Introducing both chemical and structural gradients in AISI 321 stainless steel via aluminizing and laser shock peening for superior properties
暂无分享,去创建一个
Wei Li | S. Ni | Wenhui Jiang | Guowei Bo | Xing-long An | Leiting Yu | M. Song | Wei Li
[1] W. Li,et al. Improved corrosion resistance of AISI 321 steel to molten Al-Si alloy by aluminizing and laser shock peening , 2023, Engineering Failure Analysis.
[2] Zhaopeng Tong,et al. Combination of annealing and laser shock peening for tailoring microstructure and mechanical properties of laser directed energy deposited CrMnFeCoNi high-entropy alloy , 2022, Additive Manufacturing.
[3] Jianjun Xue,et al. Microstructure and mechanical properties of composite strengthened high-chromium cast iron by laser quenching and laser shock peening , 2022, Journal of Materials Research and Technology.
[4] J. Duh,et al. (Fe,Mn)AlC κ-carbide formation and characterization in pack aluminization of Fe-29Mn-9Al-0.9C lightweight steel , 2022, Journal of Materials Research and Technology.
[5] Mehrad Amin Eskandari,et al. Comparison of the microstructure, corrosion resistance, and hardness of 321 and 310 s austenitic stainless steels after thermo-mechanical processing , 2022, Materials Today Communications.
[6] J. L. Dong,et al. Mechanical behavior of thin CoCrFeNi high-entropy alloy sheet under laser shock peening , 2022, Intermetallics.
[7] D. Qian,et al. A novel route to improve the fatigue properties of aviation M50 steel via tailoring the bainite content and cold deformation , 2022, Journal of Materials Research and Technology.
[8] T. Prasanthi,et al. Hot dip aluminization of 304L SS and P91 ferritic-martensitic steel – Comparison of interface morphology and growth kinetics of reaction zones , 2022, Surface and Coatings Technology.
[9] N. Jamnapara,et al. Study of microstructure & mechanical properties of TIG welded aluminized 9Cr-1Mo steel , 2022, Fusion Engineering and Design.
[10] Chanho Lee,et al. Outstanding high-temperature strength of novel Fe–Cr–Ni–Al–V ferritic alloys with hierarchical B2–NiAl precipitates , 2022, Materials Science and Engineering: A.
[11] W. Fu,et al. Strengthening CrFeCoNiMn0.75Cu0.25 high entropy alloy via laser shock peening , 2022, International Journal of Plasticity.
[12] A. Eslami,et al. High temperature oxidation behavior of aluminide coatings applied on HP-MA heat resistant steel using a gas-phase aluminizing process , 2022, Surface and Coatings Technology.
[13] Wanting Sun,et al. Laser surface treatment-introduced gradient nanostructured TiZrHfTaNb refractory high-entropy alloy with significantly enhanced wear resistance , 2021, Journal of Materials Science & Technology.
[14] V. Kain,et al. Kinetics of formation of pack aluminized coating on 9Cr-1Mo steel and interdiffusional behaviour of iron aluminides at intermediate temperatures , 2021, Surface and Coatings Technology.
[15] Amberlee S. Haselhuhn,et al. Role of Fe2Al5 in fracture of novel dissimilar aluminum-steel resistance spot welds using multi-ring domed electrodes , 2021, Materials Science and Engineering: A.
[16] S. Qu,et al. Effect of shot peening on microstructure and contact fatigue crack growth mechanism of shaft steel , 2021 .
[17] Shenmin Zhang,et al. Effect of laser shock peening on high cycle fatigue properties of aluminized AISI 321 stainless steel , 2021 .
[18] Shenmin Zhang,et al. Microstructure and tensile properties of AISI 321 stainless steel with aluminizing and annealing treatment , 2021, Materials & Design.
[19] O. Uzun,et al. Enhancing the wear and oxidation behaviors of the Inconel 718 by low temperature aluminizing , 2021 .
[20] Sumit Chhangani,et al. Microstructure evolution and hardness of hot dip aluminized coating on pure iron and EUROFER 97 steel: Effect of substrate chemistry and heat treatment , 2021 .
