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Effect of Ni, Mn, V, and Al on Toughness of Blade Steels

机译:镍,锰,钒和铝对叶片钢韧性的影响

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In modern high carbon steels, Mn alloying binds S, and usually Al or V precipitates prevent grain growth. Primitive steels do not contain these alloying elements, but they may contain Ni, obtained from iron meteorites. Totally unalloyed carbon steel (0.7C–0.02Mn–0.01S–0.01P) and Ni steel (0.7C–4Ni–0.03Mn–0.01S–0.01P) were made in a laboratory foundry and their properties were compared with modern high carbon steels in a bladesmith forge. The unalloyed carbon steel suffered grain growth. Therefore, after low temperature tempering it had exceptional poor toughness, but after higher 250°C tempering it was as tough as equally hard (57 HRC) modern fine grained carbon steel. The Ni alloying increased toughness in the case of low temperature tempering, but it also reduced attainable hardness. The studied Ni steel was equal to modern carbon steels up to 62 HRC. The study showed that Mn, Al, or V alloying is not mandatory for the best quality blade steels.
机译:在现代高碳钢中,Mn合金化会结合S,通常Al或V析出物会阻止晶粒长大。原始钢不包含这些合金元素,但它们可能包含从铁陨石获得的Ni。在实验室铸造厂制造了完全非合金碳钢(0.7C–0.02Mn–0.01S–0.01P)和镍钢(0.7C–4Ni–0.03Mn–0.01S–0.01P),并将其性能与现代高碳钢进行了比较刃匠锻造的钢。非合金碳钢晶粒长大。因此,在低温回火后,其韧性异常差,但在250°C较高的回火后,其韧性与硬质合金(57 HRC)相同。 Ni合金在低温回火的情况下增加了韧性,但同时也降低了可获得的硬度。所研究的镍钢与高达62 HRC的现代碳钢相当。研究表明,对于最优质的刀片钢,Mn,Al或V合金化不是强制性的。

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