Chinese Journal of Lasers, Volume. 49, Issue 14, 1402304(2022)
Research on A131 EH36/AISI 1045 Bimetallic Material Fabricated by Laser Directed Energy Deposition
[1] Gibson I, Rosen D, Stucker B. Direct digital manufacturing[M]. Additive manufacturing technologies, 375-397(2015).
[2] Svetlizky D, Das M, Zheng B L et al. Directed energy deposition (DED) additive manufacturing: physical characteristics, defects, challenges and applications[J]. Materials Today, 49, 271-295(2021).
[3] Qin W T, Yang Y Q, Weng C W et al. Comparative forming size and mechanical properties of 316L stainless steel fabricated using laser/plasma arc directed energy deposition[J]. Chinese Journal of Lasers, 48, 2202006(2021).
[4] Sciammarella F, Najafabadi B S. Processing parameter DOE for 316L using directed energy deposition[J]. Journal of Manufacturing and Materials Processing, 2, 61(2018).
[5] Li Z, Chen J, Sui S et al. The microstructure evolution and tensile properties of Inconel 718 fabricated by high-deposition-rate laser directed energy deposition[J]. Additive Manufacturing, 31, 100941(2020).
[6] Tan H, Guo M L, Clare A T et al. Microstructure and properties of Ti-6Al-4V fabricated by low-power pulsed laser directed energy deposition[J]. Journal of Materials Science & Technology, 35, 2027-2037(2019).
[7] Hamilton R F, Bimber B A, Taheri Andani M et al. Multi-scale shape memory effect recovery in NiTi alloys additive manufactured by selective laser melting and laser directed energy deposition[J]. Journal of Materials Processing Technology, 250, 55-64(2017).
[8] Kieback B, Neubrand A, Riedel H. Processing techniques for functionally graded materials[J]. Materials Science and Engineering: A, 362, 81-106(2003).
[9] Bandyopadhyay A, Heer B. Additive manufacturing of multi-material structures[J]. Materials Science and Engineering: R: Reports, 129, 1-16(2018).
[10] Muller P, Mognol P, Hascoet J Y. Modeling and control of a direct laser powder deposition process for Functionally Graded Materials (FGM) parts manufacturing[J]. Journal of Materials Processing Technology, 213, 685-692(2013).
[11] Chen N N, Khan H A, Wan Z X et al. Microstructural characteristics and crack formation in additively manufactured bimetal material of 316L stainless steel and Inconel 625[J]. Additive Manufacturing, 32, 101037(2020).
[12] Carroll B E, Otis R A, Borgonia J P et al. Functionally graded material of 304L stainless steel andInconel 625 fabricated by directed energy deposition: characterization and thermodynamic modeling[J]. Acta Materialia, 108, 46-54(2016).
[13] Reichardt A, Dillon R P, Borgonia J P et al. Development and characterization of Ti-6Al-4V to 304L stainless steel gradient components fabricated with laser deposition additive manufacturing[J]. Materials & Design, 104, 404-413(2016).
[14] Zhang Y N, Bandyopadhyay A. Influence of compositionally graded interface on microstructure and compressive deformation of 316L stainless steel to Al12Si aluminum alloy bimetallic structures[J]. ACS Applied Materials & Interfaces, 13, 9174-9185(2021).
[15] Onuike B, Bandyopadhyay A. Additive manufacturing of Inconel 718-Ti6Al4V bimetallic structures[J]. Additive Manufacturing, 22, 844-851(2018).
[16] Pan T, Zhang X C, Yamazaki T et al. Characteristics of Inconel 625: copper bimetallic structure fabricated by directed energy deposition[J]. The International Journal of Advanced Manufacturing Technology, 109, 1261-1274(2020).
[17] Onuike B, Heer B, Bandyopadhyay A. Additive manufacturing of Inconel 718: copper alloy bimetallic structure using laser engineered net shaping (LENS™)[J]. Additive Manufacturing, 21, 133-140(2018).
[18] Cortina M, Arrizubieta J I, Ruiz J E et al. Thermomechanical analysis of additively manufactured bimetallic tools for hot stamping[J]. Journal of Manufacturing Processes, 57, 905-918(2020).
[19] Luo X D, Liu H, Zhu Y X et al. Effect of heat treatment on microstructure and mechanical properties of EH36 alloy[J]. Applied Mechanics and Materials, 487, 177-180(2014).
[20] Vahedi Nemani A, Ghaffari M, Nasiri A. Comparison of microstructural characteristics and mechanical properties of shipbuilding steel plates fabricated by conventional rolling versus wire arc additive manufacturing[J]. Additive Manufacturing, 32, 101086(2020).
[21] Borba T M D, Flores W D, de Oliveira Turani L et al. Assessment of the weldability of EH36 TMCP shipbuilding steel welded by high heat input submerged arc welding[J]. Welding International, 31, 184-195(2017).
[22] Yoshida S, Ikeuchi T, Bhattacharjee T et al. Effect of elemental combination on friction stress and Hall-Petch relationship in face-centered cubic high/medium entropy alloys[J]. Acta Materialia, 171, 201-215(2019).
[23] Wang J J, Chew Y X, Wu W J et al. Microstructure and mechanical properties of ASTM A131 EH36 steel fabricated by laser aided additive manufacturing[J]. Materials Characterization, 174, 110949(2021).
[24] khan A R, Yu S F, Zubair M. Direct observation of austenite and pearlite formation in thermally simulated coarse grain heat-affected zone of pearlite railway steel[J]. Journal of Materials Engineering and Performance, 30, 497-509(2021).
[25] Wang P Q, Wang Y Y, Wu M J et al. Effects of heat treatment on microstructure, mechanical properties, and anisotropy of laser melting deposited TC4[J]. Chinese Journal of Lasers, 48, 1002116(2021).
[26] Liu L F, Ding Q Q, Zhong Y et al. Dislocation network in additive manufactured steel breaks strength-ductility trade-off[J]. Materials Today, 21, 354-361(2018).
[27] Xu X, Zhang J, Liu H G et al. Grain refinement mechanism under high strain-rate deformation in machined surface during high speed machining Ti6Al4V[J]. Materials Science and Engineering: A, 752, 167-179(2019).
Get Citation
Copy Citation Text
Yuchao Bai, Di Wang, Chaojiang Li. Research on A131 EH36/AISI 1045 Bimetallic Material Fabricated by Laser Directed Energy Deposition[J]. Chinese Journal of Lasers, 2022, 49(14): 1402304
Received: Dec. 20, 2021
Accepted: Feb. 18, 2022
Published Online: Jun. 17, 2022
The Author Email: Wang Di (mewdlaser@scut.edu.cn)