• 제목/요약/키워드: Micro-Motion

검색결과 456건 처리시간 0.026초

Stability/instability of the graphene reinforced nano-sized shell employing modified couple stress model

  • Yao, Zhigang;Xie, Hui;Wang, Yulei
    • Wind and Structures
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    • 제32권1호
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    • pp.31-46
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    • 2021
  • The current research deals with, stability/instability and cylindrical composite nano-scaled shell's resonance frequency filled by graphene nanoplatelets (GPLs) under various thermal conditions (linear and nonlinear thermal loadings). The piece-wise GPL-reinforced composites' material properties change through the orientation of cylindrical nano-sized shell's thickness as the temperature changes. Moreover, in order to model all layers' efficient material properties, nanomechanical model of Halpin-Tsai has been applied. A functionally modified couple stress model (FMCS) has been employed to simulate GPLRC nano-sized shell's size dependency. It is firstly investigated that reaching the relative frequency's percentage to 30% would lead to thermal buckling. The current study's originality is in considering the multifarious influences of GPLRC and thermal loading along with FMCS on GPLRC nano-scaled shell's resonance frequencies, relative frequency, dynamic deflection, and thermal buckling. Furthermore, Hamilton's principle is applied to achieve boundary conditions (BCs) and governing motion equations, while the mentioned equations are solved using an analytical approach. The outcomes reveal that a range of distributions in temperature and other mechanical and configurational characteristics have an essential contribution in GPLRC cylindrical nano-scaled shell's relative frequency change, resonance frequency, stability/instability, and dynamic deflection. The current study's outcomes are practical assumptions for materials science designing, nano-mechanical, and micromechanical systems such as micro-sized sensors and actuators.

Nonlocal free vibration analysis of porous FG nanobeams using hyperbolic shear deformation beam theory

  • Hadji, Lazreg;Avcar, Mehmet
    • Advances in nano research
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    • 제10권3호
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    • pp.281-293
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    • 2021
  • This paper presents a new nonlocal Hyperbolic Shear Deformation Beam Theory (HSDBT) for the free vibration of porous Functionally Graded (FG) nanobeams. A new displacement field containing integrals is proposed which involves only three variables. The present model incorporates the length scale parameter (nonlocal parameter) which can capture the small scale effect and its account for shear deformation by a hyperbolic variation of all displacements through the thickness without using the shear correction factor. It has been observed that during the manufacture of Functionally Graded Materials (FGMs), micro-voids and porosities can occur inside the material. Thus, in this work, the investigation of the free vibration analysis of FG beams taking into account the influence of these imperfections is established. Four different porosity types are considered for FG nanobeam. Material characteristics of the FG beam are supposed to vary continuously within thickness direction according to a power-law scheme which is modified to approximate material characteristics for considering the influence of porosities. Based on the nonlocal differential constitutive relations of Eringen, the equations of motion of the nanobeam are derived using Hamilton's principle. The effects of nonlocal parameter, aspect ratio, and the porosity types on the dynamic responses of the nanobeam are discussed.

Buckling and free vibration analysis of multi-directional functionally graded sandwich plates

  • Ali, Alnujaie;Atteshamuddin S., Sayyad;Lazreg, Hadji;Abdelouahed, Tounsi
    • Structural Engineering and Mechanics
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    • 제84권6호
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    • pp.813-822
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    • 2022
  • In this article, the buckling and free vibration of multi-directional FGM sandwich plates are investigated. The material properties of FGM sandwich plates are assumed to be varying continuously in the in the longitudinal, transverse and thickness directions. The material properties are evaluated based on Voigt's micro-mechanical model considering power law distribution method with arbitrary power index. Equations of motion for the buckling and vibration analysis of multi-directional FGM sandwich plate are obtained based on refined shear deformation theory. Analytical solution for simply supported multidirectional FGM sandwich plate is carried out using Navier's solution technique. The FGM sandwich plate considered in this work has a homogeneous ceramic core and two functionally graded face sheets. Influence of volume fraction index in the longitudinal, transverse and thickness direction, layer thickness, and geometrical parameter over natural frequency and critical buckling load of multi-directional FGM sandwich plate is investigated. The finding shows a multi-directional functionally graded structures perform better compared to uni-directional gradation. Hence, critical grading parameters have been identified which will guide researchers in selecting fabrication routes for improving the performance of such structures.

