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Ultrasonic determination of the temperature and hydrostatic pressure dependences of the elastic properties of ceramic titanium diboride

机译:超声测定温度和静水压力对陶瓷二硼化钛弹性的影响

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摘要

Pulse-echo-overlap measurements of ultrasonic wave velocity have been used to determine the elastic stiffness moduli and related elastic properties of titanium diboride (TiB_(2)) ceramic samples as functions of temperature in the range 130-295 K and hydrostatic pressure up to 0.2 GPa at room temperature. TiB_(2) is an elastically stiff but light ceramic: at 295 K, the longitudinal stiffness (C_(L)), shear stiffness (μ), adiabatic bulk modulus (B~(S)), Young's modulus (E) and Poisson's ratio (σ) are 612 GPa, 252 GPa, 276 GPa, 579 GPa and 0.151, respectively. The adiabatic bulk modulus B~(S) is in good agreement with the results of recent theoretical calculations. All elastic moduli increase with decreasing temperature and do not show any pronounced unusual effects. The results of measurements of the effects of hydrostatic pressure on the ultrasonic wave velocity have been used to determine the hydrostatic-pressure derivatives of elastic stiffnesses and the acoustic-mode Gruneisen parameters. The values determined at 295 K for the hydrostatic-pressure derivatives (partial derivC_(L)/partial derivP)_(P=0), (partial derivμ/partial derivP)_(P=0) and (partial derivB~(S)/partial derivP)_(P=0) are 7.29±0.1, 2.53±0.1 and 3.91±0.1, respectively. The hydrostatic-pressure derivative (partial derivB~(S)/partial derivP)_(P=0) of the bulk modulus of TiB_(2) ceramic is found to be larger than that estimated previously from uniaxial shock-wave loading experiments. The longitudinal (γ_(L)), shear (γ_(S)), and mean (γ~(el)) acoustic-mode Gruneisen parameters of TiB_(2) are positive: the zone-centre acoustic phonons stiffen under pressure in the usual way. Since the acoustic Debye temperature Θ_(D) (=1190 K) is very high, the shear modes provide a substantial contribution to the acoustic phonon population at room temperature. Knowledge of the elastic and nonlinear acoustic properties sheds light on the thermal properties of ceramic TiB_(2).
机译:已使用超声波速度的脉冲回波重叠测量来确定二硼化钛(TiB_(2))陶瓷样品的弹性刚度模量和相关的弹性性能,该温度与温度在130-295 K和最大静压室温下为0.2 GPa。 TiB_(2)是一种弹性刚性但较轻的陶瓷:在295 K时,纵向刚度(C_(L)),剪切刚度(μ),绝热体积模量(B〜(S)),杨氏模量(E)和泊松比值(σ)分别为612 GPa,252 GPa,276 GPa,579 GPa和0.151。绝热体积模量B〜(S)与最近的理论计算结果非常吻合。所有弹性模量随温度降低而增加,并且没有显示任何明显的异常影响。静水压力对超声波速度影响的测量结果已用于确定弹性刚度的静水压力导数和声模Gruneisen参数。在295 K下确定的静水压导数(偏导数C_(L)/偏导数P)_(P = 0),(偏导微/偏导数P)_(P = 0)和(偏导数B〜(S) /偏导数(P = 0)分别为7.29±0.1、2.53±0.1和3.91±0.1。发现TiB_(2)陶瓷的体积模量的静水压力导数(偏导数B((S)/偏导数P)_(P = 0))大于先前从单轴冲击波加载实验中估计的静压导数。 TiB_(2)的纵向(γ_(L)),切变(γ_(S))和均值(γ〜(el))声模Gruneisen参数为正值:区域中心声子在压力作用下变硬通常的方式。由于声学德拜温度Θ_(D)(= 1190 K)很高,因此剪切模式在室温下对声子的声子分布起了很大作用。对弹性和非线性声学特性的了解揭示了陶瓷TiB_(2)的热特性。

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