论文著作:
[1] Q. Wang, Z.H. Zhang*, T.J. Su, X.W. Cheng*, X.Y. Li, S.Z. Zhang, J.Y. He. A TiB whisker-reinforced titanium matrix composite with controllable orientation: A novel method and superior strengthening effect, Materials Science and Engineering: A, 2022, 830: 142309.
[2] X.Y. Li, Z.H. Zhang*, X.W. Cheng*, G.J. Huo, Q. Song, Y. Xu. Direct achievement of ultra-high strength and good ductility for high CoNi secondary hardening steel by combining spark plasma sintering and deformation, Materials Letters, 2021, 290: 129465.
[3] Z.Y. Hu, Z.H. Zhang*, X.W. Cheng*, F.C. Wang, Y.F. Zhang, S.L. Li. A review of multi-physical fields induced phenomena and effects in spark plasma sintering- Fundamentals and applications, Materials and Design, 2020, 191: 108662.
[4] Q. Song, Z.H. Zhang*, Z.Y. Hu, S.P. Yin, H. Wang, X.Y. Li, X.W. Cheng*. Influences of the pre-oxidation time on the microstructure and flexural strength of monolithic B4C ceramic and TiB2-SiC-B4C composite, Journal of Alloys and Compounds, 2020, 831: 154852.
[5] Q. Song, Z.H. Zhang*, Z.Y. Hu, H. Wang, Y.F. Zhang, X.Y. Li, X.W. Cheng*. Mechanical properties and pre-oxidation behavior of spark plasma sintered B4C ceramics using (Ti3SiC2+CeO2/La2O3) as sintering aid, Ceramics International, 2020, 46: 22189-22196.
[6] Q. Song, S.P. Yin, Z.H. Zhang*, Z.Y. Hu. Microstructure and mechanical properties of super-hard B4C ceramic fabricated by spark plasma sintering with (Ti3SiC2+Si) as sintering aid. Ceramics International. 2019, 45: 8790-8797.
[7] Z.Y. Hu, Z.H. Zhang*, X.W. Cheng. Microstructure evolution and tensile properties of Ti-(AlxTiy) core-shell structured particles reinforced aluminum matrix composites after hot-rolling/heat-treatment, Materials Science and Engineering: A, 2018, 737: 90-93.
[8] S.P. Yin, Z.H. Zhang*, X.W. Cheng. Spark plasma sintering of B4C-TiB2-SiC composite ceramics using B4C, Ti3SiC2 and Si as starting materials. Ceramics International. 2018, 44: 21626-21632.
[9] Z.Y. Hu, Z.H. Zhang*, X.W. Cheng. A rapid route for synthesizing Ti-(AlxTiy/UFG Al) core-multishell structured particles reinforced Al matrix composite with promising mechanical properties. Materials Science & Engineering A. 2018, 721: 61-64.
[10] H. Wang, Z.H. Zhang*, Z.Y. Hu. Improvement of interfacial interaction and mechanical properties in copper matrix composites reinforced with copper coated carbon nanotubes. Materials Science & Engineering A. 2018, 715: 163-173.
[11] Z.Y. Hu, X.W. Cheng, H.M. Zhang, Z.H. Zhang*. Investigation on the microstructure, room and high temperature mechanical behaviors and strengthening mechanisms of the (TiB+TiC)/TC4 composites. Journal of Alloys and Compounds, 2017, 726: 240-253.
[12] H. Wang, Z.H. Zhang*, H.M. Zhang, Z.Y. Hu. Novel synthesizing and characterization of copper matrix composites reinforced with carbon nanotubes. Materials Science & Engineering A, 2017, 696: 80-89.
[13] Z.Y. Hu, X.W. Cheng, Z.H. Zhang*, H. Wang. The influence of defect structures on the mechanical properties of Ti-6Al-4V alloys deformed by high-pressure torsion at ambient temperature. Materials Science and Engineering: A. 2017, 684: 1-13.
[14] F.C. Wang, Z.H. Zhang*, Y.J. Sun, Z.Y. Hu. Rapid and low temperature spark plasma sintering synthesis of novel carbon nanotube reinforced titanium matrix composites, Carbon. 2015, 95: 396-407.
[15] Z.F. Liu, Z.H. Zhang*, J.F. Lu, F.C. Wang. Effect of sintering temperature on microstructures and mechanical properties of spark plasma sintered nanocrystalline aluminum. Materials & Design. 2014, 64: 625-630.
[16] Z.F. Liu, Z.H. Zhang*, F.C. Wang. A novel and rapid route for synthesizing nanocrystalline aluminum. Materials Science and Engineering: A. 2014, 615: 320-323.
[17] Z. H. Zhang*, F.C. Wang, Y.D. Wang. The sintering mechanism in spark plasma sintering – Proof of the occurrence of spark discharge. Scripta Materialia. 2014, 81: 56-59.
[18] S. Wei, Z.H. Zhang*, F.C. Wang. Effect of Ti content and sintering temperature on the microstructures and mechanical properties of TiB reinforced titanium composites synthesized by SPS process. Materials Science and Engineering A. 2013, 560(10-11): 249-255.
[19] Z.H. Zhang*, X.B. Shen, F.C. Wang. Microstructure characteristics and mechanical properties of TiB/Ti-1.5Fe-2.25Mo composites synthesized in situ using SPS process. Transactions of Nonferrous Metals Society of China. 2013, 23(9): 2958-2604.
[20] Z.H. Zhang*, X.B. Shen, F.C. Wang. A new rapid route to in-situ synthesize TiB-Ti system functionally graded materials using spark plasma sintering method. Materials Science and Engineering A. 2013, 565: 326-332.
[21] Z.H. Zhang*, L. Qi, X.B. Shen, F.C. Wang. Microstructure and mechanical properties of bulk carbon nanotubes compacted by spark plasma sintering. Materials Science and Engineering A. 2013, 573: 12-17.