首页> 外文学位 >Interferometer-Based Calorimetric Measurements of Absorbed Dose to Water in External Beam Radiotherapy
【24h】

Interferometer-Based Calorimetric Measurements of Absorbed Dose to Water in External Beam Radiotherapy

机译:基于干涉仪的量热法测量外束放射治疗中水的吸收剂量

获取原文
获取原文并翻译 | 示例

摘要

Calorimetry is often used to establish high-energy photon absorbed dose to water (ADW) primary standards as calorimetry is a direct measurement of the energy imparted to the water by ionizing radiation. Current calorimeters use thermistors to establish national standards but there is the possibility of systematic errors in these instruments because thermistors overheat due to their low heat capacity. For this reason, there has been renewed interest in using alternative temperature measurement techniques, especially those that do not require a mechanical probe. Interferometer-based thermometry is a technique that exploits the temperature dependence of the refractive index of water and can be used as an alternative method for temperature measurement in radiation calorimetry. A distinctive advantage of the use of interferometry for radiation calorimetry is the capability of obtaining 2D or 3D temperature/dose distributions. Compared to thermistor-based measurements, the use of interferometer-based ADW measurements has been limited by the low measurement resolution. Optimized setups with higher accuracy and precision are necessary to perform measurements at clinically relevant dose rates. A calorimeter for thermistor-based ADW measurements was developed. The instrument was used to measure thermal drifts and noise were measured using the instrument in a water phantom. Residual thermal drifts were accounted for by using a three-step measurement protocol. Additionally, the instrument was used to measure ADW from a 6MV photon beam from a medical linear accelerator. A Michelson-type interferometer was built, characterized, and placed inside the calorimeter with the water phantom at the reference arm. Interferometer and phantom temperature fluctuations were minimized by means of the passive thermal control provide by the calorimeter enclosure, leading to increased fringe pattern stability. The interferometer characterization included phase shift measurements induced by displacing a piezoelectric transducer. Measurements were compared with calculations to estimate the accuracy of the technique. The interferometer-based system was used to measure ADW in a water-filled glass phantom, irradiated with a 6MV photon beam. The estimated Type-A, (k = 1) uncertainty in the associated doses was about 0.3Gy, which is an order of magnitude lower than previously published interferometer-based ADW measurements. Additionally a comparative analysis was performed with the thermistor-based measurements, results for both techniques agreed within the uncertainty. This work presents the first absolute ADW measurements performed using interferometry in the dose range of linac-based radiotherapy and represents a significant step towards standards-level measurements using this technique.
机译:量热法通常用于建立对水的高能光子吸收剂量(ADW)的主要标准,因为量热法是对电离辐射赋予水的能量的直接测量。当前的热量计使用热敏电阻来建立国家标准,但是由于热敏电阻的低热容量导致其过热,因此这些仪器可能会出现系统错误。因此,人们对使用替代温度测量技术,特别是不需要机械探针的温度测量技术有了新的兴趣。基于干涉仪的测温法是一种利用水的折射率对温度的依赖性的技术,可以用作辐射量热法中温度测量的替代方法。将干涉术用于辐射量热法的一个显着优势是能够获得2D或3D温度/剂量分布。与基于热敏电阻的测量相比,基于干涉仪的ADW测量的使用受到低测量分辨率的限制。为了以临床相关的剂量率进行测量,必须具有更高的准确性和精度的优化设置。开发了用于基于热敏电阻的ADW测量的量热仪。该仪器用于测量热漂移,并在水模中使用该仪器测量噪声。残余的热漂移通过使用三步测量协议来解决。此外,该仪器还用于测量来自医用线性加速器的6MV光子束的ADW。构造,表征了迈克尔逊型干涉仪,并将其放置在量热计内部,水模位于参考臂上。热量计外壳提供的被动热控制功能可将干涉仪和幻像的温度波动降至最低,从而增加条纹图案的稳定性。干涉仪的特征包括通过位移压电换能器引起的相移测量。将测量结果与计算结果进行比较,以估算该技术的准确性。基于干涉仪的系统用于测量6MV光子束照射的充满水的玻璃体模中的ADW。估计相关剂量中的A型不确定性(k = 1)约为0.3Gy,这比以前发布的基于干涉仪的ADW测量值低一个数量级。另外,使用基于热敏电阻的测量结果进行了比较分析,两种技术的结果均在不确定性范围内达成共识。这项工作提出了在基于直线加速器的放射治疗剂量范围内使用干涉术进行的首次绝对ADW测量,并代表了使用该技术向标准水平测量迈出的重要一步。

著录项

  • 作者

    Flores-Martinez, Everardo.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Physics.;Optics.;Biophysics.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 149 p.
  • 总页数 149
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:54:25

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号