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  1. NTU Theses and Dissertations Repository
  2. 工學院
  3. 機械工程學系
Please use this identifier to cite or link to this item: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/71009
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???org.dspace.app.webui.jsptag.ItemTag.dcfield???ValueLanguage
dc.contributor.advisor楊燿州
dc.contributor.authorYun-Ting Chenen
dc.contributor.author陳允鼎zh_TW
dc.date.accessioned2021-06-17T04:48:18Z-
dc.date.available2020-08-01
dc.date.copyright2018-10-03
dc.date.issued2018
dc.date.submitted2018-07-31
dc.identifier.citation[1] T. Young, M. Palta, J. Dempsey, J. Skatrud, S. Weber, and S. Badr, “The occurrence of sleep disordered breathing among middle-aged adults,” The New England Journal of Medicine, vol. 328(17), pp. 1230-1235, 1993.
[2] 陳濘宏,「阻塞型睡眠呼吸中止症」,台灣醫學,9(3),361-366頁,2005年。
[3] V. K. Somers, D. P. White, R. Amin, W. T. Abraham, F. Costa, A. Culebras, S. Daniels, J. S. Floras, C. E. Hunt, L. J. Olson, T. G. Pickering, R. Russell, M. Woo, and T. Young, “Sleep apnea and cardiovascular disease,” Circulation, vol. 118(10), pp. 1080-1111, 2008.
[4] R. Grunstein, I. Wilcox, T. S. Yang, Y. Go2uld, and J. Hedner, “Snoring and sleep apnoea in men: association with central obesity and hypertension.,” International journal of obesity and related metabolic disorders: journal of the International Association for the Study of Obesity, vol. 17(9), pp. 533-540, 1993.
[5] K. Minoguchi, T. Tazaki, T. Yokoe, H. Minoguchi, Y. Watanabe, M. Yamamoto, and M. Adachi, “Elevated production of tumor necrosis factor-α by monocytes in patients with obstructive sleep apnea syndrome,” Chest, vol. 126(5), pp. 1473-1479, 2004.
[6] A. Svatikova, R. Wolk, A. S. Gami, M. Pohanka, and V. K. Somers, “Interactions between obstructive sleep apnea and the metabolic syndrome,” Current diabetes reports, vol. 5(1), pp. 53-58, 2005.
[7] L. J. Epstein, D. Kristo, P. J. Strollo, N. Friedman, A. Malhotra, S. P. Patil, K. Ramar, R. Rogers, R. J. Schwab, E. M. Weaver, and M. D. Weinstein, “Clinical guideline for the evaluation, management and long-term care of obstructive sleep apnea in adults,” Journal of clinical sleep medicine: JCSM: official publication of the American Academy of Sleep Medicine, vol. 5(3), p. 263, 2009.
[8] N. Wolkove, M. Baltzan, H. Kamel, R. Dabrusin, and M. Palayew, “Long-term compliance with continuous positive airway pressure in patients with obstructive sleep apnea,” Canadian respiratory journal, vol. 15(7), pp. 365-369, 2008.
[9] P. Steiropoulos, I. Kotsianidis, E. Nena, V. Tsara, E. Gounari, O. Hatzizisi, G. Kyriazis, P. Christaki, M. Froudarakis, and D. Bouros, “Long-term effect of continuous positive airway pressure therapy on inflammation markers of patients with obstructive sleep apnea syndrome,” Sleep, vol. 32(4), pp. 537-543, 2009.
[10] P. Cistulli, H. Gotsopoulos, M. Marklund, and A. Lowe, “Treatment of snoring and obstructive sleep apnea with mandibular repositioning appliances,” Sleep Medicine Reviews, vol. 8(6), pp. 443-457, 2004.
[11] L. M. Pott and W. B. Murray, “Review of video laryngoscopy and rigid fiberoptic laryngoscopy,” Current opinion in Anesthesiology, vol. 21(6), pp. 750-758, 2008.
[12] C. F. Ryan, L. L. Love, D. Peat, J. A. Fleetham, and A. A. Lowe, “Mandibular advancement oral appliance therapy for obstructive sleep apnoea: effect on awake calibre of the velopharynx,” Thorax, vol. 54(11), pp. 972-977, 1999.
