Investigation of on-site repair of 18Ni300 by underwater laser direct metal deposition technique
暂无分享,去创建一个
Z. Ni | Z. Wang | Guifang Sun | Shibin Wang | Ming-Der Chen | Erke Wu | Kun Yang
[1] Z. Ni,et al. Underwater Laser Welding/Cladding for High-performance Repair of Marine Metal Materials: A Review , 2022, Chinese Journal of Mechanical Engineering.
[2] Sheng Liu,et al. Investigation of layer-by-layer laser remelting to improve surface quality, microstructure, and mechanical properties of laser powder bed fused AlSi10Mg alloy , 2021, Materials & Design.
[3] N. Guo,et al. Investigation on in-situ laser cladding 5356 aluminum alloy coating on 5052 aluminum alloy substrate in water environment , 2021, Journal of Materials Research and Technology.
[4] Kedong Bi,et al. Investigation of the microstructure and mechanical properties of Ti–6Al–4V repaired by the powder-blown underwater directed energy deposition technique , 2021, Materials Science and Engineering: A.
[5] Z. Cai,et al. Microstructure and Corrosion Resistance of Underwater Laser Cladded Duplex Stainless Steel Coating after Underwater Laser Remelting Processing , 2021, Materials.
[6] Kedong Bi,et al. Investigation of the underwater laser directed energy deposition technique for the on-site repair of HSLA-100 steel with excellent performance , 2021 .
[7] G. Wang,et al. Investigation on in-situ laser cladding coating of the 304 stainless steel in water environment , 2021 .
[8] Kedong Bi,et al. High-performance Ti-6Al-4V with graded microstructure and superior properties fabricated by powder feeding underwater laser metal deposition , 2021 .
[9] C. Qiu,et al. Effects of aging time on the microstructure and mechanical properties of laser-cladded 18Ni300 maraging steel , 2021, Journal of Materials Science.
[10] D. Kong,et al. About metastable cellular structure in additively manufactured austenitic stainless steels , 2021 .
[11] G. Wang,et al. Underwater Additive Manufacturing of Ti-6Al-4V Alloy by Laser Metal Deposition: Formability, Gran Growth and Microstructure Evolution , 2020 .
[12] Gabriel Meric de Bellefon,et al. Origin of dislocation structures in an additively manufactured austenitic stainless steel 316L , 2020 .
[13] Hui Li,et al. Influence of laser post-processing on pore evolution of Ti–6Al–4V alloy by laser powder bed fusion , 2020 .
[14] Kyeongsik Ha,et al. Effect of Heat Treatment Condition on Microstructural and Mechanical Anisotropies of Selective Laser Melted Maraging 18Ni-300 Steel , 2020 .
[15] N. Guo,et al. Underwater wire-feed laser deposition of the Ti–6Al–4V titanium alloy , 2020 .
[16] P. Carlone,et al. Marine Application of Fiber Reinforced Composites: A Review , 2020 .
[17] Engineering,et al. Knowledge of process-structure-property relationships to engineer better heat treatments for laser powder bed fusion additive manufactured Inconel 718 , 2019, Additive Manufacturing.
[18] N. Guo,et al. Microstructure and properties of underwater laser welding of TC4 titanium alloy , 2020 .
[19] Ji-cai Feng,et al. Investigation on the process and microstructure evolution during direct laser metal deposition of 18Ni300 , 2018, Rapid Prototyping Journal.
[20] Bo Chen,et al. Influence of processing parameters and heat treatment on the mechanical properties of 18Ni300 manufactured by laser based directed energy deposition , 2018, Optics & Laser Technology.
[21] X. Lou,et al. Oxide inclusions in laser additive manufactured stainless steel and their effects on impact toughness and stress corrosion cracking behavior , 2018 .
[22] Yonghua Shi,et al. Microstructure Evolution and Mechanical Properties of Underwater Dry and Local Dry Cavity Welded Joints of 690 MPa Grade High Strength Steel , 2018, Materials.
[23] D. Raabe,et al. Massive nanoprecipitation in an Fe-19Ni-xAl maraging steel triggered by the intrinsic heat treatment during laser metal deposition , 2017 .
[24] D. Raabe,et al. Comparison of Maraging Steel Micro- and Nanostructure Produced Conventionally and by Laser Additive Manufacturing , 2016, Materials.
[25] Jun Cao,et al. Effect of cooling rate on microstructure, inclusions and mechanical properties of weld metal in simulated local dry underwater welding , 2015 .
[26] K. Lu,et al. Strengthening Materials by Engineering Coherent Internal Boundaries at the Nanoscale , 2009, Science.
[27] Jian Ding,et al. In situ fabrication of bioceramic composite coatings by laser cladding , 2005 .
[28] Lin Li,et al. Effects of wire feeding direction and location in multiple layer diode laser direct metal deposition , 2005 .
[29] Lin Li,et al. A comparative study of wire feeding and powder feeding in direct diode laser deposition for rapid prototyping , 2005 .
[30] J. Lehmann,et al. Kinetics of precipitation of non-metallic inclusions during solidification of steel , 1999 .
[31] K. Miyazawa,et al. Effect of Cooling Rate on Oxide Precipitation during Solidification of Low Carbon Steels , 1993 .