• 제목/요약/키워드: thermal-mechanical coupling analysis

검색결과 73건 처리시간 0.028초

Hygrothermal sound radiation analysis of layered composite plate using HFEM-IBEM micromechanical model and experimental validation

  • Binita Dash;Trupti R Mahapatra;Punyapriya Mishra;Debadutta Mishra
    • Structural Engineering and Mechanics
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    • 제89권3호
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    • pp.265-281
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    • 2024
  • The sound radiation responses of multi-layer composite plates subjected to harmonic mechanical excitation in hygrothermal environment is numerically investigated. A homogenized micromechanical finite element (FE) based on the higher-order mid-plane kinematics replicating quadratic function as well as the through the thickness stretching effect together with the indirect boundary element (IBE) scheme has been first time employed. The isoparametric Lagrangian element (ten degrees of freedom per node) is used for discretization to attain the hygro-thermo-elastic natural frequencies and the modes of the plate via Hamilton's principle. The effective material properties under combined hygrothermal loading are considered via a micromechanical model. An IBE method is then implemented to attain structure-surrounding coupling and the Helmholtz wave equation is solved to compute the sound radiation responses. The effectiveness of the model is tested by converging it with the similar analytical/numerical results as well as the experimentally acquired data. The present scheme is further hold out for solving diverse numerical illustrations. The results revealed the relevance of the current higher-order FE-IBE micromechanical model in realistic estimation of hygro-thermo-acoustic responses. The geometrical parameters, volume fraction of fiber, layup, and support conditions alongside the hygrothermal load is found to have significant influence on the vibroacoustic characteristics.

Wave propagation and vibration of FG pipes conveying hot fluid

  • Zhang, Yi-Wen;She, Gui-Lin
    • Steel and Composite Structures
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    • 제42권3호
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    • pp.397-405
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    • 2022
  • The existing researches on the dynamics of the fluid-conveying pipes only focus on stability and vibration problems, and there is no literature report on the wave propagation of the fluid-conveying pipes. Therefore, the purpose of this paper is to explore the propagation characteristics of longitudinal and flexural waves in the fluid-conveying pipes. First, it is assumed that the material properties of the fluid-conveying pipes vary based on a power function of the thickness. In addition, it is assumed that the material properties of both the fluid and the pipes are closely depended on temperature. Using the Euler-Bernoulli beam equation and based on the linear theory, the motion equations considering the thermal-mechanical-fluid coupling is derived. Then, the exact expressions of phase velocity and group velocity of longitudinal waves and bending waves in the fluid-conveying pipes are obtained by using the eigenvalue method. In addition, we also studied the free vibration frequency characteristics of the fluid-conveying pipes. In the numerical analysis, we successively studied the influence of temperature, functional gradient index and liquid velocity on the wave propagation and vibration problems. It is found that the temperature and functional gradient exponent decrease the phase and group velocities, on the contrary, the liquid flow velocity increases the phase and group velocities. However, for vibration problems, temperature, functional gradient exponent parameter, and fluid velocity all reduce the natural frequency.

Characterization of the brittleness of hard rock at different temperatures using uniaxial compression tests

  • Chen, Guoqing;Li, Tianbin;Wang, Wei;Guo, Fan;Yin, Hongyu
    • Geomechanics and Engineering
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    • 제13권1호
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    • pp.63-77
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    • 2017
  • The failure mechanism of a deep hard rock tunnel under high geostress and high geothermalactivity is extremely complex. Uniaxial compression tests of granite at different temperatures were conducted. The complete stress-strain curves, mechanical parameters and macroscopic failure types of the rock were analyzed in detail. The brittleness index, which represents the possibility of a severe brittleness hazard, is proposed in this paperby comparing the peak stress and the expansion stress. The results show that the temperature range from 20 to $60^{\circ}C$ is able to aggravate the brittle failure of hard rock based on the brittleness index. The closure of internal micro cracks by thermal stress can improve the strength of hard rock and the storage capacity of elastic strain energy. The failure mode ofthe samples changes from shear failure to tensile failure as the temperature increases. In conclusion, the brittle failure mechanism of hard rock under the action of thermal coupling is revealed, and the analysis result offers significant guidance for deep buried tunnels at high temperatures and under high geostress.

Development of a Flow Analysis Code Using an Unstructured Grid with the Cell-Centered Method

