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| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 吳逸民 | zh_TW |
| dc.contributor.advisor | Yih-Min Wu | en |
| dc.contributor.author | 黃旻晟 | zh_TW |
| dc.contributor.author | Min-Cheng Huang | en |
| dc.date.accessioned | 2025-07-24T16:08:29Z | - |
| dc.date.available | 2025-07-25 | - |
| dc.date.copyright | 2025-07-24 | - |
| dc.date.issued | 2025 | - |
| dc.date.submitted | 2025-07-22 | - |
| dc.identifier.citation | [1] Chou, Y. T., Wen, S., Liao, C. F., Chen, Y. N., & Kuo, C. H. (2024). Exploring changes in building strength using seismic wave deconvolution. Terrestrial, Atmospheric and Oceanic Sciences, 35(7).
[2] De Biasio, M., Grange, S., Dufour, F., Allain, F., & Petre-Lazara, I. (2014). A simple and efficient intensity measure to account for nonlinear structural behavior. Earthquake Spectra, 30(4), 1403–1426. [3] Francois-Holden, C. (2022). Seismic structural monitoring in Wellington using advanced seismological techniques. NZSEE 2022 Annual Conference, 30(4) . [4] Hsu, T. Y., Yin, R. C., & Wu, Y. M. (2018). Evaluating post-earthquake building safety using economical MEMS seismometers. Sensors 2018, 18, 1437 [5] Loh, C.-H., Chan, C.-K., Chen, S.-F., & Huang, S.-K. (2016). Vibration-based damage assessment of steel structure using global and local response measurements. Earthquake Engineering & Structural Dynamics, 45(5), 699–718. [6] Seo, J., Hu, J. W., & Davaajamts, B. (2015). Seismic performance evaluation of multistory reinforced concrete moment resisting frame structure with shear walls. Sustainability, 7(10), 14287–14308. [7] Wu, Y. M., Mittal, H., Huang, T. C., Yang, B. M., Jan, J. C., & Chen, S. K. (2019). Performance of a low-cost earthquake early warning system (P-Alert) and shake map production during the 2018 Mw 6.4 Hualien, Taiwan, earthquake. Seismological Research Letters, 90(1), 19–28. [8] Zheng, W., Dan, D., Cheng, W., & Xia, Y. (2019). Real-time dynamic displacement monitoring with double integration of acceleration based on recursive least squares method. Measurement, 141, 460–471. [9] Zhu, H., Zhou, Y., & Hu, Y. (2020). Displacement reconstruction from measured accelerations and accuracy control of integration based on a low-frequency attenuation algorithm. Soil Dynamics and Earthquake Engineering, 133, 106122. [10] 中央氣象署. 臺灣地震與地球物理資料管理系統. https://gdms.cwa.gov.tw/ [11] 尹仁正(2016),應用低價位的微機電系統地震儀在建築物健康監測的實驗研究,國立臺灣大學地質科學研究所碩士論文,共120頁。 [12] 呂佩玲、羅俊雄、蕭文啟、趙曉玲(2014),應用結構物強震監測紀錄檢討我國耐震設計規範中水平及垂直地震力之設計值,子計畫一:應用結構物強震監測紀錄檢討我國耐震設計規範中水平及垂直地震力之設計值I,科技部專題研究計畫報告,MOTC-CWB-104-E-16。 [13] 陳宏宇、吳逸民、李中生、周中哲(2014),企業標準化防災管理之研究以科學工業園區為例,科技部專題研究計畫報告,MOST 103-2119-M-002-010-。 [14] 羅俊雄、趙書賢、呂佩玲、蕭文啟、林金全(2013),結構物強震監測紀錄應用於結構物耐震評估之研究,子計畫一:建構結構物強震及常態反應特徵分析之軟硬體系统整合研究,科技部專題研究計畫報告,MOTC-CWB-103-E-14。 [15] 謝志龍(2019),震前預警系統之建置與震後實體建物結構安全速診之可行性評估,三聯技術113,34–42。 | - |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/98086 | - |
| dc.description.abstract | 臺灣位於歐亞板塊及菲律賓海板塊交界,地震頻繁,若強震事件發生時可能導致房屋倒塌、結構物受損等影響,因此結構物健康監測逐漸受到重視。然而,傳統結構物健康監測因為硬體設施和實驗成本高昂,不易全面推廣至民間。為了解決此問題,本研究採用國立臺灣大學P-Alert地震預警系統,透過P-Alert儀器成本較低的優勢,評估其地震儀在結構物健康監測的可行性。過去研究中,透過振動台實驗已證實P-Alert可利用易損性曲線分析結構物損傷程度,並在分析層間位移時需使用互相關分析進行時間校正。本研究進一步測試,P-Alert與高精度加速度儀Setra在層間位移與模態振形(Mode shape)上的表現,結果顯示P-Alert識別出來的結果與Setra相符。
此外,本研究亦分析不同類型建物,包括P-Alert單站型結構物、P-Alert多站型結構物以及中央氣象署結構物陣列。並透過不同樓層對地面測站反卷積,求得結構物基本模態。在預估層間位移方面,使用雙重積分法將加速度資料轉換成位移資料,計算出各樓層的層間位移角。在強度測量(Intensity Measure)的參數分析中,則採用最大地表加速度、加速度反應譜進行分析。 研究結果顯示,P-Alert單站型結構物中,PGA ≥ 80 gal才能穩定識別結構物基本模態;在P-Alert多站型結構物與中央氣象署結構物陣列分析中則發現:(1)利用結構物基礎模態的變化,可以快速識別損傷程度。(2)在強度參數分析中,P-Alert與中央氣象署結構物陣列所測得最大地表加速度、加速度反應譜皆呈現線性關係。(3)在強度測量參數相同下,結構物振動週期越長,層間位移越大。(4)層間位移角的變化可以快速識別結構物損傷狀態。綜合以上分析結果,P-Alert 不僅在振動台測試結果與高精度加速度儀Setra相符外,透過中央氣象署結構物陣列的比較,顯示其在強度測量上的可靠性。另一方面,基本模態與層間位移角的變化,P-Alert 能夠快速識別結構物損傷程度,展現出其系統在結構物健康監測中的應用潛力。 | zh_TW |
| dc.description.abstract | Taiwan is located at the junction of the Eurasian Plate and the Philippine Sea Plate, where earthquakes are frequent, and strong earthquakes may lead to house collapses, structural damage, and other impacts, so structural health monitoring is gradually being emphasized. However, due to the high cost of hardware facilities and experiments, it is not easy to fully promote traditional structural health monitoring in the community. In order to solve this problem, this study adopted the P-Alert system developed by the National Taiwan University, and evaluated the feasibility of the P-Alert system for structural health monitoring (SHM) by taking advantage of its lower cost. A previous study demonstrated that P-Alert can analyze structural damage by using damage curves, but time correction using cross-correlation is required to analyze inter-story drift. In this study, the performance of P-Alert and the high-precision accelerometer Setra on inter-story drift and mode shape was further tested, and the results showed that P-Alert recognized the same results as Setra.
In addition, different types of buildings are analyzed, including P-Alert single station structures, P-Alert multiple station structures, and the Central Weather Administration (CWA) building array. The fundamental mode of the structure is calculated by deconvolution, and the inter-story drift and inter-story drift ratio angle are predicted by double integration method. In the parameter analysis of Intensity measure (IM), the peak ground acceleration (PGA) and response spectral acceleration (Sa) are used. The results showed that in P-Alert single-station structures, PGA needs to be higher than 50 gal to recognize the fundamental mode of the structure stably; in the analysis of P-Alert multiple-station structures and building arrays, the findings include: 1. The frequency of the fundamental mode decreases when the structure is damaged. 2. P-Alert showed a linear relationship with both PGA and Sa (T1) as measured by the building array. 3. With the same IM parameters, the longer the vibration period of the structure, the larger the inter-story drift. 4. The Variety of inter-story drift ratios can immediately recognize the status of structural damage. In summary, P-Alert not only matches the results of the vibration test with the high-precision accelerometer Setra, but also demonstrates the reliability of the strength measurements by comparing the building array of the Central Weather Administration. On the other hand, with the change of basic mode and inter-story drift ratio angle, P-Alert can expeditiously recognize the damage level of the structure, which demonstrates the potential application of its system in structural health monitoring. | en |
