首页> 外文期刊>International journal of applied mechanics >In-situ re-melting and re-solidification treatment of selective laser sintered polycaprolactone lattice scaffolds for improved filament quality and mechanical properties
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In-situ re-melting and re-solidification treatment of selective laser sintered polycaprolactone lattice scaffolds for improved filament quality and mechanical properties

机译:用于选择性激光烧结聚己内酯晶片支架的原位再熔化和再凝固处理,可提高灯丝质量和机械性能

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摘要

Selective laser sintering (SLS) is a promising additive manufacturing technique that produces biodegradable tissue-engineered scaffolds with highly porous architectures without additional supporting. However, SLS process inherently results in partially melted microstructures which significantly impair the mechanical properties of the resultant scaffolds for potential applications in tissue engineering and regenerative medicine. Here, a novel post-treatment strategy was developed to endow the SLS-fabricated polycaprolactone (PCL) scaffolds with dense morphology and enhanced mechanical properties by embedding them in dense NaCl microparticles for in-situ re-melting and re-solidification. The effects of re-melting temperature and dwelling time on the microstructures of the SLS-fabricated filaments were studied. The results demonstrated that the minimum requirements of re-melting temperature and dwelling time for sufficient treatment were 65 degrees C and 5 min respectively and the size of the SLS-fabricated filaments was reduced from 683.3 +/- 28.0 mu m to 601.6 +/- 17.4 mu m. This method was also highly effective in treating three-dimensional (3D) PCL lattice scaffolds, which showed improved filament quality and mechanical properties after post-treatment. The treated PCL scaffolds with an initial compressive modulus and strength of 3027.8 +/- 204.2 kPa and 208.8 +/- 14.5 kPa can maintain their original shapes after implantation in vivo for 24 weeks. Extensive newly-grown tissues were found to gradually penetrate into the porous regions along the PCL filaments. Although degradation occurred, the mechanical properties of the implanted constructs stably maintained. The presented method provides an innovative, green and general post-treatment strategy to improve both the filament quality and mechanical properties of SLS-fabricated PCL scaffolds for various tissue engineering applications.
机译:选择性激光烧结(SLS)是一种有前途的添加剂制造技术,可产生具有高多多孔架构的可生物降解的组织工程的支架,而无需额外的支撑。然而,SLS过程固有地导致部分熔化的微观结构,这显着损害所得支架的机械性能,用于组织工程和再生医学中的潜在应用。在这里,开发了一种新的后处理策略,以赋予SLS制造的聚己内酯(PCL)支架,并通过将它们嵌入致密NaCl微粒中以进行原位再熔化和再凝固来增强机械性能。研究了重新熔化温度和居住时间对SLS制造长丝的微观结构的影响。结果表明,重熔温度和充分处理时间的最低要求分别为65℃,分别为5分钟,SLS制造长丝的尺寸从683.3 +/- 28.0 mu m m〜601.6 +/- 17.4亩。该方法在治疗三维(3D)PCL晶格支架中也具有高度有效的,这在处理后显示出改善的灯丝质量和机械性能。处理的PCL支架具有初始压缩模量和强度为3027.8 +/-204.2KPa和208.8 +/- 14.5kPa,可在体内植入后保持其原始形状24周。发现广泛的新种植组织沿PCL长丝逐渐渗透到多孔区域中。尽管发生了降解,但稳定地保持的植入构建体的机械性能。本方法提供了一种创新,绿色和一般的后处理策略,以改善SLS制造的PCL支架的灯丝质量和机械性能,用于各种组织工程应用。

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