研究目的
To develop a novel real-time optical fibre X-Ray dosimeter for monitoring the radiation pulses delivered from a clinical linear accelerator (Linac), capable of measuring low doses of ionising X-ray radiation in real time with a high degree of accuracy and linearity.
研究成果
The novel optical fibre based sensor is capable of accurate real time dose measurement for a wide range of operating conditions in clinical EBRT, demonstrating highly linear measurement when calibrated against simultaneous measurements of dose recorded using a co-located IC for a wide range of dose rates (100 to 600 MU/min).
研究不足
The current resolution (lowest detectable level) of the sensor is 1 MU. The gate time of the MPPC to 0.1 ms may contribute to artefacts in the measurement, and a reduction of the gate time to 1 μs, together with adequate light detection capability, is currently not achievable using the current state of the art in detector technology.
1:Experimental Design and Method Selection:
The sensor design involved coating the tip of a PMMA fibre with scintillation doped epoxy, modified to allow for improved coupling of the radioluminescence signal. The end of the 1-mm PMMA fibre optic core was micro-machined to create a small hole, which was filled with a mixture of epoxy and the scintillating material.
2:Sample Selection and Data Sources:
The scintillating material, Gadolinium Oxysulphide activated with Terbium (Gd2O2S:Tb), fluoresces when exposed to ionising radiation (X-Rays).
3:List of Experimental Equipment and Materials:
A Hamamatsu Multi-Pixel Photon Counter, MPPC C11208-01, APD array was used for detection. All measurements were recorded on a Varian IX3937 linac.
4:Experimental Procedures and Operational Workflow:
The OFS was placed in the line of the beam at the distance setting of 100 cm, submerged in water to a depth of 15 mm.
5:Data Analysis Methods:
Special software was written (in C++) to control the device, with data acquisition and signal control captured via the USB interface of a Dell Notebook PC.
独家科研数据包,助您复现前沿成果,加速创新突破
获取完整内容