Wen Shiyi, Tan Jing, Long Jianzhan, Tan Zhuopeng, Yin Lei, Liu Yuling, Du Yong, Kaptay George
School of Metallurgy and Environment, Central South University, Changsha 410083, China.
State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, China.
Materials (Basel). 2023 Apr 6;16(7):2915. doi: 10.3390/ma16072915.
Excellent thermal conductivity is beneficial for the fast heat release during service of cemented carbides. Thus, thermal conductivity is a significant property of cemented carbides, considerably affecting their service life. Still, there is a lack of systematic investigation into the thermal conductivity of two-phase WC-Co-Ni cemented carbides. To remedy this situation, we integrated experiments and models to study its thermal conductivity varying the phase composition, temperature and WC grain size. To conduct the experiments, WC-Co-Ni samples with two-phase structure were designed via the CALPHAD (Calculation of Phase Diagrams) approach and then prepared via the liquid-phase sintering process. Key thermal conductivity measurements of these prepared samples were then taken via LFA (Laser Flash Analysis). As for modeling, the thermal conductivities of (Co, Ni) binder phase and WC hard phase were firstly evaluated through our previously developed models for single-phase solid solutions. Integrating the present key measurements and models, the values of ITR (Interface Thermal Resistance) between WC hard phase and (Co, Ni) binder phase were evaluated and thus the model to calculate thermal conductivity of two-phase WC-Co-Ni was established. Meanwhile, this model was verified to be reliable through comparing the model-evaluated thermal conductivities with the experimental data. Furthermore, using this developed model, the thermal conductivity of two-phase WC-Co-Ni varying with phase-fraction, temperature and grain size of WC was predicted, which can contribute to its design for obtaining desired thermal conductivities.
优异的热导率有利于硬质合金在使用过程中快速散热。因此,热导率是硬质合金的一项重要性能,对其使用寿命有很大影响。然而,对于两相WC-Co-Ni硬质合金的热导率仍缺乏系统的研究。为了改善这种情况,我们结合实验和模型来研究其热导率随相组成、温度和WC晶粒尺寸的变化。为了进行实验,通过CALPHAD(相图计算)方法设计了具有两相结构的WC-Co-Ni样品,然后通过液相烧结工艺制备。然后通过激光闪光分析(LFA)对这些制备的样品进行关键热导率测量。至于建模,首先通过我们之前开发的单相固溶体模型评估(Co,Ni)粘结相和WC硬质相的热导率。结合当前的关键测量和模型,评估了WC硬质相和(Co,Ni)粘结相之间的界面热阻(ITR)值,从而建立了计算两相WC-Co-Ni热导率的模型。同时,通过将模型评估的热导率与实验数据进行比较,验证了该模型的可靠性。此外,利用这个开发的模型,预测了两相WC-Co-Ni的热导率随WC相分数、温度和晶粒尺寸的变化,这有助于其设计以获得所需的热导率。