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Lubrication of dry sliding metallic contacts by chemically prepared functionalized graphitic nanoparticles

机译:通过化学制备的官能化石墨纳米粒子润滑干滑动金属触头

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Understanding the mechanism of precision sliding contacts with thin, adherent solid nano lubricating particle films is important to improve friction and wear behavior and ensure mechanical devices have long service lifetimes. Herein, a facile and multistep approach for the preparation of graphene oxide (GO) is presented. Subsequently, surface modification of as-synthesized GO with octadecyl amine (ODA) is performed to prepare hydrophobic GO-ODA and with 6-amino-4-hydroxy-2-naphthalenesulfonic acid (ANS) to prepare amphoteric GO-ANS through a nucleophilic addition reaction. X-ray diffraction and ultraviolet-visible, Fourier transform infrared, and Raman spectroscopy provide significant information about the reduction of oxygen functionalities on GO and the introduction of new functionalities in GO-ODA and GO-ANS. The effects of particle functionalization for the improved control of particle adhesion to the tribocontact have been studied. Wettability and thermal stability were determined using the water contact angle, and atomic force microscopy and differential scanning calorimetry (DSC) were used to characterize particle adhesion to the tribocontact. The tribological performances of the particles have been investigated using macro- and micro-tribometry using pin/ball-on-disc contact geometries. The influence of particle functionalization on the contact pressure and sliding velocity was also studied under rotating and reciprocating tribo-contact in ambient conditions. With an increase in the contact pressure, the functionalized particles are pushed down into the contact, and they adhere to the substrate to form a continuous film that eventually reduces friction. Amphoteric GO-ANS provides the lowest and most steady coefficient of friction (COF) under all tested conditions along with low wear depth and minimal plastic deformation. This is because particles with superior wetting and thermal properties can have better adherence to and stability on the surface. GO-ANS has a superior ability to adhere on the track to form a thicker and more continuous film at the interface, which is investigated by field emission scanning electron microscopy, energy dispersive spectroscopy, and Raman analysis.
机译:理解具有薄的精密滑动触点的机理,粘附的固体纳米润滑颗粒膜是重要的,以改善摩擦和磨损行为,并确保机械装置具有长的服务寿命。这里,提出了一种用于制备石墨烯(GO)的容易和多步方法。随后,进行二碳基胺(ODA)的表面改性以制备疏水性Go-ODA和6-氨基-4-羟基-2-萘磺酸(ANS),通过亲核的加法制备两性去α反应。 X射线衍射和紫外线可见,傅里叶变换红外线和拉曼光谱提供有关降低氧函数的重要信息,以及在Go-ODA和Go-Ans中引入新功能。研究了颗粒官能化对颗粒粘附控制对摩擦症的影响。使用水接触角测定润湿性和热稳定性,原子力显微镜和差示扫描量热法(DSC)用于表征与Tribocontact的颗粒粘附。已经使用销/球形圆盘接触几何形状使用宏观和微米谱法研究了颗粒的摩擦学性能。在环境条件下旋转和往复摩擦接触,还研究了颗粒官能化对接触压力和滑动速度的影响。随着接触压力的增加,将官能化颗粒被推入触点,它们粘附到基材上以形成最终减少摩擦的连续膜。两性Go-ANS在所有测试条件下提供最低和最稳定的摩擦系数(COF)以及低磨损深度和最小的塑性变形。这是因为具有优异润湿和热性能的颗粒可以更好地粘附和表面上的稳定性。 Go-Ans具有卓越的粘附在轨道上,以在界面处形成更厚的更连续的薄膜,该界面被场发射扫描电子显微镜,能量分散光谱和拉曼分析研究。

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