[1] 大將作建築研究室,「龍邦建設富貴名門新建工程設計圖」, 1993。
[2] 中立工程顧問公司,「新竹國賓大飯店結構計算書」,1995。
[3] 中國土木水利工程學會,「混凝土工程設計規範與解說」,土木401-86,科技圖書股份有限公司,民國八十七年四月。
[4] 內政部,「修正建築技術規則建築構造編耐震設計規範與解說函」,台八八內營字號八八七八四七三號,民國八十八年十二月二十九日。
[5] 內政部營建署,「鋼構造建築物鋼結構設計技術規範」,Sep., 1998.
[6] 內政部營建署與建築研究所,「建築物耐震設計規範與解說」,民國八十六年六月。
[7] 日本混凝土工學協會編,「既存鋼筋混凝土構造物之耐震補強手冊」,技報堂出版刊,1984。
[8] 王宏遠,「子結構擬動態試驗技術應用於耐震間柱抗震行為之研究」,碩士論文,國立臺灣大學土木工程學研究所,民國八十九年六月。[9] 王貞富,「含磚牆鋼筋混凝土空間結構之非線性歷時分析研究」,碩士論文,國立成功大學建築研究所,民國八十三年六月。[10] 地震工程協會,「建築結構耐震診斷與耐震補強演講資料」,民國八十七年。
[11] 林政逸,「鋼筋混凝土建築物耐震評估」,碩士論文,國立臺灣大學土木工程學研究所,民國八十八年六月。[12] 林輝雄,「含磚牆RC構架極限側力之試驗與分析」,碩士論文,國立臺灣大學木工程學研究所,民國七十四年六月。[13] 國家地震工程研究中心,「阪神大地震後日本RC建築之耐震診斷與補強研討會資料”,民國八十九年。
[14] 國泰建設公司,「木柵攬翠天下新建工程設計圖」,1993。
[15] 康倍馨,「既有鋼筋混凝土學校建築之耐震診斷與補強」,碩士論文,國立成功大學建築研究所,民國八十五年六月。[16] 張嘉祥、許茂雄、姚昭智與劉玉文,「台南市立中小學及幼稚園建築之耐震評估」,台南市政府教育局委託成功大學建築研究所之研究報告,民國八十二年九月。
[17] 許茂雄、張嘉祥與廖慧明,「建築物耐震評估與補強實施制度之探討」,內政部建築研究所,民國八十七年六月。
[18] 許茂雄、張嘉祥與蔡瑞河,「新建學校建築規劃設計與既有學校建築耐震補強指針研擬」,內政部建築研究所,民國八十六年六月。
[19] 許茂雄、陳俊宏與張文德,「鋼筋混凝土建築結構之非線性耐震分析」,中華民國第十五屆全國力學會議論文集,第1567-1575頁,民國八十年十二月。
[20] 許茂雄與張文德,「地震工程示範計畫-觸口斷層附近校舍之耐震診斷」,國科會防災科技研究報告第81-10號,民國八十一年十月。
[21] 許晉嘉,「鋼筋混凝土學校建築之耐震診斷與補強」,碩士論文,國立成功大學建築研究所,民國八十三年六月。[22] 陳明生,「紅磚砂漿與共介面之基本力學性質研究」,碩士論文,國立成功大學建築研究所,民國八十三年。[23] 陳國顯,「磚牆介面特性及抗壓行為研究」,碩士論文,國立臺灣大學材料科學與工程學研究所,民國七十三年六月。[24] 「最新建築技術規則」,詹氏圖書有限公司,民國七十一年十一月。
[25] 項維邦,「和成阿爾卑斯天廈新建工程結構計算書」,聯邦工程顧問公司,1993。
[26] 項維邦,「漢總夢萊因新建工程結構計算書」,聯邦工程顧問公司,1994。
[27] 黃國彰,「有邊界柱梁之磚牆耐震試驗與等值牆版分析」,碩士論文,國立成功大學建築研究所,民國八十四年。[28] 葉慶華,「建築物耐震評估與補強實施制度研擬」,碩士論文,國立成功大學建築研究所,民國八十八年六月。[29] 劉文欽,「鋼筋混凝土構架震後之補強試驗及其效果分析-重塑支柱增設斜撐與增設RC牆等工法」,碩士論文,國立成功大學建築研究所,民國八十五年六月。[30] 劉白梅,「鋼筋混凝土建築結構受人為災害後之耐震診斷」,碩士論文,國立成功大學建築研究所,民國八十二年六月。[31] 蔡克銓、王宏遠、孫維隆、陳垂欣與陳界宏,「921集集大地震建築物損壞調查結果初步報告」,中國土木水利工程學會會刊,第二十六卷,第二十三期,民國八十八年十一月。[32] 蔡克銓、栗正暐、周中哲、王廷聖與鍾佩璋,「泛用型非線性靜動態平面結構分析程式DRAIN2D+與VIEW2D使用手冊」,國立台灣大學地震工程研究中心,報告編號CEER/R86-07,July, 1997。
[33] 蔡克銓、項維邦與魏國忠,「耐震間柱構架之實驗與行為研究」,結構工程,第九卷,第三期,第63-74頁,民國八十三年九月。[34] 蔡克銓與王廷聖,「鋼骨寬翼梁及梁柱交會區之非線性有限元素」, 國立台灣大學地震工程研究中心,報告編號CEER/R84-03,July, 1995。
[35] 蔡克銓與魏國忠,「偏心斜撐構架與耐震間柱構架之耐震實驗與行為研究」,國立台灣大學地震工程研究中心,報告編號CEER, R83-06, July, 1994。
[36] 蔡益超、何明錦與陳清泉,「鋼筋混凝土建築物耐震能力評估法及推廣」,內政部建築研究所,民國八十七年十一月。
[37] 澤田範夫,「大阪府既存建築物耐震改修促進實施計畫」,GBRC(總會建築物研究中心),pp.86-90,1997。
[38] 蕭科育,「耐震間柱結構系統在地震下之行為研究」,國立台灣科技大學,碩士論文,民國八十二年七月。。[39] 謝明哲,「活斷層附近鋼筋混凝土校舍建築耐震設計研究」 ,碩士論文,國立成功大學建築研究所,民國八十七年六月。[40] Applied Technology Council (ATC), “Seismic Evaluation and Retrofit of Concrete Buildings”, Vol. 1 and Vol.2, ATC-40, Applied Technology Council, Redwood City, 1996.