[13] A. R. Durão, P. Pittayapat, M. I. B. Rockenbach, R. Olszewski, S. Ng, A. P. Ferreira, and R. Jacobs, “Validity of 2D lateral cephalometry in orthodontics: a systematic review,” Progress in orthodontics, vol. 14(1), p. 31, 2013.
[14] A. Mehta, J. Qian, P. Petocz, M. A. Darendeliler, and P. A. Cistulli, “A randomized, controlled study of a mandibular advancement splint for obstructive sleep apnea,” American journal of respiratory and critical care medicine, vol. 163(6), pp. 1457-1461, 2001.
[15] J. M. Battagel, P. R. L'Estrange, P. Nolan, and B. Harkness, “The role of lateral cephalometric radiography and fluoroscopy in assessing mandibular advancement in sleep-related disorders,” The European Journal of Orthodontics, vol. 20(2), pp. 121-132, 1998.
[16] S. H. Kyung, Y. C. Park, and E. K. Pae, “Obstructive sleep apnea patients with the oral appliance experience pharyngeal size and shape changes in three dimensions,” The Angle orthodontist, vol. 75(1), pp. 15-22, 2005.
[17] B. M. Sanner, M. Heise, B. Knoben, M. Machnick, U. Laufer, R. Kikuth, W. Zidek, B. Hellmich, “MRI of the pharynx and treatment efficacy of a mandibular advancement device in obstructive sleep apnoea syndrome,” European Respiratory Journal, vol. 20(1), pp. 145-150, 2002.
[18] A. Elliott, S. Shea, D. Dijk, J. Wyatt, E. Riel, D. Neri, C. Czeisler, J. West, and G. Prisk, “Microgravity reduces sleep-disordered breathing in humans,” American journal of respiratory and critical care medicine, vol. 164(3), pp. 478-485, 2001.
[19] E. K. Pae, A. A. Lowe, K. Sasaki, C. Price, M. Tsuchiya, and J. A. Fleetham, “A cephalometric and electromyographic study of upper airway structures in the upright and supine positions,” American Journal of Orthodontics and Dentofacial Orthopedics, vol. 106(1), pp. 52-59, 1994.
[20] G. Robertson, G. Caldwell, J. Hamill, G. Kamen, and S. Whittlesey, Research methods in biomechanics, Champaign, IL: Human Kinetics, 2nd ed., 2013.
[21] S. Tsuiki, T. Ono, and T. Kuroda, “Mandibular advancement modulates respiratory-related genioglossus electromyographic activity,” Sleep and Breathing, vol. 4(2), pp. 53-57, 2000.
[22] S. C. S. Jou and T. Schultz, “Automatic speech recognition based on electromyographic biosignals,” in proceedings of International Joint Conference on Biomedical Engineering Systems and Technologies Journal, Berlin, Jan. 2008, pp. 305-320.
[23] C. S. Duque, A. F. Londoño, A. M. Penagos, D. P. Urquijo, and J. P. Dueñas, “Hypoglossal nerve monitoring, a potential application of intraoperative nerve monitoring in head and neck surgery,” World journal of surgical oncology, vol. 11(1), pp. 225, 2013.
[24] H. M. Clark, P. A. Henson, W. D. Barber, J. A. Stierwalt, and M. Sherrill, “Relationships among subjective and objective measures of tongue strength and oral phase swallowing impairments,” American journal of speech-language pathology, vol. 12(1), pp. 40-50, 2003.
[25] M. Yoshikawa, M. Yoshida, K. Tsuga, Y. Akagawa, and M. E. Groher, “Comparison of three types of tongue pressure measurement devices,” Dysphagia, vol. 26(3), pp. 232-237, 2011.
[26] K. Hori, H. Hayashi, S. Yokoyama, T. Ono, S. Ishihara, J. Magara, H. Taniguchi, T. Funami, Y. Maeda, M. Inoue, “Comparison of mechanical analyses and tongue pressure analyses during squeezing and swallowing of gels,” Food Hydrocolloids, vol. 44, pp. 145-155, 2015.
[27] E. Sardini, M. Serpelloni, and S. Pandini, “Analysis of tongue pressure sensor for biomedical applications,” in proceedings of 2014 IEEE International Symposium on Medical Measurements and Applications (MeMeA), Lisbon, Jun. 2014, pp. 1-5.
