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首页> 外文期刊>Journal of magnetic resonance imaging: JMRI >Tissue thermal conductivity by magnetic resonance thermometry and focused ultrasound heating.
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Tissue thermal conductivity by magnetic resonance thermometry and focused ultrasound heating.

机译:通过磁共振测温和聚焦超声加热的组织导热系数。

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摘要

PURPOSE: To investigate the combined use of magnetic resonance (MR) temperature imaging and focused ultrasound (FUS) for the noninvasive determination of tissue thermal properties. MATERIALS AND METHODS: Brief, spatial impulses of temperature elevation were created in tissue using a spherical, air-backed transducer operating at 1.68 MHz and measured using MR temperature imaging in a 1.5-Tesla clinical scanner. A novel technique based on thermal washout is applied in an analysis of the acquired MR temperature images to estimate tissue thermal conductivity and perfusion. RESULTS: Numerical simulations and experiments in vitro and in vivo demonstrate that thermal conductivity can be measured to within 10% of the true value with MR thermometry at 1.5 Tesla. With the temperature precision available at 1.5 Tesla, however, robust perfusion estimation is feasible only in highly perfused organs or tumors. CONCLUSION: This study has developed a method for determining tissue thermal properties specific to the patient and organ at the site of interest, and allows repeated application. This capability is relevant in thermal therapy planning of tumor ablation using MR-guided FUS systems. J. Magn. Reson. Imaging 2002;16:598-609.
机译:目的:研究磁共振(MR)温度成像和聚焦超声(FUS)在无创测定组织热特性方面的结合使用。材料和方法:使用球形,空气支撑的换能器以1.68 MHz的频率在组织中产生短暂的温度升高空间脉冲,并在1.5 Tesla临床扫描仪中使用MR温度成像进行测量。一种基于热冲刷的新技术被应用于所获取的MR温度图像的分析中,以估算组织的热导率和灌注。结果:体外和体内的数值模拟和实验表明,在1.5特斯拉条件下使用MR测温仪可以将导热率测量为真实值的10%以内。但是,由于温度精确度为1.5特斯拉,因此仅在高度灌注的器官或肿瘤中,可靠的灌注估算才可行。结论:本研究开发了一种确定感兴趣部位特定于患者和器官的组织热性质的方法,并允许重复使用。此功能与使用MR引导的FUS系统进行肿瘤消融的热疗计划有关。 J.Magn。雷森成像2002; 16:598-609。

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