نشریه علمی شهر ایمن

نشریه علمی شهر ایمن

بررسی تاثیرات متقابل گسلش سطحی و فونداسیون صلب بر یکدیگر در طراحی لرزه ای ساختمان های نزدیک گسل

نوع مقاله : مقاله پژوهشی

نویسندگان
1 دانشکده مهندسی عمران و محیط زیست، دانشگاه صنعتی امیرکبیر، تهران، ایران
2 کارشناسی ارشد، دانشکده عمران و محیط زیست، دانشگاه صنعتی امیرکبیر، تهران، ایران
3 دانشکده شهرسازی و معماری، دانشگاه صنعتی مالک اشتر تهران، تهران، ایران
چکیده
وقوع زمین‌لرزه‌های بزرگ در نزدیکی شهرهایی که در حوزه نزدیک قرار دارند غیر قابل انکار است. زمین‌لرزه‌ها در حوزه نزدیک اثرات و ویژگی‌های بسیار متفاوتی، نسبت به زمین‌لرزه‌ها در حوزه دور دارند. با توجه به این‌که گسلش سطحی اثرات مخرب و غیر قابل جبرانی را برای سازه‌های نزدیک گسل به‌وجود می‌آورند و در آیین‌نامه‌ها کمتر به آن توجه شده است به این منظور نحوه طراحی سازه برای رسیدن به عملکرد مناسب در برابر این پدیده از اهمیت بالایی برخوردار است. در این پژوهش سعی شده است به بررسی و ارزیابی پارامترهایی نظیر مکانیزم گسل، پهنه گسلی، گسلش سطحی و نیز تعداد طبقات و موقعیت فونداسیون در طراحی لرزه‌ای ساختمان‌های نزدیک گسل پرداخته شود. برای این عمل ابتدا به نحوه انتشار گسلش در خاک زیر سازه و اثرات آن بر روی سازه با توجه به تعداد طبقات مختلف دیده شده است. در پایان مشاهده گردید با افزایش تعداد طبقات در خاک‌های ماسه‌ای مورد مطالعه گسلش به بیرون فونداسیون منحرف شده و در نتیجه آن، میزان دوران پی با توجه به خاک زیر آن کاهش می‌یابد. همچنین مشاهده می‌شود افزایش جابه‌جایی گسل در میزان دوران تأثیر بسزایی داشته به طوری که با افزایش جابه‌جایی قائم از 5/0 به 5/1 متر، دوران فونداسیون تا 4 برابر افزایش داشته است.
کلیدواژه‌ها
موضوعات

عنوان مقاله English

Investigating the mutual effects of surface faulting and rigid foundation on each other on in the seismic design of buildings near fault

نویسندگان English

Mohsen Tehrani Zadeh Haghighifar 1
Ahmad Mousavi 2
sajad bazgir 3
1 Department of Civil and Environmental Engineering, Amirkabir University of Technology, Tehran, Iran
2 Amir kabir University of Technology
3 Department of Passive Defence Engineering , Malek Ashtar University of Technology, Tehran, Iran
چکیده English

The occurrence of great earthquakes in the vicinity of the cities which are in near field is undeniable. Near-field earthquakes have very different effects and characteristics than far-field earthquakes. Considering that the surface faulting causes destructive and irreparable effects for structures near the fault and less attention is paid to it in the regulations, for this purpose, how to design the structure to achieve proper performance against this phenomenon is of great importance. in this study it has been tried to study and evaluate the parameters such as fault mechanism, fault zone, surface faulting, story numbers and the position of the foundation in the seismic design of buildings near the fault. For this purpose, the fault propagation in the substructure soil and its effects on the structure have been investigated according to the number of different story. In the end, it has been observed that with increasing the number of story in the studied sandy soils, the fault deviates out of the foundation and as a result, the amount of foundation rotation decreases with respect to the soil beneath it. It is also observed that the increase in fault displacement has a significant effect on the rotation so that with the increase in vertical displacement from 0.5 to 1.5 meters, the foundation rotation has increased up to 4 times.
Introduction
Earthquakes primarily cause ground shaking and ruptures, both of which are pivotal elements contributing to a number of minimal or extensive damages to buildings, or other structures such as bridges and so on and so forth. Apart from seismic shaking, ground ruptures, and visible displacements on the surface along the fault line, earthquakes can impact structures in their path. This can potentially lead to the collapse of these structures. Ground ruptures pose a significant and potential risk to various structures, including bridges, dams, nuclear power plants, and residential buildings. Surface faulting poses a significant risk that necessitates careful consideration during the design or evaluation of structures situated in areas with shallow active faults. In areas where innovative construction methods are not employed, the extent of damage and, consequently, the mortality rate tends to be higher compared to areas where strict building regulations are followed. This underscores the need for more rigorous enforcement of construction standards. Therefore, efforts have been made to set regulatory guidelines by studying the detrimental impacts of surface faulting phenomena.
Methodology
In this study, ABAQUS software which is a suite for finite element analysis has been used for simulation. Previous studies indicate that this software has proven effective in simulating the surface faulting distribution within the soil. In the current study, Abaqus software has been used to conduct a static analysis, examining the impact of various factors on the seismic design of buildings. These factors include surface faulting, the number of floors, fault mechanism, and the width of the fault zone. Moreover, in order to estimate fault propagation path, Mohr-Coulomb theory has been employed for soil modeling. To identify the location of the fault rupture and the foundation’s position relative to the fault, the parameter S/B is defined. Here, ‘S’ represents the distance from the fault rupture to its endpoint on the ground surface in the absence of a foundation. For the model analysis, we have considered three scenarios for this parameter: 0, 0.5, and 1.

