HEИндивидуална стипендия2023–2025

M3TiAM · Multiscale-Multiphysics Modelling of Ti alloy medical implants based on Additive Manufacturing technology

„Хоризонт Европа“ — Действия „Мария Склодовска-Кюри“

Период
2023-02-01 → 2025-01-31
Финансиране от ЕС
165 313 €
Участници
2
Схема
HORIZON-TMA-MSCA-PF-EF

Линиите свързват координатора с партньорите.

Накратко на български

Титаниеви импланти, създадени чрез 3D принтиране, се анализират чрез компютърни модели за подобряване на техните механични свойства. Това помага за намаляване на риска от разхлабване или счупване на импланта, което подобрява качеството на живот на пациентите.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Multiscale-Multiphysics Modelling of Ti alloy medical implants based on Additive Manufacturing technology

Bone is the second most transplanted tissue in the world, with a total of over four million operations using bone grafts or bone replacement materials. 5% of people who receive an implant, such as hip replacement, may require a revision surgery within 10 years, and 15% may need a revision surgery within 20 years; as a result, numerous patients will require at least one implant replacement in their lifetime. In the United States of America alone, over 635000 hip replacements and 72000 hip revision surgeries per year are expected by 2030. Common causes of such surgeries include bone fracture near the implant, implant wear, fracture, and loosening. From a structural point of view, a limitation of most currently used metallic materials for implants (e.g. titanium alloy Ti-6Al-4V) is their Young’s modulus poorly matching that of the surrounding bones generating stress-shielding. In this context, Additive Manufacturing (AM) recently emerged as a breakthrough technology, enabling patient-customized implants based on complex scaffold materials. AM metallic implants based on titanium (Ti) alloy scaffolds can closely match the bone geometry, local properties and functionalities, allowing to reduce stress-shielding, promote angiogenesis, improve osteoconduction; leading to a remarkable increase in the patients’ quality of life. As a counterpart, AM produces parts with non-equilibrium microstructures, for instance martensitic phase in Ti-6Al-4V, and microvoids that reduce the fatigue performance. One way of tuning mechanical properties of Ti alloys is by means of post-processing heat treatments, which results in phase transformations, microstructure coarsening, and microvoid elimination. While common across a broad range of applications, heat treatments to tune the properties of metallic alloys have been relatively less explored for biomedical implants. In the meantime, theory, modelling, and simulation methods have emerged, which now afford quantitative and predictive simulations of microstructural evolution, but also the effect of different microstructures on the material properties and lifetime. The M3TiAM project (Multiscale-Multiphysics Modelling of Ti alloy medical implants based on Additive Manufacturing technology) specifically aims at developing computational tools to predict the influence of post-processing on the microstructure and mechanical properties of scaffolds structures, in order to guide and accelerate the design of novel Ti-based implants, down to the level of microstructural design. On the long term, such tools will contribute to the making of a robust closed-loop quality control system, which could be seemingly integrated with in-process monitoring and feedback control systems. In order to achieve this goal, the underlying specific objectives are proposed: - Develop an efficient microscale Phase Field-Fast Fourier Transform model (PF-FFT) to predict the microstructure evolution of Ti alloys during post-processing (process-sensitive-model). - Develop an efficient microscale Crystal Plasticity-Fast Fourier Transform model (CP-FFT) to predict the macroscopic elasto-plastic behaviours of α+β Ti alloys taking into account microstructural features (structure-sensitive-model). - Experimental characterization of microstructure features and mechanical testing of representative additively manufactured samples, in order to validate and calibrate PF-FFT and CP-FFT models.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

Patient-customized bone replacement implants with (micro)structural and mechanical properties tuned by design would constitute a major advance in the biomedical field. Classical metallurgical post-processing (e.g. annealing or hot-isostatic-pressing) offer an efficient way to modify metallic alloys microstructure and resulting properties. Hence, the combination of titanium alloys, scaffold structures, and additive manufacturing open promising avenues to produce custom implants that mimic natural bones and thus reduce the need for revision surgery. Moreover, modelling tools across scales are mature enough to simulate microstructural evolution and its effect on material properties, which could accelerate the design of high-quality, high-fidelity, affordable implants. The aim of M3TiAM project is to develop robust computational tools to predict the effect of post-processing treatments on microstructure and mechanical properties of additively manufactured scaffolds structures, in order to guide the design of novel Ti-based implants. To do so, multidisciplinary and multiscale theories will be combined into i) a process-sensitive structural module using phase-field modelling to predict phase evolution of biocompatible Ti alloys and ii) a structure-scaffold geometry-sensitive mechanical performance module using crystal-plasticity (microscale) and finite element (macroscale) models to predict the mechanical behaviour of bulk material and scaffold structures. The resulting computational framework will guide the design and optimisation of novel metallic implants, from the level of their microstructure to that of entire scaffold-based implants. The expected impact include: new insight into process-microstructure-properties in metallic alloys, new multi-scale and multi-physics coupling and upscaling strategies, accelerated adoption and deployment of additive manufacturing of scaffold implants for personalized medicine.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз