |
Index pH | 7 | 7.81 |
Color, Appearance | black, smooth |
Thickener | lithium 12-hydroxystearate |
Base oil | mineral |
Kinematic viscosity @40 °C (acc. ASTM D445) | 460 cSt |
Kinematic viscosity @100 °C (acc. ASTM D445) | 31 cSt |
Worked penetration (acc. ASTM D217) | 290–320 mm-1 |
NLGI grade | 1.5 |
Dropping point (acc. IP 396) | >240 |
Raman Shifts (cm−1) | Functional Group | ||
---|---|---|---|
Fresh Grease | Worked Grease | ||
1784 | 1788 | ν(C=C) | |
1588 | 1587 | symmetric stretching vibrationsof a carboxylate group, C–COO | |
1446 | 1451 | (C–H) methylene scissors vibrationsof CH2 group | |
1306 | 1310 | (C–H) methylene twisting vibrations | |
824 | --- | CH3 rocking vibrations | |
781, 747 | --- | C-C aliphatic chains | |
631 | --- | carboxylate bending vibrations, C–COO | |
--- | 383 | crystalline 2HMoS2 or trigonal-prism-coordinated MoS2 | |
236 | 235 | J3 | superlattice in the base planes of the single MoS2 layers |
186 | 186 | J2 | |
147 | 131 | J1 |
Lubricating Grease | Shear Rate (s−1) | Initial Stress (s−1) | Equilbrium Stress (s−1) | Parameter K (min−1) | Exponent m (-) | (-) | Correlation Coefficient R |
---|---|---|---|---|---|---|---|
fresh | 0.01 | 231 | 62 | 0.1 | 4 | 3.72 | 0.99280 |
0.1 | 308 | 158 | 0.07 | 4 | 1.95 | 0.98969 | |
1 | 315 | 122 | 0.018 | 4 | 2.58 | 0.99461 | |
worked | 0.01 | 380 | 158 | 0.019 | 4 | 2.40 | 0.95415 |
0.1 | 391 | 297 | 0.018 | 4 | 1.34 | 0.96513 | |
1 | 534 | 377 | 0.015 | 4 | 1.41 | 0.77369 |
Lubricating Grease | Load P (N) | Average Friction Force ΔFf (N) ± sd | Average Coefficient of Friction Δμ (-) | Maximum Wear Profile Depth (μm) | Width of Wear Profile (μm) | Surface Area of Wear Profile (μm2) ± sd |
---|---|---|---|---|---|---|
fresh | 10 | 0.9859 ± 0.0412 | 0.0986 | 3.275 | 138.2 | 321.73 ± 61.56 |
30 | 2.7679 ± 0.0811 | 0.0923 | 4.454 | 295.59 | 887.59 ± 171.85 | |
50 | 4.5973 ± 0.1761 | 0.1532 | 6.793 | 364.03 | 1393.13 ± 311.79 | |
worked | 10 | 1.2951 ± 0.0768 | 0.1295 | 6.982 | 1632.16 | 4365.42 ± 978.08 |
30 | 3.9009 ± 0.1531 | 0.1300 | 7.383 | 1546.91 | 4793.12 ± 1015.24 | |
50 | 6.3690 ± 0.4266 | 0.2123 | 25.289 | 679.64 | 8135.65 ± 2784.21 |
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Paszkowski, M.; Stelmaszek, P.A.; Krzak, J. Effects of Contamination on Selected Rheological and Tribological Properties of Lubricating Greases Working in Underground Mines. Lubricants 2023, 11, 425. https://doi.org/10.3390/lubricants11100425
Paszkowski M, Stelmaszek PA, Krzak J. Effects of Contamination on Selected Rheological and Tribological Properties of Lubricating Greases Working in Underground Mines. Lubricants. 2023; 11(10):425. https://doi.org/10.3390/lubricants11100425
Chicago/Turabian StylePaszkowski, Maciej, Piotr Aleksander Stelmaszek, and Justyna Krzak. 2023. "Effects of Contamination on Selected Rheological and Tribological Properties of Lubricating Greases Working in Underground Mines" Lubricants 11, no. 10: 425. https://doi.org/10.3390/lubricants11100425
APA StylePaszkowski, M., Stelmaszek, P. A., & Krzak, J. (2023). Effects of Contamination on Selected Rheological and Tribological Properties of Lubricating Greases Working in Underground Mines. Lubricants, 11(10), 425. https://doi.org/10.3390/lubricants11100425