A review on potentials and challenges of nanolubricants as promising lubricants for electric vehicles
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Adolfo Senatore | Maria Sarno | Waleed Ahmed Abdalglil Mustafa | Fabrice Dassenoy | A. Senatore | M. Sarno | F. Dassenoy | Waleed Ahmed Abdalglil Mustafa
[1] Bharat Bhushan,et al. A Review of Ionic Liquids for Green Molecular Lubrication in Nanotechnology , 2010 .
[2] H. Carl Walther,et al. Lubrication of electric motors as defined by IEEE standard 841-2009, shortcomings and potential improvement opportunities , 2014, 2014 IEEE Petroleum and Chemical Industry Technical Conference (PCIC).
[3] T. Peijs,et al. Graphite Nanoplatelet Modified Epoxy Resin for Carbon Fibre Reinforced Plastics with Enhanced Properties , 2017 .
[4] Ping-yu Zhang,et al. A Simple Preparation of HDA-CuS Nanoparticles and Their Tribological Properties as a Water-Based Lubrication Additive , 2019, Tribology Letters.
[5] H. Möhwald,et al. Mesoporous silica nanoparticles for active corrosion protection. , 2011, ACS nano.
[6] K. Lee,et al. Enhancement of thermal conductivity of ethylene glycol based silver nanofluids , 2011 .
[7] Zhengyi Jiang,et al. A study of the tribological behaviour of TiO2 nano-additive water-based lubricants , 2017 .
[8] Zhi-lin Cheng,et al. Study on friction performance of graphene-based semi-solid grease , 2014 .
[9] Sarit K. Das,et al. Thermal conductivities of naked and monolayer protected metal nanoparticle based nanofluids: Manifestation of anomalous enhancement and chemical effects , 2003 .
[10] Kang Yang,et al. Tribological behavior of ZnO-Si3N4 nanoparticles-based lubricating grease , 2018 .
[11] M. E. Díaz-García,et al. New metal-free nanolubricants based on carbon-dots with outstanding antiwear performance , 2020 .
[12] M. Afrand,et al. Experimental evaluation of dynamic viscosity of ZnO–MWCNTs/engine oil hybrid nanolubricant based on changes in temperature and concentration , 2018, Journal of Thermal Analysis and Calorimetry.
[13] Paul D. Walker,et al. Efficiency comparison of electric vehicles powertrains with dual motor and single motor input , 2018, Mechanism and Machine Theory.
[14] N. Anusha,et al. Cerium oxide-ethylene glycol nanofluids with improved transport properties: Preparation and elucidation of mechanism , 2015 .
[15] Yujin Hwang,et al. Thermal conductivity and lubrication characteristics of nanofluids , 2006 .
[16] Michio Hoshino. Theory of grease lubrication : Technological trends of grease lubrication , 2002 .
[17] L. Rudnick. Lubricant Additives : Chemistry and Applications, Second Edition , 2009 .
[18] R. Yun,et al. Particle shape effect on the viscosity and thermal conductivity of ZnO nanofluids , 2013 .
[19] Sarit K. Das,et al. Thermal conductivity enhancement of nanofluids containing graphene nanosheets , 2011 .
[20] M. Afrand,et al. Heat transfer efficiency of Al2O3-MWCNT/thermal oil hybrid nanofluid as a cooling fluid in thermal and energy management applications: An experimental and theoretical investigation , 2018 .
[21] D. Grecov,et al. Aqueous suspensions of cellulose nanocrystals as water-based lubricants , 2019, Cellulose.
[22] S Raadnui,et al. Electrical pitting of grease-lubricated rolling and sliding bearings: a comparative study , 2012 .
[23] Alaa Mohamed,et al. Tribological Behavior of Carbon Nanotubes as an Additive on Lithium Grease , 2015 .
[24] A. Radulescu,et al. Rheological models for lithium and calcium greases , 2006 .
[25] V. An,et al. Influence of Copper Nanoparticles on Tribological Properties of Nanolamellar Tungsten Disulfide , 2016 .
