Effect of TiC content on the microstructure and wear performance of in situ synthesized Ni-based composite coatings by laser direct energy deposition
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Zhelun Ma | Tianbiao Yu | Y. Zhao | Liaoyuan Chen | Zhengyu Sun | Sheng Qu | Fan-kong Meng | Yu Zhao
[1] J. Schoenung,et al. Laser-based directed energy deposition (DED-LB) of advanced materials , 2022, Materials Science and Engineering: A.
[2] Wenzheng Wu,et al. Microstructure evolution and wear resistance of in-situ synthesized (Ti, Nb)C ceramic reinforced Ni204 composite coatings , 2022, Ceramics International.
[3] M. H. Ahmed,et al. Past and present of functionally graded coatings: Advancements and future challenges , 2022, Applied Materials Today.
[4] C. Guan,et al. Microstructure and properties of metal parts remanufactured by laser cladding TiC and TiB2 reinforced Fe-based coatings , 2022, Ceramics International.
[5] Y. Gong,et al. Experimental evaluation of surface generation and force time-varying characteristics of curvilinear grooved micro end mills fabricated by EDM , 2022, Journal of Manufacturing Processes.
[6] C. Guan,et al. Process optimization, microstructure and microhardness of coaxial laser cladding TiC reinforced Ni-based composite coatings , 2022, Optics & Laser Technology.
[7] Wenwu Zhang,et al. Microstructure and elevated temperature wear behavior of laser-cladded AlCrFeMnNi high-entropy alloy coating , 2022, Optics & Laser Technology.
[8] M. Moradi,et al. Direct laser metal deposition additive manufacturing of Inconel 718 superalloy: Statistical modelling and optimization by design of experiments , 2021 .
[9] Tianbiao Yu,et al. Development of the molten pool and solidification characterization in single bead multilayer direct energy deposition , 2021, Additive Manufacturing.
[10] X. Ren,et al. Achieving excellent wear and corrosion properties in laser additive manufactured CrMnFeCoNi high-entropy alloy by laser shock peening , 2021 .
[11] G. Jin,et al. Effect of Si content on microstructure and tribological properties of Ti5Si3/TiC reinforced NiTi laser cladding coatings , 2021, Surface and Coatings Technology.
[12] Tianbiao Yu,et al. Repair of spline shaft by laser-cladding coarse TiC reinforced Ni-based coating: Process, microstructure and properties , 2021 .
[13] Tianbiao Yu,et al. Modeling and simulation of 3D geometry prediction and dynamic solidification behavior of Fe-based coatings by laser cladding , 2021, Optics & Laser Technology.
[14] J. Schoenung,et al. Directed energy deposition (DED) additive manufacturing: Physical characteristics, defects, challenges and applications , 2021, Materials Today.
[15] C. Guan,et al. Effects of CeO2 addition on microstructure and properties of ceramics reinforced Fe-based coatings by laser cladding , 2021, The International Journal of Advanced Manufacturing Technology.
[16] Zhichao Yang,et al. Microstructure and mechanical properties of parts formed by ultrasonic vibration-assisted laser cladding of Inconel 718 , 2021 .
[17] B. Zhang,et al. In-situ NbC reinforced Fe-based coating by laser cladding: Simulation and experiment , 2021 .
[18] Chuanzhong Chen,et al. In-situ TiB2-TiC reinforced Fe-Al composite coating on 6061 aluminum alloy by laser surface modification , 2021 .
[19] Dongchu Chen,et al. TiB2- and Fe2P with nanotwins-reinforced Cu-based immiscible composites fabricated by selective laser melting: Formation mechanism and wear behavior , 2021 .
[20] Lijun Yang,et al. Optimization of microstructure and properties of composite coatings by laser cladding on titanium alloy , 2021 .
[21] Suwen Liu,et al. Microstructure evolution and properties of in-situ ceramic particles reinforced Fe-based composite coating produced by ultrasonic vibration assisted laser cladding processing , 2020 .
[22] C. Guan,et al. Microstructure and mechanical properties of Ti–C–TiN-reinforced Ni204-based laser-cladding composite coating , 2020 .
[23] C. Guan,et al. Microstructure and wear resistance behavior of Ti–C–B4C-reinforced composite coating , 2020 .
[24] A. Nath,et al. Development of process maps based on molten pool thermal history during laser cladding of Inconel 718/TiC metal matrix composite coatings , 2020 .
[25] Dongchu Chen,et al. In-situ Fe2P reinforced bulk Cu–Fe immiscible alloy with nanotwinned Cu produced by selective laser melting , 2020 .
[26] S. Tor,et al. A generalised hot cracking criterion for nickel-based superalloys additively manufactured by electron beam melting , 2020 .
[27] R. Shoja-Razavi,et al. Optimization and characterization of laser cladding of NiCr and NiCr–TiC composite coatings on AISI 420 stainless steel , 2020, Ceramics International.
[28] X. Ren,et al. Improving the strength and ductility of laser directed energy deposited CrMnFeCoNi high-entropy alloy by laser shock peening , 2020 .