  • Myong, Hyon-Kook;Kim, Jong-Tae
    • Journal of Mechanical Science and Technology
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    • 제20권12호
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    • pp.2218-2229
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    • 2006
  • A conservative finite-volume numerical method for unstructured grids with the cell-centered method has been developed for computing flow and heat transfer by combining the attractive features of the existing pressure-based procedures with the advances made in unstructured grid techniques. This method uses an integral form of governing equations for arbitrary convex polyhedra. Care is taken in the discretization and solution procedure to avoid formulations that are cell-shape-specific. A collocated variable arrangement formulation is developed, i.e. all dependent variables such as pressure and velocity are stored at cell centers. For both convective and diffusive fluxes the forms superior to both accuracy and stability are particularly adopted and formulated through a systematic study on the existing approximation ones. Gradients required for the evaluation of diffusion fluxes and for second-order-accurate convective operators are computed by using a linear reconstruction based on the divergence theorem. Momentum interpolation is used to prevent the pressure checkerboarding and a segregated solution strategy is adopted to minimize the storage requirements with the pressure-velocity coupling by the SIMPLE algorithm. An algebraic solver using iterative preconditioned conjugate gradient method is used for the solution of linearized equations. The flow analysis code (PowerCFD) developed by the present method is evaluated for its application to several 2-D structured-mesh benchmark problems using a variety of unstructured quadrilateral and triangular meshes. The present flow analysis code by using unstructured grids with the cell-centered method clearly demonstrate the same accuracy and robustness as that for a typical structured mesh.

고준위방사성폐기물 처분장에서의 굴착손상대를 고려한 수리-역학적 복합거동 해석 (Analysis of Hydro-Mechanical Coupling Behavior Considering Excavation Damaged Zone in HLW Repository)

  • 이지원;김민주;권상기
    • 화약ㆍ발파
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    • 제41권3호
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    • pp.38-61
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    • 2023
  • 발파의 영향으로 생기는 굴착손상대(Excavation Damaged Zone, EDZ) 영역은 응력재분배 등으로 응력이 변화하며 처분장이 위치하는 깊은 심도에서는 그 영향이 두드러진다. 특히 균열생성으로 인한 투수특성 증가는 지하수 유입량 증가 및 방사성 핵종의 유출 가능성을 증가시키므로 반드시 고려되어야 하는 영역이다. 본 연구에서는 FLAC2D Version 7.0을 이용하여 EDZ가 없는 경우(No EDZ), EDZ가 있으며 거리에 따라 일정한 물성을 갖는 경우(Uniform EDZ), EDZ가 있으며 거리와 위치에 따라 무작위 물성을 갖는 경우(Random EDZ) 3가지로 나누어 비교하여 손상대 유무에 따른 수리-역학적 복합거동 분석을 통해 안정성 해석을 진행하였다. 그 결과 터널 변위의 경우 Random EDZ에서 No EDZ에 비해 평균 423 %, Uniform EDZ에 비해 16 % 크게 나타났다. 지하수 유입량은 Random EDZ에서 No EDZ에 비해 최대 17.3 %, Uniform EDZ에 비해 10.8 % 증가하였다. 굴착 후 응력재분배에 의해 터널 주변의 투수계수는 터널 벽면 모서리 부분과 터널 천정 부근에서 최대 10배 이상 증가하는 것으로 나타났다. 측압계수가 증가함에 따라 터널 벽면 주변의 투수계수는 부분적으로 증가하지만 터널 전면에서의 지하수 유입량은 감소하는 경향을 보였다. FLAC3D를 이용한 역학적 해석에서도 FLAC2D와 유사한 결과를 보였으며 터널 굴착 진행에 따른 소성대의 발생으로 인한 약간의 차이를 확인할 수 있었다.

Effect of damage on permeability and hygro-thermal behaviour of HPCs at elevated temperatures: Part 2. Numerical analysis

  • Gawin, D.;Majorana, C.E.;Pesavento, F.;Schrelfer, B.A.
    • Computers and Concrete
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    • 제2권3호
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    • pp.203-214
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    • 2005
  • In the Part 1 paper (Gawin, et al. 2005) some experimental results concerning micro-structural tests, permeability measurements and stress-strain tests of four types of High Performance Concrete, exposed to elevated temperatures (up to $700^{\circ}C$) are presented and discussed. On the basis of these experimental results parameters of the constitutive relationships describing influence of damage and temperature upon material intrinsic permeability at high temperature were determined. In this paper the effects of various formulations of damage-permeability coupling on results of computer simulations are analysed and compared with the results obtained by means of the previously proposed approach, that does not take into account the thermo-chemical concrete damage directly. Numerical solutions are obtained using the recently developed fully coupled model of hygro-thermal and damage phenomena in concrete at elevated temperatures. High temperature effects are considered by means of temperature and pressure dependence of several material parameters. Based on the mathematical model, the computer code HITECOSP was developed. Material parameters of the model were measured by several European laboratories, which participated in the "HITECO" research project. A model problem, concerning hygro-thermal behaviour and degradation of a HPC structure during fire, is solved. The influence of two different constitutive descriptions of the concrete permeability changes at high temperature, including thermo-chemical and mechanical damage effects, upon the results of computer simulations is analysed and discussed.