[21] O. Pandey,et al. Effect of heat treatment on microstructure and mechanical properties of boron containing Ti-Stabilized AISI-321 steel for nuclear power plant application , 2021, Materials Today Communications.
[22] S. Pityana,et al. Microstructures, wear and corrosion resistance of laser composite surfaced austenitic stainless steel (AISI 304 SS) with tungsten carbide , 2021 .
[23] Y. G. Liu,et al. Further refinement mechanisms of nanograins in nanocrystalline surface layer of TC17 subjected to severe plastic deformation , 2021 .
[24] J. A. Muñoz,et al. Ductility and plasticity of ferritic-pearlitic steel after severe plastic deformation , 2020 .
[25] X. Ren,et al. Improving the strength and ductility of laser directed energy deposited CrMnFeCoNi high-entropy alloy by laser shock peening , 2020 .
[26] F. Pedraza,et al. Intermetallic formation of Al-Fe and Al-Ni phases by ultrafast slurry aluminization (flash aluminizing) , 2020 .
[27] Yao Liu,et al. Formation mechanism of tetragonal nanoprecipitates in Fe–Ga alloys that dominate the material's large magnetostriction , 2020 .
[28] J. Stevenson,et al. High temperature oxidation behavior of aluminized Haynes 230 , 2020, Corrosion Science.
[29] Gyeongbae Park,et al. Improvement of strength – ductility balance of B2-strengthened lightweight steel , 2020 .
[30] P. Peng,et al. Microstructure and mechanical properties of laser shock peened 38CrSi steel , 2020, Materials Science and Engineering: A.
[31] Z. Wang,et al. Investigation of microstructural evolution in a selective laser melted Ti6Al4V alloy induced by an ultrasonic surface rolling process , 2020, Materials Science and Engineering: A.
[32] Jiangdong Cao. Laser shock processing improving the high temperature oxidation resistance of the aluminized coating on GH202 by pack cementation , 2019, Applied Surface Science.
[33] Kai Chen,et al. Effect of δ-ferrite on the stress corrosion cracking behavior of 321 stainless steel , 2019, Corrosion Science.
[34] Mingjing Qi,et al. Effects of aluminizing and combined strengthening on the fatigue property of K403 superalloy component under combined high and low cycle loading , 2019, International Journal of Fatigue.
[35] V. Vasudevan,et al. Residual stress, phase, microstructure and mechanical property studies of ultrafine bainitic steel through laser shock peening , 2019, Optics & Laser Technology.
[36] S. Luo,et al. The compound process of laser shock peening and vibratory finishing and its effect on fatigue strength of Ti-3.5Mo-6.5Al-1.5Zr-0.25Si titanium alloy , 2019, Journal of Alloys and Compounds.
[37] Axel Forslund,et al. Simulation of reaction-diffusion between substrate and coating during vapor deposition processes , 2019, Calphad.
[38] A. Odeshi,et al. Effect of prior plastic deformation and deformation rate on the corrosion resistance of AISI 321 austenitic stainless steel , 2019, Materials Science and Engineering: A.
[39] S. Virtanen,et al. New insights into the effects of surface nanocrystallization on the oxidation of 321 austenitic stainless steel in a humid oxygen environment at 1000 °C , 2019, Corrosion Science.
[40] S. L. Roux,et al. Effect of aluminizing and oxidation on the thermal fatigue damage of hot work tool steels for high pressure die casting applications , 2019, International Journal of Fatigue.
[41] P. Ganesh,et al. Study on the effect of multiple laser shock peening on residual stress and microstructural changes in modified 9Cr-1Mo (P91) steel , 2019, Surface and Coatings Technology.
[42] I. Manna,et al. Effect of reverse austenitic transformation on mechanical property and associated texture evolution in AISI 316 austenitic stainless steel processed by low temperature rolling and annealing , 2018, Materials Science and Engineering: A.
[43] B. Carlson,et al. Microstructural and mechanical evolution of Al/steel interface with Fe2Al5 growth in resistance spot welding of aluminum to steel , 2018, Journal of Manufacturing Processes.
