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The Structure and Mechanical Properties of WC–8 wt.% Co Hardmetal Produced by Cold and Hot Isostatic Pressing

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Powder Metallurgy and Metal Ceramics Aims and scope

The structure and properties of tungsten carbide hardmetal with 8 wt.% Co produced by cold and hot isostatic pressing with the same starting powder mixture and conventional initial pressing of billets in metal dies were studied. The first batch of the samples was prepared by vacuum sintering of the pressed billets. The second batch was prepared by vacuum sintering followed by hot isostatic pressing of the billets at 5 MPa. The third batch was prepared by hot isostatic pressing at 200 MPa followed by vacuum sintering. The sintered samples had a density of 14.57 g/cm3 in batch 1, 14.60 g/cm3 in batch 2, and 14.63 g/cm3 in batch 3. Microstructural analysis showed that cold isostatic pressing promoted more homogeneous and finer structure. According to the coercive force determination and structural analysis performed with scanning electron microscopy and X-ray diffraction, the average size of carbide grains was 1.315 μm for the samples in batch 1, 1.396 μm in batch 2, and 1.062 μm in batch 3. Determination of residual stresses indicated that they were compressive in both phases (WC and Co) of the batch 3 samples and tensile for the batch 1 and 2 samples. The average values of measured Rockwell hardness were 88, 87, and 90 HRA for the samples in batches 1, 2, and 3. Mechanical tests of the samples indicated that the bending strength and fracture toughness were 1820 + 110 MPa and 18.9 + 1.2 MPa · m1/2 for the samples in batch 1, 2030 + 130 MPa and 18.2 + 1.1 MPa · m1/2 in batch 2, and 2040 + 120 MPa and 18.6 + + 1.2 MPa · m1/2 in batch 3. The high mechanical properties of the hardmetal are determined by structural variations and change from tensile to compressive residual stresses in the batch 3 samples.

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References

  1. Z.Z. Fang, M.C. Koopman, and H. Wang, “Cemented tungsten carbide hardmetal—An introduction,” Compr. Hard Mater., No. 1, 123–137 (2014), DOI:https://doi.org/10.1016/B978-0-08-096527-7.00004-0.

  2. T.B. Zhu, J. Zhang, D. An, Z.P. Xie, Y.W. Li, S.B. Sang, and J.N. Dai, “Oscillatory pressure sintering: a new method for preparing WC–Co cemented carbides,” J. Alloys Compd., 816, 1–5 (2019).

    Google Scholar 

  3. G.Ya. Akimov, I.V. Andreev, P.I. Loboda, I.Yu. Trosnikova, V.I. Sheremet, A.O. Novokhatska, and L.M. Melakh, “The effect of cold isostatic pressing of powder billets produced from the VK8 hardmetal on its hardness and phase composition after sintering,” Powder Metall. Met. Ceram., 60, No. 3–4, 142–149 (2021).

    Article  CAS  Google Scholar 

  4. C.B. Wei, X.Y. Song, J. Fu, X.M. Liu, Y. Gao, H.B. Wang, and S.X. Zhao, “Microstructure and properties of ultrafine cemented carbides—differences in spark plasma sintering and sinter-HIP,” Mater. Sci. Eng.: A, No. 552, 427–433 (2012).

  5. Q. Yang, J. Yang, H. Yang, G. Ni, and J. Ruan, “Synthesis of ultrafine WC–10 Co composite powders with carbon boat added and densification by sinter-HIP,” Int. J. Refract. Met. Hard Mater., No. 62, 104–109 (2017).

  6. S.H. Chang and P.Y. Chang, “Study on the mechanical properties, microstructure and corrosion behaviors of nano-WC–Co–Ni–Fe hard materials through HIP and hot-press sintering processes,” Mater. Sci. Eng.: A, No. 618, 56–62 (2014).

  7. V.P. Bondarenko, N.M. Prokopiv, and E.G. Pavlotska, “Compressive sintering of hardmetals at nitrogen pressure to 1.2 MPa,” Instr. Svit, No. 8, 15–16 (2000).

  8. C. Liu, N. Lin, Y. He, C. Wu, and Y. Jiang, “The effects of micron WC contents on the microstructure and mechanical properties of ultrafine WC–(micron WC–Co) cemented carbides,” J. Alloys Compd., No. 594, 76–81 (2014).

  9. N.M. Prokopiv, O.V. Kharcenko, S.V. Tkach, L.E. Vasilenko, N.N. Prokopiv, Yu.D. Serdyuk, and O.A. Semizhon, “The influence of thermal–compression treatment under argon pressure of 3.0 MPa on microstructure of standard (Ti, W)C–WC–10 Co hardmetal,” J. Superhard Mater., 33, No. 5, 320–326 (2011).

    Article  Google Scholar 

  10. T.T. Shen, D.H. Xiao, X.Q. Ou, M. Song, Y.H. He, N. Lin, and D.F. Zhang, “Effects of LaB6 addition on the microstructure and mechanical properties of ultrafine grained WC–10Co alloys,” J. Alloys Compd., 509, No. 4, 1236–1243 (2011).

    Article  CAS  Google Scholar 

  11. H. Wang, M. Zeng, J. Liu, Z. Lu, Z. Shi, L. Ouyang, and M. Zhu, “One-step synthesis of ultrafine WC–10 Co hardmetals with VC/V2O5 addition by plasma assisted milling,” Int. J. Refract. Met. Hard Mater., No. 48, 97–101 (2015).

  12. Y. Ye, H. Xia, Y. Lin, F. Chen, and Q. Shen, “Refined WC grain size and improved mechanical properties in a hardmetal WC–8Co processed via short-time semi-solid hot pressing,” J. Alloys Compd., 889, No. 2, 1–9 (2021).

    Google Scholar 

  13. M.R. Rumman, Z. Xie, S.-J. Hong, and R. Ghomashchi, “Effect of spark plasma sintering pressure on mechanical properties of WC–7.5 wt.% nano Co,” Mater. Des., No. 68, 221–227 (2015).

  14. M.S. Kovalchenko, O.I. Tolochyn, and R.V. Litvin, “Densification dynamics of fine-grained WC + 25 wt.% Co cermet during long-temperature impact sintering in vacuum,” Powder Metall. Met. Ceram., 57, No. 1–2, 38–48 (2018).

    Article  CAS  Google Scholar 

  15. R. Rumman, L.C. Chuan, J.S. Quinton, and R. Ghomashchi, “Understanding the potential of microwave sintering on WC–Co,” Int. J. Ref. Met. Hard Mater., No. 81, 7–14 (2019).

  16. M.S. Kovalchenko, “Rheology and kinetics of pressure sintering,” Mater. Sci. Forum, 835, 76–105 (2016).

    Article  Google Scholar 

  17. Z.Z. Fang, X. Wang, T. Ryu, K.S. Hwang, and H.Y. Sohn, “Synthesis, sintering, and mechanical properties of nanocrystalline cemented tungsten carbide—A review,” Int. J. Refract. Met. Hard Mater., 27, No. 2, 288–299 (2009).

    Article  CAS  Google Scholar 

  18. D.H. Xiao, Y.H. He, M. Song, N. Lin, and R.F. Zhang, “Y2O3- and NbC-doped ultrafine WC–10 Co alloys by low pressure sintering,” Int. J. Refract. Met. Hard Mater., 28, No. 3, 407–411 (2010).

    Article  CAS  Google Scholar 

  19. O.I. Fomina, S.N. Suvorova, and Ya.M. Turetski, Encyclopedia of International Standards. Powder Metallurgy, Moscow (1999), p. 312.

  20. JMicroVision Microanalysis Software, JMicroVision, Software (1 file: 28.7 MB), https://jmicrovision.github.io/download.htm, last access date: September 25, 2021.

  21. ISO 4499-4:2016. Hardmetals—Metallographic Determination of Microstructure, Part 4: Characterization of Porosity, Carbon Defects and Eta-Phase Content, TC 119/SC 4 (2016).

  22. ISO 4499-2:2020. Hardmetals—Metallographic Determination of Microstructure, Part 2: Measurement of WC Grain Size, TC 119/SC 4 (2020).

  23. M.G. Loshak, Strength and Life of Hardmetals [in Russian], Naukova Dumka, Kyiv (1984), p. 327.

    Google Scholar 

  24. G. Ya. Akimov and V.M. Timchenko, “Mechanical properties of ceramics made from nanocrystalline powder ZrO2–3 mol.% Y2O3,” Refract. Ind. Ceram., 45, No. 1, 55–57 (2004).

    Article  CAS  Google Scholar 

  25. A. Love, S. Luyckx, and N. Sacks, “Quantitative relationships between magnetic properties, microstructure and composition of WC–Co alloys,” J. Alloys Compd., 489, No. 2, 465–468 (2010).

    Article  CAS  Google Scholar 

  26. G.Ya. Akimov, I.Yu. Prokhorov, and V.M. Timchenko, “Effect of quasi-hydrostatic compression on the mechanical properties of ceramics in the ZrO2 + 3 mol.% Y2O3 system,” Refract. Tech. Ceram., 43, No. 3, 100–102 (2002).

    Article  CAS  Google Scholar 

  27. G. Ya. Akimov and I.Yu. Prokhorov, “Plastic stress relaxation during crack arrest in hydrostatically compressed alkali halide crystals,” Phys. Status Solidi A, 103, No. 1, 115–124 (1987).

    Article  CAS  Google Scholar 

  28. G.Ya. Akimov, I.Yu. Trosnikova, P.I. Loboda, I.V. Andreev, V.I. Sheremet, and L.M. Melakh, “Effect of cold isostatic pressing of VK8 billets before sintering on generation of residual stresses in tungsten carbide grains and hardness after sintering,” Ogneup. Tekh. Keram., No. 6, 17–21 (2020).

  29. S.P. Burkin, G.V. Shimov, and E.A. Andryukova, Residual Stresses in Metal Products [in Russian], Izd. Ural Univ., Ekaterinburg (2015), p. 247.

    Google Scholar 

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Acknowledgment

The authors are grateful to Professor Oleksandr Kolot for assisting in the development of a cold isostatic pressing unit for the experiments and for arranging the use of the 10 MPa vacuum pressure sinter-HIP furnace for hot isostatic pressing operations.

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Correspondence to G. Ya. Akimov or V. I. Sheremet.

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Translated from Poroshkova Metallurgiya, Vol. 61, Nos. 1–2 (543), pp. 12–23, 2022.

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Akimov, G.Y., Andreev, I.V., Sheremet, V.I. et al. The Structure and Mechanical Properties of WC–8 wt.% Co Hardmetal Produced by Cold and Hot Isostatic Pressing. Powder Metall Met Ceram 61, 9–17 (2022). https://doi.org/10.1007/s11106-022-00290-0

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