It is well known that groove texture with a careful design can be used to enhance the load‐carrying capacity of oil film under the conditions of hydrodynamic lubrication.In this study,a general parametric model was d...It is well known that groove texture with a careful design can be used to enhance the load‐carrying capacity of oil film under the conditions of hydrodynamic lubrication.In this study,a general parametric model was developed,and agenetic algorithm‐sequential quadratic programming hybrid method was adopted to obtain the global‐optimum profile of the groove texture.The optimized profiles at different rotating speeds are all chevrons.The numerical analysis results verified the effect of the optimization.In addition to the numerical optimization,experiments were conducted to validate the superiority of the optimized results.The experimental results show that the optimized groove texture can efficiently reduce the coefficient of friction(COF)and the temperature rise of the specimen.In particular,the optimized groove textures can achieve stable ultra‐low COF values(COF<0.01)under certain conditions.展开更多
Although grease can effectively lubricate machines,lubrication failure may occur under high speed and heavy load conditions.In this study,Mn_(3)O_(4)/graphene nanocomposites(Mn_(3)O_(4)#G)were synthetized using a hydr...Although grease can effectively lubricate machines,lubrication failure may occur under high speed and heavy load conditions.In this study,Mn_(3)O_(4)/graphene nanocomposites(Mn_(3)O_(4)#G)were synthetized using a hydrothermal method as lubricant additives.The lubrication properties of compound grease with Mn_(3)O_(4)#G nanocomposite additive under heavy contact loads of 600–900 N(3.95–4.59 GPa)were investigated.First,the nanocomposites were dispersed into L-XBCEA 0 lithium grease via successive electromagnetic stirring,ultrasound vibration,and three-roll milling.Compound grease with additives of commercial graphene(Com#G)was also investigated for comparison.Tribological test results revealed that the trace amounts of Mn_(3)O_(4)#G(as low as 0.02 wt%)could reduce the coefficient of friction(COF)of grease significantly.When the concentration of Mn_(3)O_(4)#G was 0.1 wt%,the COF and wear depth were 43.5%and 86.1%,lower than those of pure graphene,respectively.In addition,under the effect of friction,the microstructure of graphene in Mn_(3)O_(4)#G nanocomposites tends to be ordered and normalized.Furthermore,most of the Mn_(3)O_(4) transformed into Mn_(2)O_(3) owing to the high temperature generated from friction.Using the Ar gas cluster ion beam sputtering method,the thickness of the tribofilm was estimated to be 25–34 nm.Finally,the improvement of the lubrication properties was attributed to the synergistic effect of the adsorbed tribofilm,i.e.,the graphene island effect and the filling effect of Mn_(3)O_(4)#G.展开更多
In this study,the tribological behaviors of graphene as a lubricant additive for steel/copper and steel/steel friction pairs were compared.For the steel/copper friction pair,the graphene sheets remarkably decreased th...In this study,the tribological behaviors of graphene as a lubricant additive for steel/copper and steel/steel friction pairs were compared.For the steel/copper friction pair,the graphene sheets remarkably decreased the coefficient of friction and wear scar depth under low loads,but these slightly increased under high loads.The steel/steel friction pair showed excellent tribological properties even under high loads.Severe plastic deformation on the copper surface reduced the stability of the graphene tribofilm because of a rough copper transfer film on the steel during the running-in period.The results provide a better understanding of the mechanism of graphene as a lubricant additive.展开更多
Impregnated graphite has attracted considerable attention and has been widely used as an ideal friction material in many fields.However,the influence of the friction temperature on its tribological properties has not ...Impregnated graphite has attracted considerable attention and has been widely used as an ideal friction material in many fields.However,the influence of the friction temperature on its tribological properties has not been clearly studied;furthermore,the evolution mechanism of transferred tribofilm is unknown.In this study,the tribological properties of impregnated graphite were investigated at different friction temperatures,and the evolution of the carbon-based tribofilm was also determined.The results revealed that the tribological properties significantly improved with an increase in friction temperature.The friction coefficient and wear depth of impregnated graphite reduced by 68%and 75%,respectively,at a high temperature of 160℃ compared with those of non-impregnated graphite.The significant properties of the impregnated graphite can be attributed to a transferred carbon-based tribofilm with an ordered structure induced by the friction temperature,which uniformly and stably adsorbs on friction interfaces.This study provides an important basis for designing graphite-based friction materials with improved properties suited for industrial applications.展开更多
Using nanoadditives in lubricants is one of the most effective ways to control friction and wear,which is of great significance for energy conservation,emission reduction,and environmental protection.With the scientif...Using nanoadditives in lubricants is one of the most effective ways to control friction and wear,which is of great significance for energy conservation,emission reduction,and environmental protection.With the scientific and technological development,great advances have been made in nanolubricant additives in the scientific research and industrial applications.This review summarizes the categories of nanolubricant additives and illustrates the tribological properties of these additives.Based on the component elements of nanomaterials,nanolubricant additives can be divided into three types:nanometal-based,nanocarbon-based,and nanocomposite-based additives.The dispersion stabilities of additives in lubricants are also discussed in the review systematically.Various affecting factors and effective dispersion methods have been investigated in detail.Moreover,the review summarizes the lubrication mechanisms of nanolubricant additives including tribofilm formation,micro-bearing effect,self-repair performance,and synergistic effect.In addition,the challenges and prospects of nanolubricant additives are proposed,which guides the design and synthesis of novel additives with significant lubrication and antiwear properties in the future.展开更多
High-pressure axial piston pumps operate in high-speed and high-pressure environments. The contact state of the slipper against the swashplate can easily change from an oil film lubrication to a mixed oil film/asperit...High-pressure axial piston pumps operate in high-speed and high-pressure environments. The contact state of the slipper against the swashplate can easily change from an oil film lubrication to a mixed oil film/asperity contact, or even dry friction. To improve the dry friction performance of slipper pairs and to avoid their potentially rapid failure, this study examined the effects of material matching on the dry friction performance of the slipper pair for high-pressure axial piston pumps. A FAIAX6 friction and wear tester was developed, and the dry friction coefficients of the slipper pairs matched with different materials were studied using this tester. Based on the thermo-mechanical coupling of the slipper pair with the working process, the contact surface temperatures of the slipper pairs matched with different materials were calculated and analyzed for the same working conditions. Following this, the effects of the material properties on the temperature increase at the slipper sliding contact surfaces were revealed. The reliabilities of the temperature calculations and analysis results were verified through orthogonal tests of slipper pairs matched with different materials. The results indicate that the influence of the material density on the friction coefficient is greater than that of the Poisson's ratio or the elastic modulus, and that the slipper material chosen should have a high thermal conductivity, low density, and low specific heat, whereas the swashplate material should be high in specific heat, density, and thermal conductivity;in addition, the slipper pair should be a type of hard material to match the type of soft material applied;that is, the hardness of the swashplate material should be greater than that of the slipper material.展开更多
文摘It is well known that groove texture with a careful design can be used to enhance the load‐carrying capacity of oil film under the conditions of hydrodynamic lubrication.In this study,a general parametric model was developed,and agenetic algorithm‐sequential quadratic programming hybrid method was adopted to obtain the global‐optimum profile of the groove texture.The optimized profiles at different rotating speeds are all chevrons.The numerical analysis results verified the effect of the optimization.In addition to the numerical optimization,experiments were conducted to validate the superiority of the optimized results.The experimental results show that the optimized groove texture can efficiently reduce the coefficient of friction(COF)and the temperature rise of the specimen.In particular,the optimized groove textures can achieve stable ultra‐low COF values(COF<0.01)under certain conditions.
基金This work is supported by the National Key Research Program of China(973 Program)(No.2014CB046404)the National Natural Science Foundation of China(Grant No.51905027)+1 种基金the Fundamental Research Funds for the Central Universities(BUCTRC201908)the Tribology Science Fund of State Key Laboratory of Tribology(SKLTKF18A02).
文摘Although grease can effectively lubricate machines,lubrication failure may occur under high speed and heavy load conditions.In this study,Mn_(3)O_(4)/graphene nanocomposites(Mn_(3)O_(4)#G)were synthetized using a hydrothermal method as lubricant additives.The lubrication properties of compound grease with Mn_(3)O_(4)#G nanocomposite additive under heavy contact loads of 600–900 N(3.95–4.59 GPa)were investigated.First,the nanocomposites were dispersed into L-XBCEA 0 lithium grease via successive electromagnetic stirring,ultrasound vibration,and three-roll milling.Compound grease with additives of commercial graphene(Com#G)was also investigated for comparison.Tribological test results revealed that the trace amounts of Mn_(3)O_(4)#G(as low as 0.02 wt%)could reduce the coefficient of friction(COF)of grease significantly.When the concentration of Mn_(3)O_(4)#G was 0.1 wt%,the COF and wear depth were 43.5%and 86.1%,lower than those of pure graphene,respectively.In addition,under the effect of friction,the microstructure of graphene in Mn_(3)O_(4)#G nanocomposites tends to be ordered and normalized.Furthermore,most of the Mn_(3)O_(4) transformed into Mn_(2)O_(3) owing to the high temperature generated from friction.Using the Ar gas cluster ion beam sputtering method,the thickness of the tribofilm was estimated to be 25–34 nm.Finally,the improvement of the lubrication properties was attributed to the synergistic effect of the adsorbed tribofilm,i.e.,the graphene island effect and the filling effect of Mn_(3)O_(4)#G.
基金This work was supported by National Natural Science Foundation of China(Nos.51527901 and 51335005)the National Key Basic Research Program of China(973 Program,No.2014CB046404)Tribology Science Fund of State Key Laboratory of Tribology(No.SKLTKF18A02).
