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完整後設資料紀錄
DC 欄位 | 值 | 語言 |
---|---|---|
dc.contributor.advisor | 歐昱辰 | zh_TW |
dc.contributor.advisor | Yu-Chen Ou | en |
dc.contributor.author | Jones Joju | zh_TW |
dc.contributor.author | Jones Joju | en |
dc.date.accessioned | 2024-09-24T16:10:51Z | - |
dc.date.available | 2024-09-25 | - |
dc.date.copyright | 2024-09-24 | - |
dc.date.issued | 2024 | - |
dc.date.submitted | 2024-07-30 | - |
dc.identifier.citation | [1] ACI 318. (2019). Building Code (ACI 318-19) and Commentary on Building Code Requirements for Structural Concrete. Farmington Hills, MI: American Concrete Institute.
[2] ACI 352. (2010). Recommendations for design of beam-column connections in monolithic reinforced concrete structures. Farmington Hills, MI. [3] ACI 374.1. (2005). Acceptance criteria for moment frames based on structural testing and commentary: an ACI standard. Farmington Hills, MI: American Concrete Institute. [4] AWS D1.1/D1.1M (2020). Structural Welding Code-Steel, American Welding Society (AWS) D l Committee on Structural Welding, Danvers, MA. [5] Ahmadi, M. M., Mirghaderi, S. R., & Eghbali, N. B. (2022). Cyclic testing of through-plate moment connection for beam to concrete filled and unfilled circular column. Engineering Structures, 267, 114695. [6] AIJ, (2021). Design of Mixed Structures Composed of Reinforced Concrete Columns and Steel Beams, Architectural Institute of Japan, Tokyo. [7] AIJ. (2008). Recommendations for design and construction of concrete filled steel tubular structures. Tokyo: Architectural Institute of Japan. [8] AISC 341. (2022). Seismic Provisions for Structural Steel Buildings Supersedes the Seismic Provisions for Structural Steel Buildings. Chicago, Illinois: American Institute of Steel Construction. [9] AISC 358. (2022). Prequalified Connections for Special and Intermediate Steel Moment Frames for Seismic Applications, including Supplement No. 1. Chicago, IL: American Institute of Steel Construction. [10] AISC 360. (2022). Specification for Structural Steel Buildings. Chicago, IL: American Institute of Steel Construction. [11] Alizadeh, S., Attari, N. K., & Kazemi, M. T. (2013). The seismic performance of new detailing for RCS connections. Journal of constructional steel research, 91, 76-88. [12] Alizadeh, S., Attari, N. K., & Kazemi, M. T. (2015). Experimental investigation of RCS connections performance using self-consolidated concrete. Journal of constructional steel research, 114, 204-216. [13] ASCE Task Committee on Design Criteria for Composite Structures in Steel and Concrete. (1994). Guidelines for design of joints between steel beams and reinforced concrete columns. Journal of Structural Engineering, 120(8), 2330-2357. [14] Azizinamini, A., Shekar, Y., & Saadeghvaziri, M. A. (1995). Design of through beam connection detail for circular composite columns. Engineering Structures, 17(3), 209-213. [15] Beutel, J., Thambiratnam, D., & Perera, N. (2002). Cyclic behaviour of concrete filled steel tubular column to steel beam connections. Engineering Structures, 24(1), 29-38. [16] Boresi, A. P., & Schmidt, R. J. (2002). Advanced mechanics of materials. John Wiley & Sons. [17] Bugeja, M. N., Bracci, J. M., & Moore Jr, W. P. (2000). Seismic behavior of composite RCS frame systems. Journal of structural engineering, 126(4), 429-436. [18] Chang C.C. (2023). Joint Bearing Behavior of New High-Strength Reinforced Concrete Columns and Steel Beams. Master’s Thesis. National Taiwan University, Taipei [19] Chen, H., Guo, Z. X., Basha, S. H., & Liu, Y. (2023). Seismic behavior of RCS frame