| dc.description.provenance | Submitted by admin ntu (admin@lib.ntu.edu.tw) on 2025-07-24T16:08:29Z No. of bitstreams: 0 | en |
| dc.description.provenance | Made available in DSpace on 2025-07-24T16:08:29Z (GMT). No. of bitstreams: 0 | en |
| dc.description.tableofcontents | 口試委員會審定書 i
誌謝 ii 中文摘要 iii ABSTRACT v 目次 vii 圖次 xi 表次 xvii Chapter 1 緒論 1 1.1 前言與研究動機 1 1.2 研究內容 1 Chapter 2 文獻回顧 3 2.1 新一代地震儀預警系統在結構物監測之應用 3 2.1.1 P-Alert 在地震預警之應用 3 2.1.2 振動台實驗 4 2.2 結構物健康監測 10 2.2.1 結構物基礎模態 10 2.2.2 預估層間位移 12 2.2.3 結構物強度測量 14 Chapter 3 研究方法 17 3.1 資料預處理 17 3.1.1 P-Alert資料預處理 17 3.1.2 Building array資料預處理 18 3.2 結構物基本模態 19 3.2.1 單站型結構物:反卷積法 19 3.2.2 多測站結構物:反卷積法 21 3.3 結構物層間位移 23 3.3.1 低頻衰減法(low-frequency attenuation, LFA) 24 3.3.2 最小平方法 24 3.3.3 層間位移角 26 3.4 結構物強度測量 27 Chapter 4 結構物基本資訊 29 4.1 地震預警系統觀測網(P-Alert) 29 4.1.1 單站型結構物資訊 29 4.1.2 多站型結構物資訊 32 4.2 中央氣象署結構物觀測陣列(CWABA) 34 4.3 振動台實驗 39 Chapter 5 結果與討論 43 5.1 P-Alert在振動台之性能表徵 43 5.1.1 識別結構物基本頻率 43 5.1.2 層間位移的評估測試 49 5.2 P-Alert在實際建物的性能表徵 53 5.2.1 單站型結構物週期於強震事件表徵 53 5.2.2 多站型結構物週期於強震事件表徵 57 5.2.3 P-Alert系統對於結構物振動週期穩定度討論 60 5.3 多站型結構物在強度測量中之表現 64 Chapter 6 結論 71 REFERENCES 73 附件 A 加速度儀感測器價格與性能比較表格 75 附錄 B 單站型結構物分析之地震目錄 76 | - |
| dc.language.iso | zh_TW | - |
| dc.subject | 層間位移 | zh_TW |
| dc.subject | 強度測量 | zh_TW |
| dc.subject | 結構物健康監測 | zh_TW |
| dc.subject | 雙重積分法 | zh_TW |
| dc.subject | 反卷積 | zh_TW |
| dc.subject | Inter-story drift | en |
| dc.subject | Structural Health Monitoring | en |
| dc.subject | Intensity measure | en |
| dc.subject | Deconvolution | en |
| dc.subject | Double integration method | en |
| dc.title | P-Alert系統於結構物健康監測之評估與應用 | zh_TW |
| dc.title | An Evaluation of the P-Alert System in Structural Health Monitoring and its Application | en |
| dc.type | Thesis | - |
| dc.date.schoolyear | 113-2 | - |
| dc.description.degree | 碩士 | - |
| dc.contributor.coadvisor | 黃尹男;張家銘 | zh_TW |
| dc.contributor.coadvisor | Yin-Nan Huang;Chia-Ming Chang | en |
| dc.contributor.oralexamcommittee | 許丁友;周中哲 | zh_TW |
| dc.contributor.oralexamcommittee | Ting-Yu Hsu;Chung-Che Chou | en |
| dc.subject.keyword | 結構物健康監測,強度測量,反卷積,雙重積分法,層間位移, | zh_TW |
| dc.subject.keyword | Structural Health Monitoring,Intensity measure,Deconvolution,Double integration method,Inter-story drift, | en |
| dc.relation.page | 78 | - |
| dc.identifier.doi | 10.6342/NTU202502193 | - |
| dc.rights.note | 同意授權(全球公開) | - |
| dc.date.accepted | 2025-07-23 | - |
| dc.contributor.author-college | 理學院 | - |
| dc.contributor.author-dept | 地質科學系 | - |
| dc.date.embargo-lift | 2025-07-25 | - |
| 顯示於系所單位: | 地質科學系 | |
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