• Laser & Optoelectronics Progress
  • Vol. 60, Issue 1, 0114009 (2023)
Dewei Deng1、2、*, Xianglu Zhao1, Zhiye Huang2, Junyu Wang1, Shuhua Yang2, Yong Zhang2, and Bin Chen3
Author Affiliations
  • 1Liaoning Province Key Laboratory of Solidification Control and Digital Preparation Technology, School of Materials Science and Engineering, Dalian University of Technology, Dalian 116024, Liaoning , China
  • 2Shenyang Blower Group Corporation, Shenyang 110869, Liaoning , China
  • 3Jiangnan Industries Group Co., Ltd., Xiangtan 411207, Hunan , China
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    DOI: 10.3788/LOP220720 Cite this Article Set citation alerts
    Dewei Deng, Xianglu Zhao, Zhiye Huang, Junyu Wang, Shuhua Yang, Yong Zhang, Bin Chen. Laser Cleaning Process for Paint Removal and Its Effect on Surface Microstructures and Properties of KMN Steel[J]. Laser & Optoelectronics Progress, 2023, 60(1): 0114009 Copy Citation Text show less
    References

    [1] Chen X K. Study on technology and application of petrochemical equipment by laser cleaning[D], 2-4(2020).

    [2] Jia B S, Qu H X, Tang H P et al. Laser cleaning technology of oxide layer on titanium rolled plate[J]. Laser & Optoelectronics Progress, 56, 211401(2019).

    [3] D’Addona D M, Genna S, Giordano A et al. Laser ablation of primer during the welding process of iron plate for shipbuilding industry[J]. Procedia CIRP, 33, 464-469(2015).

    [4] Tong Y, Qiu T W, Yi J L et al. Effect of pulse frequency on laser cleaning mechanism of paint coating[J]. Laser & Optoelectronics Progress, 58, 1914009(2021).

    [5] Zhu H Z, Lu J, Ni X W et al. Experimental investigation on cleaning of corroded ancient coins using a Nd∶YAG laser[J]. Proceedings of SPIE, 10173, 101730F(2017).

    [6] Zhou F, Sheppard J C, Vecchione T et al. Establishing reliable good initial quantum efficiency and in situ laser cleaning for the copper cathodes in the RF gun[J]. Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 783, 51-57(2015).

    [7] Zhu G D, Wang S R, Cheng W et al. Corrosion and wear performance of aircraft skin after laser cleaning[J]. Optics & Laser Technology, 132, 106475(2020).

    [8] Zhao H C, Qiao Y L, Du X et al. Effect and mechanism of energy density on the aluminum alloy paint cleaned by laser[J]. Laser & Optoelectronics Progress, 57, 131403(2020).

    [9] Ünaldi S, Papadopoulos K, Rondepierre A et al. Towards selective laser paint stripping using shock waves produced by laser-plasma interaction for aeronautical applications on AA 2024 based substrates[J]. Optics & Laser Technology, 141, 107095(2021).

    [10] Lu Y, Yang L J, Wang M L et al. Simulation of nanosecond laser cleaning the paint based on the thermal stress[J]. Optik, 227, 165589(2021).

    [11] Qiu T W, Yi J L, Cheng C et al. Characteristics of nanosecond pulse laser cleaning paint coatings on 2024 aluminum alloy surface[J]. Laser & Optoelectronics Progress, 58, 0514001(2021).

    [12] Guo Z H, Zhou J Z, Meng X K et al. Nanosecond-pulsed-laser paint stripping of HT250 gray cast iron[J]. Chinese Journal of Lasers, 46, 1002012(2019).

    [13] Shamsujjoha M, Agnew S R, Melia M A et al. Effects of laser ablation coating removal (LACR) on a steel substrate: part 1: surface profile, microstructure, hardness, and adhesion[J]. Surface and Coatings Technology, 281, 193-205(2015).

    [14] Li X Y, Wang D, Gao J M et al. Influence of ns-laser cleaning parameters on the removal of the painted layer and selected properties of the base metal[J]. Materials, 13, 5363(2020).

    [15] Guan L Q. Effect of pulse overlap on surface roughness and microhardness in laser processing of 316L stainless steel[D], 21-24(2016).

    [16] Fang S C. Application research on laser cleaning of epoxy-paint from ship plates[D], 47-48(2019).

    [17] Jia Y, Jin Y S, Liu L. Research and application of centrifugal compressor impeller repair welding technology[J]. Compressor, Blower & Fan Technology, 56, 55-58(2014).

    [18] Li X K, Zhang Q H, Zhou X Z et al. The influence of nanosecond laser pulse energy density for paint removal[J]. Optik, 156, 841-846(2018).

    [19] Grojo D, Cros A, Delaporte P et al. Experimental investigation of ablation mechanisms involved in dry laser cleaning[J]. Applied Surface Science, 253, 8309-8315(2007).

    [20] Wu X B, Dou X Y, He B et al. Analysis on the affection of roughness microstructure to paint adhesion with offshore steel structures[J]. Total Corrosion Control, 31, 28-31(2017).

    [21] Hao X H. Influence of welding parameters on properties of KMN steel joints and healing of microcracks[D], 16-23(2014).

    [22] Zhu L N. Research on residual stresses of coatings by nanoindentation technology[D], 22-26(2013).

    [23] Li Y Q, Xiao G, Li T. Surface residual stress of GCr15 bearing steel by ultrasonic vibration assisted grinding[J]. Materials for Mechanical Engineering, 43, 50-52(2019).

    [24] Wei H. Effect of texture on properties and residual stress in Cu-Ni-Si alloys and its mechanism[D], 21-26(2021).

    [25] Suresh S, Giannakopoulos A E. A new method for estimating residual stresses by instrumented sharp indentation[J]. Acta Materialia, 46, 5755-5767(1998).

    [26] Song B, Dong S J, Liu Q et al. Vacuum heat treatment of iron parts produced by selective laser melting: microstructure, residual stress and tensile behavior[J]. Materials & Design, 54, 727-733(2014).

    Dewei Deng, Xianglu Zhao, Zhiye Huang, Junyu Wang, Shuhua Yang, Yong Zhang, Bin Chen. Laser Cleaning Process for Paint Removal and Its Effect on Surface Microstructures and Properties of KMN Steel[J]. Laser & Optoelectronics Progress, 2023, 60(1): 0114009
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