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جستجوی مقالات مرتبط با کلیدواژه « soil-pipe- interaction » در نشریات گروه « عمران »

تکرار جستجوی کلیدواژه «soil-pipe- interaction» در نشریات گروه «فنی و مهندسی»
  • Ehsan Salimi Firoozabad, Mahdi Samadzad, Reza Rafiee-Dehkharghani *
    Faults have large impact on the mechanical behavior of soil in pipeline’s construction. These pipelines have been embedded to supply vital resources such as water, oil, and gas for consumers. To prevent damage, it is highly recommended not to construct pipelines around active faults. However, it is generally inevitable to cross the fault due to wide extension of pipelines. In this paper, a numerical analysis and parametric study on an underground water pipeline in Tehran, Iran, under the fault-induced displacement is presented. It is important to note that the main focus of this study is on elbow components which are the most critical sections in pipeline systems. The effects of crossing angle, distance to elbow and various soil properties on the elbow response are investigated. It is aimed at finding a safe regulation to embed pipelines with the lowest level of risk expected in elbow components after fault movement. The results show that the elbow component does not suffer serious damage when the crossing angle is 90°, provided they are not located in the close vicinity of the fault rupture surface. However, when the crossing angle decreases to 60 and 45 degrees, these components are much more vulnerable.
    Keywords: Buried Pipelines, Elbow, Failure, Fault Movement, Soil-Pipe Interaction}
  • Farimah Ghods, MohammadIman Khodakarami *, Reza Vahdani

    In this paper, by using direct modeling of the soil-pipe line system using finite element modelling (FEM) in OpenSEES software and integration with the particle swarm optimization (PSO) algorithm which is provided in MATLAB software in the reciprocating method, which is repeated in enough epochs, the optimal intervals of the anchor blocks has been gained and the effect of different parameters of pipe diameter, pipe length, burial depth, different soils and different earthquake stimuli on the seismic behavior of pipes having anchor blocks investigated.The results show that the change in the depth of the burial and the diameter of the pipe has no effect on the anchor block optimal intervals. Also, increasing the length of the pipe will cause to increase the proposed optimal distance between the anchor blocks. The levels of earthquake hazard and soil type, as well as the length of the pipe, are factors affecting on the distance between the anchor blocks. The simultaneous effect of softening the soil and increasing the level of the earthquake hazard increases the distance between the anchor blocks.

    Keywords: Buried pipes, Anchor blocks, Soil-Pipe- Interaction, PSO}
  • حسین تحقیقی*، محمد مهدی حاج نوروزی
    خطوط لوله موسوم به شریان های حیاتی در مقایسه با سایر ابنیه متعارف از اهمیت ویژه ای در خدمت رسانی به طیف وسیعی از جامعه برخوردار هستند. با مروری بر خرابی های ایجاد شده در زلزله های گذشته، جابه جایی ناشی از حرکت گسل یکی از مخاطرات اصلی برای لوله های مدفون قلمداد می شود. با توجه به محدودیت روش های تحلیلی، انجام مطالعات شبیه سازی عددی و ارزیابی دقیق تر بازتاب لوله های مدفون ضروری به نظر می رسد. در این تحقیق، اثر جابه جایی قابل انتظار گسل های معکوس بر روی پاسخ خطوط لوله فولادی پیوسته مدفون با استفاده از روش اجزاء محدود سه بعدی تحلیل می شود. در این بررسی، تاثیر عوامل مختلف از جمله زاویه تقاطع لوله با گسل، زاویه شیب گسل، مشخصات خاک پیرامون لوله، عمق دفن و خصوصیات سطح خارجی لوله مطالعه شده است. تحلیل رفتار لوله به روش استاتیکی غیرخطی و با لحاظ نمودن اثر اندرکنش لوله و خاک صورت می گیرد. در ادامه، راهکارهای متعددی برای کنترل و یا کاهش میزان خرابی در خط لوله ناشی از اثر گسلش ارائه می گردد.
    کلید واژگان: اندرکنش خاک - لوله, گسل معکوس, روش اجزاء محدود, عملکرد لوله, تحلیل غیرخطی}
    Mohammad Mehdi Hajnorouzi, Hoseiin Tahghighi *
    Response evaluation of buried steel pipelines at active fault crossings is among the top seismic design priorities. This is because the axial and bending strains induced to the pipeline by step-like permanent ground deformation may become fairly large and lead to rupture, either due to tension or due to buckling. Surface faulting has accounted for many pipe breaks during past earthquakes, such as the 1971 San Fernando (USA), the 1995 Kobe (Japan), the 1999 Izmit (Turkey), the 1999 Chi-Chi (Taiwan) events and more recently, the 2004 Mid Niigata earthquake in Japan. Literature review suggests that previous researches in the analysis of pipeline subjected to fault motion have been mainly focused on the case of strike-slip fault. Certainly, a 3D large scale finite element analysis is a powerful method and allows a rigorous solution of the problem with minimizing the number of necessary approximations. The aim of present work is to examine and compare the mechanical response of continuous (welded) buried steel pipelines crossing active reverse faults by three dimensional FEM. General-purpose finite element program ABAQUS is employed to simulate accurately the mechanical behaviour of the steel pipe, the surrounding soil medium and their interaction, considering the non-linear geometry of the soil and the pipe through a large-strain description of the pipeline-soil system and the inelastic material behaviour for both the pipe and the soil. For 3D FEM continuum model, an elongated prismatic model is considered, where the pipeline is embedded in the soil. Four-node reduced-integration shell elements (type S4R) are employed for modeling the pipeline cylinder, whereas eight-node reduced-integration brick elements (C3D8R) are used to simulate the surrounding soil. The analysis is conducted in two steps; gravity loading is applied first and subsequently fault movement is imposed. Seismic fault plane is assumed to be located at the middle cross-section of the pipeline. The steel pipeline was of the API5L-X65 type, with a bi-linear elasto-plastic stress–strain curve given by Ramberg-Osgood model. The mechanical behavior of soil material is described through an elastic–perfectly plastic Drucker-Prager constitutive model. A contact algorithm is considered to simulate rigorously soil–pipeline interaction which accounts for large strains and displacements. The analysis proceeds using a displacement-controlled scheme, which increases gradually the fault displacement. Quasi-static analyses were carried out by applying fault offset components to soil block in the continuum FE models through a smooth loading function of time. Buried steel pipelines have been analyzed for reverse fault motion to study the influence of design parameters viz. crossing angle, backfill properties, burial depth, pipe surface property, pipe material and cross-section properties on maximum compressive strain, and buckling of the pipeline. The following main conclusions were obtained based on the studied response of pipeline subjected to reverse fault motion using the FEM model.
    - For the steel pipeline subjected to reverse fault motion, compressive strain was always found to be more critical than the tensile strain.
    - The capacity of the buried pipeline to accommodate the reverse fault offset could be increased by adopting: a loose granular backfill, a shallower burial depth, near-parallel orientation with respect to the fault line, a smooth and hard surface coating, and increasing pipe-wall thickness.
    - Finally, the obtained information can provide either guidance for developing improved earthquake-resistant design or countermeasures to mitigate damage to pipelines crossing active reverse faults.
    Keywords: Soil-pipe interaction, FEM, Reverse fault, Performance, Non-Linear Analysis}
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