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Novel Apparatus to Control Electrospinning Fiber Orientation for the Production of Tissue Engineering Scaffolds

机译:用于控制组织工程支架生产中的电纺纤维取向的新型设备

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摘要

The conception of electrospinning can trace its roots back more than 400 years, when it was observed that rubbed amber can deform a droplet of water on a smooth surface, and is based upon simple concepts of charge separation and surface tension. Since that time, considerable effort has been directed at both the cause and utility of this phenomenon. The specific aim of this dissertation project was to develop an automated electrostatic processing apparatus that was capable of controlling the three-dimensional architecture of an electrospun scaffold to further improve its utility in tissue engineering. The efficacy of using this technique has been well documented and can be adapted to produce tissue engineering scaffolds for a variety of tissues and organs. This apparatus incorporates precise mandrel motion. The system is capable of 0 - 5000 revolution per minute rotation, 0 - 25 inch per second translation and ± 40° rotation about the electrospinning jet axis for repeatable scaffold production. Fiber alignment and scaffold density are precisely controlled by rotating a mandrel along one axis, translation along that same axis, and rotation around the second axis perpendicular to the electrospun fiber stream. The control is accomplished with a PC based u22supervisoryu22 control program written partially in the LabVIEW® programming language and partially in SI Programmer supplied by Applied Motion Products. Scaffold thickness and fiber diameters are determined by the syringe metering pump flow rate, material being electrospun and solution concentrations. Through extensive laboratory analysis (mechanical testing and both optical and electron microscopy), parameters such as fiber orientation, diameter and mechanics can be predictive from specific polymer setups. Our laboratory has demonstrated the ability to electrospin natural and synthetic polymers and this apparatus will be utilized to tailor scaffolds to meet specific tissue engineering needs by creating a truly biomimicking scaffold / extracellular matrix.
机译:静电纺丝的概念可以追溯到400多年以前,当时人们观察到琥珀色的摩擦会使光滑表面上的水滴变形,并且基于电荷分离和表面张力的简单概念。从那时起,人们就针对这种现象的原因和效用进行了相当大的努力。本论文项目的具体目标是开发一种自动静电处理设备,该设备能够控制静电纺丝支架的三维结构,以进一步提高其在组织工程中的实用性。使用这种技术的功效已得到充分证明,可以调整以生产用于各种组织和器官的组织工程支架。该装置具有精确的心轴运动。该系统每分钟可旋转0-5000转,每秒可平移0-25英寸,并围绕静电纺丝喷射轴旋转±40°,可重复生产支架。可以通过沿一个轴旋转心轴,沿同一轴平移并绕垂直于电纺纤维流的第二轴旋转来精确控制纤维的排列和支架密度。该控制是通过基于PC的 u22supervisory u22控制程序完成的,该程序部分用LabVIEW®编程语言编写,部分用Applied Motion Products提供的SI Programmer编写。支架的厚度和纤维直径取决于注射器的计量泵流速,电纺材料和溶液浓度。通过广泛的实验室分析(机械测试以及光学和电子显微镜),可以从特定的聚合物设置中预测诸如纤维取向,直径和力学等参数。我们的实验室证明了静电纺天然和合成聚合物的能力,该设备将通过创建真正的仿生支架/细胞外基质来定制支架以满足特定的组织工程需要。

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    Boland Eugene David;

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  • 年度 2004
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