Guan Xinran, Qu Shoujiang, Wang Hao, Cao Guojian, Feng Aihan, Chen Daolun
Shanghai Key Laboratory of D&A for Metal-Functional Materials, School of Materials Science & Engineering, Tongji University, Shanghai 201804, China.
Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China.
Materials (Basel). 2024 Nov 1;17(21):5365. doi: 10.3390/ma17215365.
In advanced engineering applications, there has been an increasing demand for the service performance of materials under high-strain-rate conditions where a key phenomenon of adiabatic shear instability is inevitably involved. The presence of adiabatic shear instability is typically associated with large shear strains, high strain rates, and elevated temperatures. Significant plastic deformation that concentrates within a adiabatic shear band (ASB) often results in catastrophic failure, and it is necessary to avoid the occurrence of such a phenomenon in most areas. However, in certain areas, such as high-speed machining and self-sharpening projectile penetration, this phenomenon can be exploited. The thermal softening effect and microstructural softening effect are widely recognized as the foundational theories for the formation of ASB. Thus, elucidating various complex deformation mechanisms under thermomechanical coupling along with changes in temperatures in the shear instability process has become a focal point of research. This review highlights these two important aspects and examines the development of relevant theories and experimental results, identifying key challenges faced in this field of study. Furthermore, advancements in modern experimental characterization and computational technologies, which lead to a deeper understanding of the adiabatic shear instability phenomenon, have also been summarized.
在先进工程应用中,对于材料在高应变速率条件下的服役性能需求日益增加,而绝热剪切失稳这一关键现象不可避免地会涉及其中。绝热剪切失稳的出现通常与大剪切应变、高应变速率以及温度升高有关。集中在绝热剪切带(ASB)内的显著塑性变形往往会导致灾难性失效,在大多数领域有必要避免这种现象的发生。然而,在某些领域,如高速加工和自锐穿甲弹侵彻中,可以利用这一现象。热软化效应和微观结构软化效应被广泛认为是绝热剪切带形成的基础理论。因此,阐明热机械耦合作用下各种复杂的变形机制以及剪切失稳过程中温度的变化已成为研究的重点。本综述突出了这两个重要方面,审视了相关理论和实验结果的发展,明确了该研究领域面临的关键挑战。此外,还总结了现代实验表征和计算技术的进展,这些进展有助于更深入地理解绝热剪切失稳现象。