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WHERE DOES THE ENERGY GO IN HIGH ENERGY MILLING?

机译:能量在哪里高能量铣削?

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摘要

An attempt is made to analyze as to how the energy is dissipated, stored and distributed in the material during the process of high energy milling. The manifestation of the enhanced potential energy in different forms (point, line and volume defects, surfaces and interfaces, strain and structural disorder) is determined through direct energy measurements, calorimetry, surface area and surface energy measurements. X-ray line broadening analysis employing the Hall-Williamson method is used to estimate the non-uniform elastic strain and grain size and the extent of structural disorder is evaluated from integral peak areas of XRD. A close packing of crystallites approximating a tetrakai-decahedron configuration is used to calculate the grain boundary area. The strain energy is calculated using the theory of elasticity. The energy of amorphisation is calculated from the enthalpy of fusion and specific heats of solid and liquid. Mechanical activation of zircon is chosen for the study of the energetics of the process. For the milling of zircon, the energy transferred to the material is found to be 13% of the specific energy input in 6 h of milling in a planetary mill. It is observed that a large part of the energy transferred to the material is lost during the breaking of the bonds and only a small fraction goes towards enhancing the potential energy mainly as elastic strain energy and structural disorder. The energy stored in point and line defects, additional surfaces and grain boundaries are comparatively lesser.
机译:试图分析在高能铣削过程中如何在材料中耗散,储存和分布在材料中。通过直接能量测量,量热法,表面积和表面能量测量来确定以不同形式(点,线和体积缺陷,表面和界面,应变和结构障碍,菌株和结构障碍)的增强势能的表现。使用Hall-Williamson方法的X射线线扩大分析用于估计非均匀的弹性应变和晶粒尺寸,并且结构障碍的程度来自XRD的整体峰面积。近似于Tetrakai-Decahedron配置的微晶的紧密填充用于计算晶界区域。使用弹性理论计算应变能。使芳晶体的能量由熔融焓和固体和液体的特定热量计算。选择锆石的机械激活,用于研究该过程的能量学。对于锆的铣削,将传递到材料的能量是在行星磨机中铣削6小时的特定能量输入的13%。观察到,在粘合期间,转移到材料的大部分能量在粘合期间丢失,并且只有小部分朝向增强潜在能量,主要是弹性应变能量和结构障碍。存储在点和线缺陷中的能量,附加表面和晶界相对较低。

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