joints applied with high-strength bolts-end plate connection. Journal of Building Engineering, 63, 105455. [20] Chen, S. J., Yeh, C. H., & Chu, J. M. (1996). Ductile steel beam-to-column connections for seismic resistance. Journal of Structural engineering, 122(11), 1292-1299. [21] Chen, C.H., Lai, W.C., Cordova, P., Deierlein, G.G. and Tsai, K.C., (2004). Pseudo-dynamic test of full-scale RCS frame: part I-design, construction, testing. In Structures 2004: Building on the Past, Securing the Future, pp. 1-15. [22] Chen, J. C., Lin, T. H., Chen, P. C., Lin, K. C., & Tsai, K. C. (2009). Advanced seismic testing using the multi-axial testing system (MATS) in NCREE. In Proc. 3rd Int. Conf. Adv. Experim. Struct. Engin., San Francisco, USA. [23] Cordova, P., Chen, C.H., Lai, W.C., Deierlein, G.G. and Tsai, K.C., (2004). Pseudo-dynamic test of full-scale RCS frame: part II-analysis and design implications. In Structures 2004: Building on the Past, Securing the Future pp. 119-131). [24] Cheng, C. T., Chan, C. F., & Chung, L. L. (2007). Seismic behavior of steel beams and CFT column moment-resisting connections with floor slabs. Journal of Constructional Steel Research, 63(11), 1479-1493. [25] Cheng, C. T., & Chung, L. L. (2003). Seismic performance of steel beams to concrete-filled steel tubular column connections. Journal of constructional steel research, 59(3), 405-426. [26] Chopra AK (2019). Dynamics of Structures. 5th ed. London: Pearson Education Limited. [27] CPAMI. (2010). Design and Technique Specifications of Steel Structures for Buildings. Taipei, Taiwan: Construction and Planning Agency of the Interior. [28] CPAMI. (2017) Design Specifications for Concrete Structures. Taipei, Taiwan: Construction and Planning Agency of of the Interior. [29] CPAMI. (2011) Design specification and Commentary for Steel-Reinforced Concrete Structures. Taipei, Taiwan: Construction and Planning Agency of of the Interior. [30] Deierlein GG. (1988). Design of moment connections for composite framed structures. University of Texas at Austin. [31] Deierlein, G. G., & Noguchi, H. (2000). Research on RC/SRC column systems. In 12th World Conference on Earthquake Engineering. [32] Doost, R. B., & Khaloo, A. (2021). Steel web panel influence on seismic behavior of proposed precast RCS connections. Structures, col. 32, pp. 87-95. [33] Elremaily, A., & Azizinamini, A. (2001). Experimental behavior of steel beam to CFT column connections. Journal of Constructional Steel Research, 57(10), 1099-1119. [34] EN 1998-1. (2004). Eurocode 8: Design of structures for earthquake resistance—part 1: general rules, seismic actions and rules for buildings. CEN, Comit´e European de Normalisation. [35] Chopra AK. (2019). Dynamics of Structures. 5th ed. London: Pearson Education Limited. [36] Eghbali, N. B., & Mirghaderi, S. R. (2017). Experimental investigation of steel beam to RC column connection via a through-plate. Journal of constructional steel research, 133, 125-140. [37] Fargier-Gabaldón, L. B., Parra-Montesinos, G. J., & Wight, J. K. (2020). Seismic behavior of exterior reinforced concrete wide-column-to-steel beam joints. ACI Structural Journal, 117(2), 117-128. [38] Foster, S. J., & Gilbert, R. I. (1996). The design of nonflexural members with normal and high-strength concretes. Structural Journal, 93(1), 3-10. [39] Fukumoto, T., & Morita, K. (2005). Elastoplastic behavior of panel zone in steel beam-to-concrete filled steel tube column moment connections. Journal of structural engineering, 131(12), 1841-1853. [40] GB 50936 (2014). Technical code for concrete filled steel tubular