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Microstructure and mechanical properties of fine-grained thin-walled AZ91 tubes processed by a novel combined SPD process

机译:用新型SPD工艺处理细粒薄壁AZ91管的微观结构和力学性能

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摘要

A combination of parallel tubular channel angular pressing (PTCAP) and tube backward extrusion (TBE) as a novel combined severe plastic deformation (SPD) was applied on AZ91 alloy to produce ultrafine-grained (UFG) thin-walled tubes. The effects of combined SPD process were investigated on the microstructure refinement and mechanical properties. Also, hydro-bulge test was carried out to reveal the mechanical properties. The results showed a notable increase in ultimate strength, yield strength and microhardness of the thin-walled UFG tube were achieved compared to that from PTCAP process. A remarkable grain refinement achieved. Applying three-passes-combined process refine the grain size to 8.8 from an initial value of 150 . For one pass- and two passes-processed thin-walled tubes, it was about 12.4 and 9.8 , respectively. Yield and ultimate strengths were increased notably to 150 and 354 MPa for 2P+TBE tube, from the initial values of 86 and 166 MPa, respectively. The maximum microhardness was increased to about 105 Hv for the 2P+TBE tube from the initial value of 56 Hv. Hydro-bulge test showed that the bursting pressure increased to 246 bar for 2 passes-thin-walled tube from the initial value of 160 bar. It was 220 and 195 bar for 1 pass- and 3 passes-thin-walled tubes, respectively.
机译:将平行管状通道角压(PTCAP)和管向后挤出(TBE)作为一种新的组合严重塑性变形(SPD)的组合应用于AZ91合金,以产生超细颗粒(UFG)薄壁管。在微观结构细化和机械性能下研究了组合的SPD方法的影响。此外,进行氢凸出试验以显示机械性能。结果表明,与来自PTCAP工艺相比,实现了极限强度的显着提高,薄壁UFG管的屈服强度和显微硬度。实现了一个显着的谷物细化。从初始值150,将三次通用的过程将粒径精确到8.8。对于一个通道和两个通过处理的薄壁管,分别为约12.4和9.8。从86和166MPa的初始值分别从86和166MPa的初始值,产量和极限强度显着增加至150和354MPa。从初始值为56HV的2P + TBE管,最大显微硬度增加到约105HV。水力凸起测试表明,爆破压力增加到246杆,2通过160巴的初始值。为1次和3个通道薄壁管分别为220和195巴。

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