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Transmit Array Spatial Encoding (TRASE) using broadband WURST pulses for RF spatial encoding in inhomogeneous B0 fields

机译:使用宽带WURST脉冲的发射阵列空间编码(TRASE)用于非均匀B0场中的RF空间编码

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摘要

Transmit Array Spatial Encoding (TRASE) is a promising new MR encoding method that uses transmit RF (B1+) phase gradients over the field-of-view to perform Fourier spatial encoding. Acquisitions use a spin echo train in which the transmit coil phase ramp is modulated to jump from one k-space point to the next. This work extends the capability of TRASE by using swept radiofrequency (RF) pulses and a quadratic phase removal method to enable TRASE where it is arguably most needed: portable imaging systems with inhomogeneous B0 fields. The approach is particularly well-suited for portable MR scanners where (a) inhomogeneous B0 fields are a byproduct of lightweight magnet design, (b) heavy, high power-consumption gradient coil systems are a limitation to siting the system in non-conventional locations and (c) synergy with the use of spin echo trains is required to overcome intra-voxel dephasing (short T2) in the inhomogeneous field. TRASE does not use a modulation of the B0 field to encode, but it does suffer from secondary effects of the inhomogeneous field. Severe artifacts arise in TRASE images due to off-resonance effects when the RF pulse does not cover the full bandwidth of spin resonances in the imaging FOV. Thus, for highly inhomogeneous B0 fields, the peak RF power needed for high-bandwidth refocusing hard pulses becomes very expensive, in addition to requiring RF coils that can withstand thousands of volts. In this work, we use swept WURST RF pulse echo trains to achieve TRASE imaging in a highly inhomogeneous magnetic field (ΔB0/B0 ~ 0.33% over the sample). By accurately exciting and refocusing the full bandwidth of spins, the WURST pulses eliminate artifacts caused by the limited bandwidth of the hard pulses used in previous realizations of TRASE imaging. We introduce a correction scheme to remove the unwanted quadratic phase modulation caused by the swept pulses. Also, a phase alternation scheme is employed to mitigate artifacts caused by mixture of the even and odd-echo coherence pathways due to defects in the refocusing pulse. In this paper, we describe this needed methodology and demonstrate the ability of TRASE to Fourier encode in an inhomogeneous field (ΔB0/B0 ~ 1% over the full FOV).
机译:发送阵列空间编码(TRASE)是一种很有前途的新MR编码方法,它使用发送RF( B 1 + )在视场上的相位梯度,以执行傅立叶空间编码。采集使用自旋回波序列,其中发射线圈的相位斜坡被调制为从一个k空间点跳到另一个k空间点。这项工作通过使用扫频射频(RF)脉冲和二次相位去除方法扩展了TRASE的能力,可以在最需要的地方启用TRASE:具有不均匀B0场的便携式成像系统。该方法特别适合于便携式MR扫描仪,其中(a)不均匀的B0磁场是轻型磁体设计的副产品,(b)笨重的高功耗梯度线圈系统限制了该系统在非常规位置的放置并且(c)需要使用自旋回波序列协同工作,以克服体素内移相(短 T 2 < / math>)。 TRASE不使用B0场的调制来编码,但确实受到非均匀场的次要影响。当RF脉冲不能覆盖成像FOV中自旋共振的全部带宽时,由于失谐效应,在TRASE图像中会出现严重的伪影。因此,对于高度不均匀的B0场,高带宽重新聚焦硬脉冲所需的峰值RF功率非常昂贵,此外还需要能够承受数千伏特的RF线圈。在这项工作中,我们使用扫频WURST RF脉冲回波序列在高度不均匀的磁场(样品的ΔB0/ B0〜0.33%)中实现TRASE成像。通过精确激发并重新聚焦自旋的整个带宽,WURST脉冲消除了由TRASE成像的先前实现中使用的硬脉冲的有限带宽引起的伪影。我们介绍一种校正方案,以消除由扫频脉冲引起的不必要的二次相位调制。而且,采用相位交替方案来减轻由于重聚焦脉冲中的缺陷而由偶数和奇数回波相干路径的混合所引起的伪像。在本文中,我们描述了这种必需的方法,并证明了TRASE在不均匀场(整个FOV的ΔB0/ B0〜1%)中进行傅立叶编码的能力。

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