structures. Beijing: China Architecture & Building Press. China Ministry of Construction. [41] Griffis, L. G. (1986). Some design considerations for composite-frame structures. Engineering Journal, 23(2), 59-64. [42] Hwang, S. J., & Lee, H. J. (2002). Strength prediction for discontinuity regions by softened strut-and-tie model. Journal of Structural Engineering, 128(12), 1519-1526. [43] Hwang, S. J., Tsai, R. J., Lam, W. K., & Moehle, J. P. (2017). Simplification of softened strut-and-tie model for strength prediction of discontinuity regions. ACI Structural Journal, 114(5), 1239-1249. [44] Jeddi, M. Z., Sulong, N. R., & Khanouki, M. A. (2017). Seismic performance of a new through rib stiffener beam connection to concrete-filled steel tubular columns: An experimental study. Engineering Structures, 131, 477-491. [45] Kanno, R. (1993). Strength, deformation, seismic resistance of joints between steel beams and reinforced concrete columns. Structural Engineering Report, 93(6). [46] Kanno, R., and G. G. Deierlein. (2000). Design model of joints for RCS frames. Proc. Conf. Compos. Constr. Steel Concr. IV, 947–958. [47] Kathuria D, Miyamoto International Inc., Yoshikawa H, Nishimoto S, Kawamoto S, Taisei Corporation, et al. (2015). Design of Composite RCS Special Moment Frames. California. [48] Khaloo, A., & Doost, R. B. (2018). Seismic performance of precast RC column to steel beam connections with variable joint configurations. Engineering Structures, 160, 408-418. [49] Koester BD. (2000). Panel zone behavior of moment connections between rectangular concrete -filled steel tubes and wide flange beams - ProQuest. University of Texas. [50] Kuramoto, H., & Nishiyama, I. (2004). Seismic performance and stress transferring mechanism of through-column-type joints for composite reinforced concrete and steel frames. Journal of structural engineering, 130(2), 352-360. [51] Lai B.C. (2021). Seismic Behavior of High-Strength Reinforced Concrete Column and Steel Beam Joints – Five-Spiral transverse reinforcement. Master’s Thesis. National Taiwan University, Taipei [52] Lai, Z., Fischer, E. C., & Varma, A. H. (2019). Database and review of beam-to-column connections for seismic design of composite special moment frames. Journal of Structural Engineering, 145(5), 04019023. [53] Lai Z, Varma AH. (2018). Experimental database on connections for composite special moment frames (C-SMFs). (Version 3.0). Purdue University Research Repository. [54] Lee, H. J., Park, H. G., Hwang, H. J., & Kim, C. S. (2019). Cyclic lateral load test for RC column–steel beam joints with simplified connection details. Journal of Structural Engineering, 145(8), 04019075. [55] Lee, H. J., Lequesne, R. D., Lepage, A., Lin, J. X., Wang, J. C., & Yin, S. L. (2023). Minimum Joint Depth for Moment Frames with High-Strength Materials. Structural Journal, 120(1), 225-239. [56] Li, W., Ye, H., Wang, Q., Liu, H., Ding, T., & Liu, B. (2022). Experimental study on the seismic performance of demountable RCS joints. Journal of Building Engineering, 49, 104082. [57] Liang, X., & Parra-Montesinos, G. J. (2004). Seismic behavior of reinforced concrete column-steel beam subassemblies and frame systems. Journal of Structural Engineering, 130(2), 310-319. [58] Ma, H., Dong, J., Liu, Y., & Yang, D. (2019). Cyclic loading tests and shear strength of composite joints with steel-reinforced recycled concrete columns and steel beams. Engineering Structures, 199, 109605. [59] Marcakis, K., and D. Mitchell. 