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    					| Effect of Cr addition on magnetic properties of hot-deformed Nd-Fe-B magnets |  
						| HOU Pengjun1,3, WANG Yan1, LIU Yong1, LUO Yang2,3,4, WANG Zilong2,3,4 |  
						| 1. State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, China; 2. National Engineering Research Center for Rare Earth, Grirem Advanced Materials Co., Ltd, Beijing 100088, China;
 3. Grirem Hi-Tech Co., Ltd, Langfang 065201, China;
 4. General Research Institute of Nonferrous Metals, Beijing 100088, China
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													    | Abstract  To optimize the structure of the coarse-grained regions in hot-deformed Nd-Fe-B magnets and enhance their structural uniformity. In this paper, Nd-Fe-B magnets with different Cr contents were prepared using fast-quenched magnetic powder and Cr powder as raw materials through hot pressing and hot deformation processes. The effects of Cr content on the microstructure and magnetic properties of the magnets were studied by scanning electron microscope, energy spectrometer, X-ray diffractometer, and the mechanism of its magnetic property changes was revealed. The results indicate that an appropriate addition of Cr can significantly enhance the remanence and maximum magnetic energy product of Nd-Fe-B magnets. When w(Cr) is 0.5%, the remanence and magnetic energy product can reach 1.39 T and 353 kJ/m3, respectively. Cr exists as single particles, and the rare-earth-rich phase enriches around the Cr particles, forming a coating layer, which effectively reduces the inhomogeneous distribution of rare-earth-rich phases, optimizes the overall width and distribution of the coarse-grained regions. Thus, the texture of the magnet is optimized, leading to the improvement of comprehensive magnetic properties. |  
															| Received: 27 March 2025
																	    
															    															    															    																	Published: 13 October 2025 |  
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