文摘In this study,the tribological behaviors of graphene as a lubricant additive for steel/copper and steel/steel friction pairs were compared.For the steel/copper friction pair,the graphene sheets remarkably decreased the coefficient of friction and wear scar depth under low loads,but these slightly increased under high loads.The steel/steel friction pair showed excellent tribological properties even under high loads.Severe plastic deformation on the copper surface reduced the stability of the graphene tribofilm because of a rough copper transfer film on the steel during the running-in period.The results provide a better understanding of the mechanism of graphene as a lubricant additive.
基金supported by the National Key R&D Program of China(No.2018YFB2000801)the National Natural Science Foundation of China(No.51905027)+1 种基金the Tribology Science Fund of State Key Laboratory of Tribology(No.SKLTKF18A02)the Fundamental Research Funds for the Central Universities(No.BUCTRC201908).
文摘Impregnated graphite has attracted considerable attention and has been widely used as an ideal friction material in many fields.However,the influence of the friction temperature on its tribological properties has not been clearly studied;furthermore,the evolution mechanism of transferred tribofilm is unknown.In this study,the tribological properties of impregnated graphite were investigated at different friction temperatures,and the evolution of the carbon-based tribofilm was also determined.The results revealed that the tribological properties significantly improved with an increase in friction temperature.The friction coefficient and wear depth of impregnated graphite reduced by 68%and 75%,respectively,at a high temperature of 160℃ compared with those of non-impregnated graphite.The significant properties of the impregnated graphite can be attributed to a transferred carbon-based tribofilm with an ordered structure induced by the friction temperature,which uniformly and stably adsorbs on friction interfaces.This study provides an important basis for designing graphite-based friction materials with improved properties suited for industrial applications.
基金This work is supported by the National Natural Science Foundation of China(51905027)National Key R&D Program of China(2018YFB2000801)+3 种基金Fundamental Research Funds for the Central Universities(BUCTRC201908)Tribology Science Fund of State Key Laboratory of Tribology(SKLTKF18A02)Swedish Research Council for Environment,Agricultural Sciences and Spatial Planning(2016-01098)Swedish Research Council(2019-04941)。
文摘Using nanoadditives in lubricants is one of the most effective ways to control friction and wear,which is of great significance for energy conservation,emission reduction,and environmental protection.With the scientific and technological development,great advances have been made in nanolubricant additives in the scientific research and industrial applications.This review summarizes the categories of nanolubricant additives and illustrates the tribological properties of these additives.Based on the component elements of nanomaterials,nanolubricant additives can be divided into three types:nanometal-based,nanocarbon-based,and nanocomposite-based additives.The dispersion stabilities of additives in lubricants are also discussed in the review systematically.Various affecting factors and effective dispersion methods have been investigated in detail.Moreover,the review summarizes the lubrication mechanisms of nanolubricant additives including tribofilm formation,micro-bearing effect,self-repair performance,and synergistic effect.In addition,the challenges and prospects of nanolubricant additives are proposed,which guides the design and synthesis of novel additives with significant lubrication and antiwear properties in the future.
基金This project was supported by the National Key Basic Research Program of China(973 Program,2014CB046404)training plan for high-level innovative talent in Guizhou province(Grant No.Q.K.H.P.T.R.C[2016]5659)+2 种基金preferred project of scientific and technological activities for personnel studying abroad in Guizhou province(Grant No.Q.R.X.M.Z.Z.H.T[2018]0001)science and technology planning project in Guizhou Province(Grant No.Q.K.H.P.T.R.C[2017]5788)key research project on Innovation group of Guizhou Provincial Education Department(Grant No.Q.J.H.KY Z.[2018]011).
文摘High-pressure axial piston pumps operate in high-speed and high-pressure environments. The contact state of the slipper against the swashplate can easily change from an oil film lubrication to a mixed oil film/asperity contact, or even dry friction. To improve the dry friction performance of slipper pairs and to avoid their potentially rapid failure, this study examined the effects of material matching on the dry friction performance of the slipper pair for high-pressure axial piston pumps. A FAIAX6 friction and wear tester was developed, and the dry friction coefficients of the slipper pairs matched with different materials were studied using this tester. Based on the thermo-mechanical coupling of the slipper pair with the working process, the contact surface temperatures of the slipper pairs matched with different materials were calculated and analyzed for the same working conditions. Following this, the effects of the material properties on the temperature increase at the slipper sliding contact surfaces were revealed. The reliabilities of the temperature calculations and analysis results were verified through orthogonal tests of slipper pairs matched with different materials. The results indicate that the influence of the material density on the friction coefficient is greater than that of the Poisson's ratio or the elastic modulus, and that the slipper material chosen should have a high thermal conductivity, low density, and low specific heat, whereas the swashplate material should be high in specific heat, density, and thermal conductivity;in addition, the slipper pair should be a type of hard material to match the type of soft material applied;that is, the hardness of the swashplate material should be greater than that of the slipper material.