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金刚石/类金刚石复合涂层在模拟海水环境中的摩擦学性能研究OA

Tribological Performance of Diamond/Diamond-like Composite Coatings in Simulated Seawater Environment

中文摘要英文摘要

目的 针对海洋旋转密封装置使用到的碳化硅机械密封环存在的高磨损问题,对表面改性防护涂层的"高硬度-低摩擦-耐磨损"协同性能提出要求.方法 本研究采用热丝化学气相沉积(HFCVD)与磁控溅射辅助离子束沉积复合工艺,设计并制备了金刚石/类金刚石碳(DLC)复合涂层.首先通过 HFCVD 技术在碳化硅基底表面制备具有不同晶粒尺寸的微晶金刚石(MCD)、超细纳米晶金刚石(UNCD)涂层,随后利用磁控溅射辅助离子束沉积在其表面构筑DLC润滑功能层,形成"刚性底层-润滑表层"的双层结构,旨在协同金刚石的超高硬度与DLC的低摩擦特性,克服单一涂层的性能局限.随后,系统研究复合涂层在模拟海水环境中的摩擦学性能.结果 类金刚石可以改善金刚石涂层的表面形貌,而且通过将二者结合起来可以有效弥补各自的短板,实现协同性能需求,最终使金刚石/类金刚石复合涂层在模拟海水环境中拥有比单一金刚石涂层更优的摩擦性能.结论 DLC的引入使MCD基底粗糙度从 155.33 nm降至123.77 nm、UNCD基底的粗糙度从 92.43 nm降至81.90 nm,且MCD/DLC的稳态摩擦系数与比磨损率分别降低32.08%、12.22%,UNCD/DLC的分别改善 26.67%、20.92%.结合扫描电镜(SEM)、拉曼光谱(Raman)及X射线光电子能谱(XPS)对摩擦前后涂层表面形貌与结构分析,揭示表层的类金刚石碳膜能够有效减弱界面剪切应力,从而增强边界润滑效应,而且DLC的存在加速了摩擦引起的石墨化过程.

To address the simultaneous and critical demand of marine moving parts for advanced protective coatings that synergistically combine high hardness,low friction coefficient,and exceptional corrosion resistance,an innovative diamond/DLC duplex coating architecture is strategically designed and fabricated through a hybrid deposition approach integrating hot-filament chemical vapour deposition(HFCVD)and magnetron-sputter-assisted ion-beam deposition.This sophisticated fabrication methodology is specifically conceived to engineer a composite coating system that overcomes the inherent limitations of monolithic coatings.The deposition sequence commences with the synthesis of foundational diamond layers onto silicon carbide(SiC)substrates by HFCVD.Two distinct diamond morphologies are engineered:a micro-crystalline diamond(MCD)layer,characterized by its faceted,large-grain structure providing supreme load-bearing capacity,and an ultra-nanocrystalline diamond(UNCD)layer,featuring exceptionally fine,nanometer-scale grains that yield a naturally smoother surface finish.These diamond layers serve as the primary,rigid mechanical support,and are engineered to resist extreme contact pressures and abrasive wear in harsh marine environments.Subsequently,a uniform,hydrogenated diamond-like carbon(DLC)lubricating topcoat is deposited onto these diamond underlayers via the magnetron-sputter-assisted ion-beam deposition technique,renowned for producing dense,adherent amorphous carbon films with controlled sp3/sp2 bonding ratios.This precise two-stage synthesis successfully yields a functionally graded"rigid underlayer-lubricating top layer"architectural design.The fundamental operational principle of this architecture lies in its ability to synergistically harness the ultrahigh hardness and outstanding chemical inertness intrinsic to the diamond phases,while simultaneously capitalizing on the excellent solid-lubricating properties and low shear strength characteristic of the DLC topcoat,thereby effectively overcoming the performance compromises typically encountered in single-layer coating systems,such as the high initial roughness of MCD or the limited mechanical support of standalone DLC films.Comprehensive tribological characterization is systematically performed in a simulated seawater environment to evaluate the coating performance under conditions relevant to marine applications.Surface profilometry measurements quantitatively demonstrate the critical role of the DLC overlayer in surface engineering,showing that it significantly reduces the arithmetic mean surface roughness(Ra)of the underlying MCD base layer from an initial 155.33 nm to a final 123.77 nm,thereby mitigating the initial abrasive interactions and potential stress concentration.A corresponding,though less pronounced,smoothing effect is observed on the inherently finer UNCD base layer,where the Ra parameter is further diminished from 92.43 nm to 81.90 nm following the conformal DLC deposition.Ball-on-disk tribometer testing under controlled conditions provides quantitative evidence of substantial performance enhancement for the duplex coatings relative to their uncoated diamond counterparts.Specifically,the MCD/DLC hybrid configuration exhibits a remarkable 32.08%reduction in its steady-state friction coefficient and a 12.22%decrease in its calculated specific wear rate.Meanwhile,the UNCD/DLC architecture demonstrates even more impressive friction performance with a 26.67%reduction in the steady-state friction coefficient,coupled with a more substantial 20.92%improvement in wear resistance,highlighting the particular efficacy of combining the DLC topcoat with the naturally smoother UNCD underlayer.Post-test characterization of the worn surfaces utilizing scanning electron microscopy(SEM),micro-Raman spectroscopy,and X-ray photoelectron spectroscopy(XPS)provides mechanistic insights into the tribological behavior.These analytical techniques collectively reveal that the DLC film performs multiple critical functions during sliding contact:it effectively alleviates interfacial shear stresses by acting as a compliant,low-shear-strength layer,thereby enhancing boundary lubrication regimes.Furthermore,the metastable nature of the DLC's amorphous carbon network accelerates the kinetics of friction-induced graphitization,facilitating the formation of a sp2-carbon-rich tribofilm that provides easy shear planes at the contact interface.The synergistic interaction between this graphitized tribolayer and the aqueous environment of the simulated seawater,where water molecules act as both cooling agents and passive lubricants,contributes significantly to the observed friction and wear reduction.This research,therefore,provides both a fundamental scientific basis for understanding the tribochemical mechanisms in hierarchical carbon-based coatings in aqueous environments and a practical,scalable engineering route for developing next-generation,long-life protective coatings for critical moving parts in high-end marine equipment,such as propeller shaft bearings,hydraulic piston pumps,and underwater robotic joints,operating under simultaneous mechanical and corrosive challenges.

杨成业;宋惠;李赫;穆媛媛;杨世豪;郭鹏;江南;毛信表;西村一仁

中国科学院宁波材料技术与工程研究所 海洋关键材料全国重点实验室,浙江 宁波 315201||浙江工业大学 化学工程学院,杭州 310014中国科学院宁波材料技术与工程研究所 海洋关键材料全国重点实验室,浙江 宁波 315201中国科学院宁波材料技术与工程研究所 海洋关键材料全国重点实验室,浙江 宁波 315201||中国科学院大学 材料科学与光电子工程研究中心,北京 100049中国科学院宁波材料技术与工程研究所 海洋关键材料全国重点实验室,浙江 宁波 315201中国科学院宁波材料技术与工程研究所 海洋关键材料全国重点实验室,浙江 宁波 315201中国科学院宁波材料技术与工程研究所 海洋关键材料全国重点实验室,浙江 宁波 315201中国科学院宁波材料技术与工程研究所 海洋关键材料全国重点实验室,浙江 宁波 315201浙江工业大学 化学工程学院,杭州 310014中国科学院宁波材料技术与工程研究所 海洋关键材料全国重点实验室,浙江 宁波 315201

机械制造

金刚石类金刚石复合涂层海水环境摩擦机制

diamonddiamond-like carbon(DLC)composite coatingseawater environmenttribological mechanism

《表面技术》 2026 (11)

12-24,13

国家自然科学基金(52475231)宁波市科技创新 2035 重大项目(2024Z097)宁波市科技创新 2025 重大项目(2023Z009)The National Natural Science Foundation of China(52475231)the Science and Technology Innovation 2035 Major Projects,Ningbo,China(2024Z097)the Science and Technology Innovation 2025 Major Projects,Ningbo,China(2023Z009)

10.16490/j.cnki.issn.1001-3660.2026.11.002

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