[44] A. Odeshi,et al. Multiple strengthening sources and adiabatic shear banding during high strain-rate deformation of AISI 321 austenitic stainless steel: effects of grain size and strain rate , 2018 .
[45] J. D. Strycker,et al. Effect of silicon on the microstructure and growth kinetics of intermetallic phases formed during hot-dip aluminizing of ferritic steel , 2017 .
[46] A. Odeshi,et al. A comparative study of the compressive behaviour of AISI 321 austenitic stainless steel under quasi-static and dynamic shock loading , 2016 .
[47] C. Motz,et al. A Review on the Properties of Iron Aluminide Intermetallics , 2016 .
[48] O. Unal,et al. Surface severe plastic deformation of AISI 304 via conventional shot peening, severe shot peening and repeening , 2015 .
[49] S. Fintová,et al. Fatigue properties of magnesium alloy AZ91 processed by severe plastic deformation. , 2015, Journal of the mechanical behavior of biomedical materials.
[50] P. Pérez,et al. Oxidation behavior of AISI 316 steel coated by hot dipping in an Al–Si alloy , 2013 .
[51] H. Maier,et al. On the mechanical behaviour of titanium alloy TiAl6V4 manufactured by selective laser melting: Fatigue resistance and crack growth performance , 2013 .
[52] A. Tuissi,et al. Microstructural and Mechanical Properties of UFG Silver Subjected to Severe Plastic Deformation by ECAP , 2012 .
[53] H. Ipser,et al. The Fe–Ni–Al phase diagram in the Al-rich (>50at.% Al) corner , 2007 .
[54] S. Roy,et al. Plasma immersion ion implantation of nitrogen on austenitic stainless steel at variable energy for enhanced corrosion resistance , 2007 .
[55] V. Raghavan. Al-Fe-Ni (Aluminum-Iron-Nickel) , 2006 .
[56] P. M. Raole,et al. Characterization of surface microstructure and properties of low-energy high-dose plasma immersion ion-implanted 304L austenitic stainless steel , 2005 .
[57] W. Deqing,et al. A liquid aluminum corrosion resistance surface on steel substrate , 2003 .
[58] Y. Miyamoto,et al. Investigation of TiAl/Ti2AlC composites prepared by spark plasma sintering , 2002 .
[59] Indranil Manna,et al. Laser surface alloying of AISI 304-stainless steel with molybdenum for improvement in pitting and erosion-corrosion resistance , 1999 .
[60] P. Peng,et al. Comparison of mechanical and corrosion properties of 7050 aluminum alloy after different laser shock peening , 2022, Optics & Laser Technology.
[61] X. Mei,et al. The effect of warm laser shock peening on the thermal stability of compressive residual stress and the hot corrosion resistance of Ni-based single-crystal superalloy , 2022, Optics & Laser Technology.
[62] M. Galetz,et al. Critical assessment of the cyclic oxidation resistance of the aluminized Ti-48Al-2Cr-2Nb TiAl alloy at 700 °C and its impact on mechanical properties , 2021 .
[63] Yingwu Fang. Strengthening characteristics in TC17 titanium alloy treated during LSP , 2021 .
[64] X. Ren,et al. Fatigue behavior of double-sided laser shock peened Ti-6Al-4V thin blade subjected to foreign object damage , 2020 .
[65] K. Bhat,et al. Hot-dip Aluminizing of Low Carbon Steel in Al & Al-5wt % Cr Baths , 2018 .
[66] Sutep Joy-A-Ka,et al. Study of corrosion resistance of stainless steel AISI430 coated by slurry aluminizing in molten nitrate salt , 2018 .
[67] K. An,et al. A precipitation-hardened high-entropy alloy with outstanding tensile properties , 2016 .
[68] J. Majumdar,et al. Laser composite surfacing of AISI 304 stainless steel with titanium boride for improved wear resistance , 2007 .
[69] J. Kuang,et al. Low modulus-yet-hard, deformable multicomponent fibrous B2-phase making a medium-entropy alloy ultra-strong and ductile , 2022, Scripta Materialia.