Numerical analysis of simply supported one-way reinforced concrete slabs under fire condition

  • Ding, Fa-xing;Wang, Wenjun;Jiang, Binhui;Wang, Liping;Liu, Xuemei
    • Computers and Concrete
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    • 제27권4호
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    • pp.355-367
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    • 2021
  • This paper investigates the mechanical response of simply supported one-way reinforced concrete slabs under fire through numerical analysis. The numerical model is constructed using the software ABAQUS, and verified by experimental results. Generally, mechanical response of the slab can be divided into four stages, accompanied with drastic stress redistribution. In the first stage, the bottom of the slab is under tension and the top is under compression. In the second stage, stress at bottom of the slab becomes compression due to thermal expansion, with the tension zone at the mid-span section moving up along the thickness of the slab. In the third stage, compression stress at bottom of the slab starts to decrease with the deflection of the slab increasing significantly. In the fourth stage, the bottom of the slab is under tension again, eventually leading to cracking of the slab. Parametric studies were further performed to investigate the effects of load ratio, thickness of protective layer, width-span ratio and slab thickness on the performance of the slab. Results show that increasing the thickness of the slab or reducing the load ratio can significantly postpone the time that deflection of the slab reaches span/20 under fire. It is also worth noting that slabs with the span ratio of 1:1 reached a deflection of span/20 22 min less than those of 1:3. The thickness of protective layer has little effect on performance of the slab until it reaches a deflection of span/20, but its effect becomes obvious in the late stages of fire.

우주환경하에서 횡진동 모드 PZT진동자의 특성변화 예측 (Estimation of Characteristics Change on Transverse Mode PZT Vibrator Under Space Environment)

  • 이상훈;문귀원;유성연;김정순;김무준
    • 한국음향학회지
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    • 제31권8호
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    • pp.514-522
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    • 2012
  • 횡진동 모드 압전진동자의 우주-항공산업에의 적극적인 활용을 위하여 우주환경을 모사한 열진공 챔버를 사용하여 $-100^{\circ}C{\sim}90^{\circ}C$의 범위에서 PZT-5계열의 압전세라믹 진동자의 온도변화에 따른 특성변화를 조사하였다. 그 결과 공진 및 반공진주파수는 상온일 때를 중심으로 온도의 변화에 따라 증가하였고 유전상수의 경우 주어진 온도 범위에서 2500~7500의 범위에서 선형적으로 증가하였다. 기계적 손실은 0.08~0.03의 범위에서 선형적으로 감소하는 경향을 보였다. 이들에 대한 회귀분석을 통하여 1차원 및 2차원 회귀함수를 이용하여 압전진동자의 각 특성에 대한 온도의존함수들을 도출하였다. 이들 함수를 적용하여 구한 횡모드 압전 진동자의 입력어드미턴스의 계산결과는 측정결과와 좋은 일치를 보이고 있었으며 우주환경에서의 온도에 따른 특성변화 예측에 유효함을 확인할 수 있었다.

인공치아의 임플란트 탈착을 위한 유도가열장치 연구 (Induction Heating Device for Dental Implant Removal)

  • 이상명;서영;송창우;이승엽
    • 대한기계학회논문집B
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    • 제40권5호
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    • pp.305-311
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    • 2016
  • 유도가열은 유도전류를 이용하여 도체에 열을 가하는 방식이다. 유도가열은 열을 가하고자 하는 물체 내부에서 열이 발생하고, 비접촉이며 안전하기 때문에 산업이나 의료분야에서 광범위하게 사용되고 있다. 최근에 형상기억합금을 사용하여 열에 의해 인공치아가 임플란트에서 쉽게 빠질 수 있게 하는 임플란트 시스템이 개발되었다. 본 논문에서는 새로운 임플란트 시스템에서 인공치아를 쉽게 제거할 수 있는 유도가열 장치를 개발하였다. 먼저 전자장-열 구조 유한요소 연성 해석을 통해 다양한 입력 전류와 코일 형상에 대해 온도를 시뮬레이션 상으로 확인해보았다. 해석 결과를 토대로 유도가열장치 시작품을 제작하여 실험을 통해 86초에 인공 치아가 분리됨을 확인하였다.

열분해 및 삭마 환경의 복합재 구조물의 열기계적 연계 해석 (Thermomechanical Analysis of Composite Structures in Pyrolysis and Ablation Environments)

  • 최윤규;김성준;신의섭
    • 한국항공우주학회지
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    • 제41권8호
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    • pp.597-604
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    • 2013
  • 본 논문에서는 열분해 및 삭마 환경의 복합재 구조물에 대한 열기계적 연계 해석을 수행하였다. 열분해 과정의 재료 밀도 감소, 기공 가스 확산, 흡열 반응 에너지와 삭마 과정에서의 표면 침식 효과 등을 고려하였다. 상용 유한요소 코드에 교차 연계 알고리듬을 적용하여 완전 연계된 열 해석 및 구조 해석 인터페이스를 구성하였다. 수치 실험을 통해서 탄소/페놀릭 복합재료의 기본적인 열분해 및 삭마 특성을 분석하였다. 특히, 화학적 및 기계적 삭마에 영향을 미치는 주요 인자에 따른 표면 침식량 등을 비교하였다. 또한, 열분해 과정의 수축 또는 팽창 변형도가 재료의 열기계적 거동에 미치는 영향도 검토하였다.