[29] X. Ren,et al. Laser additive manufacturing of CrMnFeCoNi high entropy alloy: Microstructural evolution, high-temperature oxidation behavior and mechanism , 2020 .
[30] Hao Chen,et al. Coarse TiC particles reinforced H13 steel matrix composites produced by laser cladding , 2020 .
[31] Suiyuan Chen,et al. Microstructure and wear behaviors of laser cladding in-situ synthetic (TiBx+TiC)/(Ti2Ni+TiNi) gradient composite coatings , 2020, Vacuum.
[32] Sameehan S. Joshi,et al. Laser surface engineering of B4C/Fe nano composite coating on low carbon steel: Experimental coupled with computational approach , 2020 .
[33] Dongchu Chen,et al. Enhanced corrosion resistance of Ti-5 wt.% TiN composite compared to commercial pure Ti produced by selective laser melting in HCl solution , 2020 .
[34] Yadong Chen,et al. Effect of laser cladding on forming microhardness and tensile strength of YCF101 alloy powder in the different full lap joint modes , 2020 .
[35] Tianbiao Yu,et al. Microstructure and properties of laser cladded B4C/TiC/Ni-based composite coating , 2020 .
[36] Enoch Asuako Larson,et al. Laser additive manufacturing of FeCrCoMnNi high-entropy alloy: Effect of heat treatment on microstructure, residual stress and mechanical property , 2019, Journal of Alloys and Compounds.
[37] Tianbiao Yu,et al. Microstructure and wear resistance of in-situ synthesized Ti(C, N) ceramic reinforced Fe-based coating by laser cladding , 2018, Ceramics International.
[38] M. Masanta,et al. NiTi coating on Ti-6Al-4V alloy by TIG cladding process for improvement of wear resistance: Microstructure evolution and mechanical performances , 2018, Journal of Materials Processing Technology.
[39] Fan Wu,et al. Laser Cladding In-Situ Ti(C,N) Particles Reinforced Ni-Based Composite Coatings Modified with CeO2 Nanoparticles , 2018, Metals.
[40] A. Das,et al. In-situ TiC-TiB2 coating on Ti-6Al-4V alloy by tungsten inert gas (TIG) cladding method: Part-I. Microstructure evolution , 2018, Surface and Coatings Technology.
[41] M. Masanta,et al. In-situ TiC-TiB2 coating on Ti-6Al-4V alloy by tungsten inert gas (TIG) cladding method: Part-II. Mechanical performance , 2018, Surface and Coatings Technology.
[42] Ashish Kumar Nath,et al. In-process detection of microstructural changes in laser cladding of in-situ Inconel 718/TiC metal matrix composite coating , 2018 .
[43] J. S. Zuback,et al. Additive manufacturing of metallic components – Process, structure and properties , 2018 .
[44] M. Masanta,et al. Microstructure and mechanical performance of TiC-Inconel825 composite coating deposited on AISI 304 steel by TIG cladding process , 2017 .
[45] Xin Lin,et al. Effect of heat input on cracking in laser solid formed DZ4125 superalloy , 2016 .
[46] Y. Lei,et al. A study of TiB2/TiB gradient coating by laser cladding on titanium alloy , 2016 .
[47] A. Clare,et al. Effect of carbide dissolution on the corrosion performance of tungsten carbide reinforced Inconel 625 wire laser coating , 2016 .
[48] Jingming Tang. Mechanical and tribological properties of the TiC-TiB 2 composite coating deposited on 40Cr-steel by electro spark deposition , 2016 .
[49] N. Shamsaei,et al. An overview of Direct Laser Deposition for additive manufacturing; Part II: Mechanical behavior, process parameter optimization and control , 2015 .
[50] Chen Hong,et al. Laser additive manufacturing of ultrafine TiC particle reinforced Inconel 625 based composite parts: Tailored microstructures and enhanced performance , 2015 .
[51] D. Gu,et al. Molten pool behaviour and its physical mechanism during selective laser melting of TiC/AlSi10Mg nanocomposites: simulation and experiments , 2015 .
[52] Qianlin Wu,et al. Microstructure and wear behavior of laser cladding VC–Cr7C3 ceramic coating on steel substrate , 2013 .
[53] J. Sabbaghzadeh,et al. Effect of pulsed laser parameters on in-situ TiC synthesis in laser surface treatment , 2011 .
[54] C. Cui,et al. In situ TiC particles reinforced grey cast iron composite fabricated by laser cladding of Ni-Ti-C system , 2007 .
[55] G. Wen,et al. Reaction synthesis of TiB2-TiC composites with enhanced toughness , 2001 .
[56] A. Ogwu,et al. The densification and mechanical properties of a TiC and TiB2 hardmetal sintered with a reactive alloy binder , 1996 .
[57] K. Gahr,et al. Effect of grain size on friction and sliding wear of oxide ceramics , 1993 .
[58] T. DebRoy,et al. Surface tension of binary metal—surface active solute systems under conditions relevant to welding metallurgy , 1988 .