[26] Feng He,et al. Electrical bearing failures in electric vehicles , 2020, Friction.
[27] Davood Toghraie,et al. Designing an artificial neural network to predict dynamic viscosity of aqueous nanofluid of TiO2 using experimental data , 2016 .
[28] D. Toghraie,et al. Experimental investigation for developing a new model for the dynamic viscosity of silver/ethylene glycol nanofluid at different temperatures and solid volume fractions , 2018, Journal of Thermal Analysis and Calorimetry.
[29] B. Sauer,et al. The Influence of Lubricant Conductivity on Bearing Currents in the Case of Rolling Bearing Greases , 2019 .
[30] H. Kang,et al. Estimation of Thermal Conductivity of Nanofluid Using Experimental Effective Particle Volume , 2006 .
[31] Ali Khademhosseini,et al. Carbon-based nanomaterials: multifunctional materials for biomedical engineering. , 2013, ACS nano.
[32] P. I. Nippes. Early warning of developing problems in rotating Machinery as provided by monitoring shaft Voltages and grounding currents , 2004 .
[33] Mohammad Hemmat Esfe,et al. Investigation of rheological behavior of hybrid oil based nanolubricant-coolant applied in car engines and cooling equipments , 2018 .
[34] J. Rühe,et al. Macroscopic Friction Studies of Alkylglucopyranosides as Additives for Water-Based Lubricants , 2020 .
[35] Zhen‐Guo Yang,et al. Fatigue Failure Analysis of a Grease-Lubricated Roller Bearing from an Electric Motor , 2011 .
[36] Rashmi Walvekar,et al. Thermal conductivity of carbon nanotube nanofluid—Experimental and theoretical study , 2012 .
[37] R. Chou,et al. Tribological behavior of polyalphaolefin with the addition of nickel nanoparticles , 2010 .
[38] G. Wells,et al. Apparent Contact Angles on Lubricant-Impregnated Surfaces/SLIPS: From Superhydrophobicity to Electrowetting. , 2019, Langmuir : the ACS journal of surfaces and colloids.
[39] He Qiang,et al. Tribological and rheological properties of nanorods–Al2O3 as additives in grease , 2018, Proceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology.
[40] A. Senatore,et al. rGO/GO Nanosheets in Tribology: From the State of the Art to the Future Prospective , 2020 .
[41] M. Kaneta,et al. Preliminary Measurements of Electrical Micropitting in Grease-Lubricated Point Contacts , 2011 .
[42] M. H. Nazir,et al. Synergistic wear-corrosion analysis and modelling of nanocomposite coatings , 2018 .
[43] R. Prasher,et al. Thermal conductivity of nanoscale colloidal solutions (nanofluids). , 2005, Physical review letters.
[44] S. Boyde. Green lubricants. Environmental benefits and impacts of lubrication , 2002 .
[45] A S Mikhailov,et al. Sudden Onset of Pitting Corrosion on Stainless Steel as a Critical Phenomenon , 2004, Science.
[46] Wei Chen,et al. MgO nanofluids: higher thermal conductivity and lower viscosity among ethylene glycol-based nanofluids containing oxide nanoparticles , 2010 .
[47] M. Ali,et al. Enhancing the thermophysical properties and tribological behaviour of engine oils using nano-lubricant additives , 2016 .
[48] Haisheng Chen,et al. Heat transfer and flow behaviour of aqueous suspensions of TiO2 nanoparticles (nanofluids) flowing upward through a vertical pipe , 2007 .
[49] Xiao-jie Li,et al. On the Influencing Factors and Strengthening Mechanism for Thermal Conductivity of Nanofluids by Molecular Dynamics Simulation , 2011 .
[50] Chao-Bo Yan,et al. Friction-Induced Hardening Behaviors and Tribological Properties of 60NiTi Alloy Lubricated by Lithium Grease Containing Nano-BN and MoS2 , 2019, Tribology Transactions.
