3 resultados para Orthopedic
em AMS Tesi di Laurea - Alm@DL - Università di Bologna
Resumo:
This master’s thesis describes the research done at the Medical Technology Laboratory (LTM) of the Rizzoli Orthopedic Institute (IOR, Bologna, Italy), which focused on the characterization of the elastic properties of the trabecular bone tissue, starting from october 2012 to present. The approach uses computed microtomography to characterize the architecture of trabecular bone specimens. With the information obtained from the scanner, specimen-specific models of trabecular bone are generated for the solution with the Finite Element Method (FEM). Along with the FEM modelling, mechanical tests are performed over the same reconstructed bone portions. From the linear-elastic stage of mechanical tests presented by experimental results, it is possible to estimate the mechanical properties of the trabecular bone tissue. After a brief introduction on the biomechanics of the trabecular bone (chapter 1) and on the characterization of the mechanics of its tissue using FEM models (chapter 2), the reliability analysis of an experimental procedure is explained (chapter 3), based on the high-scalable numerical solver ParFE. In chapter 4, the sensitivity analyses on two different parameters for micro-FEM model’s reconstruction are presented. Once the reliability of the modeling strategy has been shown, a recent layout for experimental test, developed in LTM, is presented (chapter 5). Moreover, the results of the application of the new layout are discussed, with a stress on the difficulties connected to it and observed during the tests. Finally, a prototype experimental layout for the measure of deformations in trabecular bone specimens is presented (chapter 6). This procedure is based on the Digital Image Correlation method and is currently under development in LTM.
Resumo:
This thesis work has been developed in collaboration between the Department of Physics and Astronomy of the University of Bologna and the IRCCS Rizzoli Orthopedic Institute during an internship period. The study aims to investigate the sensitivity of single-sided NMR in detecting structural differences of the articular cartilage tissue and their correlation with mechanical behavior. Suitable cartilage indicators for osteoarthritis (OA) severity (e.g., water and proteoglycans content, collagen structure) were explored through four NMR parameters: T2, T1, D, and Slp. Structural variations of the cartilage among its three layers (i.e., superficial, middle, and deep) were investigated performing several NMR pulses sequences on bovine knee joint samples using the NMR-MOUSE device. Previously, cartilage degradation studies were carried out, performing tests in three different experimental setups. The monitoring of the parameters and the best experimental setup were determined. An NMR automatized procedure based on the acquisition of these quantitative parameters was implemented, tested, and used for the investigation of the layers of twenty bovine cartilage samples. Statistical and pattern recognition analyses on these parameters have been performed. The results obtained from the analyses are very promising: the discrimination of the three cartilage layers shows very good results in terms of significance, paving the way for extensive use of NMR single-sided devices for biomedical applications. These results will be also integrated with analyses of tissue mechanical properties for a complete evaluation of cartilage changes throughout OA disease. The use of low-priced and mobile devices towards clinical applications could concern the screening of diseases related to cartilage tissue. This could have a positive impact both economically (including for underdeveloped countries) and socially, providing screening possibilities to a large part of the population.
Resumo:
L'elaborato tratta dell'effetto della porosità sulle proprietà meccaniche e osteoinduttive di un biomateriale utilizzabile in ingegneria del tessuto osseo, per come questo è stato valutato nello studio "Surface porous poly-ether-ether-ketone based on three-dimensional printing for load-bearing orthopedic implant" condotto dai ricercatori Shuai Li, Tianyu Wang, Jiqiang Hu, Zhibin Li, Bing Wang, Lianchao Wang e Zhengong Zhou. In particolare, il biomateriale studiato è rappresentato dal “PEEK”, un polimero termoplastico che viene lavorato, tramite stampante 3D a filamento, in modo da presentare una struttura che include un corpo centrale solido ricoperto da strati porosi sia nello strato superiore sia in quello inferiore. Per la valutazione delle proprietà meccaniche sono state svolte una prova a trazione e una prova a flessione. I valori ottenuti sperimentalmente sono stati confrontati con quelli ottenuti da un’analisi numerica e da un modello teorico. Per la valutazione delle proprietà osteoinduttive sono stati condotti test di proliferazione cellulare e differenziamento osteogenico. I risultati ottenuti concludono che specifici valori della porosità superficiale del biomateriale presentano proprietà meccaniche e osteoinduttive che lo rendono idoneo all’utilizzo come impianto osteogenico in ingegneria tissutale.