Wu Bing, Zhang Xiaoliang, Qu Peng, Shen Gary X
MRI Lab, Department of Electrical and Electronics Engineering, The University of Hong Kong, Hong Kong.
J Magn Reson. 2006 Sep;182(1):126-32. doi: 10.1016/j.jmr.2006.04.013. Epub 2006 Jul 7.
By independent control of the phases and amplitudes of its elements, the microstrip transmission-line array can mitigate sample-induced RF non-uniformities, and has been widely used as the transceiver in parallel imaging applications. One major challenge in implementing the microstrip array is the reduction of mutual coupling among individual elements. The low-input impedance preamplifier is commonly used for the decoupling purpose. However, it is impractical in the transceiver array design. Although interconnecting capacitors can be utilized to reduce the mutual coupling, they only efficiently work for the neighbor elements. In addition, this approach is impractical at fields higher than 300 MHz, in which the required decoupling capacitance is commonly less than 0.5 pF. We propose a novel decoupling approach by using decoupling inductors in this study. Due to the fact that the decoupling inductance is independent of the resonant frequency, the microstrip arrays can be well decoupled at ultra-high fields. To verify the proposed approach, an eight-channel microstrip array is fabricated and tested at 9.4 T. For this prototype, couplings between elements are significantly reduced by using the interconnecting inductors. The phantom experiment shows that the inductively decoupled microstrip array has good parallel imaging performance.
通过独立控制其元件的相位和幅度,微带传输线阵列可以减轻样本引起的射频不均匀性,并已被广泛用作并行成像应用中的收发器。实现微带阵列的一个主要挑战是减少各个元件之间的相互耦合。低输入阻抗前置放大器通常用于去耦目的。然而,它在收发器阵列设计中并不实用。虽然互连电容器可用于减少相互耦合,但它们仅对相邻元件有效。此外,这种方法在高于300 MHz的场中不实用,在该场中所需的去耦电容通常小于0.5 pF。在本研究中,我们提出了一种使用去耦电感的新型去耦方法。由于去耦电感与谐振频率无关,微带阵列在超高场中可以很好地去耦。为了验证所提出的方法,制作了一个八通道微带阵列并在9.4 T下进行测试。对于该原型,通过使用互连电感,元件之间的耦合显著降低。体模实验表明,电感去耦微带阵列具有良好的并行成像性能。