1980. Precast Concrete Connections with Embedded Steel Members. PCI J., 88–116. [60] Mehanny, S. S. F. (2000). Modeling and assessment of seismic performance of composite frames with reinforced concrete columns and steel beams. Stanford University. [61] Men, J., Xiong, L., Wang, J., & Fan, G. (2021). Effect of different RC slab widths on the behavior of reinforced concrete column and steel beam-slab subassemblies. Engineering Structures, 229, 111639. [62] Ministry of Interior. (2011). Design specifications and explanations for steel-framed reinforced concrete structures., Taipei City (In Chinese). [63] Mirghaderi, S. R., Eghbali, N. B., & Ahmadi, M. M. (2016). Moment-connection between continuous steel beams and reinforced concrete column under cyclic loading. Journal of constructional steel research, 118, 105-119. [64] Morino, S., & Tsuda, K. (2003). Design and construction of concrete-filled steel tube column system in Japan. Earthquake Engineering and Engineering Seismology, 4(1), 51-73. [65] Morita K, Yokoyama Y, Kawamata Y, Matsumura H. (1991). Effect of inner ring stiffener on strength of connection between steel beam and concrete-filled-steel tube column. J Struct Constr Eng (Transactions AIJ) 422:85–96. [66] Mirghaderi, S. R., Eghbali, N. B., & Ahmadi, M. M. (2016). Moment-connection between continuous steel beams and reinforced concrete column under cyclic loading. Journal of constructional steel research, 118, 105-119. [67] NCREE. (2019). Design Guideline for Building of High-Strength Reinforced Concrete Structures (Draft). Taipei. [68] Ngo, S. H., Ou, Y. C., & Nguyen, V. D. (2022). Shear strength model for reinforced concrete bridge columns with multispiral transverse reinforcement. Journal of Structural Engineering, 148(3), 04021303. [69] Nguyen, X. H., Nguyen, Q. H., Le, D. D., & Mirza, O. (2017). Experimental study on seismic performance of new RCS connection. Structures Vol. 9, pp. 53-62. [70] Nishimura, Y., and K. Minami. 1990. Stress transfer from steel beams to reinforced concrete columns. IABSE Symp. Mix. Struct. Incl. New Mater., 389–394. Zurich, Switzerland. [71] Nishiyama, I., Fujimoto, T., Fukumoto, T., & Yoshioka, K. (2004). Inelastic force-deformation response of joint shear panels in beam-column moment connections to concrete-filled tubes. Journal of Structural Engineering, 130(2), 244-252. [72] Noguchi H. and Kim K., (1997) Analysis of Beam-Column Joints in Hybrid Structures. In Proceedings of ACSE Structures Congress XV, ASCE, Reston, pp. 726-730. [73] NZS 3101. (2006) Concrete structures standard, Part 1 and 2, Code and commentary on the design of concrete structures. Standards New Zealand. [74] Ou, Y. C., Li, J. Y., & Roh, H. (2021). Shear strength of reinforced concrete columns with five-spiral reinforcement. Engineering Structures, 233, 111929. [75] Ou, Y. C., Nguyen, N. V. B., & Wang, W. R. (2022). Seismic shear behavior of new high-strength reinforced concrete column and steel beam (New RCS) joints. Engineering Structures, 265, 114497. [76] Ou, Y. C., Joju, J., & Hsu, W. C. (2022a). Cyclic behavior of shear-critical concrete columns with unstressed steel strands as longitudinal reinforcement. Engineering Structures, 264, 114465. [77] Ou, Y. C., Joju, J., & Hsu, W. C. (2022b). Cyclic behavior of shear-critical concrete columns with unstressed steel strands as longitudinal reinforcement. Engineering Structures, 264, 114465. [78] Ou, Y. C., Joju, J., Lai, B. C., & Wang, J. C. (2023). Development and seismic performance evaluation of New high strength reinforced concrete column and steel beam (New-RCS) joint. Engineering Structures, 288, 116186. [79] Ou, Y. C., Nguyen, N. V. B., Joju, J., & Wang, J. C. (2023a). Seismic behavior of