[28] Y. Zhang, R. Howver, B. Gogoi, and N. Yazdi, “A high-sensitive ultra-thin MEMS capacitive pressure sensor,” in proceedings of 16th International Conference on Solid-State Sensors, Actuators and Microsystems, Beijing, Jun. 2011, pp. 112-115.
[29] J. Lee, H. Kwon, J. Seo, S. Shin, J. H. Koo, C. Pang, S. Son, J. H. Kim, Y. H. Jang, D. E. Kim, and T. Lee, “Conductive fiber‐based ultrasensitive textile pressure sensor for wearable electronics,” Advanced Materials, vol. 27(15), pp. 2433-2439, 2015.
[30] X. Wang, T. Li, J. Adams, and J. Yang, “Transparent, stretchable, carbon-nanotube-inlaid conductors enabled by standard replication technology for capacitive pressure, strain and touch sensors,” Journal of Materials Chemistry A, vol. 1(11), pp. 3580-3586, 2013.
[31] S. Pyo, J. Choi, and J. Kim, “Flexible, transparent, sensitive, and crosstalk‐free capacitive tactile sensor array based on graphene electrodes and air dielectric,” Advanced Electronic Materials, vol. 4(1), p. 1700427, 2018.
[32] X. Wan, T. Xu, S. Dong, S. Li, L. Yu, W. Guo, H. Jin, J. Luo, Z. Wu, and J. M. King, “Development of a flexible and stretchable tactile sensor array with two different structures for robotic hand application,” RSC Advances, vol. 7(76), pp. 48461-48465, 2017.
[33] S. Jung, J. H. Kim, J. Kim, S. Choi, J. Lee, I. Park, T. Hyeon, and D. H. Kim, “Reverse‐micelle‐induced porous pressure‐sensitive rubber for wearable human–machine interfaces,” Advanced Materials, vol. 26(28), pp. 4825-4830, 2014.
[34] J. T. Muth, D. M. Vogt, R. L. Truby, Y. Mengüç, D. B. Kolesky, R. Wood, and J. A. Lewis, “Embedded 3D printing of strain sensors within highly stretchable elastomers,” Advanced Materials, vol. 26(36), pp. 6307-6312, 2014.
[35] Y. Ding, J. Yang, C. R. Tolle, and Z. Zhu, “Flexible and compressible PEDOT: PSS@ melamine conductive sponge prepared via one-step dip coating as piezoresistive pressure sensor for human motion detection,” ACS applied materials interfaces, vol. 10(18), pp. 16077-16086, 2018.
[36] Z. Zhan, R. Lin, V.-T. Tran, J. An, Y. Wei, H. Du, T. Tran, and W. Lu, “Paper/Carbon nanotube-based wearable pressure sensor for physiological signal acquisition and soft robotic skin,” ACS applied materials interfaces, vol. 9(43), pp. 37921-37928, 2017.
[37] Y. Zang, F. Zhang, C.-A. Di, and D. Zhu, “Advances of flexible pressure sensors toward artificial intelligence and health care applications,” Materials Horizons, vol. 2(2), pp. 140-156, 2015.
[38] B. C.-K. Tee, A. Chortos, R. R. Dunn, G. Schwartz, E. Eason, and Z. Bao, “Tunable flexible pressure sensors using microstructured elastomer geometries for intuitive electronics,” Advanced Functional Materials, vol. 24(34), pp. 5427-5434, 2014.
[39] C.-L. Choong, M.-B. Shim, B.-S. Lee, S. Jeon, D.-S. Ko, T.-H. Kang, J. Bae, S. H. Lee, K.-E. Byun, J. Im, Y. J. Jeong, C. E. Park, J.-J. Park, and U.-I. Chung, “Highly stretchable resistive pressure sensors using a conductive elastomeric composite on a micropyramid array,” Advanced Materials, vol. 26(21), pp. 3451-3458, 2014.
[40] J. Park, Y. Lee, J. Hong, M. Ha, Y.-D. Jung, H. Lim, S. Y. Kim, and H. Ko, “Giant tunneling piezoresistance of composite elastomers with interlocked microdome arrays for ultrasensitive and multimodal electronic skins,” ACS Nano, vol. 8(5), pp. 4689-4697, 2014.
