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  1. NTU Theses and Dissertations Repository
  2. 電機資訊學院
  3. 光電工程學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/15930
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dc.contributor.advisor蔡睿哲(Jui-Che Tsai)
dc.contributor.authorLi-Min Sinen
dc.contributor.author辛立民zh_TW
dc.date.accessioned2021-06-07T17:55:40Z-
dc.date.copyright2012-08-27
dc.date.issued2012
dc.date.submitted2012-08-15
dc.identifier.citation[1]黃興閎,感測器於實車碰撞測試之應用,財團法人車輛研究測試中心.
[2]R.Feynman, ”There's Plenty of Room at the Bottom,” Journal of Micro Electro Mechanical Systems, Vol. 1, pp. 60-66, 1992.
[3]http://www.hightech.url.tw/index.php?option=com_content&view=article&id=120:mems&catid=14:2010-06-13-14-25-25&Itemid=13
[4]曾昭富,微幫浦整合於細胞性質量測晶片之設計製作及測試,國立成功大學微機電系統工程研究所碩士論文,2004.
[5]王輔仁、許守平、林國堅、吳志雄、陳志明,熱電式冷卻系統之性能改善及應用研究,勤益學報,第二十一卷第一期,87-96,2003.
[6]洪家麒,可與微機電元件整合之熱電池研究,國立台灣大學光電工程研究所碩士論文,2009.
[7]潘泰斗,可與微機電元件作單晶整合之多功能熱電偶微感測器,國立台灣大學光電工程研究所碩士論文,2011.
[8]Wang, Z., Leonov, V., Fiorini, P., Van Hoof C., 2007. Micromachined Thermopioles for Energy Scavenging on Human Body. Proc. of Transducers 2007, pp. 911-914.
[9]Randjelovic, D., Kaltsas, G., Lazic, Ž., Popovic, M., 2002. Multipurpose Thermal Sensor Based on Seebeck Effect. Proc. of Miel 2002, Vol 1, pp. 261 -264.
[10]Tsang, See-Ho, Ma, A.H., Karim, K.S., Parameswaran A., Leung, A.M., 2008. Monolithically Fabricated Polymermems 3-axis Thermal Accelerometers Designed for Automated Wirebonder Assembly. Proc. of MEMS 2008, pp. 880-883.
[11]Ni, J., Benecke, W., Lang, W., 2008. Thermodynamic Analysis of a Novel Thermoelectric Microdroplet Sensor. Proc. of MEMS 2008, pp. 928-931.
[12]Giani, A., Al Bayaz A., Boulouz A., Pascal-Delannoy F., Foucaran A., Boyer A., 2002. Thermoelectric microsensor for pressure and gas concentration measurement. Elsevier, Materials Science and Engineering B95, pp. 268-274.
[13]T.M. Berlicki, E. Murawski *, M. Muszynski, S.J. Osadnik, E.L. Prociow, “Therrnoelement humidity sensor,” Sensors and Actuators A 64 (1998) 213-217.
[14]戴明鳳、董俊良,熱電偶式與熱敏式電子溫度器,電子式溫度感測元件實驗,2009.
[15]Safa Kasap, “Thermoelectric Effects in Metals: Thermocouples”
[16]R. Muanghlua, S. Cheirsirikul, and S. Supadech, “The Study Of Silicon Thermopile,” Proc of TENCON 2000., Vol 3, pp. 226-229 vol. 3, 2000.