[51] Y. Ohki,et al. Difference in surface degradation due to partial discharges between polyamide nanocomposite and microcomposite [electrical insulation applications] , 2004, The 17th Annual Meeting of the IEEE Lasers and Electro-Optics Society, 2004. LEOS 2004..
[52] Albino J. K. Leiroz,et al. Experimental investigation of the tribological behavior of lubricants with additive containing copper nanoparticles , 2018 .
[53] Michael O'Keeffe,et al. A route to high surface area, porosity and inclusion of large molecules in crystals , 2004, Nature.
[54] A. Muetze,et al. Don't lose your bearings , 2006, IEEE Industry Applications Magazine.
[55] M. Gálvez,et al. New Approach for Understanding the Oxidation Stability of Neopolyol Ester Lubricants Using a Small-Scale Oxidation Test Method , 2018, ACS omega.
[56] Sanghyun Park,et al. Tribological effects of fullerene (C60) nanoparticles added in mineral lubricants according to its viscosity , 2010 .
[57] R. S. Mulik,et al. Effect of carbon nanotubes and aluminum oxide on the properties of a plasma sprayed thermal barrier coating , 2018 .
[58] W. Sawyer,et al. In Situ Lubrication with Boric Acid: Powder Delivery of an Environmentally Benign Solid Lubricant , 2006 .
[59] S. Krawiec. On the mechanism of the synergistic effect of PTFE and copper in a lithium grease lubricant , 2011 .
[60] R. Kelly,et al. Passivity breakdown and pitting corrosion of binary alloys , 1991, Nature.
[61] Salete Martins Alves,et al. Tribological behavior of vegetable oil-based lubricants with nanoparticles of oxides in boundary lubrication conditions , 2013 .
[62] Jianbin Luo,et al. Micro-Bubble Phenomenon in Nanoscale Water-based Lubricating Film Induced by External Electric Field , 2008 .
[63] M. G. Ivanov,et al. Antioxidant Properties of Nanocarbon-based Nanolubricants , 2018, MRS Advances.
[64] Annette Muetze,et al. Effects of Electrostatic Discharges on Bearing Grease Dielectric Strength and Composition , 2016, IEEE Transactions on Industry Applications.
[65] Theoretical study of the thermal behavior of free and alumina-supported Fe-C nanoparticles , 2006, cond-mat/0612562.
[66] D. Toghraie,et al. Experimental investigation for developing a new model for the thermal conductivity of Silica/Water-Ethylene glycol (40%–60%) nanofluid at different temperatures and solid volume fractions , 2017 .
[67] A. Alivisatos,et al. Melting in Semiconductor Nanocrystals , 1992, Science.
[68] Qiang He,et al. Tribological properties of nanometer cerium oxide as additives in lithium grease , 2017 .
[69] O. P. Khatri,et al. Pristine and Alkylated MoS2 Nanosheets for Enhancement of Tribological Performance of Paraffin Grease Under Boundary Lubrication Regime , 2019, Journal of Tribology.
[70] J. Thibault,et al. Thermal conductivity of non-Newtonian nanofluids: Experimental data and modeling using neural network , 2011 .
[71] C. C. Chan,et al. The state of the art of electric and hybrid vehicles , 2002, Proc. IEEE.
[72] Amit Patra,et al. Impact of a Frequency Modulated Pulsewidth Modulation (PWM) Switching Converter on the Input Power System Quality , 2010, IEEE Transactions on Power Electronics.
[73] Carlos Segovia Fernández,et al. The tribological behaviour of ZnO nanoparticles as an additive to PAO6 , 2006 .
[74] Junmin Wang,et al. Development and performance characterization of an electric ground vehicle with independently actuated in-wheel motors , 2011 .
[75] A. Chan,et al. Heat transfer and tribological performance of graphene nanolubricant in an internal combustion engine , 2016 .
[76] F. Dassenoy,et al. Real Time TEM Imaging of Compression and Shear of Single Fullerene-Like MoS2 Nanoparticle , 2011, Tribology Letters.