[41] J. Shi, L. Wang, Z. Dai, L. Zhao, M. Du, H. Li, and Y. Fang, “Multiscale hierarchical design of a flexible piezoresistive pressure sensor with high sensitivity and wide linearity range,” Small, p. 1800819, 2018.
[42] T. Wang, Y. Zhang, Q. Liu, W. Cheng, X. Wang, L. Pan, B. Xu, and H. Xu, “A self‐healable, highly stretchable, and solution processable conductive polymer composite for ultrasensitive strain and pressure sensing,” Advanced Functional Materials, 2018.
[43] Y. Zhang, Y. Hu, P. Zhu, F. Han, Y. Zhu, R. Sun, and C. P. Wong, “Flexible and highly sensitive pressure sensor based on microdome-patterned pdms forming with assistance of colloid self-assembly and replica technique for wearable electronics,” ACS applied materials interfaces, vol. 9(41), pp. 35968-35976, 2017.
[44] K. Sutherland, S. Deane, A. Chan, R. Schwab, T. Andrew, M. Darendeliler, and P. Cistulli, “Comparative effects of two oral appliances on upper airway structure in obstructive sleep apnea,” Sleep, vol. 34, pp. 469-477, 2011.
[45] N. Yildirim, M. F. Fitzpatrick, K. F. Whyte, R. Jalleh, A. J. Wightman, and N. J. Douglas, “The Effect of posture on upper airway dimensions in normal subjects and in patients with the sleep apnea/hypopnea syndrome,” The American Review of Respiratory Disease, vol. 144, pp. 845-847, 1991.
[46] T. Ono, K. Hori, and T. Nokubi, “Pattern of tongue pressure on hard palate during swallowing,” Dysphagia, vol. 19(4), pp. 259-264, 2004.
[47] Y. Utanohara, R. Hayashi, M. Yoshikawa, M. Yoshida, K. Tsuga, and Y. Akagawa, “Standard values of maximum tongue pressure taken using newly developed disposable tongue pressure measurement device,” Dysphagia, vol. 23(3), p. 286, 2008.
[48] H. Tian, Y. Shu, X.-F. Wang, M. A. Mohammad, Z. Bie, Q. Y. Xie, C. Li, W.-T. Mi, Y. Yang, and T.-L. Ren, “A graphene-based resistive pressure sensor with record-high sensitivity in a wide pressure range,” Scientific reports, vol. 5, p. 8603, 2015.
[49] H. Yousef, M. Boukallel, and K. Althoefer, “Tactile sensing for dexterous in-hand manipulation in robotics—A review,” Sensors and Actuators A: physical, vol. 167(2), pp. 171-187, 2011.
[50] H. Deng, L. Lin, M. Ji, S. Zhang, M. Yang, and Q. Fu, “Progress on the morphological control of conductive network in conductive polymer composites and the use as electroactive multifunctional materials,” Progress in Polymer Science, vol. 39(4), pp. 627-655, 2014.
[51] S. Yao, A. Myers, A. Malhotra, F. Lin, A. Bozhurt, J. F. Muth, and Y. Zhu, “A wearable hydration sensor with conformal nanowire electrodes,” Advanced healthcare materials, vol. 6(6), 2017.
[52] J. Chen, X. Cui, K. Sui, Y. Zhu, and W. Jiang, “Balance the electrical properties and mechanical properties of carbon black filled immiscible polymer blends with a double percolation structure,” Composites Science and Technology, vol. 140, pp. 99-105. 2017.
[53] Z. Zhan, L. Liu, W. Wang, Z. Cao, A. Martinelli, E. Wang, Y. Cao, J. Chen, A. Yurgens, and J. Sun, “Ultrahigh surface‐enhanced Raman scattering of graphene from Au/Graphene/Au sandwiched structures with subnanometer gap,” Advanced Optical Materials, vol. 4(12), pp. 2021-2027, 2016.
[54] Y. Ai, Z. Lou, S. Chen, D. Chen, Z. M. Wang, K. Jiang, and G. Shen, “All rGO-on-PVDF-nanofibers based self-powered electronic skins,” Nano Energy, vol. 35, pp. 121-127, 2017.
