外伤性脑损伤评估的适形天线应用器

Megan Gillespie, M. Asili, E. Colebeck, E. Topsakal
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摘要

只提供摘要形式。创伤性脑损伤(TBI)被定义为由头部损伤引起的创伤,根据疾病控制中心(CDC)的数据,TBI是全球死亡的主要原因。大多数创伤性脑损伤与战场上持续的创伤有关,因此男性比女性经历更多的创伤性脑损伤。其他导致脑外伤的主要原因包括跌倒和交通事故。根据创伤性脑损伤的严重程度,其影响可以是行为的、身体的、社会的、认知的和情感的。这种伤害可能是致命的,也可能使人终生残疾。诊断TBI最有效的方法是通过磁共振成像,因为MRI提供了良好的软组织对比。根据创伤性脑损伤的严重程度,从药物治疗到紧急手术,采用了不同的治疗方案。由于创伤性脑损伤可能是致命的,因此早期诊断和治疗是挽救生命的关键。据美国疾病控制与预防中心称,如果没有得到适当的评估和治疗,很大一部分人不是立即死亡,而是在一段时间后死亡。虽然核磁共振成像是最有效的评估技术,但不幸的是,它非常昂贵,而且设备的体积阻碍了它在许多不同的环境中使用,如战场。为了提供一种快速且经济有效的评估技术,本研究对共形微波阵列进行了研究。我们考虑了不同的频率来研究天线阵列的灵敏度和效率。我们也提供离体测量使用猪脑和头骨的幻影。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Conformal antenna applicator for Traumatic Brain Injury assessment
Summary form only given. Traumatic Brain Injury (TBI) is a major cause is defined as the trauma caused by the injury to the head and according to Center for Disease Control (CDC), TBI is the major cause of death worldwide. Most TBI injuries are related to traumas sustained at the battle field therefore males experience more TBIs than females. Other major causes of TBI include falls and vehicle accidents. Depending on the severity of the TBI, the effects can be behavioral, physical, social, cognitive, and emotional. The injury can be fatal or can leave the person disable for life. The most effective way of diagnosing TBI is through Magnetic Resonant Imaging since MRI provides excellent soft tissue contrast. Different treatment options are followed based on the severity of the TBI ranging from medication to emergency surgery. Because TBI can be fatal, the early diagnosis and treatment is the key to save lives. According to CDC, a significant percentage of the people are not killed instantly but after a period of time if they do not receive proper assessment and treatment. Although MRI is the most effective technology for assessment, unfortunately, it is very expensive and the bulkiness of the equipment prevents it to be used in many different setting such as battlefield. In order to provide a quick and cost effective assessment technology, in this study, we investigate conformal microwave arrays. We consider different frequencies to study the sensitivity and efficacy of the antenna array. We also provide ex vivo measurement using pig brain and skull phantoms.
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