Dynamic stress-strain behavior of pure iron for shaped charge liners
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摘要: 利用Hopkinson桿技術對經930℃下退火2h的純鐵藥型罩材料進行了沖擊壓縮實驗,測定了該材料在不同應變率下的動態應力-應變關系.借助光學顯微鏡對變形后純鐵的組織進行了觀察,研究了在不同應變率下變形過程中純鐵的組織演變和動態應力-應變行為.研究表明:在650~3850s-1的應變率范圍內,純鐵藥型罩材料有顯著的孿生變形,發生了明顯的應變強化和應變率強化效應,且最大應變也隨應變率的提高而增加;在高應變率沖擊下,孿生和滑移是純鐵的主要塑性變形機制,也是純鐵高應變率增強增塑的主要機制.Abstract: The shock compression experiments of pure iron for shaped charge liners after annealing at 930℃ for 2 h were carried out with the split Hopkinson pressure bar apparatus, and its dynamic stress-strain relationships were measured at different strain rates. The microstructure of the deformed pure iron was examined by optical microscope. The microstructure evolution occurring at different strain rates and dynamic stress-strain behavior were investigated. It is shown that pure iron for shaped charge liners has the twinning structure after impact compression. The effect of work-hardening and strain rate strengthening for pure iron occurs at the strain rates of 650 to 3 850 s-1, and the maximum strain also rises with increasing strain rate. Twinning and slipping are the plastic deformation mechanism of pure iron under the shock of high strain rate, which leads to the increase in both strength and plasticity at high strain rate for pure iron.
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Key words:
- pure iron /
- stress-strain relationship /
- twinning /
- shock load
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