concentric and eccentric New-RCS through-beam joints. Journal of Building Engineering, 76, 107357. [80] Ou, Y. C., Joju, J., & Lai, B. C. (2024). Seismic behavior of eccentric new RCS joints with through columns. Engineering Structures, 301, 117266. [81] Ou, Y. C., Tran, N. M., Chen, C. C., & Lee, H. J. (2015). Panel zone shear behavior of through-flange connections for steel beams to circular concrete-filled steel tubular columns. Journal of Structural Engineering, 141(9), 04014216. [82] Parra-Montesinos, G., & Wight, J. K. (2000). Seismic response of exterior RC column-to-steel beam connections. Journal of structural engineering, 126(10), 1113-1121. [83] Parra-Montesinos, G., & Wight, J. K. (2001). Modeling shear behavior of hybrid RCS beam-column connections. Journal of structural engineering, 127(1), 3-11. [84] Razvi, S., & Saatcioglu, M. (1999). Confinement model for high-strength concrete. Journal of Structural Engineering, 125(3), 281-289. [85] Ricles, J. M., Fisher, J. W., Lu, L. W., & Kaufmann, E. J. (2002). Development of improved welded moment connections for earthquake-resistant design. Journal of Constructional Steel Research, 58(5-8), 565-604. [86] Ricles, J. M., Peng, S. W., & Lu, L. W. (2004). Seismic behavior of composite concrete filled steel tube column-wide flange beam moment connections. Journal of Structural Engineering, 130(2), 223-232. [87] Rong, X., Yang, H., & Zhang, J. (2020). Experimental study of precast beam-to-column joints with steel connectors under cyclic loading. Advances in Structural Engineering, 23(13), 2822-2834. [88] Sakaguchi N. (1992). Strength and behaviour of frames composed of reinforced concrete columns and steel beams. Kyoto University. [89] Sakaguchi, N., Tominaga, H., Murai, Y., Takase, Y., & Shuto, K. (1988). Strength and ductility of steel beam-RC column joint. In Proc., 9th World Conf. on Earthquake Engrg. Vol. 4, pp. 713-718. [90] Schneider, S. P., & Alostaz, Y. M. (1998). Experimental behavior of connections to concrete-filled steel tubes. Journal of Constructional Steel Research, 45(3), 321-352. [91] Sheet, I. S., Gunasekaran, U., & MacRae, G. A. (2013). Experimental investigation of CFT column to steel beam connections under cyclic loading. Journal of Constructional Steel Research, 86, 167-182. [92] Sheikh, T.M., (1987). Moment connection between steel beams and concrete columns, University of Texas at Austin. [93] Takenaka Corporation. (2024). Takenaka corporation website, accessed on 10th June 2024, https://www.takenaka.co.jp [94] Tang, H., Deng, X., Jia, Y., Xiong, J., & Peng, C. (2019). Study on the progressive collapse behavior of fully bolted RCS beam-to-column connections. Engineering Structures, 199, 109618. [95] Toda Corporation. (2024). Toda corporation website, accessed on 10th June 2024, https://www.toda.co.jp/english/technology/to-rcs.php [96] Tsai, H.C., (2022). Seismic Behavior of Reduced Beam Section Moment Connections between Steel Beams and High-Strength Reinforced Concrete Circular Columns. Master’s Thesis. National Taiwan University, Taipei [97] Vecchio, F. J., & Collins, M. P. (1993). Compression response of cracked reinforced concrete. Journal of structural engineering, 119(12), 3590-3610. [98] Wang, W. D., Han, L. H., & Uy, B. (2008). Experimental behaviour of steel reduced beam section to concrete-filled circular hollow section column connections. Journal of Constructional Steel Research, 64(5), 493-504. [99] Wang, J. F., Han, L. H., & Uy, B. (2009). Hysteretic behaviour of flush end plate joints to concrete-filled steel tubular columns. Journal of Constructional Steel