Lin Jun, Du Guanfeng, Zhang Jian, Yi Xiaofeng, Jiang Chuandong, Lin Tingting
College of Instrumentation and Electrical Engineering, Jilin University, Changchun 130061, China.
Key Laboratory of Geophysics Exploration Equipment, Ministry of Education of China, Changchun 130061, China.
Sensors (Basel). 2017 Jun 12;17(6):1362. doi: 10.3390/s17061362.
Magnetic resonance sounding (MRS) using the Earth's magnetic field is a noninvasive and on-site geophysical technique providing quantitative characteristics of aquifers in the subsurface. When the MRS technology is applied in a mine or tunnel for advance detecting the source of water that may cause disastrous accident, spatial constraints limit the size of coil sensor and thus lower the detection capability. In this paper, a coil sensor for detecting the weak MRS signal is designed and the signal to noise (SNR) for the coil sensor is analyzed and optimized. The coil sensor has a rigid structure and square size of 1 m for deploying in a narrow underground space and is cooled at a low temperature of 77 K for improving the SNR. A theoretical calculation and an experimental test in an electromagnetically shielded room (EMSR) show that the optimal design of coil sensor consists of an 80-turn coil and a low-current-noise preamplifier AD745. It has a field sensitivity of 0.17 fT / Hz in the EMSR at 77 K, which is superior to the low temperature Superconducting Quantum Interference Device (LT SQUID) that is the latest application in MRS and the cooled coil with a diameter of 9 cm when detecting the laboratory NMR signal in kHz range. In the field experiment above the Taipingchi Reservoir near Changchun in China, the cooled coil sensor (CCS) developed in this paper has successfully obtained a valid weak MRS signal in high noise environment. The field results showed that the quality of measured MRS signal at 77 K is significantly superior to that at 298 K and the SNR is improved up to three times. This property of CCS makes the MRS instrument more convenient and reliable in a constricted space underground engineering environment (e.g., a mine or a tunnel).
利用地球磁场的磁共振测深(MRS)是一种非侵入性的现场地球物理技术,可提供地下含水层的定量特征。当MRS技术应用于矿山或隧道以提前探测可能导致灾难性事故的水源时,空间限制会限制线圈传感器的尺寸,从而降低探测能力。本文设计了一种用于检测微弱MRS信号的线圈传感器,并对该线圈传感器的信噪比(SNR)进行了分析和优化。该线圈传感器结构刚性,方形尺寸为1米,便于部署在狭窄的地下空间,并在77K的低温下冷却以提高信噪比。在电磁屏蔽室(EMSR)中的理论计算和实验测试表明,线圈传感器的优化设计包括一个80匝的线圈和一个低电流噪声前置放大器AD745。在77K的EMSR中,它的场灵敏度为0.17 fT / Hz,在检测kHz范围内的实验室NMR信号时,优于MRS中最新应用的低温超导量子干涉装置(LT SQUID)和直径为9厘米的冷却线圈。在中国长春附近的太平池水库上方进行的现场实验中,本文研制的冷却线圈传感器(CCS)在高噪声环境中成功获得了有效的微弱MRS信号。现场结果表明,77K时测量的MRS信号质量明显优于298K时的信号质量,信噪比提高了三倍。CCS的这一特性使得MRS仪器在狭窄的地下工程环境(如矿山或隧道)中更加方便和可靠。