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A microfabricated intravascular ultrasound scanner for intravascular interventions

机译:用于血管内干预的微型血管内超声扫描仪

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Minimally invasive medical therapy can reduce both healthcare costs and patient suffering. The development of submillimeter scale instruments falls in a gap of manufacturing technologies between traditional machining and microfabrication techniques. To address this need we have developed a fabrication technique based upon laser machining of tubular structures combined with shaped-memory alloy actuators to create compliant devices for minimally invasive interventions. The initial application of this approach has been to develop a forward viewing intravascular ultrasound scanner for use in guiding intravascular interventions in situations where traditional angiography and intravascular ultrasound are unable to provide adequate guidance. The ultrasound device is less than 1.5 mm in diameter and provides imaging at 20 frames per second. Imaging currently is performed with a 20 MHz 800 micron diameter transducer producing axial resolutions of approximately 150 microns. Device optimization has resulted in peak strains of less than 1% within the compliant structure resulting in device life greater than 200,000 cycles providing usable times greater than twice the anticipated procedure length. The design concepts embodied in this initial implementation will serve as a platform for a variety of self actuated minimally invasive tools.
机译:微创药物治疗可以减少医疗费用和患者痛苦。亚毫米级仪器的发展落在传统机械加工和微细加工技术之间的制造技术空白中。为了满足这一需求,我们开发了一种基于对管状结构进行激光加工并结合形状记忆合金致动器的制造技术,以创建用于微创干预的顺应性设备。这种方法的最初应用是开发一种前视血管内超声扫描仪,用于在传统血管造影和血管内超声无法提供足够指导的情况下指导血管内干预。超声设备的直径小于1.5毫米,并以每秒20帧的速度提供成像。目前,成像是使用直径为20 MHz的800微米传感器完成的,其轴向分辨率约为150微米。器件的优化导致在顺应性结构内的峰值应变小于1%,从而导致器件寿命超过200,000次循环,提供的可用时间大于预期过程长度的两倍。此初始实现中体现的设计概念将作为各种自驱动微创工具的平台。

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