• 제목/요약/키워드: Dynamic Deformation

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구조물-비구조요소 2자유도 결합시스템 해석을 통한 비구조요소 내진설계변수 평가 (Evaluation of Seismic Design Parameters for Nonstructural Components Based on Coupled Structure-Nonstructural 2-DOF System Analysis)

  • 배창준;이철호;전수찬
    • 한국지진공학회논문집
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    • 제26권3호
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    • pp.105-116
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    • 2022
  • Seismic demand on nonstructural components (NSCs) is highly dependent on the coupled behavior of a combined supporting structure-NSC system. Because of the inherent complexities of the problem, many of the affecting factors are inevitably neglected or simplified based on engineering judgments in current seismic design codes. However, a systematic analysis of the key affecting factors should establish reasonable seismic design provisions for NSCs. In this study, an idealized 2-DOF model simulating the coupled structure-NSC system was constructed to analyze the parameters that affect the response of NSCs comprehensively. The analyses were conducted to evaluate the effects of structure-NSC mass ratio, structure, and NSC nonlinearities on the peak component acceleration. Also, the appropriateness of component ductility factor (Rp) given by current codes was discussed based on the required ductility capacity of NSCs. It was observed that the responses of NSCs on the coupled system were significantly affected by the mass ratio, resulting in lower accelerations than the floor spectrum-based response, which neglected the interaction effects. Also, the component amplification factor (ap) in current provisions tended to underestimate the dynamic amplification of NSCs with a mass ratio of less than 15%. The nonlinearity of NSCs decreased the component responses. In some cases, the code-specified Rp caused nonlinear deformation far beyond the ductility capacity of NSCs, and a practically unacceptable level of ductility was required for short-period NSCs to achieve the assigned amount of response reduction.

Modeling of a rockburst related to anomalously low friction effects in great depth

  • Zhan, J.W.;Jin, G.X.;Xu, C.S.;Yang, H.Q.;Liu, J.F.;Zhang, X.D.
    • Geomechanics and Engineering
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    • 제29권2호
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    • pp.113-131
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    • 2022
  • A rockburst is a common disaster in deep-tunnel excavation engineering, especially for high-geostress areas. An anomalously low friction effect is one of the most important inducements of rockbursts. To elucidate the correlation between an anomalously low friction effect and a rockburst, we establish a two-dimensional prediction model that considers the discontinuous structure of a rock mass. The degree of freedom of the rotation angle is introduced, thus the motion equations of the blocks under the influence of a transient disturbing force are acquired according to the interactions of the blocks. Based on the two-dimensional discontinuous block model of deep rock mass, a rockburst prediction model is established, and the initiation process of ultra-low friction rockburst is analyzed. In addition, the intensity of a rockburst, including the location, depth, area, and velocity of ejection fragments, can be determined quantitatively using the proposed prediction model. Then, through a specific example, the effects of geomechanical parameters such as the different principal stress ratios, the material properties, a dip of principal stress on the occurrence form and range of rockburst are analyzed. The results indicate that under dynamic disturbance, stress variation on the structural surface in a deep rock mass may directly give rise to a rockburst. The formation of rockburst is characterized by three stages: the appearance of cracks that result from the tension or compression failure of the deformation block, the transformation of strain energy of rock blocks to kinetic energy, and the ejection of some of the free blocks from the surrounding rock mass. Finally, the two-dimensional rockburst prediction model is applied to the construction drainage tunnel project of Jinping II hydropower station. Through the comparison with the field measured rockburst data and UDEC simulation results, it shows that the model in this paper is in good agreement with the actual working conditions, which verifies the accuracy of the model in this paper.

초음파나노표면개질 다중충격 조건에서의 잔류응력 예측을 위한 유한요소 피닝해석 영역 결정 (Determination of Peening Area for Finite Element Residual Stress Analysis of Ultrasonic Nanocrystal Surface Modification under Multiple Impact Conditions)

