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  • 張建, 楊軍, 朱浪濤. 超音速等離子噴涂YPSZ涂層的組織及耐磨性能[J]. 工程科學學報, 2013, 35(7): 914-921. DOI: 10.13374/j.issn1001-053x.2013.07.010
    引用本文: 張建, 楊軍, 朱浪濤. 超音速等離子噴涂YPSZ涂層的組織及耐磨性能[J]. 工程科學學報, 2013, 35(7): 914-921. DOI: 10.13374/j.issn1001-053x.2013.07.010
    ZHANG Jian, YANG Jun, ZHU Lang-tao. Microstructure and wear resistance of YPSZ coatings deposited by supersonic plasma spraying[J]. Chinese Journal of Engineering, 2013, 35(7): 914-921. DOI: 10.13374/j.issn1001-053x.2013.07.010
    Citation: ZHANG Jian, YANG Jun, ZHU Lang-tao. Microstructure and wear resistance of YPSZ coatings deposited by supersonic plasma spraying[J]. Chinese Journal of Engineering, 2013, 35(7): 914-921. DOI: 10.13374/j.issn1001-053x.2013.07.010

    超音速等離子噴涂YPSZ涂層的組織及耐磨性能

    Microstructure and wear resistance of YPSZ coatings deposited by supersonic plasma spraying

    • 摘要: 為了研制一種連鑄結晶器耐高溫耐磨材料,采用超音速等離子噴涂法在純銅板上制備了氧化釔部分穩定的氧化鋯(YPSZ)涂層.利用X射線衍射儀、掃描電鏡、彩色3D激光顯微鏡和圖形軟件(Image-pro Plus3.0)對YPSZ涂層的微觀組織進行表征,通過銷盤式磨損儀在室溫干摩擦條件下測試了涂層的耐磨性能及化學硬化對涂層耐磨性能的影響.研究發現YPSZ涂層完全由t’-ZrO2相組成,其斷口形貌由柱狀晶和一定量的部分熔融顆粒組成,截面組織形態表現出較好的完整性,涂層孔隙率為1.2%,表面粗糙度為6.457μm.磨損實驗表明化學硬化前YPSZ涂層與剛玉球對磨時的摩擦因數在0.5~0.6之間,平均磨痕寬度為3638.8μm,磨損體積為1.25508×10-2mm3,磨損機制為脆性斷裂導致的磨粒磨損;化學硬化后YPSZ涂層的磨痕寬度和磨損體積均有大幅降低,脆斷程度也更輕,其磨損性能得到極大改善.

       

      Abstract: In order to obtain a kind of high temperature-resistant and wear-resistant material for continuous casting molds, yttria partially stabilized zirconia (YPSZ) coatings were prepared on pure copper substrates by high-efficiency supersonic atmosphere plasma spraying (SAPS). The microstructure of the coatings was characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), color 3D laser scanning microscopy and image software (Image-pro Plus). The wear resistance of the coatings and the effect of chemical hardening on the wear resistance were investigated through a pin-on-disk tribometer under dry friction at room temperature. It is found that the composition of the coatings is completely t'-ZrO2 phase. The fracture microstructure is composed of columnar crystals and a small amount of partially melted particles. The cross-sectional morphology exhibits good integrity. The porosity and the surface roughness are 1.2% and 6.457 tim, respectively. Pin-on-disk test against corundum show that the friction coefficient, average wear width and wear volume of the coatings before chemical hardening is 0.5 to 0.6, 3638.8 μm and 1.25508×10-2 mm3, respectively. The wear mechanism is abrasive wear resulting from brittle fracture. The wear resistance of the coating after chemistry hardening is greatly improved that the width and volume of wear reduce drastically and the degree of brittle fracture is lighter.

       

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