[77] Y. Ohki,et al. Effects of nano-filler addition on partial discharge resistance and dielectric breakdown strength of Micro-Al2O3Epoxy composite , 2010, IEEE Transactions on Dielectrics and Electrical Insulation.
[78] Zhengyi Jiang,et al. Tribological Characteristics of Aqueous Graphene Oxide, Graphitic Carbon Nitride, and Their Mixed Suspensions , 2018, Tribology Letters.
[79] M. Afrand,et al. Estimation of thermal conductivity of Al2O3/water (40%)–ethylene glycol (60%) by artificial neural network and correlation using experimental data , 2016 .
[80] P. Meakin,et al. Effect of aggregation on thermal conduction in colloidal nanofluids , 2006 .
[81] D. Liang,et al. Tribological behavior of mineral and synthetic ester base oil containing MoS2 nanoparticles , 2019 .
[82] Alaa Mohamed,et al. Rheological characteristics of modified calcium grease with graphene nanosheets , 2017 .
[83] Zhengyi Jiang,et al. The pH-dependent structural and tribological behaviour of aqueous graphene oxide suspensions , 2017 .
[84] Rashmi Walvekar,et al. Study of graphene nanolubricant using thermogravimetric analysis , 2016 .
[85] P. Ajayan,et al. Multifunctional nanofluids with 2D nanosheets for thermal and tribological management , 2013 .
[86] Bearing grease deterioration , 2001 .
[87] C. Nan,et al. Effective thermal conductivity of particulate composites with interfacial thermal resistance , 1997 .
[88] Neeraj Atray,et al. Study of a novel phenolic-ester as antioxidant additive in lube, biodiesel and blended diesel , 2016 .
[89] W. Xie,et al. Preparation and properties of copper-oil-based nanofluids , 2011, Nanoscale research letters.
[90] N. Kim,et al. Influence of the oxidation treatment and the average particle diameter of graphene for thermal conductivity enhancement , 2014 .
[91] T. Osman,et al. Novel Tribological Behavior of Hybrid MWCNTs/MLNGPs as an Additive on Lithium Grease , 2017 .
[92] Sarit K. Das,et al. Effect of particle size on the convective heat transfer in nanofluid in the developing region , 2009 .
[93] Pradeep L Menezes,et al. Influence of boric acid additive size on green lubricant performance , 2010, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[94] R. Chou,et al. Antiwear properties of carbon-coated copper nanoparticles used as an additive to a polyalphaolefin , 2011 .
[95] M. Ali,et al. Improving the heat transfer capability and thermal stability of vehicle engine oils using Al2O3/TiO2 nanomaterials , 2020 .
[96] A. H. Bonnett. Operating temperature considerations and performance characteristics for IEEE 841 motors , 2000, Record of Conference Papers. Industry Applications Society Forty-Seventh Annual Conference. 2000 Petroleum and Chemical Industry Technical Conference (Cat. No.00CH37112).
[97] Mingming Niu,et al. Tribological properties of nano-graphite as an additive in mixed oil-based titanium complex grease , 2018, RSC Advances.
[98] Zhengyi Jiang,et al. Novel water-based nanolubricant with superior tribological performance in hot steel rolling , 2020, International Journal of Extreme Manufacturing.
[99] D. Banerjee,et al. Silica nanoparticles as copper corrosion inhibitors , 2019, Materials Research Express.
[100] Han-Wook Cho,et al. Investigation of Temperature Rise in an Induction Motor Considering the Effect of Loading , 2014, IEEE Transactions on Magnetics.
[101] Tong Xiaomeng,et al. ロータ力学同期不安定に及ぼす両側オーバーハング円板とパラメータ効果 -Morton効果- 第1部:理論とモデリング手法 , 2017 .
[102] Y. Kobayashl,et al. Change of grease characteristics to the end of lubricating life , 2000 .
[103] P. Ciambelli,et al. Oil lubricant tribological behaviour improvement through dispersion of few layer graphene oxide. , 2014, Journal of nanoscience and nanotechnology.