  • 석태현;박승현;허남수
    • 한국압력기기공학회 논문집
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    • 제17권2호
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    • pp.145-156
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    • 2021
  • Ultrasonic Nanocrystal Surface Modification (UNSM) is a peening technology that generates elastic-plastic deformation on the material surface to which a static load of a air compressor and a dynamic load of ultrasonic vibration energy are applied by striking the material surface with a strike pin. In the UNSM-treated material, the structure of the surface layer is modified into a nano-crystal structure and compressive residual stress occurs. When UNSM is applied to welds in a reactor coolant system where PWSCC can occur, it has the effect of relieving tensile residual stress in the weld and thus suppressing crack initiation and propagation. In order to quantitatively evaluate the compressive residual stress generated by UNSM, many finite element studies have been conducted. In existing studies, single-path UNSM or UNSM in a limited area has been simulated due to excessive computing time and analysis convergence problems. However, it is difficult to accurately calculate the compressive residual stress generated by the actual UNSM under these limited conditions. Therefore, in this study, a minimum finite element peening analysis area that can reliably calculate the compressive residual stress is proposed. To confirm the validity of the proposed analysis area, the compressive residual stress obtained from the experiment are compared with finite element analysis results.

A simplified model proposal for non-linear analysis of buildings

  • Abdul Rahim Halimi;Kanat Burak Bozdogan
    • Earthquakes and Structures
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    • 제24권5호
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    • pp.353-364
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    • 2023
  • In this study, a method has been proposed for the static and dynamic nonlinear analysis of multi-storey buildings, which takes into account the contribution of axial deformations in vertical load-bearing elements, which are especially important in tall and narrow structures. Shear deformations on the shear walls were also taken into account in the study. The presented method takes into account the effects that are not considered in the fishbone and flexural-shear beam models developed in the literature. In the Fishbone model, only frame systems are modeled. In the flexural shear beam model developed for shear wall systems, shear deformations and axial deformations in the walls are neglected. Unlike the literature, with the model proposed in this study, both shear deformations in the walls and axial deformations in the columns and walls are taken into account. In the proposed model, multi-storey building is represented as a sandwich beam consisting of Timoshenko beams pieced together with a double-hinged beam. At each storey, the total moment capacities of the frame beams and the coupled beams in the coupled shear walls are represented as the equivalent shear capacity. On the other hand, The sums of individual columns and walls moment at the relevant floor level are represented as equivalent moment capacity at that floor level. At the end of the study, examples were solved to show the suitability of the proposed method in this study. The SAP2000 program is employed in analyses. In a conclusion, it is observed that among the solved examples, the proposed sandwich beam model gives good results. As can be seen from these results, it is seen that the presented method, especially in terms of base shear force, gives very close results to the detailed finite element method.

Thermodynamical bending analysis of P-FG sandwich plates resting on nonlinear visco-Pasternak's elastic foundations

  • Abdeldjebbar Tounsi;Adda Hadj Mostefa;Abdelmoumen Anis Bousahla;Abdelouahed Tounsi;Mofareh Hassan Ghazwani;Fouad Bourada;Abdelhakim Bouhadra
    • Steel and Composite Structures
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    • 제49권3호
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    • pp.307-323
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    • 2023
  • In this research, the study of the thermoelastic flexural analysis of silicon carbide/Aluminum graded (FG) sandwich 2D uniform structure (plate) under harmonic sinusoidal temperature load over time is presented. The plate is modeled using a simple two dimensional integral shear deformation plate theory. The current formulation contains an integral terms whose aim is to reduce a number of variables compared to others similar solutions and therefore minimize the computation time. The transverse shear stresses vary according to parabolic distribution and vanish at the free surfaces of the structure without any use of correction factors. The external load is applied on the upper face and varying in the thickness of the plates. The structure is supposed to be composed of "three layers" and resting on nonlinear visco-Pasternak's-foundations. The governing equations of the system are deduced and solved via Hamilton's principle and general solution. The computed results are compared with those existing in the literature to validate the current formulation. The impacts of the parameters (material index, temperature exponent, geometry ratio, time, top/bottom temperature ratio, elastic foundation type, and damping coefficient) on the dynamic flexural response are studied.