Microstructural/geometric imperfection sensitivity on the vibration response of geometrically discontinuous bi-directional functionally graded plates (2D-FGPs) with partial supports by using FEM

  • Varun, Katiyar;Ankit, Gupta;Abdelouahed, Tounsi
    • Steel and Composite Structures
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    • 제45권5호
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    • pp.621-640
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    • 2022
  • In the present article, the vibration response of a geometrically imperfect bi-directional functionally graded plate (2D-FGP) with geometric discontinuities and micro-structural defects (porosities) has been investigated. A porosity model has been developed to incorporate the effective material properties of the bi-directional FGP which varies in two directions i.e. along the axial and transverse direction. The geometric discontinuity is also introduced in the plate in the form of a circular cut-out at the center of the plate. The structural kinematic formulation is based on the non-polynomial trigonometric higher-order shear deformation theory (HSDT). Finite element formulation is done using C° continuous Lagrangian quadrilateral four-noded element with seven degrees of freedom per node. The equations of motion have been derived using a variational approach. Convergence and validation studies have been documented to confirm the accuracy and efficiency of the present formulation. A detailed investigation study has been done to evaluate the influence of the circular cut-out, geometric imperfection, porosity inclusions, partial supports, volume fraction indexes (along with the thickness and length), and geometrical configurations on the vibration response of 2D-FGP. It is concluded that after a particular cut-out dimension, the vibration response of the 2D FGP exhibits non-monotonic behavior.

Development of the educational management model for dynamic instability analysis in nanocomposite sandwich beam

  • Wenxi Tang;Chunhui Zhou;Maryam Shokravi;X. Kelaxich
    • Advances in nano research
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    • 제17권1호
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    • pp.9-18
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    • 2024
  • This paper presents the development of an educational management model for analyzing the dynamic instability of nanocomposite sandwich beams. The model aims to provide a comprehensive framework for understanding the behavior of sandwich micro beams with foam cores, featuring top and bottom layers made of smart and porous functionally graded materials (FGM) nanocomposites. The bottom layer is influenced by an external electric field, and the entire beam is supported by a visco-Pasternak foundation, accounting for spring, shear, and damping constants. Using the Kelvin-Voigt theory to model structural damping and incorporating size effects based on strain gradient theory, the model employs the parabolic shear deformation beam theory (PSDBT) to derive motion equations through Hamilton's principle. The differential quadrature method (DQM) is applied to solve these equations, accurately identifying the improvement in student understanding (ISU) of the beams. The impact of various parameters, including FGM properties, external voltage, geometric constants, and structural damping, on the DIR is thoroughly examined. The educational model is validated by comparing its outcomes with existing studies, highlighting the increase in ISU with the application of negative external voltage to the smart layer. This model serves as a valuable educational tool for engineering students and researchers studying the dynamic stability of advanced nanocomposite structures.

Vibrational behavior of porous composite laminated plates using four unknown integral shear deformation theory

  • Hayat Saidi;Abdelouahed Tounsi;Fouad Bourada;Abdelmoumen Anis Bousahla;Abdeldjebbar Tounsi;Firas Ismail Salman Al-Juboori
    • Steel and Composite Structures
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    • 제52권3호
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    • pp.249-271
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    • 2024
  • In this scientific work, an analytical solution for the dynamic analysis of cross-ply and angle-ply laminated composite plates is proposed. Due to technical issues during the manufacturing of composite materials, porosities and micro-voids can be produced within the composite material samples, which can carry on to a reduction in the density and strength of the materials. In this research, the laminated composite plates are assumed to have new distributions of porosities over the plate cross-section. The structure is modeled using a simple integral shear deformation theory in which the transverse shear deformation effect is included. The governing equations of motion are obtained employing the principle of Hamilton's. The solution is determined via Navier's approach. The Maple program is used to obtain the numerical results. In the numerical examples, the effects of geometry, ratio, modulus ratio, fiber orientation angle, number of layers and porosity parameter on the natural frequencies of symmetric and anti-symmetric laminated composite plates is presented and discussed in detail. Also, the impacts of the kinds of porosity distribution models on the natural frequencies of symmetric and anti-symmetric laminated composite plates are investigated.