Results and discussion
In this study, a rigid foundation is considered for the analysis. Also, Abaqus software was used to simulate the foundation and two types of soil (dense and loose sand). The goal was to examine the impacts of surface faulting with various vertical shifts (0.5 and 1.5 meters) on the degree of foundation rotation. This was done by considering the foundation’s location in relation to the surface faulting when the foundation was absent. The slope faulting considered in this study was 45 degrees. Moreover, A dip-slip fault mechanism has been considered, and its impacts on the foundation were observed.

Conclusion
The key findings of this study are as follows:
As the number of floors increases, the degree of rotation diminishes. The greatest rotation is observed when the S/B parameter equals 0. However, even when S/B equals 1, there is a non-zero rotation and a minimum value, the opposite is also true.
The condition associated with S/B=1 is the most critical. Nevertheless, as the density of the sandy soil increases, a reduction in the degree of foundation rotation is observed, irrespective of the number of floors. Put differently, as the slope of the fault increases, the degree of foundation rotation diminishes in the critical condition.
Due to the stiffness of the soil, it is prevented from rupturing beneath the foundation when surface faulting occurs, therefore, the foundation subsides minimally or not at all.

کلیدواژه‌ها English

surface faulting
Near-field
fault mechanism
fault zone
story numbers
foundation rotation
position of the foundation
[1] Ben-zion, Yehuda; Sammis, Charles. (2009). Mechanics, Structure and Evolution of Fault Zones. Pure & Applied Geophysics; Basel, Vol. 166, Iss. 10-11, 1533-1536.
[2] Bonilla, M.G., (1982). Evaluation of potential surface faulting and other tectonic deformation. U.S. Geological Survey Open-File Report 82-732, 58 p.
[3] C. Lazarte, J. Bray, A. Johnson and R. Lemmer. (2000) "Surface Breakage of the 1992 Landers Earthquake and Its Effects on Structures," Bulletin of the Seismological Society, pp. 547-561, 1994.
[4] F. Garcia, J. Bray. (2022). "Discrete element analysis of earthquake surface fault rupture through layered media" Soil Dynamics and Earthquake Engineering, Volume 152, 107021.
[5] I. Anastasopoulos and G. Gazetas. (2007) "Foundation–Structure Systems over a Rupturing Normal Fault: Part II. Analysis of the Kocaeli Case Histories," Bull Earthquake Eng, pp. 277-301.
[6] J. Bray. (2001). "Developing Mitigation Measures for the Hazards Associated with Earthquake Surface Fault Rupture," Seismic Fault Induced Failures, pp. 55-79.
[7] J. Bray. (2009). "Earthquake Surface Fault Rupture Design Considerations," in Sixth Inter. Conf. on Urban Earthquake Engineering, Center for Urban EQ Engineering, Tokyo.
[8] Ji-Sen Shi, Dao-Sheng Ling, Cheng-Bao Hu and Fu-bin Tu, "Study on reverse fault rupture propagation through sand with inclined ground surface" Engineering Geology, Volume 276, 105768.
[9] M. Bonilla, "Surface Faulting and Related Effects," Earthquake Engineering, pp. 47-74, 1970.
[10] M. Tehranizadeh and S. Moradi. (2017). "Investigation on The Effects of Foundation Stiffness on Surface Fault Rupture in Reverse Dip-Slip Faults," Civil Engineering, Vols. 33-2, no. 2/2, pp. 61-67. [In persian]
[11] N. Oettle, J. Bray and D. Dreger. (2015) "Dynamic Effects of Surface Fault Rupture Interaction with Structures," Soil Dynamics and Earthquake Engineering, pp. 37-47.
[12] R. Van Dissen and et.al. (2019) "IMPACTS OF SURFACE FAULT RUPTURE ON RESIDENTIAL STRUCTURES DURING THE 2016 Mw 7.8 KAIKŌURA EARTHQUAKE, NEW ZEALAND,"Bulletin of the New Zealand Society for Earthquake Engineering, vol. 52(1). Pp. 1-22.
[13] V. Gioncu and F. Mazzolani, Earthquake Engineering for Structural Design, London: Spon Press. 1st edition, 2011.
[14] W. Lettis and and 21 other authors. (2000). "Surface Fault Rupture," Earthquake Spectra, pp. 11-52.