[104] Sung Chul Kim,et al. Thermal performance of oil spray cooling system for in-wheel motor in electric vehicles , 2014 .
[105] Mikhail L. Zheludkevich,et al. Anticorrosion Coatings with Self-Healing Effect Based on Nanocontainers Impregnated with Corrosion Inhibitor , 2007 .
[106] Zhan-jun Li,et al. Impact of Boron Nitride Nanoparticles on the Wear Property of Lithium Base Grease , 2020, Journal of Materials Engineering and Performance.
[107] Mitjan Kalin,et al. Mechanisms and improvements in the friction and wear behavior using MoS2 nanotubes as potential oil additives , 2012 .
[108] M. Ashjaee,et al. Experimental investigation on thermal conductivity of water based nickel ferrite nanofluids , 2015 .
[109] M. Hua,et al. Preparation of anti-corrosion films by microarc oxidation on an Al–Si alloy , 2007 .
[110] Wei-min Liu,et al. Tribological investigation of CaF2 nanocrystals as grease additives , 2007 .
[111] Mustafa Akbulut,et al. Nanoparticle-Based Lubrication Systems , 2012 .
[112] W. Roetzel,et al. TEMPERATURE DEPENDENCE OF THERMAL CONDUCTIVITY ENHANCEMENT FOR NANOFLUIDS , 2003 .
[113] The future of lubricating greases in the electric vehicle era , 2019 .
[114] Fuwu Yan,et al. Modeling and Multi-Objective Optimization of Engine Performance and Hydrocarbon Emissions via the Use of a Computer Aided Engineering Code and the NSGA-II Genetic Algorithm , 2016 .
[115] C. Nan. Physics of inhomogeneous inorganic materials , 1993 .
[116] G. Najafi,et al. Experimental investigation on stability and thermo-physical properties of Al2O3–SiO2/PAG nanolubricants with different nanoparticle ratios , 2018, Journal of Thermal Analysis and Calorimetry.
[117] Yuan Kang,et al. Size effects of SiO2 nanoparticles as oil additives on tribology of lubricant , 2010 .
[118] Gilbert Fantozzi,et al. Thermal shock and thermal fatigue study of ceramic materials on a newly developed ascending thermal shock test equipment , 2002 .
[119] S. Mintova,et al. Zeolite Nanocrystals Protect the Performance of Organic Additives and Adsorb Acid Compounds during Lubricants Oxidation , 2019, Materials.
[120] Wei-min Liu,et al. Tribological properties of nano‐calcium borate as lithium grease additive , 2014 .
[121] Qiang He,et al. Effect of nanometer silicon dioxide on the frictional behavior of lubricating grease , 2017 .
[122] Xiong Liping,et al. Tribological and Antioxidation Synergistic Effect Study of Sulfonate-Modified Nano Calcium Carbonate , 2013, PLoS ONE.
[123] M. Zamani,et al. Scavenging performance and antioxidant activity of γ-alumina nanoparticles towards DPPH free radical: Spectroscopic and DFT-D studies. , 2018, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[124] Ho Chang,et al. Anti-wear and friction properties of nanoparticles as additives in the lithium grease , 2014 .
[125] Janko Petrovčič,et al. Detection of lubrication starved bearings in electrical motors by means of vibration analysis , 2010 .
[126] Kan Liu. Heat transfer measurement in oil-based nanofluids. , 2011 .
[127] Jean L. Cornillot,et al. Annual Book of ASTM Standards , 2016 .
[128] Alokmay Datta,et al. Observation of molecular layering in thin liquid films using X-Ray reflectivity , 1999 .
[129] J. L. Duda,et al. Evaluation of liquid phase oxidation products of ester and mineral oil lubricants , 1984 .
[130] Yufu Xu,et al. Tribological properties of molybdenum disulfide nanosheets by monolayer restacking process as additive in liquid paraffin , 2009 .
[131] Jayanta Chakraborty,et al. Gram-Scale Green Synthesis of Copper Nanowire Powder for Nanofluid Applications , 2019, ACS Sustainable Chemistry & Engineering.
