REFERENCES

1. Smith J, Xiong W, Yan W, et al. Linking process, structure, property, and performance for metal-based additive manufacturing: computational approaches with experimental support. Comput Mech 2016;57:583-610.

2. Wang H, Zhu Z, Chen H, et al. Effect of cyclic rapid thermal loadings on the microstructural evolution of a CrMnFeCoNi high-entropy alloy manufactured by selective laser melting. Acta Mater 2020;196:609-25.

3. Sargent N, Jones M, Otis R, Shapiro AA, Delplanque J, Xiong W. Integration of processing and microstructure models for non-equilibrium solidification in additive manufacturing. Metals 2021;11:570.

4. Sridar S, Sargent N, Wang X, Klecka MA, Xiong W. Determination of location-specific solidification cracking susceptibility for a mixed dissimilar alloy processed by wire-arc additive manufacturing. Metals 2022;12:284.

5. Xiong W, Olson GB. Integrated computational materials design for high-performance alloys. MRS Bull 2015;40:1035-44.

6. Xiong W, Olson GB. Cybermaterials: materials by design and accelerated insertion of materials. npj Comput Mater 2016:2.

7. Olson GB. Computational design of hierarchically structured materials. Science 1997;277:1237-42.

8. Zhao J, Zheng X, Cahill DG. High-throughput diffusion multiples. Mater Today 2005;8:28-37.

9. Zhao J. The diffusion-multiple approach to designing alloys. Annu Rev Mater Res 2005;35:51-73.

10. Aalund R. Unveiling spark plasma sintering high-throughput processing. In: Bansal NP, Singh JP, Lamon J, Choi SR, Mahmoud MM, editors. Processing and properties of advanced ceramics and composites II. Hoboken: John Wiley & Sons, Inc.; 2010. pp. 1-10.

11. Hui J, Ma H, Wu Z, et al. High-throughput investigation of crystal-to-glass transformation of Ti-Ni-Cu ternary alloy. Sci Rep 2019;9:19932.

12. Yu Z, Zheng W, Li Z, et al. Accelerated exploration of TRIP metallic glass composite by laser additive manufacturing. J Mater Sci Technol 2021;78:68-73.

13. Moorehead M, Nelaturu P, Elbakhshwan M, et al. High-throughput ion irradiation of additively manufactured compositionally complex alloys. J Nuclear Mater 2021;547:152782.

14. Nie J, Wei L, Li D, Zhao L, Jiang Y, Li Q. High-throughput characterization of microstructure and corrosion behavior of additively manufactured SS316L-SS431 graded material. Add Manufact 2020;35:101295.

15. Borkar T, Chaudhary V, Gwalani B, et al. A Combinatorial approach for assessing the magnetic properties of high entropy alloys: role of Cr in AlCoxCr1-xFeNi: a combinatorial approach for assessing the magnetic. Adv Eng Mater 2017;19:1700048.

16. Teh WH, Chaudhary V, Chen S, et al. High throughput multi-property evaluation of additively manufactured Co-Fe-Ni materials libraries. Add Manufact 2022;58:102983.

17. Schneck M, Horn M, Schindler M, Seidel C. Capability of multi-material laser-based powder bed fusion-development and analysis of a prototype large bore engine component. Metals 2022;12:44.

18. Zhao Y, Sargent N, Li K, Xiong W. A new high-throughput method using additive manufacturing for alloy design and heat treatment optimization. Materialia 2020;13:100835.

19. Wei C, Zhao J. Gradient temperature heat treatment for efficient study of phase precipitation in a high-temperature Fe-Cr-Mo ferritic steel. Materialia 2018;3:31-40.

20. Heckman NM, Ivanoff TA, Roach AM, et al. Automated high-throughput tensile testing reveals stochastic process parameter sensitivity. Mater Sci Eng 2020;772:138632.

21. Jalali SIA, Kumar P, Jayaram V. High throughput determination of creep parameters using cantilever bending: part I - steady-state. J Mater Res 2020;35:353-61.

22. Jalali SI, Kumar P, Jayaram V. High throughput determination of creep parameters using cantilever bending: part II - primary and steady-state through uniaxial equivalency. J Mater Res 2020;35:362-71.

23. Vignesh B, Oliver W, Kumar GS, Phani PS. Critical assessment of high speed nanoindentation mapping technique and data deconvolution on thermal barrier coatings. Mater Design 2019;181:108084.

24. Chawla N, Ganesh V, Wunsch B. Three-dimensional (3D) microstructure visualization and finite element modeling of the mechanical behavior of SiC particle reinforced aluminum composites. Script Mater 2004;51:161-5.

25. Hagita K, Higuchi T, Jinnai H. Super-resolution for asymmetric resolution of FIB-SEM 3D imaging using AI with deep learning. Sci Rep 2018;8:5877.

26. Pirgazi H. On the alignment of 3D EBSD data collected by serial sectioning technique. Mater Charact 2019;152:223-9.

27. Zhao Y, Li K, Gargani M, Xiong W. A comparative analysis of Inconel 718 made by additive manufacturing and suction casting: microstructure evolution in homogenization. Add Manufact 2020;36:101404.

28. Zhao Y, Meng F, Liu C, Tan S, Xiong W. Impact of homogenization on microstructure-property relationships of Inconel 718 alloy prepared by laser powder bed fusion. Mater Sci Eng 2021;826:141973.

29. Zhao L, Jiang L, Yang L, et al. High throughput synthesis enabled exploration of CoCrFeNi-based high entropy alloys. J Mater Sci Technol 2022;110:269-82.

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