Research, 65(8-9), 1644-1663. [100] Wang W.L. (2022). Seismic Behavior of Joints between High-Strength Reinforced Concrete Circular Columns and Steel Beams. Master’s Thesis. National Taiwan University, Taipei [101] Yang, Y., Liu, X., Zhang, J., Liu, J., & Cheng, W. (2020). Behavior of large-scale connections between circular concrete-filled steel tubular columns and H-section steel beams. Advances in Structural Engineering, 23(2), 307-319. [102] Yang, Y., Yang, P., Shu, Y., Shen, P., & Eatherton, M. R. (2022). Experimental study on seismic behavior of the self-centering RCS joint with replaceable buckling restrained dampers. Engineering Structures, 261, 114288. [103] Yin, S. Y. L., Wu, T. L., Liu, T. C., Sheikh, S. A., & Wang, R. (2011). Interlocking Spiral Confinement for Rectangular Columns. Concrete International, 33(12). [104] Yokoyama Y, Morita K, Kawamata Y, Matsumura H. (1991). Structural behavior of steel-beam to concrete-filled square tube column connections reinforced with inner ring stiffener. 3rd Int. Conf. Steel-Concrete Compos. Struct., Fukoka, Japan, p. 165–70. [105] Zhang, L. X. B., & Hsu, T. T. (1998). Behavior and analysis of 100 MPa concrete membrane elements. Journal of Structural Engineering, 124(1), 24-34. | - |
dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/95909 | - |
dc.description.abstract | 複合框架系統中,以鋼筋混凝土(RC)柱和鋼(S)梁組成的系統被稱為RCS系統。RCS系統結合了RC柱固有的勁度和經濟性,以及鋼梁的輕自重和長跨能力。RCS系統的初步研究和開發始於1980年代的美國和日本。RCS系統發展的關鍵在於梁柱接頭細節的設計。然而,現有文獻中的接頭細節主要是為了適應具有常規變形鋼筋(規定降伏應力至多490 MPa)和普通強度混凝土(抗壓強度低於55 MPa)的RC柱而開發的。為了在高層建築中達到最佳結構效率,RC柱需要高強度混凝土(抗壓強度超過70 MPa)和高強度鋼筋(規定降伏應力為550-690 MPa)。此外,現有文獻只探討了對於方形RC柱的同心鋼梁RCS接頭。建築需求往往需要非同心布置的梁和柱,並且具有多種截面形狀。
因此,在本研究中,設計了不同類型的New RCS梁柱接頭。“New”的概念是指在RC柱中使用高強度變形鋼筋(屈服應力為550-690 MPa)和高強度混凝土(抗壓強度超過70 MPa)。研究開發了四大類型的New RCS接頭,分別是: 1. 方形截面RC柱的經典貫通梁型接頭, 2. 方形截面RC柱的貫通柱型偏心接頭, 3. 圓形截面RC柱的貫通梁型接頭, 4. 圓形截面RC柱的貫通柱型和貫通隔板型接頭。 設計並實驗測試了總共11個大型梁柱子裝配試件,以評估接頭的行為。實驗結果證實了所提議的接頭細節的有效性。除了具有問題的螺栓網焊法蘭拼接細節的試件外,所有測試的梁柱子裝配試件均顯示出優秀的抗震行為。 除了上述New RCS接頭細節的開發,本研究還重點重新檢查了RCS接頭的承載行為。過去的多次實驗報告指出,現有文獻中的經典承載強度預測方程可能高估了接頭的承載強度。因此,本研究測試了兩個以柱軸向載荷為變量的外部貫通梁型New RCS 接頭,以評估承載行為。隨後,詳細的分析模型被設計用於考慮軸向載荷影響下的接頭承載強度估算。該模型能夠可靠地估算當前和先前研究中測試的試件的接頭承載強度。 本研究的結果表明,現有RCS設計指南將最大鋼筋降伏應力限制在490 MPa的規定,可以通過適當修改限制接頭內縱向鋼筋滑移的最小節點深度要求,安全地延長至690 MPa。此外,研究還表明,可以利用RCS節點鋼組件提供的額外約束,安全地降低現有設計指南要求的接頭約束體積比。總結來說,本研究中開發的接頭細節為結構設計師在比例設計複合New RCS系統方面提供了更多靈活性,所有簡化的接頭設計分析程序都可以無縫地整合到現有的國際設計指南中。。 | zh_TW |
dc.description.abstract | Composite moment frame structural systems with Reinforced Concrete (RC) columns and Steel (S) beams are popularly known as RCS systems. These composite RCS systems combine the inherent stiffness and economy of RC columns with the light-weight and long-spanning capability of steel beams. The initial research and development of RCS systems began in the 1980s in the US and Japan. The key to the development of RCS system is the design of beam-column joint detail. However, the joint details available in the existing literature were developed primarily for RC columns having conventional deformed bars with a specified yield stress up to 490 MPa and normal-strength concrete (compressive strength <55 MPa). To achieve optimal structural efficiency for high-rise construction, RC columns require high-strength concrete (compressive strength exceeding 70 MPa) and high-strength reinforcement (specified yield stress of 550-690 MPa). Additionally, existing literature only explores RCS joints with concentrically framing steel beams for square RC columns. Architectural demands, however, often necessitate eccentrically framing beams and columns with a variety of cross-sectional shapes.
