第七章 結論與建議
7.2 建議
參考文獻
Agalianos, A., de Coquereaumont, O. D. C., & Anastasopoulos, I.(2019). Rigid slab foundation subjected to strike–slip faulting: mechanisms and insights. Géotechnique,0(0), 1-20.
Agisoft PhotoScan Professional (Version 1.2.5) (Software).(2016). Retrieved from http://www.agisoft.com/downloads/installer/
Anastasopoulos, I., Antonakos, G., & Gazetas, G.(2010). Slab foundation subjected to thrust faulting in dry sand: Parametric analysis and simplified design method. Soil Dynamics and Earthquake Engineering, 30(10), 912-924.
Ashtiani, M., Ghalandarzadeh, A., & Towhata, I.(2015). Centrifuge modeling of shallow embedded foundations subjected to reverse fault rupture. Canadian Geotechnical Journal, 53(3), 505-519.
Barrell D., Litchfield N. J., Townsend D. B., Quigley M., Van Dissen R. J., Cosgrove R., Cox S. C., Furlong K., Villamor P., Begg J. G., Hemmings-Sykes S., Jongens R., Mackenzie H., Noble D., Stahl T., Bilderback E., Duffy B., Henham H., Klahn A., Lang E. M. W., Moody L., Nicol R., Pedley K., Smith A.(2011).Strike-slip ground-surface rupture (Greendale Fault) associated with the 4 September 2010 Darfield earthquake, Canterbury, New Zealand. Quarterly Journal of Engineering Geology and Hydrogeology, 44 (2011), 283-291
Bjerrum, L.(1963). Allowable settlement of structure, Proceedings of European Conf.
Soil Mechanics and Foundation Engineering, 2, 35-137.
Boscardin, M. D., & Cording, E. J. (1989). Building response to excavation-induced settlement. Journal of Geotechnical Engineering, 115(1), 1-21.
Bransby, M. F., Davies, M. C. R., El Nahas, A., & Nagaoka, S.(2008). Centrifuge modelling of reverse fault–foundation interaction. Bulletin of Earthquake
analysis. Fault Displacement Hazards Analysis Workshop, 8-9 December 2016, Menlo Park.
Bray, J. D., & Oettle, N. K.(2012). Building near faults. 2012 William B. Joyner memorial lecture, 18 July 2012,
Chang, Y. Y., Lee, C. J., Huang, W. C., Huang, W. J., Lin, M. L., Hung, W. Y., & Lin, Y.
H.(2013). Use of centrifuge experiments and discrete element analysis to model the reverse fault slip. International Journal of Civil Engineering, 11(2), 79-89.
Chang, Y. Y., Lee, C. J., Huang, W. C., Hung, W. Y., Huang, W. J., Lin, H. M. L., & Chen, Y. H.(2015). Evolution of the surface deformation profile and subsurface distortion zone during reverse faulting through overburden sand. Engineering geology, 184, 52-70.
Chen, C. C., Huang, C. T., Cherng, R. H., & Jeng, V. (2000). Preliminary investigation of damage to near fault buildings of the 1999 Chi-Chi earthquake. Earthquake Engineering and Engineering Seismology, 2(1), 79-92.
Chen, W.S., Huang, B. S., Chen, Y. G., Lee, Y. H., Yang, C. N., Lo, C. H., Chang, H.
C., Sun, Q. C., Huang, N. W., Lin, C. C., Sung, S. H., Lee, K. J.(2001). 1999 Chi-Chi earthquake: a case study on the role of thrust-ramp structures for generating earthquakes. Bulletin of the Seismological Society of America, 91(5), 986-994.
Che, W. S., Yang, C. C., Yen, I. C., Lee, L. S., Lee, K. J., Yang, H. C., Chang, H. C., OTA, Y., Lin, C. W., Lin, W. H., Shih, T. S., & Lu, S. T.(2007). Late Holocene paleoseismicity of the southern part of the Chelungpu fault in central Taiwan:
Evidence from the Chushan excavation site. Bulletin of the Seismological Society of America, 97(1B), 1-13.
Cole Jr, D. A., & Lade, P. V. (1984). Influence zones in alluvium over dip-slip faults. Journal of Geotechnical Engineering, 110(5), 599-615.