[55] J. Park, J. Kim, J. Hong, H. Lee, Y. Lee, S. Cho, S.-W. Kim, J. J. Kim, S. Y. Kim, and H. Ko, “Tailoring force sensitivity and selectivity by microstructure engineering of multidirectional electronic skins,” NPG Asia Materials, vol. 10, pp. 167-176, 2018.
[56] K. Y. Shin, S. G. Jin, B. J. Sung, and S. S. Lee, “Implication of size-controlled graphite nanosheets as building blocks for thermal conductive three-dimensional framework architecture of nanocarbons,” Nanoscale and Microscale Thermophysical Engineering, vol. 22(1), pp. 39-51, 2018.
[57] H. Liu, M. Dong, W. Huang, J. Gao, K. Dai, J. Guo, G. Zheng, C. Liu, C. Shen, and Z. Guo, “Lightweight conductive graphene/thermoplastic polyurethane foams with ultrahigh compressibility for piezoresistive sensing,” Journal of Materials Chemistry C, vol. 5(1), pp. 73-83, 2017.
[58] W. Bauhofer and J. Z. Kovacs, “A review and analysis of electrical percolation in carbon nanotube polymer composites,” Composites Science and Technology, vol. 69(10), pp. 1486-1498, 2009.
[59] C. Armbruster, M. Schneider, S. Schumann, K. Gamerdinger, M. Cuevas, S. Rausch, G. Baaken, and J. Guttmann, “Characteristics of highly flexible PDMS membranes for long‐term mechanostimulation of biological tissue,” Journal of Biomedical Materials Research Part B: Applied Biomaterials: An Official Journal of The Society for Biomaterials, The Japanese Society for Biomaterials, and The Australian Society for Biomaterials and the Korean Society for Biomaterials, vol. 91(2), pp. 700-705, 2009.
[60] S. Wu, J. Zhang, R. B. Ladani, A. R. Ravindran, A. P. Mouritz, A. J. Kinloch, and C. H. Wang, “Novel electrically conductive porous PDMS/carbon nanofiber composites for deformable strain sensors and conductors,” ACS applied materials interfaces, vol. 9(16), pp. 14207-14215, 2017.
[61] G.R. Ruschau, S. Yoshikawa, and R. E. Newnham, “Resistivities of conductive composites,” Journal of applied physics, vol. 72(3), pp. 953-959, 1992.
[62] N. Hu, Y. Karube, C. Yan, Z. Masuda, and H. Fukunaga, “Tunneling effect in a polymer/carbon nanotube nanocomposite strain sensor,” Acta Materialia, vol. 56(13), pp. 2929-2936, 2008.
[63] R. Taherian, “Development of an equation to model electrical conductivity of polymer-based carbon nanocomposites,” ECS Journal of Solid State Science and Technology, vol. 3(6), M26-M38, 2014.
[64] S. Franco, Design with operational amplifiers and analog integrated circuits (Vol. 1988). New York: McGraw-Hill, 2002.
[65] C.-W. Ma, C.-M. Chang, T.-H. Lin, and Y.-J. J. Yang, “Highly sensitive tactile sensing array realized using a novel fabrication process with membrane filters,” Journal of Microelectromechanical Systems, vol. 24(6), pp. 2060-2070, 2015.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/71009-
dc.description.abstract阻塞性睡眠呼吸中止症是由上呼吸道的阻塞所造成,在近年來盛行率有不斷上升的趨勢。下顎推進裝置等具有止鼾功能的牙套,是對於阻塞性睡眠呼吸中止症極具潛力的治療方式之一。本研究提出一鑲嵌於止鼾牙套內部之壓力感測陣。此裝置目的為透過舌頭壓力的量測得知舌頭活動之訊息以幫助阻塞性睡眠呼吸中止症的研究或是治療。本研究提出之可撓性壓力感測陣列由具有指叉型電極陣列之軟性電路版以及導電高分子層組成。導電高分子的表面具有微圓頂結構,能夠有效地提升壓力感測的靈敏度以及大幅縮短反應時間。量測結果顯示干擾現象在所提出之陣列中並不顯著。在浸入水中達100小時候感測陣列的靈敏度幾乎沒有發生變化。實驗結果顯示所提出之裝置能夠有效地感測並追蹤舌頭壓力的大小以及分布。zh_TW
