Haibo Liu , Yang Wang , Jianming Li , Yishun Cheng , Daomian Sun , Shaowei Jiang , Lingsheng Han , Yongqing Wang
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引用次数: 0
Abstract
The accuracy of constitutive models directly affects the simulation and analytical calculations of material cutting. Currently, most constitutive models primarily focus on the high-temperature dynamic mechanical behavior of materials, while research on low-temperature dynamic mechanical properties is relatively limited. Therefore, this study targets the Ti-5Al-2.5Sn alloy and employs an electronic universal testing machine and a split Hopkinson pressure bar to conduct static and dynamic compression tests within a temperature range of −196 °C to 600 °C. Furthermore, we constructed a Johnson-Cook constitutive model that accounts for low-temperature dynamic performance using the mechanical curves obtained. To validate the accuracy of the model, we selected cryogenic cutting as the application scenario and employed a combination of experimental and simulation methods to verify the newly developed model. The results indicate that as the temperature decreases or the strain rate increases, the material exhibits a significant strengthening effect along with grain refinement. The newly fitted constitutive model addresses the shortcomings of traditional models in adapting to low-temperature mechanical properties. In the validation of cutting forces during cryogenic cutting, the model’s error is controlled within 15%. This research provides theoretical guidance for cryogenic machining processes and the design of low-temperature structures.
构成模型的准确性直接影响材料切削的模拟和分析计算。目前,大多数构效模型主要关注材料的高温动态力学行为,而对低温动态力学性能的研究相对有限。因此,本研究针对 Ti-5Al-2.5Sn 合金,采用电子万能试验机和分体式霍普金森压力棒,在 -196 °C 至 600 °C 的温度范围内进行静态和动态压缩试验。此外,我们还利用所获得的力学曲线构建了一个约翰逊-库克(Johnson-Cook)构成模型,该模型考虑了低温动态性能。为了验证模型的准确性,我们选择了低温切削作为应用场景,并采用实验和模拟相结合的方法来验证新开发的模型。结果表明,随着温度的降低或应变率的增加,材料在晶粒细化的同时表现出明显的强化效应。新拟合的构成模型解决了传统模型在适应低温力学性能方面的不足。在验证低温切削过程中的切削力时,模型的误差控制在 15%以内。这项研究为低温加工工艺和低温结构设计提供了理论指导。
期刊介绍:
EFM covers a broad range of topics in fracture mechanics to be of interest and use to both researchers and practitioners. Contributions are welcome which address the fracture behavior of conventional engineering material systems as well as newly emerging material systems. Contributions on developments in the areas of mechanics and materials science strongly related to fracture mechanics are also welcome. Papers on fatigue are welcome if they treat the fatigue process using the methods of fracture mechanics.