Dong, J. J., Wang, C. D., Lee, C. T., Liao, J. J., & Pan, Y. W.(2003). The influence of surface ruptures on building damage in the 1999 Chi-Chi earthquake: a case study in Fengyuan City. Engineering Geology, 71(1-2), 157-179.
Faccioli, E., Anastasopoulos, I., Gazetas, G., Callerio, A., & Paolucci, R.(2008). Fault rupture–foundation interaction: selected case histories. Bulletin of Earthquake
Engineering, 6(4), 557-583.
Garcia, F. E., & Bray, J. D.(2018). Distinct element simulations of earthquake fault rupture through materials of varying density. Soils and foundations, 58(4), 986-1000.
Garcia, F. E., & Bray, J. D. (2019). Discrete Element Analysis of Earthquake Fault Rupture-Soil-Foundation Interaction. Journal of Geotechnical and Geoenvironmental Engineering, 145(9), 04019046.
Hornblow, S., Quigley, M., Nicol, A., Van Dissen, R., & Wang, N. ( 2014 ) . Paleoseismology of the 2010 Mw 7.1 Darfield (Canterbury) earthquake source, Greendale fault, New Zealand. Tectonophysics, 637, 178-190.
Itasca Consulting Group, Inc. 2014. PFC – Particle Flow Code, Ver. 5.0. Minneapolis, MN: Itasca.
Kelson, K. I., Kang, K. H., Page, W. D., Lee, C. T., & Cluff, L. S.(2001). Representative styles of deformation along the Chelungpu fault from the 1999 Chi-Chi (Taiwan)
earthquake: geomorphic characteristics and responses of man-made structures. Bulletin of the Seismological Society of America, 91(5), 930-952.
Lee, J. C., Chu, H. T., Angelier, J., Chan, Y. C., Hu, J. C., Lu, C. Y., & Rau, R. J.(2002).
Geometry and structure of northern surface ruptures of the 1999 Mw= 7.6 Chi-Chi Taiwan earthquake: influence from inherited fold belt structures. Journal of Structural Geology, 24(1), 173-192.
Lee, Y. H., Chen, Y. C., Chen, C. L., Rau, R. J., Chen, H. C., Lo, W., & Cheng, K. C.
(2011). Revealing coseismic displacement and displacement partitioning at the northern end of the 1999 Chi-Chi earthquake, central Taiwan, using digital cadastral data. Bulletin of the Seismological Society of America, 101(3), 1199-1212.
Lettis, W. R., Bachhuber J., & Witter R., (2000). Kocaeli, Turkey, earthquake of August
Lin, M. L., Chung, C. F., & Jeng, F. S.(2006). Deformation of overburden soil induced by thrust fault slip. Engineering Geology, 88(1-2), 70-89.
Naylor, M. A., Mandl, G. T., & Supesteijn, C. H. K.(1986). Fault geometries in basement-induced wrench faulting under different initial stress states. Journal of Structural Geology, 8(7), 737-752.
Oettle, N. K., & Bray, J. D.(2016). Numerical procedures for simulating earthquake fault rupture propagation. International Journal of Geomechanics, 17 ( 1 ) , 04016025.
Ota, Y., Watanabe, M., Suzuki, Y., Yanagida, M., Miyawaki, A., & Sawa, H.(2007).
Style of the surface deformation by the 1999 Chichi earthquake at the central segment of Chelungpu fault, Taiwan, with special reference to the presence of the main and subsidiary faults and their progressive deformation in the Tsauton area. Journal of Asian Earth Sciences, 31(3), 214-225.
Richard, P.(1991). Experiments on faulting in a two-layer cover sequence overlying a reactivated basement fault with oblique-slip. Journal of Structural Geology, 13
(4), 459-469.
Sieh, K. E., & Jahns, R. H.(1984). Holocene activity of the San Andreas fault at Wallace creek, California. Geological Society of America Bulletin, 95(8), 883-896.
Son, M., & Cording, E. J.(2005). Estimation of building damage due to excavation-induced ground movements. Journal of Geotechnical and Geoenvironmental Engineering, 131(2), 162-177.
