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On subsurface wireless data acquisition system

机译:地下无线数据采集系统

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Measurement, evaluation, and monitoring of subsurface objects often require wireless data transmission between an embedded sensor and an exterior host system. Such technologies find applications in many areas-medical imaging, space exploration, earth formation evaluation in oilfield industries, for example. This paper describes a complete wireless data acquisition system that includes design of a transceiver unit, as well as communication protocols for data encoding and decoding. Although the application considered in this paper pertains to the oilfield industry, the method is applicable to other areas as well. The transceiver design is highly constrained due to requirements on physical size, mechanical stability, and low-power consumption. The host antenna generally consists of ferrite-backed coils wound on a metallic cylinder. A critical requirement in the design of these coils is to produce a desired spatial variation of the magnetic field in a specified region. A genetic algorithm is used to optimize the location and excitation of each coil. A combination of finite-element method and superposition principle is used to speed up the solution of forward problem. The data measured by an embedded sensor are encoded with seven-bit cyclic redundancy code concatenated with Manchester code for error detection/correction and bit synchronization. Coded data are finally transmitted by binary frequency-shift keying modulation scheme. Numerical and experimental results for magnetic field, signal-to-noise ratio, and data demodulation are presented.
机译:地下物体的测量,评估和监视通常需要在嵌入式传感器和外部主机系统之间进行无线数据传输。此类技术可用于许多领域,例如医学成像,太空探索,油田行业的地层评估。本文介绍了一个完整的无线数据采集系统,其中包括收发器单元的设计以及用于数据编码和解码的通信协议。尽管本文考虑的应用程序适用于油田行业,但该方法也适用于其他领域。由于对物理尺寸,机械稳定性和低功耗的要求,收发器的设计受到高度限制。主机天线通常由缠绕在金属圆柱体上的铁氧体背线圈组成。这些线圈的设计中的关键要求是在指定区域内产生期望的磁场空间变化。遗传算法用于优化每个线圈的位置和激励。有限元法和叠加原理相结合,可以加快正向问题的求解速度。嵌入式传感器测得的数据用与曼彻斯特码相连的七位循环冗余码进行编码,以进行错误检测/纠正和位同步。最后,通过二进制频移键控调制方案发送编码数据。给出了磁场,信噪比和数据解调的数值和实验结果。

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