Thus, in this research, different types of New RCS beam-column joints were designed. The term “New” refers to the use of high-strength deformed bars (yield stress of 550-690 MPa) along with high-strength concrete (compressive strength > 70 MPa) in RC Columns. The research developed four major sub-categories of New RCS joints which are: I. Classical through-beam type joints for RC columns with square cross-section, II. Through-column type eccentric joints for RC columns with square cross-section, III. Through-beam type joints for RC columns with circular cross-section, and IV. Through-column and through-diaphragm type joints for RC columns with circular cross-section. A total of 11 large-scale beam-column subassembly specimens were designed and experimentally tested to evaluate the behaviour of joints. The experimental results were used to verify the efficacy of proposed joint details. All tested beam-column subassembly specimens except those featuring the problematic bolted web-welded flange splice detail, demonstrated excellent seismic behaviour. In addition to development of New RCS joint details mentioned above, the research also focuses on re-examining the bearing behaviour of RCS joints. Multiple experiments in the past have reported that the classical bearing strength prediction equations available in the literature can overestimate the joint bearing strength. Hence, in this research, two exterior through-beam type New RCS joints were tested with axial load in the column as the varying parameter; to evaluate the bearing behaviour. Thereafter, a detailed analytical model has been devised to estimate the joint bearing strength considering the influence axial load. The proposed model was able to provide reliable estimates joint bearing strength for the specimens tested in the current and previous studies. The findings of this study, indicate that limitation set by existing RCS design guidelines, to restrict the maximum reinforcement yield stress to 490 MPa can be safely extended to 690 MPa, by appropriately modifying the minimum joint depth requirement provision which is meant to limit the slip of longitudinal reinforcement in the joint. Further, the study also indicates that the volumetric ratio of joint confinement can be safely reduced from the existing design guideline requirement, by taking advantage of the additional confinement provided by the steel components of RCS joint. In summary, the joint details developed in this study provide more flexibility to the structural designer in proportioning composite New RCS systems, and all the simplified analytical procedures devised to design the joints can be seamlessly integrated to the existing international design guidelines. | en |
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dc.description.provenance | Made available in DSpace on 2024-09-24T16:10:51Z (GMT). No. of bitstreams: 0 | en |
dc.description.tableofcontents | Certificate i
Abstract – English iii Abstract - Mandarin v Acknowledgements vii Table of Contents ix List of Figures xiii List of Tables xix List of Publications xxi List of Abbreviations xxiii List of Symbols xxv 1. Introduction 1 1.0 Overview 1 1.1 RCS Systems to New RCS Systems 3 1.2 Dissertation’s Contribution to the Development of New RCS Systems 5 1.3 Organization of the Dissertation 7 2. Brief Review of Literature 9 2.0 Overview 9 2.1 The Birth of RCS Systems 9 2.2 Types of RCS Joints 11 2.3 Codes/Guidelines for the Design of RCS Joints 14 2.4 Design of RCS Joints 15 3. Bearing Behaviour of Through-Beam Joints with Square Columns 19 3.0 Overview 19 3.1 Brief Review of Pertinent Literature 20 3.2 Objective 21 3.3 Specimen Design Details 22 3.3.1 Test Specimens 22 3.3.2 Specimen Design Objective 25 3.4 Experimental Setup 29 3.5 Experimental Results and Discussion 31 3.5.1 Summary of Overall