Taniyama, H.(2011). Numerical analysis of overburden soil subjected to strike-slip fault:
Distinct element analysis of Nojima fault. Engineering geology, 123(3), 194-203.
Tseng, Y.C., Huang, W.J., Yen, I.C., Chen, W.S., Huang, S.Y., and Yen, J.Y.(2019).
Paleoseismic study of Milun fault activated by the 2018 Mw 6.4 Hualien earthquake rupture in Eastern Taiwan. European Geosciences Union.
Ueta, K., Tani, K., & Kato, T.(2000). Computerized X-ray tomography analysis of three-dimensional fault geometries in basement-induced wrench faulting. Engineering Geology, 56(1-2), 197-210.
Van Dissen, R., Barrell, D., Litchfield, N., Villamor, P., Quigley, M., King, A., Furlong,
K., Begg,J., Townsend, D., Mackenzie, H., Stahl, T., Noble, D., Duffy, B., Bilderback, E., Claridge, J.,Klahn, A., Jongens, R., Cox, S., Langridge, R., Ries, W., Dhakal, R., Smith, A., Hornblow,S., Nicol, R., Pedley, K., Henham, H., Hunter, R., Zajac, A., Mote, T.,(2011). Surface rupture displacement on the Greendale Fault during the Mw 7.1 Darfield (Canterbury) earthquake, New Zealand, and its impact on man-made structures. Ninth Pacific Conference on Earthquake Engineering. Building an Earthquake-resilient Society, Auckland, New Zealand.
中田高、蓬田清、尾高潤一郎、坂本晃章、朝日克彦、千田昇(1995)。 1995 年 計畫編號100-5226904000-05-01,經濟部中央地質調查所。
張正宜(2000)。車籠埔斷層活動構造之數值模擬,國立中央大學應用地質研究所,
碩士論文。
陳文山、陳于高、劉聰桂、黃能偉、林清正、宋時驊、李昆杰(2000)。九二一集
黃漢勇與連永旺(1999)。大地裂痕,財團法人地工技術研究發展基金會。
附錄A 碩士學位考試口試委員提問及回覆表
編號 提問委員 問題 回覆情形
編號 提問委員 問題 回覆情形
移量之關係,Yin & Ma (2011)針對台 灣地區提出斷層跡長度與錯移量回歸
附錄B 砂箱試驗點雲報告
附錄C 砂箱試驗成果
C- 1 砂箱試驗 T1 正射影像
C- 2 砂箱試驗 T1 數值地形圖
C- 4 砂箱試驗 T1 日照陰影與線形判識
C- 5 砂箱試驗 T2 正射影像
C- 6 砂箱試驗 T2 數值地形圖
C- 7 砂箱試驗 T2 地形渲染圖
C- 8 砂箱試驗 T2 日照陰影與線形判識
C- 10 砂箱試驗 T3 數值地形圖
C- 11 砂箱試驗 T3 地形渲染圖
C- 12 砂箱試驗 T3 日照陰影與線形判識 T4
C- 13 砂箱試驗 T4 正射影像
C- 14 砂箱試驗 T4 數值地形圖
C- 15 砂箱試驗 T4 地形渲染圖
C- 16 砂箱試驗 T4 日照陰影與線形判識
C- 17 砂箱試驗 T5 正射影像
C- 18 砂箱試驗 T5 數值地形圖
C- 19 砂箱試驗 T5 地形渲染圖
C- 20 砂箱試驗 T5 日照陰影與線形判識
C- 21 砂箱試驗 T6 正射影像
C- 22 砂箱試驗 T6 數值地形圖
C- 23 砂箱試驗 T6 地形渲染圖
C- 24 砂箱試驗 T6 日照陰影與線形判識
附錄D 本研究購買圖資
D- 1 農航所航拍 88r064_139
D- 2 農航所航拍 88r064_140
D- 3 農航所航拍 88r064_171
D- 4 朴子口段地籍圖幅 1-1
D- 5 朴子口段地籍圖幅 1-2
D- 6 朴子口段地籍圖幅 1-3
D- 8 朴子口段地籍圖幅 2-2
D- 9 朴子口段地籍圖幅 3-1
D- 10 朴子口段地籍圖幅 4-1