Development of the floating Langmuir probe for cubesats

碩士 === 國立成功大學 === 太空與電漿科學研究所 === 107 === In recent years, the small-scale variation of the ionosphere and the re-entry process greatly draw scientists attentions. The plasma density of ionosphere in the region below 300 km varies dramatically, and electrons interact with ions frequently, the convent...

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Main Authors: Yi-ChenWang, 王翊臻
Other Authors: Bing-Chih Chen
Format: Others
Language:zh-TW
Published: 2019
Online Access:http://ndltd.ncl.edu.tw/handle/u23ybw
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spelling ndltd-TW-107NCKU50690062019-10-26T06:24:16Z http://ndltd.ncl.edu.tw/handle/u23ybw Development of the floating Langmuir probe for cubesats 用於立方衛星之浮動式蘭摩爾探針的研發 Yi-ChenWang 王翊臻 碩士 國立成功大學 太空與電漿科學研究所 107 In recent years, the small-scale variation of the ionosphere and the re-entry process greatly draw scientists attentions. The plasma density of ionosphere in the region below 300 km varies dramatically, and electrons interact with ions frequently, the conventional Langmuir probe is not applicability of the research in this region due to its low temporal resolution. In this work, an innovated approach of the electron temperature (Te) and density (ne) measurements by an electrically floated circuit based on the principles of the double and triple Langmuir probes, named as the floating Langmuir probe (fLP), is presented. Hence, the goal of this work is to advance the a new measurement instrument based on the conventional Langmuir probe and make it suitable for cubesats to measure the plasma in the ionosphere and the atmospheric re-entry process. Comparing with the conventional Langmuir probe, fLP is designed as an electrically floating system, therefore it can measure the plasma on-board a cubesat stably with a high temporal resolution to measure the highly variating plasma during the atmospheric re-entry process. In this work, the design concept, performance analysis by simulation, hardware development and in-lab experiments of the fLP are presented. The electron temperature and density measured by the fLP at a well-floated system is verified by a well-grounded conventional Langmuir probe in the Space Plasma Operation Chamber owned by NCKU. It is demonstrated that the fLP neither influenced nor was influenced by the satellite potential variations. This instrument is capable of not only ionospheric plasma exploration, but also for the high-temperature and high-density plasma investigations around the spacecraft during its re-entry processes. Bing-Chih Chen 陳炳志 2019 學位論文 ; thesis 57 zh-TW
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description 碩士 === 國立成功大學 === 太空與電漿科學研究所 === 107 === In recent years, the small-scale variation of the ionosphere and the re-entry process greatly draw scientists attentions. The plasma density of ionosphere in the region below 300 km varies dramatically, and electrons interact with ions frequently, the conventional Langmuir probe is not applicability of the research in this region due to its low temporal resolution. In this work, an innovated approach of the electron temperature (Te) and density (ne) measurements by an electrically floated circuit based on the principles of the double and triple Langmuir probes, named as the floating Langmuir probe (fLP), is presented. Hence, the goal of this work is to advance the a new measurement instrument based on the conventional Langmuir probe and make it suitable for cubesats to measure the plasma in the ionosphere and the atmospheric re-entry process. Comparing with the conventional Langmuir probe, fLP is designed as an electrically floating system, therefore it can measure the plasma on-board a cubesat stably with a high temporal resolution to measure the highly variating plasma during the atmospheric re-entry process. In this work, the design concept, performance analysis by simulation, hardware development and in-lab experiments of the fLP are presented. The electron temperature and density measured by the fLP at a well-floated system is verified by a well-grounded conventional Langmuir probe in the Space Plasma Operation Chamber owned by NCKU. It is demonstrated that the fLP neither influenced nor was influenced by the satellite potential variations. This instrument is capable of not only ionospheric plasma exploration, but also for the high-temperature and high-density plasma investigations around the spacecraft during its re-entry processes.
author2 Bing-Chih Chen
author_facet Bing-Chih Chen
Yi-ChenWang
王翊臻
author Yi-ChenWang
王翊臻
spellingShingle Yi-ChenWang
王翊臻
Development of the floating Langmuir probe for cubesats
author_sort Yi-ChenWang
title Development of the floating Langmuir probe for cubesats
title_short Development of the floating Langmuir probe for cubesats
title_full Development of the floating Langmuir probe for cubesats
title_fullStr Development of the floating Langmuir probe for cubesats
title_full_unstemmed Development of the floating Langmuir probe for cubesats
title_sort development of the floating langmuir probe for cubesats
publishDate 2019
url http://ndltd.ncl.edu.tw/handle/u23ybw
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