[41] Banavalkar, P. V., “Free Spanning Ductile Vierendeel Frame: A System for High-Rise Buildings in Seismic Areas”, Second Conference on Tall Buildings in Seismic Regions 55th Regional Conference, May 1991, Los Angles, California.
[42] Bertero, V. V., “Tri-service Manual Methods”, in Vision 2000, Part 2, Appendix J, Structural Engineers Association of California, Sacramento, 1995.
[43] Chopra A. K., and Goel, R. K., “Capacity-Demand-Diagram Methods for Estimating Seismic Deformation of Inelastic Structures: SDF Systems”, PEER-19902, Pacific Earthquake Engineering Research Center, University of California, Berkeley, April 1999.
[44] Chopra, A. K., and Goel, R. K., “Evaluation of NSP to Estimate Seismic Deformation: SDF Systems”, Journal of Structural Engineering, April 2000.
[45] Chopra, A. K., Dynamics of Structures: theory and applications to earthquake engineering, Prentice Hall, 1995.
[46] CSI, “ETABS: Three Dimensional Analysis of Building Systems”, Computers and Structures, Inc., Berkeley, California, 1995.
[47] CSI, “SAP2000: Integrated Finite Element Analysis and Design of Structures”, Computers and Structures, Inc., Berkeley, California, 1996.
[48] Engelhart M. D., and Popov, E. P., “Behavior of Long Links in Eccentrically Braced Frames”, Report No. 89-01, Earthquake Engineering Research Center, Univ. of Cal. Berkely, C.A. 1989.
[49] Fajfar, P., “Capacity Spectrum Method Based on Inelastic Demand Spectra”, Earthquake Engineering and Structral Dynamics, 28, pp. 973-993, 1999.
[50] Federal Emergency Management Agency (FEMA), “NEHRP Guidelines and Complementary for the Seismic Rehabilitation of Buildings”, FEMA 273-274,1997.
[51] Freeman, S. A., “Prediction of Response of Concrete Buildings to Severe Earthquake Motion”, Douglas McHenry Int. Symp. On Concrete Struct., ACI SP-55, American Concrete Institute, Detroit, pp. 589-605, 1978.
[52] Freeman, S. A., Nicoletti, J. P., and Tyrell, J. V., “Evaluations of Existing Buildings for Seismic Risk- A Case Study of Puget Sound Naval Shipyard, Bremerton, Washington”, Proceedings of 1st U.S. National Conference on Earthquake Engineering, EERI, Berkeley, pp. 113-122, 1975.
