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高应变率条件下山西黑花岗岩的动态力学性能研究
引用本文:姜峰,李子沐,王宁昌,郭桦,徐西鹏. 高应变率条件下山西黑花岗岩的动态力学性能研究[J]. 振动与冲击, 2016, 35(8): 177-182
作者姓名:姜峰  李子沐  王宁昌  郭桦  徐西鹏
作者单位:1.华侨大学 脆性材料加工技术教育部工程中心 福建 厦门 361021;
2.上海交通大学 机械系统与振动国家重点实验室 上海 200240
摘    要:采用分离式Hopkinson压杆试验技术,对山西黑花岗岩进行了一系列不同应变率(315.53s-1~1349.87s-1)的动态压缩试验。试验结果表明:山西黑花岗岩在高应变率条件下,动态抗压强度表现出突变特性:应变率从460.09s-1上升到860.20s-1的时候,山西黑花岗岩的动态抗压强度从272.33MPa提高到371.78MPa;在高应变率条件下,山西黑花岗岩材料的破碎机理为在初始冲击波作用区先产生体积破碎,而后在试样后半部分产生赫兹破碎;山西黑花岗岩在高应变率下的弹塑性变形能随应变率的增大而减小,高应变率条件下材料失效和裂纹扩展消耗更多能量,对应更加严重的材料破碎。

关 键 词:岩石动态力学性能  山西黑花岗岩  分离式Hopkinson压杆  高应变率  破碎机理  

Research on dynamic characteristics of Shanxi black granite under high strain rates
JIANG Feng,LI Zi-mu,LIU Qing-feng,GUO Hua,XU Xi-peng. Research on dynamic characteristics of Shanxi black granite under high strain rates[J]. Journal of Vibration and Shock, 2016, 35(8): 177-182
Authors:JIANG Feng  LI Zi-mu  LIU Qing-feng  GUO Hua  XU Xi-peng
Affiliation:1. Engineering Research Center for Machining of Brittle Materials of Ministry of Education, Huaqiao University, Xiamen 361021, China;2. State Key Laboratory of Mechanical System and Vibration, Shanghai Jiao Tong University, Shanghai 200240, China
Abstract:
A series of dynamic compression tests of Shanxi black granite under different strain rates (315.53s-1~1349.87s-1) have been carried out with Split Hopkinson Pressure Bar. Dynamic compressive strength of Shanxi black granite increased from 272.33MPa to 371.78MPa when strain rate increased from 460.09s-1 to 860.20s-1. The fracture mechanism of Shanxi black granite with high strain rates is volume fracture in the initial impact region of the shock wave and Hertzian fracture in the second half of the cylinder sample. The elastic-plastic deformation energy per unit volume of Shanxi black granite decreased with strain rate increasing. Material failure and crack propagation absorb more energy during the impact with higher strain rate, which results in severer fracture of granite material. 
Keywords:dynamic property of rock  Shanxi black granite  split Hopkinson pressure bar  high strain rate  fracture mechanism
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