Response and Failure Mechanisms 31 3.5.2 Hysteretic Response 35 3.5.3 Joint Deformation Response 38 3.5.4 Strain Response 39 3.5.5 Minimum Joint Depth Provision 41 3.6 Analytical Model for Joint Bearing Strength 43 3.6.1 Comparison of Strength Prediction Equations for Bearing Strength 46 3.6.2 Analytical Joint Strength (Inner + Outer Panel) Prediction 47 3.7 Concluding Remarks 50 4. Through-beam Type Joints for Square Column 53 4.0 Overview 53 4.1 Brief Review of Pertinent Literature 54 4.2 Objective 56 4.3 Overview of the Proposed Specimens 57 4.3.1 Design of Beam-column Subassembly Test Specimens 58 4.4 Experimental Test Setup 71 4.5 Experimental results and discussion 73 4.5.1 Summary of damage progression and failure mechanisms 73 4.5.2 Hysteretic Response 75 4.5.3 Strain Response of Steel Components 78 4.6 Analytical Strength Estimation 81 4.7 Concluding Remarks 82 5. Eccentric Through-Column Type Joint for Square Columns 85 5.0 Overview 85 5.1 Brief Review of Pertinent Literature 87 5.2 Objective 89 5.3 Overview of Specimen Design 90 5.3.1 Design of Beam-column Subassembly Test Specimens 91 5.4 Experimental Test Setup 96 5.5 Experimental Results and Discussion 98 5.5.1 Summary of damage progression and failure mechanisms 98 5.5.2 Hysteretic Response 100 5.5.3 Strain Response 103 5.6 Analytical Model for Joint Shear - Distortion Response 106 5.6.1 Response of Diagonal Concrete Strut 110 5.6.2 Response of Steel Panel (Joint steel cover plate) 111 5.6.3 Comparison of Analytical and Experimental Prediction 111 5.7 Nominal Joint Strength for Structural Design 112 5.8 Concluding Remarks 116 6. Through-Beam Type Joint for Circular Columns 119 6.0 Overview 119 6.1 Brief Review of the Pertinent Literature 120 6.2 Objective 121 6.3 Proposed Joint Designs 123 6.3.1 Overview of the Proposed Joint Design 123 6.3.2 Design of Steel Beam and RC Column 126 6.3.3 Design of proposed joints 126 6.4 Experimental Test Setup 133 6.5 Experimental results and discussion 134 6.5.1 Damage Progression and Failure Mechanisms 134 6.5.2 Hysteretic and Deformation Response 138 6.5.3 Strain response 140 6.6 Analytical Strength Prediction 143 6.7 Concluding Remarks 144 7. Through-Column Type Joint for Circular Columns 147 7.0 Overview 147 7.1 Brief Review of the Pertinent Literature 148 7.2 Objective 150 7.3 Overview of the Proposed Joint Designs 150 7.3.1 Strength Design of Proposed Joint Specimens 156 7.3.2 Design of RC Column and Steel Beam 163 7.3.3 Design of Splice Detail 164 7.3.4 Design of Steel Tube 165 7.3.5 Minimum Joint Depth 165 7.4 Experimental setup 166 7.5 Test Results and Discussion 167 7.5.1 Damage Progression and Failure Mechanisms 169 7.5.2 Hysteretic Response 172 7.5.3 Strain response 174 7.6 Concluding Remarks 178 8. Concluding Remarks 181 8.0 Joint Performance and Design Considerations 181 8.1 Specific Findings by Joint Type 182 8.2 Future Research Directions 184 References 187 | - |
dc.language.iso | en | - |
dc.title | New RCS系統梁柱接頭之設計 | zh_TW |
dc.title | Development of Composite Beam-Column Joints for New RCS Systems | en |
dc.type | Thesis | - |
dc.date.schoolyear | 112-2 | - |
dc.description.degree | 博士 | - |
dc.contributor.oralexamcommittee | 黃世建;周中哲;鄭敏元 ;林克強 | zh_TW |
dc.contributor.oralexamcommittee | Shyh-Jiann Hwang;Chung-Che Chou;Min-Yuan Cheng;Ker-Chun Lin | en |
dc.subject.keyword | 複合結構,高強度鋼筋,大型實驗測試,RCS,承載力,地震設計, | zh_TW |
dc.subject.keyword | Composite structures,High-strength steel reinforcement,Large-scale experimental testing,RCS,Bearing strength,Seismic design, | en |
dc.relation.page | 198 | - |
dc.identifier.doi | 10.6342/NTU202402560 | - |
dc.rights.note | 同意授權(全球公開) | - |
dc.date.accepted | 2024-07-31 | - |
dc.contributor.author-college | 工學院 | - |
dc.contributor.author-dept | 土木工程學系 | - |
顯示於系所單位: | 土木工程學系 |
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