Experimental and theoretical analysis of electronic musical structures with smart nanoparticles

  • Jing Han;Maryam Shokravi;F. Ming
    • Structural Engineering and Mechanics
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    • 제91권4호
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    • pp.417-426
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    • 2024
  • Nanotechnology has emerged as a promising avenue for enhancing musical structures. In this study, we analyze the static behavior of laser harp (i.e., electronic musical instrument) reinforced with Zinc Oxide (ZnO) nanoparticles. Leveraging the piezoelectric properties of ZnO nanoparticles, the structure is subjected to an electric field for intelligent control. The electronic musical structure is situated in a foundation with vertical springs and shear modulus constants. We employ the exponential Shear Deformation Beam Theory (ESDBT) to mathematically model the structure. A micro-electro-mechanical model is employed to determine the equivalent properties of the system. By utilizing nonlinear stress-strain relations, energy methods, and Hamilton's principle, we derive the motion equations. The buckling load of the electronic musical beam is calculated using the Difference Quadrature Method (DQM). The primary objective of this study is to present a mathematical model for electronic musical beams and determining the buckling load of the structure and to investigate the influence of nanotechnology and electric fields on its buckling behavior. The buckling is the case when the structure becomes deforms and unstable. Our findings reveal that the application of negative external voltage to the electronic musical structure increases both the stiffness and the buckling load of the musical system. Furthermore, reinforcing the electronic musical structure with ZnO nanoparticles results in an increased buckling load. Notably, the maximum enhancement in the 28-day compressive and tensile strengths of samples containing zinc oxide nanoparticles compared to the control sample resulting in increases of 18.70% and 3.77%, respectively.

선망어업의 생산성 향상에 관한 연구 - 단선식 시험조업에 있어서 선망의 운동특성 - (Studies on the Improvement of the Productivity of the Purse Seine Fishery - The characteristics on the motion of purse seine in the experimental operation of one boat system -)

  • 김석종;최찬문;정용진
    • 수산해양기술연구
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    • 제39권2호
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    • pp.99-111
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    • 2003
  • 선망어업의 생산성 향상에 관한 기초 연구로서 제주도 주변 해역어장(33$^{\circ}$37.8' N, 126$^{\circ}$31.1' E)에서 단선조업이 가능하도록 건조된 시험 조업선인 제주대학교 해양과학대학 실습선 아라호(990톤)를 사용하여 투망과 양망 등의 실험을 실시했다. 실험에 사용한 선망은 뜸줄의 길 829.1m, 발줄의 길이 995.7m이다. 초소형 메모리 계측기와 망심계, 장력계를 사용하여 그물 아랫자락의 수심과 선망의 장력을 측정하였으며, 측정한 자료를 이용하여 투망과 양망할 때의 그물어구의 운동특성과 장력특성을 해석하였는데, 그 결과를 요약하면 다음과 같다. 1. 단선식 조업방법에 의해 실시한 시험조업에서 선망의 투망과 양망이 가능했다. 2. 선망을 투망할 때 그물 아랫자락의 침강수심(Dp)과 경과시간(Et)의 관계는 값의 설정범위에서 다음과 같은 실험식으로 나타낼 수 있다. Dp=7.58Et-6.48 3. 죔줄을 죌 때 그물 아랫자락의 침강수심과 경과 시간의 관계는 값의 설정 범위에서 다음과 같은 실험식으로 나타낼 수 있다. Dp=-0.8Et$^2$+7.42Et+92.04 4. 죔줄을 죌 때 선망의 장력은 경과시간 8분일 때 최대값(14.7톤)을 나타냈으며, 장력과 경과시간의 관계는 값의 설정범위에서 다음과 같은 실험식으로 나타낼 수 있다. T=-0.13Et$^2$+3.23Et-5.72

소동물영상을 위한 마이크로 컴퓨터단층촬영장치 (Micro-CT System for Small Animal Imaging)

  • 남기용;김경우;김재희;손현화;유종현;강성훈;천권수;박성훈;윤권하
    • 한국의학물리학회지:의학물리
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    • 제19권2호
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    • pp.102-112
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    • 2008
  • 살아있는 마우스 영상화를 목적으로 겐트리 회전형과 평판영상검출기를 기반으로 한 고분해능 마이크로 컴퓨터단층촬영 장치를 개발하였다. 이 장치는 주로, 마이크로 크기 광원사이즈를 갖는 X-선 광원, Csl (TI)과 결합된 평판형 상보성 금속산화 반도체 영상검출기(CMOS), 선형이송 카우치, 위치정보 엔코더와 결합된 겐트리, 그리고 영상데이터 처리를 위한 병렬처리 시스템으로 구성되었다. 본 장치는 겐트리 회전형으로 설계되었는데, 이는 살아있는 마우스를 CT 영상을 얻는데 있어서 마우스 움직임에 기인한 영상결점의 최소화에 유리하고 촬영하는 동안 쥐의 호흡마취시행에 여러 가지 장점을 갖기 때문이다. CT팬텀을 이용하여 개발한 CT장치의 공간해상도, 영상대비도 그리고 영상균일도를 평가하였다. 결과로써, 본 장치의 공간해상도는 MTF 곡선으로부터 10%에 해당하는 약 11.3 cycles/mm을 얻었으며, 마우스에 대한 방사선 피폭선량은 81.5 mGy의 결과를 얻었다. 저대비 영상팬텀을 이용한 영상실험에서 분해가능 최소영상대비차는 약 46 CT였다. $55{\times}55{\times}X100\;{\mu}^3$의 복셀(voxel) 크기에서 영상의 불균일도는 약 70 CT 임을 얻었다. 또한 본 연구에서는 살아있는 마우스의 몸체, 뼈, 그리고 간에 대한 영상 테스트 결과를 제시하였다.

