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Oxygen gas concentration measurements in the lungs of neonate chest phantom with realistic geometry and tissue optical properties using diode laser spectroscopy

机译:使用二极管激光光谱仪测量具有真实几何形状和组织光学特性的新生儿胸部幻影肺中的氧气浓度

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摘要

Pulmonary X-ray imaging together with pulse oximetry are harmful and invasive techniques used to monitor anddiagnose the clinical course of lung dysfunction in preterm born infants which most of the cases suffer RespiratoryDistress Syndrome (RDS) . Biophotonics@Tyndall is exploring Gas in Scattering Media Absorption Spectroscopy(GASMAS) as a novel non-invasive technique to measure continuously absolute lung oxygen volume andconcentration. This could assist and improve the assessment of lung function in neonates .In this paper, we present results of bench-top measurements carried out in the preclinical phase of GASMAS studies. Westart with a detailed explanation of the manufacturing process of multi-structure thorax phantoms with realistic geometrybased on organ segmentation from anonymized DICOM images of neonates. After segmentation, the organs are 3Dprinted and used to create negative rubber molds. The tissue optical properties of heart, bone and muscle are assigned bymixing the silicone matrix with different concentrations of absorbers and scatters, the lung is kept as a gas content cavityand the thorax phantom is build up by placing all organs inside out immersed in the muscle structure.The phantoms are used for quality control and validation of the system performance. Oxygen gas absorption imprintsare measured for different light source-detector remittance configurations and the results are used to define the potentialand limitations of the GASMAS technology in the development of a bed-side clinical device.
机译:肺部X射线成像和脉搏血氧饱和度测定是有害的和有创技术,用于监测和诊断早产儿的肺功能障碍的临床过程,其中大多数病例患有呼吸窘迫综合征(RDS)。 Biophotonics @ Tyndall正在探索散射介质吸收光谱中的气体\ r \ n(GASMAS),这是一种新颖的无创技术,可连续测量绝对肺氧量和\ r \ n。这可以帮助并改善新生儿肺功能的评估。\ r \ n本文介绍了在GASMAS研究的临床前阶段进行的台式测量结果。我们先根据来自匿名DICOM新生儿的器官分割,详细解释具有逼真的几何形状的多结构胸部体模的制造过程。分割后,对器官进行3D \ r \ n打印,并用于创建负性橡胶模具。通过将有机硅基质与不同浓度的吸收剂和散射剂混合,分配心脏,骨骼和肌肉的组织光学特性,将肺保持为含气腔,并通过放置所有\ r \ n幻影用于质量控制和系统性能验证。针对不同的光源-检测器汇款配置测量了氧气吸收痕迹,然后将结果用于定义GASMAS技术在床旁临床设备开发中的潜在限制。

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  • 来源
    《Label-free Biomedical Imaging and Sensing 2019》|2019年|108900J.1-108900J.6|共6页
  • 会议地点 1605-7422;2410-9045
  • 作者单位

    Biophotonics@Tyndall, IPIC, Tyndall National Institute, Lee Maltings, Dyke Parade, Cork,Ireland Department of Physics, University College Cork, Cork, Ireland;

    Biophotonics@Tyndall, IPIC, Tyndall National Institute, Lee Maltings, Dyke Parade, Cork,Ireland;

    Biophotonics@Tyndall, IPIC, Tyndall National Institute, Lee Maltings, Dyke Parade, Cork,Ireland;

    Biophotonics@Tyndall, IPIC, Tyndall National Institute, Lee Maltings, Dyke Parade, Cork,Ireland;

    INFANT Centre, Cork University Maternity Hospital Wilton, Cork, Ireland;

    Biophotonics@Tyndall, IPIC, Tyndall National Institute, Lee Maltings, Dyke Parade, Cork,Ireland Department of Physics, University College Cork, Cork, Ireland;

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  • 正文语种 eng
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