Influence of glass topology and medium range order on the deformation mechanisms in borosilicate glasses, a multiple length scale approach
Influence of glass topology and medium range order on the deformation mechanisms in borosilicate glasses, a multiple length scale approach
批准号:
224502470
负责人:
Professor Dr.-Ing. Karsten Durst
金额:
$0.0万
依托单位国家:
德国
项目类别:
Priority Programmes
财政年份:
2012
资助国家:
德国
项目状态:
已结题
起止时间:
2011-12-31 至 2019-12-31
中文摘要
本计画以多重长度尺度方法研究了拓扑结构和中程有序度对NBS1和NBS2型硼硅酸盐玻璃力学性质的影响。对于NBS1,聚合度取决于玻璃制备过程中的压力。玻璃状态可以通过局部处理如激光或离子照射进一步改性。在NBS2中,尽管基本玻璃形成实体保持不变,但玻璃的中程有序性可以在本体和局部尺度上改变。加工后,通过红外和拉曼光谱表征玻璃的拓扑结构。此外,通过使用少量的结构指示离子,如Mn 2+或Cr 3+的添加,可以通过荧光显微镜检测结构变化。结合不同玻璃状态的制备和表征,以多尺度方法研究其机械性能。通过原位微悬臂梁变形实验和SEM中的柱体压缩实验,以及纳米压痕和冲击测试方法,对材料在一定长度尺度和变形条件下的弹性、塑性和断裂性能进行了评估。玻璃中的塑性流动和致密化效应将通过压痕进行研究,因为由于周围材料提供的限制,可以抑制开裂。通过改变压头或试样的几何形状(布氏,立方角压头或微柱和小玻璃球),应力状态或样品体积的变形机制的影响进行了研究。在这种情况下,微柱提供了一种测试,其中流体静力学应力分量被最小化。使用微悬臂梁,还可以获得具有不同拓扑结构的玻璃的最大弯曲强度以及在缺口悬臂梁的情况下的局部断裂韧性。通过改变冲击和压痕测试中的应变速率和测试温度,量化了不同玻璃结构中的断裂和塑性变形机制的动力学。变形后,激活的致密化和流动机制的特点是光谱和显微镜(AFM,SEM和TEM)的塑性变形volumes.Of特别感兴趣的是结构参数,支配长度尺度的变形和损坏行为的玻璃。通过比较所观察到的变形机制与大块金属玻璃或其他玻璃系统的结果,将获得理解玻璃中局部变形和断裂行为的一般概念。
英文摘要
In this project, the influence of topology and medium range order on the mechanical properties of the NBS1 and NBS2 type borosilicate glasses is studied following a multiple length scale approach. For NBS1, the degree of polymerisation depends on the pressure during glass preparation. The glass state can be further modified by local treatments like laser or ion irradiation. In NBS2, the medium range order of the glass can be changed in the bulk as well as on the local scale, despite the fact that the basic glass forming entities remain the same. After processing, the topology of the glass is characterised by Infrared and Raman spectroscopy. Moreover, by using small additions of structure indicator ions, such as Mn2+ or Cr3+, it is possible to detect structural changes by fluorescence microscopy.In conjunction with the preparation and characterisation of the different glass states, their mechanical properties are studied in a multi-scale approach. With in-situ micro-cantilever deformation experiments and pillar compression tests in the SEM, as well as the nanoindentation and impact testing methods, the elastic, plastic and fracture properties of the materials are assessed over a range of length scales and deformation conditions. Plastic flow in the glass and densification effects will be studied by indentation, as cracking can be suppressed, due to the confinement provided by the surrounding material. By changing the indenter or the specimen geometry (Berkovich, cube-cornerindenter or micropillars and small glass spheres), the effect of the stress state or sample volume on the deformation mechanism is studied. In this context, micropillars provide a test in which the hydrostatic stress component is minimised. Using microcantilevers, the maximum bending strength and, in the case of notched cantilevers, the local fracture toughness of glasses with different topology is also accessible. By varying the strain rate and test temperature in impact and indentation testing, the dynamics of the fracture and plastic deformation mechanisms in the different glass structures is quantified. After deformation, the activated densification and flow mechanisms are characterised by spectroscopy and microscopy (AFM, SEM and TEM) of the plastically deformed volumes.Of particular interest are the structural parameters which govern the length scales in the deformation and damage behaviour of the glasses. By comparison of the observed deformation mechanisms with the results on bulk metallic glasses or other glass systems, general concepts for the understanding of localised deformation and fracture behaviour in glasses will be obtained.
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