Acta Metallurgica Sinica (English Letters) ›› 2020, Vol. 33 ›› Issue (8): 1091-1102.DOI: 10.1007/s40195-020-01084-2
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													Hao Wu1, Si-Rui Huang1, Cheng-Yan Zhu1, Ji-Feng Zhang1, He-Guo Zhu1( ), Zong-Han Xie2,3(
), Zong-Han Xie2,3( )
)
												  
						
						
						
					
				
Received:2020-01-07
															
							
																	Revised:2020-05-04
															
							
															
							
																	Online:2020-08-10
															
							
																	Published:2020-08-06
															
						Contact:
								He-Guo Zhu,Zong-Han Xie   
													Hao Wu, Si-Rui Huang, Cheng-Yan Zhu, Ji-Feng Zhang, He-Guo Zhu, Zong-Han Xie. In Situ TiC/FeCrNiCu High-Entropy Alloy Matrix Composites: Reaction Mechanism, Microstructure and Mechanical Properties[J]. Acta Metallurgica Sinica (English Letters), 2020, 33(8): 1091-1102.
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																													Fig. 3 a DSC curve of Ti-Cu-C system; b DSC curve of Ti-Cu system; c XRD diffraction pattern of Ti-Cu-C system heated to 1171 K; d SEM image of Ti-Cu-C system heated to 1171 K; e XRD diffraction pattern of Ti-Cu-C system heated to 1373 K; f SEM image of Ti-Cu-C system heated to 1373 K
 
																													Fig. 7 XRD diffraction patterns of FeCrNiCu high-entropy alloy matrix composites with different volumes fractions of reinforcements: a matrix; b 5 vol% TiC/HEA; c 10 vol% TiC/HEA; d 15 vol% TiC/HEA
 
																													Fig. 8 SEM images and EDS spectra of the samples TiC/FeCrNiCu with different volumes fractions of reinforcements: a matrix; b 5 vol% TiC/HEA; c 10 vol% TiC/HEA; d 15 vol% TiC/HEA
 
																													Fig. 10 a Hardness of samples with different volume fractions of reinforcements; b engineering stress-strain curves of samples with different volume fractions of reinforcements
| Sample | Hardness (HV) | Yield strength (Mpa) | Ultimate strength (MPa) | Elongation (%) | 
|---|---|---|---|---|
| HEA | 351.4 ± 15.3 | 364.7 | 565.5 | 21.5 | 
| 5 vol% TiC-HEA | 383.7 ± 13.5 | 425.6 | 706.5 | 21.0 | 
| 10 vol% TiC-HEA | 569.1 ± 14.1 | 482.3 | 738.6 | 15.0 | 
| 15 vol% TiC-HEA | 797.3 ± 15.8 | 605.1 | 769.2 | 6.1 | 
Table 1 Mechanical properties of the FeCrNiCu high-entropy alloy with different volume fractions of in situ TiC
| Sample | Hardness (HV) | Yield strength (Mpa) | Ultimate strength (MPa) | Elongation (%) | 
|---|---|---|---|---|
| HEA | 351.4 ± 15.3 | 364.7 | 565.5 | 21.5 | 
| 5 vol% TiC-HEA | 383.7 ± 13.5 | 425.6 | 706.5 | 21.0 | 
| 10 vol% TiC-HEA | 569.1 ± 14.1 | 482.3 | 738.6 | 15.0 | 
| 15 vol% TiC-HEA | 797.3 ± 15.8 | 605.1 | 769.2 | 6.1 | 
 
																													Fig. 11 Fracture surface of samples with different volume fractions of reinforcements: a matrix; b 5 vol% TiC/HEA; c 10 vol% TiC/HEA; d 15 vol% TiC/HEA
 
																													Fig. 12 a SEM image and EDS spectrum of the ex-situ 15% TiC/FeCrNiCu composite; b engineering stress-strain curves of samples with different preparation methods
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