[17]http://www.memscap.com/
[18]MEMSCAP MetalMUMPs Design Handbook available at http://www.memscap.com/
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/15930-
dc.description.abstract感測器在我們的生活中無所不在,像是溫度計、溼度計、氣體感測器等。近年來隨著微機電製程技術快速發展下,感測器朝向微小化與系統化發展,因此可與微機電件元件整合的微感測器,因其輕、薄、短、小的優點,受到人們的重視與喜愛。
本研究的熱電偶元件為實驗室學長洪家麒根據席貝克效應所製作,設計成四種型態的熱電偶元件:重疊型熱電偶、非重疊型熱電偶、非重疊加長型熱電偶與非重疊對稱型熱電偶。本研究針對熱電偶元件進行基本工作效能實驗、定溫調壓實驗、定壓調溫實驗、定溫調二氧化碳分壓實驗、定二氧化碳分壓調溫實驗、定相對溼度調溫實驗、定溫調相對溼度實驗與定蒸氣壓調溫實驗,探討其作為感測器的效果。
研究的實驗結果,三種型態熱電偶:重疊型熱電偶、非重疊對稱型熱電偶與非重疊加長型熱電偶,在基本工作效能實驗,輸出電壓與漆包線加熱電流都呈正相關;在定溫調壓下,輸出電壓與環境真空度都呈正相關;在定壓調溫下,輸出電壓與環境溫度都呈正相關;在定溫調二氧化碳分壓下,輸出電壓與二氧化碳分壓都呈負相關;在定二氧化碳分壓調溫下,輸出電壓與環境溫度都呈正相關;在定相對溼度調溫下,輸出電壓與環境溫度都呈正相關。而在定溫調相對溼度下,非重疊對稱型熱電偶與非重疊加長型熱電偶輸出電壓與腔體環境相對溼度呈負相關;重疊型熱電偶以蒸氣壓74 mmHg附近為轉折點,在蒸氣壓為74 mmHg之前,輸出電壓與腔體環境相對溼度呈正相關;在蒸氣壓為74 mmHg之後,輸出電壓與腔體環境相對溼度呈負相關。在定蒸氣壓調溫實驗,輸出電壓與環境溫度都呈正相關。
根據實驗結果,熱電偶元件可以多功能感測環境溫度、相對溼度、氣壓與不同二氧化碳分壓的能力。
zh_TW
dc.description.abstractSensor is everywhere in our lives such as the thermometer, the hygrometer and the gas sensor. Recently, with the rapid development of micro electro-mechanical technique, the sensor becomes smaller and systematic. Because micro-sensor compatible with micro electro-mechanical devices has advantages of light, thin, short, and small. Therefore People pay attention to it gradually.
Jia-qi Hong a former laboratory member had designed four types of thermocouple devices based on Seebeck effect: overlap thermocouple, non-overlap thermocouple, longer non-overlap thermocouple and symmetric non-overlap thermocouple. This study proceeded basic efficiency experiment, fixed temperature to adjust pressure experiment, fixed pressure to adjust temperature experiment, fixed temperature to adjust carbon dioxide partial pressure experiment, fixed carbon dioxide partial pressure to adjust temperature experiment, fixed relative humidity to adjust temperature experiment, and fixed temperature to adjust relative humidity experiment. Thses experiments were used to test the effect of thermocouple devices as the sensor.
According to the result of experiments, the output voltage of overlap thermocouple, symmetric non-overlap thermocouple and longer non-overlap thermocouple are positive correlation with heating current in basic efficiency experiment. The output voltage of overlap thermocouple, symmetric non-overlap thermocouple and longer non-overlap thermocouple are positive correlation with environmental vacuum degree under fixed temperature to adjust pressure experiment. The output voltage of overlap thermocouple, symmetric non-overlap thermocouple and longer non-overlap thermocouple are positive correlation with environmental temperature in fixed pressure to adjust temperature experiment. The output voltage of overlap thermocouple, symmetric non-overlap thermocouple and longer non-overlap thermocouple are negative correlation with carbon dioxide partial pressure in fixed temperature to adjust carbon dioxide partial pressure experiment. The output voltage of overlap thermocouple, symmetric non-overlap thermocouple and longer non-overlap thermocouple are positive correlation with environmental temperature in fixed carbon dioxide partial pressure to adjust temperature experiment. The output voltage of overlap thermocouple, symmetric non-overlap thermocouple and longer non-overlap thermocouple are positive correlation with environmental temperature in fixed relative humidity to adjust temperature experiment. The output voltage of symmetric non-overlap thermocouple and longer non-overlap thermocouple are negative correlation with environmental relative humidity in fixed temperature to adjust relative humidity experiment. Under fixed temperature to adjust relative humidity experiment, the vapor pressure of 74mmHg is turning point in overlap thermocouple. Before the vapor pressure is 74mmHg, the output voltage of overlap thermocouple is positive correlation with environment relative humidity. Aftere the vapor pressure is 74mmHg, the output voltage of overlap thermocouple is negative correlation with environment relative humidity. The output voltage of overlap thermocouple, symmetric non-overlap thermocouple and longer non-overlap thermocouple are positive correlation with environmental temperature in fixed vapor pressure to adjust temperature experiment.
