325
Views
1
CrossRef citations to date
0
Altmetric
Original Articles

Boundary Tribological Behaviors of Untreated and Surface-Modified M50 Steel Lubricated by Fuel JP-10

, , , &
Pages 424-436 | Received 03 Dec 2016, Accepted 07 Jun 2017, Published online: 09 Aug 2017

References

  • Schneider, A., Ware, R. E., and Janoski, E. J. (1978), “Isomerization of Endo-Tetrahydrodicyclopentadiene to a Missile Fuel Diluent,” U.S. Patent 4,086,284.
  • Chung, H. S., Chen, C. S. H., Kremer, R. A., and Boulton, J. R. (1999), “Recent Developments in High-Energy Density Liquid Hydrocarbon Fuels,” Energy & Fuels, 13(3), pp 641–649.
  • Joppin, C. (2002), Cooling Performance of Storable Propellants for a Micro Rocket Engine, Master's Thesis, Massachusetts Institute of Technology, Department of Aeronautics and Astronautics: Cambridge, MA.
  • Bruno, T. J., Huber, M. L., Laesecke, A., Lemmon, E. W., and Perkins, R. A. (2006), “Thermochemical and Thermophysical Properties of JP-10,” NISTIR 6640.
  • Davidson, D. F., Horning, D. C., Herbon, J. T., and Hanson, R. K. (2000), “Shock Tube Measurements of JP-10 Ignition,” Proceedings of the Combustion Institute, 28(2), pp 1687–1692.
  • Li, S. C., Varatharajan, B., and Williams, F. A. (2001), “Chemistry of JP-10 Ignition,” AIAA Journal, 39(12), pp 2351–2356.
  • Nakra, S., Green, R. J., and Anderson, S. L. (2006), “Thermal Decomposition of JP-10 Studied by Micro-Flowtube Pyrolysis–Mass Spectrometry,” Combustion and Flame, 144(4), pp 662–674.
  • Chenoweth, K., van Duin, A. C. T., Dasgupta, S., and Goddard, W. A., III. (2009), “Initiation Mechanisms and Kinetics of Pyrolysis and Combustion of JP-10 Hydrocarbon Jet Fuel,” Journal of Physical Chemistry A, 113(9), pp 1740–1746.
  • Seiser, R., Niemann, U., and Seshadri, K. (2011), “Experimental Study of Combustion of N-decane and JP-10 in Non-Premixed Flows,” Proceedings of the Combustion Institute, 33(1), pp 1045–1052.
  • Goh, K. H. H., Geipel, P., Hampp, F., and Lindstedt, R. P. (2013), “Regime Transition from Premixed to Flameless Oxidation in Turbulent JP-10 Flames,” Proceedings of the Combustion Institute, 34(2), pp 3311–3318.
  • Gao, C. W., Vandeputte, A. G., Yee, N. W., Green, W. H., Robin, E., Bonomi, R. E., Magoon, G. R., Wong, H., Oluwole, O. O., and Lewis, D. K. (2015), “JP-10 Combustion Studied with Shock Tube Experiments and Modeled with Automatic Reaction Mechanism Generation,” Combustion and Flame, 162(8), pp 3115–3129.
  • Hosang, G. W. (1991), “Experimental and Computed Performance Characteristics of High Speed Silicon Nitride Hybrid Ball Bearings,” Journal of Engineering for Gas Turbines and Power, 113(4), pp 635–642.
  • Hsieh, P. Y., and Bruno, T. J. (2015), “A Perspective on the Origin of Lubricity in Petroleum Distillate Motor Fuels,” Fuel Processing Technology, 129, pp 52–60.
  • Margaroni, D. (1998), “Fuel Lubricity,” Industrial Lubrication & Tribology, 50(3), pp 108–118.
  • Donnet, C., and Erdemir, A. (2004), “Historical Developments and New Trends in Tribological and Solid Lubricant Coatings,” Surface and Coatings Technology, 180–181, pp 76–84.
  • Donnet, C., and Erdemir, A. (2004), “Solid Lubricant Coatings: Recent Developments and Future Trends,” Tribology Letters, 17(3), pp 389–397.
  • Erdemir, A. (2005), “Review of Engineered Tribological Interfaces for Improved Boundary Lubrication,” Tribology International, 38(3), pp 249–256.
  • Luo, D. B., Fridrici, V., and Kapsa, P. (2011), “A Systematic Approach for the Selection of Tribological Coatings,” Wear, 271(9–10), pp 2132–2143.
  • Yue, W., Gao, X., Wang, C., Li, X., Wang, S., and Liu, J. (2012), “Synergistic Effects between Plasma-Nitrided AISI 52100 Steel and Zinc Dialkyldithiophosphate Additive under Boundary Lubrication,” Tribology Transactions, 55(3), pp 278–287.