[132] Pieter Martin Lugt,et al. Modern advancements in lubricating grease technology , 2016 .
[133] K. Holmberg,et al. The impact of tribology on energy use and CO2 emission globally and in combustion engine and electric cars , 2019, Tribology International.
[134] C. Park,et al. Numeric based low viscosity adiabatic thermo-tribological performance analysis of piston-skirt liner system lubrication at high engine speed , 2018, Tribology International.
[135] C. Zou,et al. Experimental investigation on stability and thermal conductivity of diathermic oil based TiO2 nanofluids , 2017 .
[136] Bahaa M. Kamel,et al. Development and manufacturing an automated lubrication machine test for nano grease , 2020 .
[137] S. Chen,et al. Influence of ZrO2 Nanoparticle as Additive on Tribological Property of Lithium Grease , 2010 .
[138] Patricia E. Gharagozloo,et al. A Benchmark Study on the Thermal Conductivity of Nanofluids , 2009 .
[139] Adolfo Senatore. Editorial: Special issue "automotive tribology" , 2020 .
[140] B. Vengudusamy,et al. On the film forming and friction behaviour of greases in rolling/sliding contacts , 2019, Tribology International.
[141] M. Afrand,et al. An experimental study on viscosity of alumina-engine oil: Effects of temperature and nanoparticles concentration , 2016 .
[142] N. Tandon,et al. Tribological and Vibration Studies on Newly Developed Nanocomposite Greases Under Boundary Lubrication Regime , 2018 .
[143] H. Jiang,et al. An experimental study and mechanism analysis on improving dispersion stability performance of Al2O3 nanoparticles in base synthetic oil under various mixing conditions , 2021, Journal of Nanoparticle Research.
[144] Ping-Hei Chen,et al. Effect of viscosity of base fluid on thermal conductivity of nanofluids , 2008 .
[145] Wei-min Liu,et al. Tribological Properties of CaCO3 Nanoparticles as an Additive in Lithium Grease , 2011 .
[146] David W. Johnson,et al. Phosphate Esters, Thiophosphate Esters and Metal Thiophosphates as Lubricant Additives , 2013 .
[147] H. E. Boyanton,et al. Bearing fluting [motors] , 2002 .
[148] F. Dassenoy. Nanoparticles as Additives for the Development of High Performance and Environmentally Friendly Engine Lubricants , 2019, Tribology Online.
[149] C. T. Nguyen,et al. Temperature and particle-size dependent viscosity data for water-based nanofluids : Hysteresis phenomenon , 2007 .
[150] D. Berman,et al. Inhibitor or promoter: Insights on the corrosion evolution in a graphene protected surface , 2018 .
[151] M. Zahn,et al. Modeling of Streamer Propagation in Transformer Oil-Based Nanofluids , 2008, 2008 Annual Report Conference on Electrical Insulation and Dielectric Phenomena.
[152] H. Fujita,et al. Newly Developed Motor Cooling Method Using Refrigerant , 2019, World Electric Vehicle Journal.
[153] Y. Meng,et al. Supercritical Fluid Synthesis and Tribological Applications of Silver Nanoparticle-decorated Graphene in Engine Oil Nanofluid , 2016, Scientific Reports.
[154] Yanqiu Xia,et al. Tribological properties and insulation effect of nanometer TiO2 and nanometer SiO2 as additives in grease , 2015 .
[155] H. Masjuki,et al. Tribological performance of nanoparticles as lubricating oil additives , 2016, Journal of Nanoparticle Research.
[156] Fenghua Su,et al. Lubricating performances of graphene oxide and onion-like carbon as water-based lubricant additives for smooth and sand-blasted steel discs , 2018, Friction.
[157] Anirudha V. Sumant,et al. Graphene: a new emerging lubricant ☆ , 2014 .
[158] R. Tenne,et al. Fullerene‐like WS2 Nanoparticles: Superior Lubricants for Harsh Conditions , 2003 .