According to the experimental results, the thermocouple devices can be multi-function to sense the environmental temperature, relative humidity, pressure and carbon dioxide partial pressure.
en
dc.description.provenanceMade available in DSpace on 2021-06-07T17:55:40Z (GMT). No. of bitstreams: 1
ntu-101-R99941025-1.pdf: 2548915 bytes, checksum: 27d7f0d4287475524d70d3b647243c20 (MD5)
Previous issue date: 2012
en
dc.description.tableofcontents誌謝.... i
中文摘要. ii
ABSTRACT....... iii
目錄.... v
LIST OF FIGURES vii
LIST OF TABLES. x
第 1 章 緒論.... 1
1.1 前言.... 1
1.2 研究動機與目的.... 2
第 2 章 文獻回顧. 3
2.1 熱電偶工作原理.... 3
2.2 熱電偶感測器相關文獻....... 7
第 3 章 實驗方法與結果討論. 12
3.1 實驗元件. 12
3.1.1 重疊型熱電偶..... 13
3.1.2 非重疊型熱電偶.... 15
3.1.3 非重疊加長型熱電偶. 19
3.1.4 非重疊對稱型熱電偶. 19
3.2 實驗架構與步驟.... 23
3.2.1 基本工作效能實驗.. 27
3.2.2 定溫調壓與定壓調溫實驗...... 28
3.2.3 定溫調二氧化碳分壓與定二氧化碳分壓調溫實驗..... 28
3.2.4 定溫調相對溼度與定相對溼度調溫實驗.... 29
3.2.5 定蒸氣壓調溫實驗.. 29
3.3 實驗結果與討論.... 31
3.3.1 基本工作效能實驗結果與討論.. 31
3.3.2 定溫調壓實驗結果與討論...... 32
3.3.3 定壓調溫實驗結果與討論...... 37
3.3.4 定溫調二氧化碳分壓實驗結果與討論..... 42
3.3.5 定二氧化碳分壓調溫實驗結果與討論..... 47
3.3.6 定溫調相對溼度實驗結果與討論. 52
3.3.7 定相對溼度調溫實驗結果與討論. 61
3.3.8 定蒸氣壓調溫實驗結果與討論.. 66
第 4 章 結論與未來工作.... 73
4.1 結論.... 73
4.2 未來工作. 76
REFERENCE.......77
dc.language.isozh-TW
dc.title以微機電製程製作之溫度、溼度、氣壓與氣體分壓感測器zh_TW
dc.titleMicro Sensor Capable of Measuring the Temperature, Humidity, Pressure, and Partial Pressureen
dc.typeThesis
dc.date.schoolyear100-2
dc.description.degree碩士
dc.contributor.oralexamcommittee孫家偉(Chia-Wei Sun),呂志偉(Zhi-Wei Lu)
dc.subject.keyword微感測器,熱電偶,席貝克效應,zh_TW
dc.subject.keywordMicro-sensor,thermocouple,Seebeck effect,en
dc.relation.page78
dc.rights.note未授權
dc.date.accepted2012-08-15
dc.contributor.author-college電機資訊學院zh_TW
dc.contributor.author-dept光電工程學研究所zh_TW
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