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Austenite stability of austempered ductile iron (ADI) in sub-zero conditions

机译:亚零条件下奥氏体延性铁(ADI)的奥氏体稳定性

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The use of Austempered Ductile Iron (ADI) in the manufacture of different types of components grows despite some limitations that hinder the full development of their potential. The eligibility of these grades for applications at low temperature operating conditions is still an open question. . Consequently, the effect of low temperatures in the behaviour of materials submitted to conditions that resemble those expected in some extreme applications should be analyzed. Test samples have been submitted to sub-zero thermal treatment at -20°C (-4℉) and -40°C (-40℉) in order to assess their influence in the mechanical properties of ADI 1000. But in actual working situations, most of the components undergo variable temperature conditions. So, a group of samples has also bee submitted to successive cycles of-40°C in order to, in a way, approach the thermal conditions that could be found in hard environments. Moreover, some samples have been submitted to deep cryogenic treatment at -175°C (-283℉). Although not reachable in nature, this level of temperatures provides an interesting research field for the future development of austempered ductile iron. In order to simplify the presentation and interpretation of the results, the dynamic characterization (fatigue and fracture values) has not been considered in this study. It will be addressed in future investigation. The transformation of the austenite has been verified by metallographic techniques. The changes in mechanical properties have been significant and can be explained by this evolution.
机译:尽管有一些限制阻碍了它们的潜力的充分发展,但是在制造不同类型的组件的制造中使用奥斯特延迟的韧性铁(ADI)的使用增长。这些等级在低温操作条件下应用的资格仍然是一个打开的问题。 。因此,应分析低温在提交给类似于一些极端应用中的条件的材料行为中的影响。测试样品已在-20℃(-4°)和-40°C(-40°C)和-40°C(-40°C)中提交至次零热处理,以评估其在ADI 1000的机械性能方面的影响。但是在实际工作情况下,大多数组件经历了可变温度条件。因此,一组样品也已经提交到-40°C的连续周期,以便在某种程度上接近在艰难环境中可以找到的热条件。此外,已经在-175℃(-283℃)下提交了一些样品在深度低温处理。虽然本质上无法达到,但这种温度为奥斯特型球墨铸铁的未来发展提供了一个有趣的研究领域。为了简化结果的呈现和解释,本研究尚未考虑动态表征(疲劳和断裂值)。将在将来调查中得到解决。通过金相技术验证了奥氏体的转化。机械性能的变化是显着的,并且可以通过这种进化来解释。

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