  • Li, X., Yue, W., Wang, C., Gao, X., Wang, S., and Liu, J. (2012), “Comparing Tribological Behaviors of Plasma Nitrided and Untreated Bearing Steel under Lubrication with Phosphor and Sulfur-Free Organotungsten Additive,” Tribology International, 51, pp 47–53.
  • Wang, S., Yue, W., Fu, Z., Wang, C., Li, X., and Liu, J. (2013), “Study on the Tribological Properties of Plasma Nitrided Bearing Steel under Lubrication with Borate Ester Additive,” Tribology International, 66, pp 259–264.
  • Wang, W., Booske, J. H., Baum, C., Clothier, C., Zjaba, N., and Zhang, L. (1999), “Modification of Bearing Steel Surface by Nitrogen Plasma Source Ion Implantation for Corrosion Protection,” Surface and Coatings Technology, 111, pp 97–102.
  • Zeng, Z. M., Zhang, T., Tang, B. Y., Tian, X. B., and Chu, P. K. (1999), “Improvement of Tribological Properties of 9Cr18 Bearing Steel Using Metal and Nitrogen Plasma-Immersion Ion Implantation,” Surface and Coatings Technology, 115, pp 234–238.
  • Klingenberg, M., Arps, J., Wei, R., Demaree, J., and Hirvonen, J. (2002), “Practical Applications of Ion Beam and Plasma Processing for Improving Corrosion and Wear Protection,” Surface and Coatings Technology, 158–159, pp 164–169.
  • Xu, S., Ma, X., Sun, M., Sun, Y., and Yukimura, K. (2006), “Microstructure Characteristics of Steel M50 Implanted with Nitrogen by Plasma-Based Ion Implantation at Elevated Temperature,” Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, 242, pp 374–376.
  • Sproul, W. D. (1996), “Physical Vapor Deposition Tool Coatings,” Surface and Coatings Technology, 81(1), pp 1–7.
  • Jehn, H. A. (2000), “Multicomponent and Multiphase Hard Coatings for Tribological Applications,” Surface and Coatings Technology, 131(1–3), pp 433–440.
  • Minevich, A. A., Eizner, B. A., Gick, L. A., and Popok, N. N. (2000), “Case Studies on Tribological Behavior of Coated Cutting Tools,” Tribology Transactions, 43(4), pp 740–748.
  • Inspektor, A., and Salvador, P. A. (2014), “Architecture of PVD Coatings for Metalcutting Applications: A Review,” Surface and Coatings Technology, 257, pp 138–153.
  • Bernoulli, D., Müller, U., Schwarzenberger, M., Hauert, R., and Spolenak, R. (2013), “Magnetron Sputter Deposited Tantalum and Tantalum Nitride Thin Films: An Analysis of Phase, Hardness and Composition,” Thin Solid Films, 548, pp 157–161.
  • Zhou, Y. M., Xie, Z., Xiao, H. N., Hu, P. F., and He, J. (2011), “Effects of Deposition Parameters on Tantalum Films Deposited by Direct Current Magnetron Sputtering in Ar-O2 Mixture,” Applied Surface Science, 258, pp 1699–1703.
  • Gladczuk, L., Patel, A., Paur, C. S., and Sosnowski, M. (2004), “Tantalum Films for Protective Coatings of Steel,” Thin Solid Films, 467, pp 150–157.
  • Clevenger, L. A., Mutscheller, A., Harper, J. M. E., Cabral, C., Jr., and Barmak, K. (1992), “The Relationship Between Deposition Conditions, the Beta to Alpha Phase Transformation, and Stress Relaxation in Tantalum Thin Films,” Journal of Applied Physics, 72, pp 4918–4924.
  • Liu, L., Gong, H., Wang, Y., Wang, J., Wee, A. T. S., and Liu, R. (2001), “Annealing Effects of Tantalum Thin Films Sputtered on [001]Silicon Substrate,” Materials Science and Engineering C, 16, pp 85–89.
  • Hao, S., Zhao, L., Zhang, Y., and Wang, H. (2015), “Improving Corrosion and Wear Resistance of FV520B Steel by High Current Pulsed Electron Beam Surface Treatment,” Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, 356–357, pp 12–16.
  • Hao, S., Xu, Y., Zhang, Y., and Zhao, L. (2013), “Improvement of Surface Microhardness and Wear Resistance of WC/Co Hard Alloy by High Current Pulsed Electron Beam Irradiation,” International Journal of Refractory Metals and Hard Materials, 41, pp 553–557.
  • Hao, Y., Gao, B., Tu, G. F., Li, S. W., Dong, C., and Zhang, Z. G. (2011), “Improved Wear Resistance of Al-15Si Alloy with a High Current Pulsed Electron Beam Treatment,” Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, 269, pp 1499–1505.
