首页> 外文期刊>International Journal of Radiation Oncology, Biology, Physics >Scanning E-field sensor device for online measurements in annular phased-array systems.
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Scanning E-field sensor device for online measurements in annular phased-array systems.

机译:扫描电场传感器设备,用于环形相控阵系统中的在线测量。

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PURPOSE: A measurement device for noninvasive and simultaneous control of antennas during regional radiofrequency (rf) hyperthermia and, subsequently, the estimation of the power distribution in the interior of patients are essential preconditions for further technological progress. Aiming at this, the feasibility of an electro-optical electric field sensor was investigated during clinical rf hyperthermia. MATERIAL AND METHODS: The electro-optical electric field (E-field) sensor is based on lithiumniobate crystals and the Mach-Zehnder interferometer structure, and was tested in an earlier phantom study. For this study, a mechanical scanning device was developed allowing the registration of the E-field during clinical application. Data were recorded along a curve in the water bolus of the SIGMA 60 applicator of the annular phased-array system BSD-2000 (BSD Medical Corp., Salt Lake City, UT) close to the base points of the flat biconical dipole antennas. The results were compared with modeling calculations using the finite-difference time-domain (FDTD) method. For the latter, different antenna models were assumed. For systematic registration of the E-field curves in amplitude and phase, we employed an elliptical lamp phantom with fat-equivalent ring (filled with saline solution) and an elliptical polyacrylamide phantom with acrylic glass wall. Further measurements were carried out during the treatment of 5 patients with 20 hyperthermia treatments. RESULTS: Data of both phantom and patient measurements can be satisfactorily described by the FDTD method, if the antenna model is refined by taking into account the conical form of the dipoles and the special dielectric environment of the feeding point. Phase deviations can be entered ex posteriori for correction in the calculation algorithm. A comparison of amplifier power measurement (forward and backward power) and bolus E-field scans near the antenna base points demonstrates that E-field measurements between antennas and patient are a necessity for the appropriate characterization of antenna radiation properties. These measurements are sensitive to variations of the lossy medium in position and shape, and can be correctly predicted with current models. However, the differences between different patients are moderate and unspecific in both calculations and measurements, with fluctuations at maximum of 30 degrees in phases and 40% in amplitudes. CONCLUSIONS: The measurement method presented here turned out to be a practical tool for online registration of E-fields in phases and amplitudes along arbitrary curves in a water bolus or phantom. It can be utilized to evaluate antenna design and modeling calculations and leads, thus, to a better understanding of complicated multiantenna systems. In clinical routine, it can be employed as input for patient-specific hyperthermia planning and, finally, for the realization of online control with subsequent optimization of the power distribution in the patient.
机译:用途:一种用于在区域性射频(rf)热疗过程中无创且同时控制天线的测量设备,随后,对患者体内功率分布的估计是进一步技术进步的必要前提。为此,在临床射频热疗期间研究了电光电场传感器的可行性。材料与方法:电光(E-field)传感器基于铌酸锂晶体和Mach-Zehnder干涉仪结构,并在较早的幻像研究中进行了测试。对于这项研究,开发了一种机械扫描设备,可以在临床应用过程中记录电场。沿环形相控阵系统BSD-2000(BSD Medical Corp.,盐湖城,犹他州)的SIGMA 60施药器的水团附近的曲线记录数据,该曲线靠近扁平双圆锥偶极天线的基点。将结果与使用有限差分时域(FDTD)方法的建模计算进行了比较。对于后者,假设使用不同的天线模型。为了系统地记录振幅和相位的电场曲线,我们使用了带有脂肪等效环的椭圆形灯体模(装有盐溶液)和带有丙烯酸玻璃壁的椭圆形聚丙烯酰胺模体。在对5名患者进行20种高温治疗的过程中进行了进一步的测量。结果:如果通过考虑偶极子的圆锥形和馈电点的特殊介电环境来完善天线模型,则通过FDTD方法可以令人满意地描述幻影和患者测量数据。相位偏差可以事后输入,以便在计算算法中进行校正。对放大器功率测量值(正向和反向功率)与天线基点附近的快速电场扫描的比较表明,天线和患者之间的电场测量是适当表征天线辐射特性的必要条件。这些测量对有损介质的位置和形状的变化敏感,并且可以使用当前模型正确预测。但是,在计算和测量方面,不同患者之间的差异是中等且不确定的,相位最大波动为30度,振幅最大波动为40%。结论:这里提出的测量方法被证明是一种实用的工具,可以在线记录水团或体模中沿任意曲线的相位和振幅的电场。它可以用来评估天线设计和建模计算,从而更好地理解复杂的多天线系统。在临床常规中,可以将其用作患者特定的体温过高计划的输入,并最终实现在线控制以及随后对患者功率分配的优化。

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