Cost-effectiveness dynamics and vibration of soft magnetoelastic plate near rectangular current-carrying conductors

  • AliAsghar Moslemi Beirami;Vadim V. Ponkratov;Amir Ebrahim Akbari Baghal;Barno Abdullaeva;Mohammadali Nasrabadi
    • Structural Engineering and Mechanics
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    • 제88권2호
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    • pp.159-168
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    • 2023
  • Cost-effective high precision hybrid elements are presented in a hierarchical form for dynamic analysis of plates. The costs associated with controlling the vibrations of ferromagnetic plates can be minimized by adequate determination of the amount of electric current and magnetic field. In the present study, the effect of magnetic field and electric current on nonlinear vibrations of ferromagnetic plates is investigated. The general form of Lorentz forces and Maxwell's equations have been considered for the first time to present new relationships for electromagnetic interaction forces with ferromagnetic plates. In order to derive the governing nonlinear differential equations, the theory of third-order shear deformations of three-dimensional plates has been applied along with the von Kármán large deformation strain-displacement relations. Afterward, the nonlinear equations are discretized using the Galerkin method, and the effect of various parameters is investigated. According to the results, electric current and magnetic field have different effects on the equivalent stiffness of ferromagnetic plates. As the electric current increases and the magnetic field decreases, the equivalent stiffness of the plate decreases. This is a phenomenon reported here for the first time. Furthermore, the magnetic field has a more significant effect on the steady-state deflection of the plate compared to the electric current. Increasing the magnetic field and electric current by 10-times results in a reduction of about 350% and an increase of 3.8% in the maximum steady-state deflection, respectively. Furthermore, the nonlinear frequency decreases as time passes, and these changes become more intense as the magnetic field increases.

SEN6 마그네슘합금의 미세조직과 인장 특성에 미치는 압출비와 압출 온도의 영향 (Effects of Extrusion Ratio and Extrusion Temperature on Microstructure and Tensile Properties of SEN6 Magnesium Alloy)

  • 김현지;이지윤;진상철;박성혁
    • 소성∙가공
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    • 제33권3호
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    • pp.178-184
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    • 2024
  • In this study, we investigated the effects of extrusion ratio and extrusion temperature on the microstructure and tensile properties of extruded Mg-6Al-0.3Mn-0.3Ca-0.2Y (SEN6) alloy. As the extrusion ratio and temperature increase, dynamic recrystallization during extrusion is promoted, leading to the formation of a fully recrystallized microstructure with increased grain size. Additionally, the increases in extrusion ratio and temperature lead to texture strengthening, exhibiting a higher maximum texture intensity. The extruded materials contain three types of secondary phases, i.e., Al8Mn4Y, Al2Y, and Al2Ca, with irregular or polygonal shapes. The quantity, size, distribution, and area fraction of the second-phase particles are nearly identical between the two materials. Despite its larger grain size, the tensile yield strength of the material extruded at 450 ℃ and an extrusion ratio of 25 (450-25) is higher than that of the material extruded at 325 ℃ and an extrusion ratio of 10 (325-10), which is mainly attributed to the stronger texture hardening effect of the former. The ultimate tensile strength is similar in the two materials, owing to the higher work hardening rate in the 325-10 extrudate. Despite differences in grain size and recrystallization fraction, numerous twins are formed throughout the specimen during tensile deformation in both materials; consequently, the two materials exhibit nearly the same tensile elongation.

파랑-지반-해안구조물의 상호작용에 기인하는 해저지반과 구조물의 동적응답에 관한 수치시뮬레이션 (Numerical Simulation on Seabed-Structure Dynamic Responses due to the Interaction between Waves, Seabed and Coastal Structure)

  • 이광호;백동진;김도삼;김태형;배기성
    • 한국해안·해양공학회논문집
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    • 제26권1호
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    • pp.49-64
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    • 2014
  • 해안 및 해양구조물 하부의 해저지반에 고파랑이 장시간 작용하는 경우 과잉간극수압(진동과잉간극수압과 잔류과잉간극수압의 합)이 크게 발생할 수 있고, 이어지는 유효응력의 감소에 따라 해저지반에 액상화가 발생될 수 있다. 일단, 지반액상화가 발생 및 진행되면 구조물의 침하 혹은 전도에 의해 종국적으로 구조물이 파괴될 가능성이 높아진다. 특히, 중력식구조물이 설치된 하부지반내에서는 파작용에 의한 큰 과잉간극수압과 작은 유효응력으로 부터 발생되는 지반액상화의 여부를 정확히 예측할 필요가 있고, 이러한 지반의 동적거동 특성은 설계에 충분히 반영되어야 한다. 본 연구에서는 2차원수치파동수로를 불규칙파동장으로 확장한 수치해석법을 적용하여 해저지반상 및 구조물의 표면상에서 시간변동의 동파압과 유속에 의한 전단응력을 산정하고, 그 결과를 지반의 동적거동을 정밀하게 재현할 수 있는 해저지반응답용의 수치해석프로그램 FLIP(Finite element analysis LIquefaction Program)에 입력치로 적용하여 해저지반내에서 과잉간극수압 및 유효응력의 시공간적인 변화, 이로 인한 액상화, 그리고 지반의 시간변형과 구조물의 시간변위를 정량적으로 평가한다. 이로부터 해저면상에서 전단응력을 고려한 경우 구조물 전면의 하부해저지반에서 액상화 가능성을 확인할 수 있었고, 액상화된 토립자는 흐름에 저항력을 상실하므로 세굴로 이어질 것으로 판단된다. 따라서, 태풍시 고파랑의 작용이 장시간 지속되는 경우 구조물의 전면에서는 지반액상화로 인한 지반강도의 현저한 저하로 구조물의 진동변위가 더욱 크게 발생되고, 더불어 구조물의 안정성에 영향을 미칠 것으로 예상된다.

