M Burghoff, A Schnabel, D Drung, F Thiel, S Knappe-Grüneberg, S Hartwig, O Kosch, L Trahms, H Koch
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引用次数: 0
摘要
对于许多生物磁学应用,需要对同时有源进行区分。为了评估给定SQUID系统在这方面的性能,使用了不同信号源的信号矢量之间的夹角。如果角度达到较大值,则可以对多个光源进行区分。我们用一个由19个相同模块组成的新矢量磁强计系统的第一个模块测试了这种方法。测量的两个例子说明了多种来源的分化,即胎儿和母亲的心脏信号,以及α节律和心脏信号在MEG记录。包含16个SQUID的矢量磁强计系统的第一个模块在新柏林磁屏蔽室(BMSR 2)的PTB中运行。该模块的16个集成SQUID磁强计的空间配置使得磁场的所有三个矢量分量可以分别在杜瓦底部上方1.5 cm, 5 cm和10.5 cm的三个测量平面上计算。SQUID磁强计通道在1khz时的典型白噪声电平小于2.3 fT/ Hz1/2的平方根。
Discrimination of multiple sources using a SQUID vector magnetometer.
For many biomagnetic applications the discrimination between simultaneously active sources is required. To evaluate the performance of a given SQUID system in this respect, the angle between the signal vectors of different sources is used. If the angle reaches large values, discrimination between the multiple sources is possible. We tested this approach with the first module of a new vector magnetometer system consisting of 19 identical modules. Two examples of measurements illustrate the differentiation of multiple sources, i.e. the fetal and the mother's heart signal, and alpha rhythm and heart signal in MEG recordings. This first module of a vector magnetometer system containing 16 SQUIDs is operated at PTB in the new Berlin Magnetically Shielded Room (BMSR 2) The spatial configuration of the 16 integrated SQUID magnetometers of the module is such that all three vector components of the magnetic field can be calculated in three measurement planes at 1.5 cm, 5 cm, and 10.5 cm above the Dewar bottom, respectively. The SQUID magnetometer channels have a typical white noise level of less than 2.3 fT/square root of Hz1/2 at 1 kHz.