dc.description.abstractObstructive sleep apnea (OSA), which is caused by obstructions of the upper airway, is a syndrome with rising prevalence. Mandibular advancement devices (MAD) are oral appliances for potential treatment of OSA. This work proposes a highly-sensitive pressure sensing array embedded in a MAD. The device aims to measure tongue pressure distribution in order gain information about tongue activity when studying or treating OSA. The flexible sensing array consists of an interdigital electrode pair array assembled with conductive polymer films. The surfaces of the conductive polymer films were patterned with microdomed structures, which effectively increases the sensitivity and reduces the pressure sensing response time. The measured results also show that the crosstalk effect between the sensing elements of the array was negligible. In addition, the sensitivity of the sensing array barely changed after the device was submerged in water for up to 100 h. Measurement results of tongue pressure performed in the Sleeping Center of the National Taiwan University Hospital were also presented.en
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dc.description.tableofcontents致謝 i
摘要 iii
Abstract v
目錄 vii
圖目錄 xi
表目錄 xv
符號說明 xvii
第一章 緒論 1
1.1 前言 1
1.2 文獻回顧 2
1.2.1 止鼾牙套影響的研究方法 2
1.2.2 舌頭量測方法 7
1.2.3 壓力感測器 10
1.2.4 具有微結構之壓力感測器 19
1.3 研究動機與目的 27
1.4 論文架構 28
第二章 理論基礎 29
2.1 針對睡眠呼吸中止症的舌頭壓力量測 29
2.2 壓力量測範圍 30
2.3 導電高分子 31
2.3.1 導電粒子 32
2.3.2 高分子基材 32
2.3.3 導電高分子的導電機制 33
2.4 放大器讀取電路原理 37
第三章 元件設計與元件製程 39
3.1 元件設計 39
3.2 工作原理 40
3.3 指叉電極設計 40
3.4 元件製作流程 42
3.5 模具製作 44
3.5.1 光罩設計 46
3.5.2 微影製程 46
3.6 導電高分子之製備 51
3.7 元件組裝與封裝 52
3.7.1 電子顯微鏡(SEM)圖 53
3.7.2 實體元件圖 54
3.8 掃描電路板 56
第四章 量測結果與討論 58
4.1 壓力-電阻特徵曲線量測 58
4.1.1 量測平台架設 58
4.1.2 量測結果與討論 59
4.2 遲滯效應量測 61
4.3 元件動態響應量測 62
4.3.1 量測平台架設 63
4.3.2 量測結果與討論 63
4.4 元件重複性(repeatability)與防水性(water-resistant capability)量測 64
4.5 元件干擾(crosstalk)現象量測 66
4.6 感測陣列壓力分佈測試 67
4.7 睡眠間舌頭壓力量測 69
第五章 結論與未來展望 71
5.1 結論 71
5.2 未來展望 72
參考文獻 75
附錄A 83
dc.language.isozh-TW
dc.subject下顎推進裝置zh_TW
dc.subject阻塞性睡眠呼吸中止症zh_TW
dc.subject壓力感測陣列zh_TW
dc.subject導電高分子zh_TW
dc.subjectobstructive sleep apneaen
dc.subjectconductive polymeren
dc.subjectmandibular advancement deviceen
dc.subjectpressure sensing arrayen
dc.title鑲嵌於止鼾牙套之舌壓感測陣列zh_TW
dc.titleA Tongue Pressure Sensing Array Embedded on a Mandibular Advancement Deviceen
dc.typeThesis
dc.date.schoolyear106-2
dc.description.degree碩士
dc.contributor.oralexamcommittee陳國聲,蘇裕軒
dc.subject.keyword阻塞性睡眠呼吸中止症,下顎推進裝置,壓力感測陣列,導電高分子,zh_TW
dc.subject.keywordobstructive sleep apnea,mandibular advancement device,pressure sensing array,conductive polymer,en
dc.relation.page84
dc.identifier.doi10.6342/NTU201802309
dc.rights.note有償授權
dc.date.accepted2018-08-01
dc.contributor.author-college工學院zh_TW
dc.contributor.author-dept機械工程學研究所zh_TW
Appears in Collections:機械工程學系

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