Ovality가 세그먼트 라이닝의 동적 거동 특성에 미치는 영향 (The effect of tunnel ovality on the dynamic behavior of segment lining)

  • 이경주;송기일
    • 한국터널지하공간학회 논문집
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    • 제25권6호
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    • pp.423-446
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    • 2023
  • 쉴드 TBM 터널 라이닝은 세그먼트와 링으로 분절되어 있다. 2-링 빔-스프링 모델은 세그먼트 라이닝의 링과 세그먼트의 연결부 경계조건을 통해 불연속성을 고려하며 단면 설계 시 주로 활용하는 모델링 방법이다. 그러나 3차원 해석이 필요한 경우 대체로 Segmentation에 대한 고려 없이 연속체 라이닝으로 간주하여 세그먼트 라이닝에 대한 응력과 변위를 검토하는 경향이 일반적이다. 본 연구는 세그먼트와 링의 접촉면에 Coulomb의 마찰 법칙에 근거한 Shell interface element를 적용하여 세그먼트 간 계면 거동하는 모델링으로 지진 시 세그먼트 라이닝의 응력과 변위에 대한 응답 특성을 연구한다. 세그먼트 라이닝은 건설 과정에서 Ovaling 변형이 발생된다. 국내 세그먼트 라이닝의 Ovaling 변형에 대한 관리 기준은 없다. 스웨덴이나 중국의 경우 내경 7.0 m의 라이닝인 경우 5~10‰의 Ovality 기준을 갖고 있으나 이는 현실적으로 실현하기 어려운 기준치이다. 본 연구는 Shell interface element를 활용한 세그먼트 라이닝 모델링을 통해 지진 시 라이닝에 발생되는 응력과 변위의 특성을 연속체 모델링 결과와 비교하여 Segmentation이 고려된 라이닝의 지진에 대한 응답 특성을 연구하고 이를 통해 세그먼트 라이닝의 Ovality 기준과 의미를 연구한다. 연속체 라이닝과 세그먼트 라이닝의 지진 시 응력과 변위의 분포 양상은 유사하였다. 그러나 응력과 변위의 최댓값은 세그먼트 라이닝과 차이를 보여주었다. Shell로 모델링 된 연속체 라이닝의 지진 시 응력 분포는 3차원 원통형 형상에 연속성을 갖는 응력 분포를 보이지만 세그먼트 라이닝은 분절된 세그먼트 외측으로 응력이 집중되었고 세그먼트와 링의 접촉면이 집중되는 위치에서 가장 큰 응력이 발생되었다. 이러한 단속적이고 국부적 응력 분포는 라이닝의 Ovality가 클수록 지진 시 더욱더 국부적 집중도가 커진다. 응력 분포가 급격하게 커지는 Ovality는 150‰ 정도에서 발생되기 시작했으며 그보다 작은 Ovality 에서는 원형 단면 라이닝에서 발생되는 응력보다 작은 응력이 발생되었다. 그러나 Ovality 150‰는 실제 라이닝에서 실현될 수 없는 비현실적 값이다. 따라서 세그먼트 라이닝의 Ovality는 심도에 따라 증가될 수 있으나 지진 하중에 대한 안정성에는 큰 영향을 미치지 않는다. 그러나 터널의 단면 확보 및 품질관리를 위해서는 Ovality에 대한 계측과 관리가 요구된다.

