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Focused ultrasound actuation of shape memory polymers; acoustic-thermoelastic modeling and testing

机译:聚焦超声驱动形状记忆聚合物;声热弹建模与测试

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Controlled drug delivery (CDD) technologies have received extensive attention recently. Despite recent efforts, drug releasing systems still face major challenges in practice, including low efficiency in releasing the pharmaceutical compounds at the targeted location with a controlled time rate. We present an experimentally-validated acoustic-thermoelastic mathematical framework for modeling the focused ultrasound (FU)-induced thermal actuation of shape memory polymers (SMPs). This paper also investigates the feasibility of using SMPs stimulated by FU for designing CDD systems. SMPs represent a new class of materials that have gained increased attention for designing biocompatible devices. These polymers have the ability of storing a temporary shape and returning to their permanent or original shape when subjected to external stimuli such as heat. In this work, FU is used as a trigger for noninvasively stimulating SMP-based systems. FU has a superior capability to localize the heating effect, thus initiating the shape recovery process only in selected parts of the polymer. The multiphysics model optimizes the design of a SMP-based CDD system through analysis of a filament as a constituting base-structure and quantifies its activation under FU. Experimental validations are performed using a SMP filament submerged in water coupled with the acoustic waves generated by a FU transducer. The modeling results are used to examine and optimize parameters such as medium properties, input power and frequency, location, geometry and chemical composition of the SMP to achieve favorable shape recovery of a potential drug delivery system.
机译:受控药物输送(CDD)技术最近受到广泛关注。尽管有最近的努力,但药物释放系统在实践中仍然面临主要挑战,包括以受控的时间速率在目标位置释放药物化合物的效率低下。我们提出了一个经过实验验证的声热弹性数学框架,用于建模聚焦超声(FU)诱导的形状记忆聚合物(SMP)的热激励。本文还研究了使用FU刺激的SMP设计CDD系统的可行性。 SMP代表了一类新的材料,在设计生物相容性设备时受到了越来越多的关注。这些聚合物具有存储临时形状并在受到诸如热的外部刺激时恢复其永久或原始形状的能力。在这项工作中,FU被用作非侵入性刺激基于SMP的系统的触发器。 FU具有出色的定位加热效果的能力,因此仅在聚合物的选定部分中启动形状恢复过程。多物理场模型通过分析作为构成基础结构的细丝来优化基于SMP的CDD系统的设计,并量化其在FU下的激活。使用浸没在水中的SMP灯丝和FU换能器产生的声波进行实验验证。建模结果用于检查和优化参数,例如SMP的介质特性,输入功率和频率,位置,几何形状和化学成分,以实现潜在药物输送系统的良好形状恢复。

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