[159] Z.D. Wang,et al. Particle Effect on Breakdown Voltage of Mineral and Ester Based Transformer Oils , 2008, 2008 Annual Report Conference on Electrical Insulation and Dielectric Phenomena.
[160] Josefa Fernández,et al. Effect of ZrO2 nanoparticles on thermophysical and rheological properties of three synthetic oils , 2018, Journal of Molecular Liquids.
[161] Automotive Tribology , 2019, Energy, Environment, and Sustainability.
[162] A. Yaqub,et al. Interaction of gold nanoparticles with free radicals and their role in enhancing the scavenging activity of ascorbic acid. , 2016, Journal of photochemistry and photobiology. B, Biology.
[163] María-Dolores Bermúdez,et al. Ionic Liquids as Advanced Lubricant Fluids , 2009, Molecules.
[164] Sindee L. Simon,et al. The melting behavior of aluminum nanoparticles , 2007 .
[165] K. Komai,et al. Tribofilm formation and mild wear by tribo-sintering of nanometer-sized oxide particles on rubbing steel surfaces , 2007 .
[166] H. Spikes,et al. Mechanism of Action of Colloidal Solid Dispersions , 2003 .
[167] N. C. Murmu,et al. Tribological behavior of dodecylamine functionalized graphene nanosheets dispersed engine oil nanolubricants , 2019, Tribology International.
[168] H. Hong,et al. Carbon nanotubes grease with high electrical conductivity , 2020 .
[169] Abdulhassan A. Karamallah,et al. Convective Heat Transfer and Stability of Oil –Based Nanofluid , 2016 .
[170] M. Alakula,et al. Characterization and application of forced cooling channels for traction motors in HEVs , 2012, 2012 XXth International Conference on Electrical Machines.
[171] Yurong He,et al. Experimental investigation of thermal conductivity and viscosity of ethylene glycol based ZnO nanofluids , 2015 .
[172] S. Mohtasebi,et al. Preparation and thermal properties of oil-based nanofluid from multi-walled carbon nanotubes and engine oil as nano-lubricant☆ , 2013 .
[173] M. E. Díaz-García,et al. Engineered silica nanoparticles as additives in lubricant oils , 2015, Science and technology of advanced materials.
[174] M. Shafii,et al. Boiling heat transfer on a high temperature silver sphere in nanofluid , 2009 .
[175] M. Saeedinia,et al. Thermal and rheological characteristics of CuO–Base oil nanofluid flow inside a circular tube , 2012 .
[176] G. Peterson,et al. The effect of particle size on the effective thermal conductivity of Al2O3-water nanofluids , 2007 .
[177] Xiaowei Pei,et al. Synthesis of water-soluble carbon nanotubes via surface initiated redox polymerization and their tribological properties as water-based lubricant additive , 2008 .
[178] Mohamed A. A. Abdelkareem,et al. Anti-wear properties evaluation of frictional sliding interfaces in automobile engines lubricated by copper/graphene nanolubricants , 2019, Friction.
[179] M. Ali,et al. Role of bis(2-ethylhexyl) phosphate and Al2O3/TiO2 hybrid nanomaterials in improving the dispersion stability of nanolubricants , 2020 .
[180] Remigiusz Michalczewski,et al. Effect of CuO and Al2O3 nanoparticle additives on the tribological behavior of fully formulated oils , 2015 .
[181] Bahaa M. Kamel,et al. Tribological characterization and rheology of hybrid calcium grease with graphene nanosheets and multi-walled carbon nanotubes as additives , 2020 .
[182] Ronghai Qu,et al. Thermal model of totally enclosed water-cooled permanent magnet synchronous machines for electric vehicle applications , 2014, 2014 International Conference on Electrical Machines (ICEM).
[183] Laigui Yu,et al. Preparation and Tribological Properties of Surface-Capped Copper Nanoparticle as a Water-Based Lubricant Additive , 2014, Tribology Letters.
[184] K. Suzuki,et al. Cooling airflow in unidirectional ventilated open-type motor for electric vehicles , 2006, IEEE Transactions on Energy Conversion.
