MAN · Mechanical Analysis of Nanocomposites: an experimental and computational study of the mechanical behavior of polycrystalline and tough nanocomposite structures
7РП — „Хора“ (Действия „Мария Кюри“)
- Период
- 2011-01-15 → 2013-01-14
- Финансиране от ЕС
- 162 249 €
- Участници
- 1
- Схема
- MC-IEF
Линиите свързват координатора с партньорите.
Накратко на български
Механичното поведение на нанокомпозити, като нанокристали от титаниев карбид в матрица от аморфен въглерод, се анализира чрез експерименти и изчисления. Това помага да се разбере как структурите на микро- и нанониво се влияят върху издръжливостта и устойчивостта на материалите при високи натоварвания.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Mechanical analysis of nanocomposites: an experimental and computational study of the mechanical behaviour of polycrystalline and tough nanocomposite structures
Mechanical analysis of nanocomposites The improvement of material performance is a major issue in any technological field. Amongst others, material durability is one of the main topics under investigation, which is of critical importance in case of materials which operate under difficult situations, for instance, adverse environmental conditions, subjected to high stresses, or under repetitive loading cycles. One of the main causes of failure is the formation and propagation of cracks in the structure, processes that can be controlled and minimised by a proper design at the microlevels and nanolevels. Nanocomposites are materials which are composed by two or more phases, at least one of them with one dimension in the nanometric size. They show not only properties of the phases composing it, but also additional ones from the nanocombination of different phases. In particular, nanocomposite structures formed by a hard phase embedded in a soft lubricious matrix exhibit a combination of properties that make them very attractive for protective purposes. Amongst others, they show fracture toughness, high hardness, chemical inertness, low coefficient of friction and high wear resistance. However, while their tribological performance can be explained in terms of phase ratio and surface interactions, the behaviour under stress is still not well understood. In this project, a 'simple' system composed by titanium carbide (TiC) nanocrystals embedded in an amorphous carbon (a-C) matrix has been selected for studying this effect in detail. This material shows good frictional performance due to the presence of a graphitic-like solid lubricant, but better mechanical properties than a-C alone due to the presence of harder TiC nanograins. In addition, this material shows an improved toughness (capability of plastic deformation without fracture) with respect to both phases forming it. In other words, the combination of TiC and a-C at nanoscale has better much resistance to cracking than TiC or a-C alone. Although qualitative explanations for this behaviour can be found in literature, a detailed mechanism has not been described yet. We simulated the deformation by molecular dynamics. The simplest situation corresponds to a 'building block' of the whole structure (a TiC grain with the nearer a-C regions). When such system is subjected to stress, a crack is formed in the a-C (which is more brittle) perpendicular to the stress direction. However, the final results are very different depending on the relative orientation of the crack and the boundaries. If perpendicular, the crack is blocked by the presence of TiC, which allows maintaining the material integrity for longer. If parallel, the originated crack can propagate without restrictions and material failure occurs. This behaviour is also observed in more complex simulations; the propagation of cracks generated in the a-C phase is hindered by the presence of TiC. Our approach will permit finding the optimal phase ratio and grain shape (and shape eventually) in order to achieve the highest fracture toughness of nanocomposites.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Nanocomposite structures show enhanced mechanical properties (hardness and toughness) which are very interesting for protective purpose. The mechanical behavior of those materials is still not clear, and many different explanations (often contradictory) are present in the literature, which makes difficult the practical application of Nanocomposites. This project proposes to study the deformation mechanisms of these structures by a combined experimental and theoretical (computational) approach. This original approach will allow understanding phenomena which were still unapproachable until a few years ago and to clarify at once, the particular behavior of Nanocomposite structures. From the experimental side, a set of thin films with the abovementioned structures will be prepared by magnetron sputtering and characterized by several techniques, such as XRD, TEM, EELS, SEM, XPS, etc. Mechanical properties will be measured by nanoindentation. Further specific measurements will also be done for some selected samples, in order to evaluate “in situ” the deformation of these materials under stress by SEM, TEM/ED and XRD from a synchrotron source. From the theoretical side, molecular dynamics (MD) simulations will be done to evaluate the role of the crystal size, phase composition and presence of impurities in nanocomposite structures (and polycrystalline ones for comparison). The new knowledge, know-how and tools developed during this project will contribute to bring EU on the forefront of nanocomposite structures and their applications. Together with a training aiming at expending both technical skills (e.g in the field of nanoindentation, diffraction, TEM) and soft-skills (e.g. science management), this project will allow placing the candidate on his path for becoming a leading expert in the field of nanocomposites. In conclusion, this project will have a great impact not only on the researcher, but also on the participating institutions, and in Europe by extension.
Оригинален текст от CORDIS (на английски).
Участници
- STICHTING MATERIALS INNOVATION INSTITUTE (M2I) · DelftКоординаторНидерландия
Връзки
Данни: CORDIS, © Европейски съюз
