基于坐标搜索法设计内向外磁共振传感器

IF 1.1 4区 物理与天体物理 Q4 PHYSICS, ATOMIC, MOLECULAR & CHEMICAL
Jiamin Wu, Zheng Xu, Yanhe Zhu, Yucheng He
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引用次数: 0

摘要

内向外磁共振传感器的应用已成为土壤水分检测的焦点,它提供了一种对评估土壤物理结构至关重要的非侵入式方法。虽然现有的单侧结构内向外磁共振传感器可以有效测量浅层土壤,但在评估较深的土壤层(1-10 厘米)时却显得力不从心。然而,由于缺乏相关传感器的优化设计和横向比较,阻碍了磁共振传感器在土壤水分测量中的广泛应用。本文通过优化哑铃结构的磁共振传感器来弥补这一不足。在实际工程限制条件下,使用非衍生优化方法(特别是坐标搜索)对磁体结构进行了微调,以便在相关区域建立均匀的磁场。采用坐标搜索法将传感器的相对信噪比(SNR)提高到最大值。然后对人造土壤样本进行测试,T2 频谱分布揭示了不同孔隙的水分分布特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Design of Inside-Out Magnetic Resonance Sensor Based on Coordinate Search Method

Design of Inside-Out Magnetic Resonance Sensor Based on Coordinate Search Method

Design of Inside-Out Magnetic Resonance Sensor Based on Coordinate Search Method

The application of inside-out magnetic resonance sensors has emerged as a focal point in soil moisture detection, offering a non-invasive approach crucial for evaluating soil physical structure. While existing inside-out magnetic resonance sensors with a unilateral structure can effectively measure the shallow soil layer, they fall short in assessing deeper soil layers (1–10 cm). However, the lack of optimal design and horizontal comparison among relevant sensors has impeded the widespread adoption of magnetic resonance sensors in soil moisture measurement. This paper addresses this gap by optimizing a magnetic resonance sensor with a dumbbell structure. The magnet structure is fine-tuned using a non-derivative optimization method, specifically the coordinate search, under practical engineering constraints to establish a uniform field in the region of interest. Employing the coordinate search method enhances the sensor’s relative signal-to-noise ratio (SNR) to its maximum. Artificial soil samples are then tested, and the T2 spectrum distribution reveals insights into water distribution characteristics across different pores.

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来源期刊
Applied Magnetic Resonance
Applied Magnetic Resonance 物理-光谱学
CiteScore
1.90
自引率
10.00%
发文量
59
审稿时长
2.3 months
期刊介绍: Applied Magnetic Resonance provides an international forum for the application of magnetic resonance in physics, chemistry, biology, medicine, geochemistry, ecology, engineering, and related fields. The contents include articles with a strong emphasis on new applications, and on new experimental methods. Additional features include book reviews and Letters to the Editor.
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