[53] Hjelmstad, K. D., and Popov, E.P., “Seismic Behavior of Active Beam Links in Eccentrically Braced Frames, Report No. UCB/EERC-83/24, Earthquake Engineering Research Center, Univ. of Cal. Berkely, C.A. 1983.
[54] Kannan, A. E., Powell, G. H., “DRAIN-2D, A General Purpose Computer Program of Inelastic Plane Structures”, Reports No. EERC 73-6 and 73-22, Earthquake Engineering Research Center, Univ. of Cal. Berkely, C.A., 1973.
[55] Krawinkler, H. and Nassar, A. A. “Seismic Design Based on Ductility and Cumulative Damage Demands and Capacities”, Nonlinear Seismic Analysis and Design of Reinforced Concrete Buildings, Eds. Fajfar, P. and Krawinkler, New York, Elsevier Applied Science, 1992.
[56] Krawinkler, H. and Seneviratna, G. D. P. K., “Pros and Cons of a Pushover Analysis for Seismic Performance Evaluation”, Engineering Structures, Vol. 20, pp. 452-464, 1998.
[57] Mahaney J. A., Freeman, S. A., Paret, T. F., and Kehoe, B. E., “The Capacity Spectrum Method of Evaluating Structural Response During the Loma Prieta Earthquake”, Proc. 1993 National Earthquake Conference, pp. 501-510, Memphis, 1993.
[58] Mirada E., and Bertero, V. V., “Evaluations of Strength Reduction Factors for Earthquake Resistant Design”, Earthquake Spectra, Vol. 10, pp. 357-379, 1997.
[59] Nakashima, M., “Strain-Hardening Behavior of Shear Panels Made of Low-Yield Steel. I: Test”, Journal of Structural Engineering, 1742-1749, December 1995.
[60] Nakashima, M., “Strain-Hardening Behavior of Shear Panels Made of Low-Yield Steel. II: Model”, Journal of Structural Engineering, 1750-1757, December 1995.
[61] Nakashima, M., Iwai, S., Iwata, M., Takeuchi, T., Konomi, S., Akazama, T., and Suburi, K. , “Energy Dissipation Behaviour of Shear Panels Made of Low Yield Steel”, Earthquake Engineering and Structural Dynamics, Vol. 23, 1299-1313, 1994.
[62] Newmark, N. M., and Hall, W. J., “Earthquake Spectra and Design”, Berkeley, Calif. Earthquake Engineering Research Inst., 1982.
[63] Okada, T., and Nakano, Y., “Reliability Analysis on Seismic Capacity of Existing Reinforced Concrete Buildings”, Proceedings of 9th World Conference on Earthquake Engineering, 1988.
[64] Okada, T., Umemura, H., and Murakami, M., “Judging Index for Seismic Capacity Evaluation of Reinforced Concrete Bulldings”, Proceedings of Annual Convention of Architectural Insitute of Japan, 1980.
[65] Reinhorn, A.M., “Inelastic Analysis Techniques in Seismic Evaluations”, Seismic Design Methodologies for the Next Generation of Codes, pp. 277-287, Eds. Fajfar, P. and Krawinkler, Balkema, Rotterdam, 1997.
[66] Structural Engineers Association of California (SEAOC), Vision 2000 Committee, “Performance Based Seismic Engineering of Buildings”, Vol. 1 and Vol. 2, April, 1995.
[67] Tsai, K. C., and Li, J. W., “DRAIN2D+, A General Purpose Computer Program For Static and Dynamic Analysis of Inelastic 2D Structures, Supplemented with A Graphic Processor VIEW2D, User’s Guide”, CEER/R83-03, Center for Earthquake Engineering Research, National Taiwan University, June, 1994.
[68] Tsai, K. C., and Popov, E. P., “Steel Beam-Column Joints in Seismic Moment Resisting Frames”, Report No. 88-19, Earthquake Engineering Research Center, Univ. of Cal. Berkely, C.A. 1988.
[69] UBC, “Uniform Building Code”, International Conference of Building Officials, 1997.
[70] Vidic, T., Fajfar P., Fischinger, M., “Consistent Inelastic Design Spectrum: Strength and Displacement”, Earthquake Engineering and Structral Dynamics, 23(5), pp. 507-521, 1994.