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基于厚气体电子倍增器的二维高级微剂量学探测器的研制。

Development of an advanced two-dimensional microdosimetric detector based on THick Gas Electron Multipliers.

机构信息

Department of Physics and Astronomy (Medical Physics), McMaster University, Hamilton, ON, Canada.

Radiation Sciences Graduate program, McMaster University, Hamilton, ON, Canada.

出版信息

Med Phys. 2018 Mar;45(3):1241-1254. doi: 10.1002/mp.12750. Epub 2018 Feb 1.

Abstract

PURPOSE

The THick Gas Electron Multiplier (THGEM)-based tissue-equivalent proportional counter (TEPC) has been proven to be useful for microdosimetry due to its flexibility in varying the gaseous sensitive volume and achieving high multiplication gain. Aiming at measuring the spatial distribution of radiation dose for mixed neutron-gamma fields, an advanced two-dimensional (2D) THGEM-TEPC was designed and constructed at McMaster University which will enable us to overcome the operational limitation of the classical TEPCs, particularly for high-dose rate fields. Compared to the traditional TEPCs, anode wire electrodes were replaced by a THGEM layer, which not only enhances the gas multiplication gain but also offers a flexible and convenient fabrication for building 2D detectors.

METHOD & MATERIALS: The 2D THGEM TEPC consists of an array of 3 × 3 sensitive volumes, equivalent to nine individual TEPCs, each of which has a dimension of 5 mm diameter and length. Taking the overall cost, size and flexibility into account, to process nine detector signals simultaneously, a multi-input digital pulse processing system was developed by using modern microcontrollers, each of which is coupled with a 12-bit sampling ADC.

RESULTS

Using the McMaster Tandetron Li(p,n) accelerator neutron source, both fundamental detector performance, as well as neutron dosimetric response of the 2D THGEM-TEPC, has been extensively investigated and compared to the data acquired by a standard spherical TEPC. It was shown that the microdosimetric response and the measured absorbed dose rate of the 2D THGEM detector developed in this study are comparable to the standard 1/2" TEPC which is commercially available.

CONCLUSION

This study proved that the 2D TEPC based on the THGEM technology can be effectively used in microdosimetry studies and is a promising detector for measuring the absorbed dose rate distribution over an area in mixed radiation fields. This unique small gas cavity detector opens new possibilities in applications for high-intensity mixed radiation fields as well as in nanodosimetry.

摘要

目的

基于厚气体电子倍增器(THGEM)的组织等效正比计数器(TEPC)因其在改变气体敏感体积和实现高倍增增益方面的灵活性而被证明在微剂量学中非常有用。为了测量混合中子-伽马场中的辐射剂量空间分布,麦克马斯特大学设计并构建了一种先进的二维(2D)THGEM-TEPC,这将使我们能够克服经典 TEPC 的操作限制,特别是对于高剂量率场。与传统的 TEPC 相比,阳极丝电极被 THGEM 层取代,这不仅增强了气体倍增增益,而且为构建 2D 探测器提供了灵活方便的制造方法。

方法与材料

2D THGEM TEPC 由 3×3 个敏感体积的阵列组成,相当于九个单独的 TEPC,每个体积的直径和长度均为 5 毫米。考虑到整体成本、尺寸和灵活性,为了同时处理九个探测器信号,开发了一种多输入数字脉冲处理系统,该系统使用现代微控制器实现,每个微控制器都与一个 12 位采样 ADC 耦合。

结果

使用麦克马斯特 Tandetron Li(p,n)加速器中子源,广泛研究和比较了 2D THGEM-TEPC 的基本探测器性能以及中子剂量响应,与标准球形 TEPC 获得的数据进行了比较。结果表明,本研究中开发的 2D THGEM 探测器的微剂量响应和测量的吸收剂量率与市售的标准 1/2"TEPC 相当。

结论

这项研究证明,基于 THGEM 技术的 2D TEPC 可有效地用于微剂量学研究,是测量混合辐射场中面积上吸收剂量率分布的有前途的探测器。这种独特的小气体腔探测器为高强度混合辐射场以及纳米剂量学中的应用开辟了新的可能性。

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