함수율(含水率)이 옥수수립(粒)의 압축특성(壓縮特性)에 미치는 영향(影響) (The Effect of Moisture Content on the Compressive Properties of Korean Corn Kernel)

  • 이한만;김성래
    • 농업과학연구
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    • 제13권1호
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    • pp.113-122
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    • 1986
  • 옥수수 수확(收穫)의 기계화(機械化) 사업(事業)을 촉진(促進)시키기 위(爲)하여, 옥수수립(粒)의 제반압축특성(諸般壓縮特性)을 규명(糾明)하며 모든 기계화(機械化) 작업도정(作業過程)에서 손상율(損傷率)이 최소(最小)로 되는 기계(機械)의 설계자료(設計資料)를 얻고자 함수율(含水率)이 옥수수립(粒)의 압축특성(壓縮特性)에 미치는 영향(影響)을 구명(究明)하기 위(爲)하여 국내재배(國內栽培)한 3품종(品種)의 옥수수를 공시재료(供試材料)로 압축방향(壓縮方向)은 평면(平面), 측면(側面), 직립(直立)의 3 수준(水準), 함수율(含水率)은 약(約) 13, 17, 21, 25%(w.b)의 4수준(水準)으로 하고 재하속도(載荷速度) 1.125mm/min의 준(準) 정하량(靜荷重)에서 Straingage system을 이용(利用), 평판축시험(平板縮試驗)을 실시(實施)하여 옥수수의 강복점(降伏點) 및 파괴점(破壞點)에 대(對)한 압축응력(壓縮應力), 변형(變形), 에너지 및 강성계수(剛性係數)를 측정(測定), 분석(分析)하였으며 그 결과(結果)를 요약(要約)하면 다음과 같다. 1. 옥수수의 함수율(含水率)이 약(約)12.5~24.5%(w.b)의 범위(範圍)일 때 평면위치(平面位置)의 강복하중(降伏荷重)은 13.63~26.73kg, 최대압축강도(最大壓縮强度)는 21.55~47.65kg 으로 함수율(含水率)이 약(約) 17% 일 때 최소(最小), 약(約) 21% 일 때 최대(最大)였으며, 측면(側面) 강복하중(降伏重荷)은 13.58~6.70kg 이었고, 측면(側面)의 최대압축강도(最大壓縮强度) 16.42~7.82kg은 직립(直立)의 최대압축강도(最大壓縮强度)인 18.55~9.05kg 보다 약간 작게 나타났다. 2. 함수율(含水率)이 약(約) 12.5~24.5%의 범위(範圍)에서, 강복변형(降伏變形)은 0.43~1.37mm, 파괴변형(破壞變形)은 0.70~2.66mm로 함수율(含水率)에 비례(比例) 변형(變形)하였으며 함수율(含水率)이 높을수록 변형율(變形率)도 증가(增加)하였다. 3. 옥수수의 함수율(含水率)이 약(約) 12.5~24.5%일 때, 탄성(彈性)에너지는 $2.60{\sim}8.57kg{\cdot}mm$, 인성에너지는 $6.41{\sim}34.36.kg{\cdot}mm$로 함수율(含水率)이 증가(增加)할수록 측면(側面)의 인성에너지는 증가(增加)하였고, 직립(直立)의 경우에 감소(減少)하여 22~23%의 함수율(含水率) 구간(區間)에서 측면(側面)과 직립(直立)에 압축(壓縮)에 관(關)한 인성에너지의 값은 동일(同一)하였다. 4. 강성계수(剛性系數)는 함수율(含水率)의 증가(增加)에 따라 감소(減少)하였고, 측면(側面)의 32.07~5.86kg/mm 보다 평면압축(平面壓縮)에서 42.12~18.68kg/mm로 컸으며 수원(水原)19호(號)가 부여계통(扶餘系統)보다 크게 나타났다. 5. 옥수수는 평면(平面)에 관(關)한 압축특성(壓縮特性)이 각종(各種) 기계(機械) 설계(設計)의 자료(資料)로 가장 중요(重要)하며, 함수율(含水率)이 약(約) 12.5~17%(w.b)일 때 최소(最少)의 분쇄(粉碎)에너지가 소요(所要)되며, 약(約) 19~24%(w.b)의 함수율(含水率)에서 옥수수를 조작(操作)할 때 곡립손상(穀粒損傷)을 감소(減少)시킬 수 있을 것으로 사료(思料)된다.

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