
Ð”Ð¸Ð¿Ð»Ð¾Ð¼Ð½Ð°Ñ Ñ€Ð°Ð±Ð¾Ñ‚Ð° поÑвÑщена разработке лабораторной уÑтановки по приему ÑверхнизкочаÑтотных Ñигналов, их региÑтрации в двух режимах: в режиме Ñинхронного Ð´ÐµÑ‚ÐµÐºÑ‚Ð¸Ñ€Ð¾Ð²Ð°Ð½Ð¸Ñ Ð¸ в режиме без Ñинхронного детектированиÑ, а также анализу полученных данных и Ð¾Ð¿Ñ€ÐµÐ´ÐµÐ»ÐµÐ½Ð¸Ñ Ð¿ÐµÑ€Ñпектив Ð¿Ñ€Ð¸Ð¼ÐµÐ½ÐµÐ½Ð¸Ñ ÐºÐ²Ð°Ð½Ñ‚Ð¾Ð²Ñ‹Ñ… магнитометров Ñ Ð¾Ð¿Ñ‚Ð¸Ñ‡ÐµÑкой накачкой Ð´Ð»Ñ Ñ€ÐµÐ³Ð¸Ñтрации Ñигнала в ÑверхнизкочаÑтном диапазоне Ð’ работе предоÑтавлен литературный обзор ÑущеÑтвующих методов по приему ÑверхнизкочаÑтотных Ñигналов Ñ Ð¿Ð¾Ð¼Ð¾Ñ‰ÑŒÑŽ различных приемных уÑтройÑтв: ферритовых антенн, квантового магнитометра Ñ Ð¾Ð¿Ñ‚Ð¸Ñ‡ÐµÑкой накачкой MX-типа и квантового магнитометра Ñ Ð¾Ð¿Ñ‚Ð¸Ñ‡ÐµÑкой накачкой MZ-типа. Ð’ ходе работы была разработана Ð»Ð°Ð±Ð¾Ñ€Ð°Ñ‚Ð¾Ñ€Ð½Ð°Ñ ÑƒÑтановка Ð´Ð»Ñ Ñ€ÐµÐ³Ð¸Ñтрации Ñигнала ÑверхнизкочаÑтотного диапазона, были зарегиÑтрированы Ñигналы ÑверхнизкочаÑтотного диапазона в двух режимах: в режиме Ñинхронного Ð´ÐµÑ‚ÐµÐºÑ‚Ð¸Ñ€Ð¾Ð²Ð°Ð½Ð¸Ñ Ð¸ в режиме без Ñинхронного детектированиÑ, были проанализированы полученные данные, а также определены перÑпективы по применению квантовых магнитометров Ñ Ð¾Ð¿Ñ‚Ð¸Ñ‡ÐµÑкой накачкой Ð´Ð»Ñ Ð¿Ñ€Ð¸ÐµÐ¼Ð° ÑверхнизкочаÑтотных Ñигналов. Ð’ работе иÑпользовалиÑÑŒ открытые образовательные реÑурÑÑ‹ и программы поиÑка и анализа информации. Также применÑлиÑÑŒ ÑредÑтва автоматизации: региÑÑ‚Ñ€Ð°Ñ†Ð¸Ñ Ñигналов магнитометра на цифровом оÑциллографе и их Ð´Ð°Ð»ÑŒÐ½ÐµÐ¹ÑˆÐ°Ñ Ð¿ÐµÑ€ÐµÐ´Ð°Ñ‡Ð° на компьютер по USB каналу. ПрименÑлоÑÑŒ программное обеÑпечение: Word, Excel.
Diploma work is devoted to the development of laboratory installation for the reception of very-low-frequency signals, their registration in two modes: in the mode of synchronous detection and in the mode without synchronous detection, as well as analyze the data obtained and determine the prospects for quantum magnetometer with optical pumping for registration signal in the ultra-low frequency range. This paper gives a literature review of existing methods to receive very-low-frequency signals using different receiver devices: ferrite antennas, quantum magnetometer with optical pumping MX-type and quantum magnetometer with optical pumping MZ-type. In the course of work a laboratory setup for registration of UHF signal was developed. UHF signals were registered in two modes: in the mode of synchronous detection and in the mode without synchronous detection. The data obtained were analyzed, and prospects for the use of quantum magnetometer with optical pumping for reception of ultra-low frequency signals were determined. Open educational resources and information retrieval and analysis software were used in the work. Also automation tools were used: registration of magnetometer signals on digital oscilloscope and their further transfer to computer via USB-channel. Software was used: Word, Excel.
магниÑное поле земли, ÑвеÑÑ Ð½Ð¸Ð·ÐºÐ¾ÑаÑÑоÑнÑе ÑигналÑ, quantum magnetometer, earth magnetic field, двойной ÑадиоопÑиÑеÑкий ÑезонанÑ, quantum magnetometer with optical pumping, ultra-low frequency signals, double radio-optic resonance, кванÑовÑй магниÑомеÑÑ, магниÑоиндÑкÑÐ¸Ð¾Ð½Ð½Ð°Ñ ÑвÑзÑ, кванÑовÑй магниÑомеÑÑ Ñ Ð¾Ð¿ÑиÑеÑкой накаÑкой, magneto-induction coupling
магниÑное поле земли, ÑвеÑÑ Ð½Ð¸Ð·ÐºÐ¾ÑаÑÑоÑнÑе ÑигналÑ, quantum magnetometer, earth magnetic field, двойной ÑадиоопÑиÑеÑкий ÑезонанÑ, quantum magnetometer with optical pumping, ultra-low frequency signals, double radio-optic resonance, кванÑовÑй магниÑомеÑÑ, магниÑоиндÑкÑÐ¸Ð¾Ð½Ð½Ð°Ñ ÑвÑзÑ, кванÑовÑй магниÑомеÑÑ Ñ Ð¾Ð¿ÑиÑеÑкой накаÑкой, magneto-induction coupling
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