[185] Junichi Suzumura,et al. Prevention of Electrical Pitting on Rolling Bearings by Electrically Conductive Grease , 2016 .
[186] Jussi Tamminen,et al. Radio-frequency-based detection of electrical discharge machining bearing currents , 2011 .
[187] Min-Soo Kim,et al. Numerical investigation and optimization of the thermal performance of a brushless DC motor , 2009 .
[188] S. Mischler,et al. Effect of electrochemical and mechanical parameters on the lubrication behaviour of Al2O3 nanoparticles in aqueous suspensions , 2006 .
[189] S. Phillpot,et al. Mechanisms of heat flow in suspensions of nano-sized particles (nanofluids) , 2002 .
[190] M. J. Costello,et al. Shaft voltages and rotating machinery , 1991, Industry Applications Society 38th Annual Petroleum and Chemical Industry Conference.
[191] Jixiong Fei,et al. Dispersibility and rheological behavior of functionalized silica nanoparticles as lubricant additives , 2018, Ceramics International.
[192] J. Qu,et al. Synergistic Interactions Between Silver and Palladium Nanoparticles in Lubrication , 2019, ACS Applied Nano Materials.
[193] Leonardo Israel Farfan-Cabrera,et al. Tribology of electric vehicles: A review of critical components, current state and future improvement trends , 2019, Tribology International.
[194] E. Grulke,et al. Anomalous thermal conductivity enhancement in nanotube suspensions , 2001 .
[195] S. C. Dodson. On Use of Grease in Rolling Bearings , 1967 .
[196] R. Mamat,et al. Experimental investigation of heat transfer and friction factor of TiO2-SiO2 nanofluids in water:ethylene glycol mixture , 2018, International Journal of Heat and Mass Transfer.
[197] Ajay P. Malshe,et al. Fundamental understanding of the tribological and thermal behavior of Ag–MoS2 nanoparticle-based multi-component lubricating system , 2012 .
[198] B. Shrestha,et al. Status of Pure Electric Vehicle Power Train Technology and Future Prospects , 2020, Applied System Innovation.
[199] C. N. Lau,et al. Superior thermal conductivity of single-layer graphene. , 2008, Nano letters.
[200] Huaqing Xie,et al. Enhanced Thermal Conductivity for Nanofluids Containing Silver Nanowires with Different Shapes , 2017 .
[201] Xiangsheng Xia,et al. Lubrication performance of MoS2 and SiO2 nanoparticles as lubricant additives in magnesium alloy-steel contacts , 2016 .
[202] M. Moravej,et al. Experimental study on the rheological behavior of silver-heat transfer oil nanofluid and suggesting two empirical based correlations for thermal conductivity and viscosity of oil based nanofluids , 2016 .
[203] Luis Lugo,et al. Thermal conductivity and viscosity measurements of ethylene glycol-based Al2O3 nanofluids , 2011, Nanoscale research letters.
[204] Chi-Chuan Wang,et al. Enhancement of thermal conductivity with carbon nanotube for nanofluids , 2005 .
[205] S. Mohtasebi,et al. Thermal and rheological properties of oil-based nanofluids from different carbon nanostructures , 2013 .
[206] Haji Hassan Masjuki,et al. Experimental Analysis of Tribological Properties of Biolubricant with Nanoparticle Additive , 2013 .
[207] X. Wang,et al. Effect of Al2O3 Particle Size on Electrical Wear Performance of Al2O3/Cu Composites , 2016 .
[208] Stephen E. Wiberley,et al. Flow Properties of Lithium Stearate-Oil Model Greases as Functions of Soap Concentration and Temperature , 1960 .
[209] Bassem A. Kheireddin,et al. Influence of surface topography on frictional properties of Cu surfaces under different lubrication conditions: Comparison of dry, base oil, and ZnS nanowire-based lubrication system , 2011 .
[210] G. Frankel. Pitting Corrosion of Metals A Review of the Critical Factors , 1998 .