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首页> 外文期刊>China Particuology >TENSILE STRENGTH FOR SPLITTING FAILURE OF BRITTLE PARTICLES WITH CONSIDERATION OF POISSON'S RATIO
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TENSILE STRENGTH FOR SPLITTING FAILURE OF BRITTLE PARTICLES WITH CONSIDERATION OF POISSON'S RATIO

机译:考虑到泊松比的脆性破坏脆性颗粒的拉伸强度

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摘要

The core mechanism of comminution could be reduced to the breakage of individual particles that occurs through contact with other particles or with the grinding media, or with the solid walls of the mill. When brittle particles are loaded in compression or by impact, substantial tensile stresses are induced within the particles. These tensile stresses are responsible for splitting failure of brittle particles. Since many engineering materials have Poisson's ratios very close to 0.3, the influence of Poisson's ratio on the tensile strength is neglected in many studies. In this paper, the state of stress in a spherical particle due to two diametrically opposed forces is analyzed theoretically. A simple equation for the tensile stress at the centre of the particle is obtained. It is found reasonable to propose this tensile stress at the instant of failure as the tensile strength of the particle. Moreover, this tensile strength is a function of the Poisson's ratio of the material. As the state of stress along the z-axis in an irregular specimen tends to be similar to that in a spherical particle compressed diametrically with the same force, this tensile strength has some validity for irregular particles as well. Therefore, it could be used as the tensile strength for brittle particles in general. The effect of Poisson's ratio on the tensile strength is discussed.
机译:粉碎的核心机制可以减少为单个颗粒的破裂,该破裂是通过与其他颗粒或研磨介质或磨机的实心壁接触而发生的。当脆性颗粒以压缩或冲击方式加载时,颗粒内会产生大量的拉应力。这些拉伸应力是导致脆性颗粒分裂失败的原因。由于许多工程材料的泊松比非常接近0.3,因此在许多研究中都忽略了泊松比对拉伸强度的影响。本文从理论上分析了由于两个完全相反的力所致的球形颗粒的应力状态。获得了在颗粒中心的拉应力的简单方程式。已经发现将失效时的拉伸应力作为颗粒的拉伸强度是合理的。而且,该拉伸强度是材料的泊松比的函数。由于在不规则样品中沿z轴的应力状态趋于类似于在相同力的作用下沿直径方向压缩的球形颗粒中的应力状态,因此这种拉伸强度对不规则颗粒也具有一定的有效性。因此,通常可以用作脆性粒子的拉伸强度。讨论了泊松比对拉伸强度的影响。

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