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Permanent Magnets and Electromechanical Control Systems for Spectroscopy and Low Field Communication

by Jarred Glickstein

Institution: Case Western Reserve University School of Graduate Studies
Department: EECS - Electrical Engineering
Degree: PhD
Year: 2022
Keywords: Electrical Engineering; Electromagnetics; Electromagnetism; Mechanical Engineering; Mechanics; Nuclear Physics; Engineering; permanent magnets; electromechanical; control systems; spectroscopy; low field communication; NQR; ELF; nuclear quadrupole resonan
Posted: 3/25/2025
Record ID: 2250323
Full text PDF: http://rave.ohiolink.edu/etdc/view?acc_num=case1653656169755945


Abstract

This thesis shows that permanent magnets and electromechanical control systems can enable power-efficient, high-sensitivity, low-noise modalities for spectroscopy and wireless communication. Specifically I present two examples. The first is a radio frequency (RF) spectrometer which uses a detector cooled to 77 K to maximize measurement sensitivity, coupled with a minimally-intrusive network of active duplexers and mechanical contact switches to realize a reconfigurable series/parallel resonant network. I present a receiver which combines the highly sensitive analog frontend instrumentation with a mixed signal embedded system to monitor and control secondary processes. The cryogenic system increases the measurement signal to noise ratio (SNR) by a factor of 10×.The second example is an extremely low frequency (ELF) communication system which uses a mechanically-rotated dipole instead of an electrical antenna to generate the oscillating field of the transmitter. I show how a synchronous digital controller can maintain stable control over the dynamic process while a complementary embedded system modulates the set-point and monitors the channel. My transmitter achieves a power efficiency 7.6× greater than an equivalent electrical antenna in a device small enough to be moved by one person. I carrythe transmitter into a cave and demonstrate cave-to-surface message transmission through 15 m of rock and frozen soil in a real-world field test.I present each solution in the context of scientific and human motivation, and explore tradeoffs required to achieve design goals. Emphasis is also placed on whether there exists a position of harmony and balance, where one may reasonably proclaim the optimum implementation has been achieved. The receiver is relatively more complex than the transmitter in the case of RF spectroscopy. In the case of ELF communication it is the reverse.

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