  • Xu, F., Guo, G., Tang, G., Ma, X., Wang, L., Ozur, G. E., and Yukimura, K. (2011), “Microstructure Modifications and Corrosion Behaviors of Cr4Mo4V Steel Treated by High Current Pulsed Electron Beam,” Materials Chemistry and Physics, 126(3), pp 904–908.
  • Feng, X., Tang, G., Sun, M., Ma, X., and Wang, L. (2013), “Chemical State and Phase Structure of (TaNbTiW)N Films Prepared by Combined Magnetron Sputtering and PBII,” Applied Surface Science, 280, pp 388–393.
  • Wei, Y. Q., Li, C. W., Gong, C. Z., Tian, X. B., and Yang, S. Q. (2011), “Microstructure and Mechanical Properties of TiN/TiAlN Multilayer Coatings Deposited by Arc Ion Plating with Separate Targets,” Transactions of Nonferrous Metals Society of China, 21(5), pp 1068–1073.
  • Luo, D., Tang, G., Ma, X., Gu, L., Sun, M., and Wang, L. (2015), “Various Categories of Defects after Surface Alloying Induced by High Current Pulsed Electron Beam Irradiation,” Applied Surface Science, 351, pp 1069–1074.
  • Oliver, W. C., and Pharr, G. M. (1992), “An Improved Technique for Determining Hardness and Elastic Modulus Using Load and Displacement Sensing Indentation Experiments,” Journal of Materials Research, 7(6), pp 1564–1583.
  • Xu, F., Tang, G., Guo, G., Ma, X., and Ozur, G. E. (2010), “Influence of Irradiation Number of High Current Pulsed Electron Beam on the Structure and Properties of M50 Steel,” Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, 268, pp 2395–2399.
  • Andriotis, O. G., Manuyakorn, W., Zekonyte, J., Katsamenis, O. L., Fabri, S., Howarth, P. H., Davies, D. E. and Thurner, P. J. (2014), “Nanomechanical Assessment of Human and Murine Collagen Fibrils via Atomic Force Microscopy Cantilever-Based Nanoindentation,” Journal of the Mechanical Behavior of Biomedical Materials, 39, pp 9–26.
  • Yıldız, F., Yetim, A. F., Alsaran, A., Çelik, A., Kaymaz, İ., and Efeoğlu, İ. (2013), “Plain and Fretting Fatigue Behavior of Ti6Al4V Alloy Coated with TiAlN Thin Film,” Tribology International, 66, pp 307–314.
  • Wakuda, M., Yamauchi, Y., Kanzaki, S., and Yasuda, Y. (2003), “Effect of Surface Texturing on Friction Reduction between Ceramic and Steel Materials under Lubricated Sliding Contact,” Wear, 254(3–4), pp 356–363.
  • Pettersson, U., and Jacobson, S. (2004), “Friction and Wear Properties of Micro Textured DLC Coated Surfaces in Boundary Lubricated Sliding,” Tribology Letters, 17(3), pp 553–559.
  • Gangopadhyay, A., and McWatt, D. G. (2008), “The Effect of Novel Surface Textures on Tappet Shims on Valvetrain Friction and Wear,” Tribology Transactions, 51(2), pp 221–230.
  • Li, J., Xiong, D., Wu, H., Huang, Z., Dai, J., and Tyagi, R. (2010), “Tribological Properties of Laser Surface Texturing and Molybdenizing Duplex-Treated Ni-Base Alloy,” Tribology Transactions, 53(2), pp 195–202.
  • Hu, T., and Hu, L. (2011), “Tribological Properties of Lubricating Films on the Al-Si Alloy Surface via Laser Surface Texturing,” Tribology Transactions, 54(5), pp 800–805.
  • Wang, H., Zhu, H., Zhou, Y., and Yang, H. (2015), “Experimental Study on the Friction Characteristics of Textured Steel Surface with Ring-Shaped Pits under Lubricated Sliding Conditions,” Tribology Transactions, 58(4), pp 712–717.
  • Segu, D. Z., and Hwang, P. (2015), “Friction Control by Multi-Shape Textured Surface under Pin-on-Disc Test,” Tribology International, 91, pp 111–117.
  • Han, J., Fang, L., Sun, J., and Ge, S. (2010), “Hydrodynamic Lubrication of Microdimple Textured Surface Using Three-Dimensional CFD,” Tribology Transactions, 53(6), pp 860–870.
  • Çalişkan, H., Panjan, P., and Paskvale, S. (2014), “Monitoring of Wear Characteristics of TiN and TiAlN Coatings at Long Sliding Distances,” Tribology Transactions, 57(3), pp 496–502.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.