屏蔽二极管探测器用于小场剂量测定的可行性研究。

IF 0.8 4区 环境科学与生态学 Q4 ENVIRONMENTAL SCIENCES Radiation protection dosimetry Pub Date : 2024-07-17 DOI:10.1093/rpd/ncae051
Resmi K Bharathan, Irfana Thasni, Musthafa Musthafa, Suja Cheruliyil Ayyappan, Silpa Ajaykumar, Lisha Jose
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引用次数: 0

摘要

经过改进的成像技术和现代放射治疗方法可将治疗野缩小到肿瘤的精确尺寸,这就需要进行小场剂量测定。小场剂量测定具有挑战性,因为现有的大多数剂量测定规范都是基于空穴理论概念。一些小型探测器显示出良好的空间分辨率和灵敏度。在现有的小型探测器中,钻石探测器的性能非常出色。大多数放射治疗中心都缺少金刚石探测器。在这种情况下,如果有二极管探测器,我们就可以通过使用 Daisy Chaining 方法校正方法,将其用于小场剂量测定。在这项研究中,由于二极管有缺陷,二极管探测器的响应没有过高。因此,该二极管不能用于进一步的测量,我们必须定期检查二极管的性能,然后再将其用于测量。
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Feasibility study of shielded diode detector for small field dosimetry.

Improved imaging techniques and modern radiotherapy treatment delivery in the treatment field are reduced to the precise size of the tumor, which necessitates the need for small-field dosimetry. Dosimetry in small-field dosimetry is challenging because most of the available code of practice for dosimetry is based on the cavity theory concept. Some small-sized detectors show good spatial resolution and sensitivity. Of the available small detectors, the diamond detector's performance is remarkably good. Most of the centers for radiotherapy lack diamond detectors. In this situation, if a diode detector is available, we can use it for small-field dosimetry by applying the Daisy Chaining method correction methods. In this study, the diode detector's response is not over-responding because of the defective diode. So this diode cannot be used for further measurements, and we have to regularly check the performance of the diode before using it for measurements.

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来源期刊
Radiation protection dosimetry
Radiation protection dosimetry 环境科学-公共卫生、环境卫生与职业卫生
CiteScore
1.40
自引率
10.00%
发文量
223
审稿时长
6-12 weeks
期刊介绍: Radiation Protection Dosimetry covers all aspects of personal and environmental dosimetry and monitoring, for both ionising and non-ionising radiations. This includes biological aspects, physical concepts, biophysical dosimetry, external and internal personal dosimetry and monitoring, environmental and workplace monitoring, accident dosimetry, and dosimetry related to the protection of patients. Particular emphasis is placed on papers covering the fundamentals of dosimetry; units, radiation quantities and conversion factors. Papers covering archaeological dating are included only if the fundamental measurement method or technique, such as thermoluminescence, has direct application to personal dosimetry measurements. Papers covering the dosimetric aspects of radon or other naturally occurring radioactive materials and low level radiation are included. Animal experiments and ecological sample measurements are not included unless there is a significant relevant content reason.
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