首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Investigation of the mechanical properties of a bony scaffold for comminuted distal radial fractures: Addition of akermanite nanoparticles and using a freeze-drying technique
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Investigation of the mechanical properties of a bony scaffold for comminuted distal radial fractures: Addition of akermanite nanoparticles and using a freeze-drying technique

机译:对粉碎远端径向裂缝的骨支架力学性能的研究:加入烷烃纳米粒子,使用冷冻干燥技术

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One of the methods of repairing the damaged bone is the fabrication of porous scaffold using synergic methods like three-dimensional (3D) printing and freeze-drying technology. These techniques improve the damaged and fracture parts rapidly for better healing bone lesions using bioactive ceramic and polymer. This research, due to the need to increase the mechanical strength of 3D bone scaffolds for better mechanical performance. Akermanite bioceramic as a bioactive and calcium silicate bioceramic has been used besides the polymeric component. In this study, the porous scaffolds were designed using solid work with an appropriate porosity with a Gyroid shape. The prepared Gyroid scaffold was printed using a 3D printing machine with Electroconductive Polylactic Acid (EC-PLA) and then coated with a polymeric solution containing various amounts of akermanite bioceramic as reinforcement. The mechanical and biological properties were investigated according to the standard test. The mechanical properties of the porous-coated scaffold showed stress tolerance up to 30 MPa. The maximum strain obtained was 0.0008, the maximum stress was 32 MPa and the maximum displacement was 0.006 mm. Another problem of bone implants is the impossibility of controlling bone cancer and tumor size. To solve this problem, an electroconductive filament containing Magnetic Nanoparticles (MNPs) is used to release heat and control cancer cells. The mechanical feature of the porous scaffold containing 10 wt% akermanite was obtained as the highest stress tolerance of about 32 MPa with 46% porosity. Regarding the components and prepare the bony scaffold, the MNPs release heat when insert into the magnetic field and control the tumor size which helps the treatment of cancer. In general, it can be concluded that the produced porous scaffold using 3D printing and freeze-drying technology can be used to replace broken bones with the 3D printed EC-PLA coated with 10 wt% akermanite bioceramic with sufficient mechanical and biological behavior for the orthopedic application.
机译:修复受损骨的方法之一是使用三维打印和冷冻干燥技术等协同方法制造多孔支架。这些技术使用生物活性陶瓷和聚合物快速改善受损和骨折部位,以更好地愈合骨损伤。这项研究,由于需要增加三维骨支架的机械强度,以获得更好的机械性能。Akermanite生物陶瓷是一种生物活性材料,除聚合物成分外,还使用了硅酸钙生物陶瓷。在这项研究中,多孔支架的设计使用了具有适当孔隙率的回转体形状的固体工作。制备的Gyroid支架使用带有导电聚乳酸(EC-PLA)的3D打印机打印,然后涂上含有不同量阿克曼石生物陶瓷作为增强体的聚合物溶液。根据标准试验对其力学和生物学性能进行了研究。多孔涂层支架的力学性能表现出高达30 MPa的应力耐受性。获得的最大应变为0.0008,最大应力为32 MPa,最大位移为0.006 mm。骨植入的另一个问题是无法控制骨癌和肿瘤大小。为了解决这个问题,一种含有磁性纳米颗粒(MNP)的导电丝被用来释放热量和控制癌细胞。含10 wt%akermanite的多孔支架的力学特性为最高应力容限约32MPa,孔隙率为46%。关于组件和制备骨支架,MNP在插入磁场时释放热量,并控制肿瘤大小,这有助于癌症的治疗。总的来说,可以得出结论,使用3D打印和冷冻干燥技术生产的多孔支架可以用3D打印的EC-PLA代替骨折,该EC-PLA涂有10 wt%的akermanite生物陶瓷,具有足够的力学和生物学性能,可用于骨科应用。

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