Abstract

Cubic boron nitride (cBN) with high hardness, thermal conductivity, wear resistance, and chemical inertness has become the most promising abrasive and machining material. Due to the difficulty of fabricating pure cBN body, generally, some binders are incorporated among cBN particles to prepare polycrystalline cubic boron nitride (PcBN). Hence, the binders play a critical factor to the performances of PcBN composites. In this study, the PcBN composites with three binder systems containing ceramic and metal phases were fabricated by spark plasma sintering (SPS) from 1400 to 1700 °C. The sintering behaviors and mechanical properties of the composites were investigated. Results show that the effect of binder formulas on mechanical properties mainly related to the compactness, mechanical performances, and thermal expansion coefficient of binder phases, which affect the carrying capacity of the composites and the bonding strength between binder phases and cBN particles. The PcBN composite with SiAlON phase as binder presented optimal flexural strength (465±29 MPa) and fracture toughness (5.62±0.37 MPa·m1/2), attributing to the synergistic effect similar to transgranular and intergranular fractures. Meanwhile, the excellent mechanical properties can be maintained a comparable level when the temperature even rises to 800 °C. Due to the weak bonding strength and high porosity, the PcBN composites with Al2O3-ZrO2(3Y) and Al-Ti binder systems exhibited inferior mechanical properties. The possible mechanisms to explain these results were also analyzed.

Highlights

  • Cubic boron nitride possesses high thermal conductivity, wear resistance, chemical inertness, and excellent mechanical properties and is the second hardest material next to diamond [1,2]

  • Various systems of binders have complicate influence on the compositions of polycrystalline cubic boron nitride (PcBN) composites, and typically there are new phases generated from chemical reaction during sintering

  • To further confirm the above descriptions, the crack propagation paths of the PcBN composites were further observed and the results are shown in Fig. 8, which can reflect crack propagating along phase interfaces or across Cubic boron nitride (cBN) particles, thereby indicating the bonding strength between cBN particles and binder phases

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Summary

Introduction

Cubic boron nitride (cBN) possesses high thermal conductivity, wear resistance, chemical inertness, and excellent mechanical properties and is the second hardest material next to diamond [1,2]. It has become the most promising cutting component in the abrasive and machine tool industry because of its low chemical reactivity with iron (Fe), nickel (Ni), and related alloys; thereby it can compensate the defect of diamond reacting and decomposing at high temperatures [3,4,5]. SPS, a superior sintering technology to heat powder materials via a sequence of direct current pulses [19], possesses high heating rate, and short holding time [20], which can shorten the exposure time of the cBN grains at high temperatures and suppress phase transformation from cBN to hBN [18,21]

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