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호흡주기에 따른 방사선입체조형치료법의 개발 (Development of Conformal Radiotherapy with Respiratory Gate Device)

  • 추성실;조광환;이창걸;서창옥
    • Radiation Oncology Journal
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    • 제20권1호
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    • pp.41-52
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    • 2002
  • 목적 : 호흡주기에 따른 위치변동 감지센서를 이용하여 종양의 위치가 일정워치에 있을 때만 방사선을 치료하는 호흡 동기치료기구를 제작하고 일정한 호흡주기 상태에서 수행된 CT simulation과 3차원 입체조형치료계획에 따라 방사선을 치료하는 시스템을 개발하고자 하였다. 호흡유무에 따른 종양의 치료 마진(margin)을 측정하고 계획용표적체적(planning target volume:PTV)의 크기에 따른 선량체적표(dose volume histogram:DVH)와 종양억제확률(tumor control probability:NTCP), 건강조직손상확률(normal tissue complication probability:NTCP) 및 선량 통계자료를 통하여 치료성과를 평가하고 선량증강 범위를 예측하고자 하였다. 대상 및 방법 : 종양이 비교적 작고 전이가 없는(T1N0M0) 5명의 폐암환자를 선택하여 X-선 조준장치를 이용하여 횡격막의 이동거리를 측정하는 방법으로 내부장기의 운동을 평가하였다. 호흡동기치료기구는 끌어당김 센서가 부착된 허리띠 모양으로 구성되었으며 이를 흉곽 또는 복부에 부착하여 호흡주기에 의한 흉곽의 크기변동에 따라 센서의 회로가 개폐되고 이것을 선형가속기의 조종간에 연결하는 간단한 기구로서 감도와 재현성이 높았다. 호흡을 배기한 후 일시적 호흡이 정지된 상태에서 Spiral-CT (PQ-5000)로 3차원 영상을 획득하고 Virtual CT-simulator (AcQ-SIM)에 의하여 종양의 위치와 주위 장기들을 확인 도시하였으며 3차원 치료계획장치(Pinnacle, ADAC Co.)를 이용하여 3차원 입체조형치료를 계획하였다. 치료계획의 평가는 호흡동기치료기구의 사용유무에 따른 PTV의 크기에 따라 최적 선량분포를 구사하였으며 각각의 DVH, TCP, NTCP 및 선량통계자료를 도출 비교 검토하였다. 결과 : X-선 simulation에서 폐암환자의 횡격막 이동은 약 1 cm에서 2.5 cm로서 평균 1.5 cm로 측정되었고 자유호흡시 PTV는 CTV (clinical target volume)에 약 2 cm 마진을 주었으며 호흡동기치료기구를 사용하였을 때는 0.5 cm 마진이 적당한 것으로 측정되었다. 종양의 PTV는 연장 마진의 거의 자승비로 증가하였으며 TCP의 값은 마진 범위 $(0.5\~2.0\;cm)$에 관계없이 거의 일정하였고 NTCP의 값은 마진 크기에 따라 평균 $65\%$로 급속히 증가하였다. 결론 : 호흡주기에 따른 위치변동 감지센서를 이용한 호흡동기치료기구는 종양의 위치가 일정할 때만 방사선이 조사되는 간단하고 정확한 장치로서 3차원 입체조형치료 및 강도변조방사선치료에서 매우 유용한 장치임을 확인할 수 있었다. 또한 호흡조절 방사선입체조형치료방법의 기술과 시술절차를 확립시키고 정량적인 선량평가를 위하여 DVH, TCP, NTCP 등의 정량분석과 종양의 투여 선량 증가량(dose escalation)을 예측하는 기초자료를 제공할 수 있었다.