基于电阻线圈的低场磁共振成像(MRI)系统在低资源环境中的冷却方法。

Faith Natukunda, Theodora M Twongyirwe, Steven J Schiff, Johnes Obungoloch
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引用次数: 5

摘要

磁共振成像(MRI)是一种用于多种健康状况诊断的非侵入性方法,与超声和计算机断层扫描等其他成像方式相比,它越来越受欢迎。最初,概念验证和早期的MRI系统是基于电阻和永磁体技术。然而,超导磁体凭借其高场(HF)强度长期垄断着MRI系统的市场,尽管它们具有很高的施工、安装和选址要求。这种严格的先决条件限制了它们在中低收入国家的可得性和使用。基于电阻线圈的磁体,尽管容量低场(LF),但在资源有限的情况下,可能会促进MRI系统的可用性和使用。这些系统的特点是成本低,图像质量高,可用于诊断某些疾病,如脑积水。然而,电阻线圈的性质导致它们在运行过程中加热,因此需要专用的冷却系统来提高图像质量并延长系统寿命。本文探讨了一系列已应用于电阻磁体的冷却方法,列举了它们的优点和缺点以及需要改进的领域。
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Approaches in cooling of resistive coil-based low-field Magnetic Resonance Imaging (MRI) systems for application in low resource settings.

Magnetic Resonance Imaging (MRI), a non-invasive method for the diagnosis of diverse health conditions has experienced growing popularity over other imaging modalities like ultrasound and Computer Tomography. Initially, proof-of-concept and earlier MRI systems were based on resistive and permanent magnet technology. However, superconducting magnets have long held monopoly of the market for MRI systems with their high-field (HF) strength capability, although they present high construction, installation, and siting requirements. Such stringent prerequisites restrict their availability and use in low-middle income countries. Resistive coil-based magnet, albeit low-field (LF) in capacity, represent a plausible boost for the availability and use of MRI systems in resource constrained settings. These systems are characterized by low costs coupled with substantial image quality for diagnosis of some conditions such as hydrocephalus common is such regions. However, the nature of resistive coils causes them to heat up during operation, thus necessitating a dedicated cooling system to improve image quality and enhance system longevity. This paper explores a range of cooling methods as have been applied to resistive magnets, citing their pros and cons and areas for improvement.

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