• 제목/요약/키워드: Euler Parameter

검색결과 141건 처리시간 0.025초

Ultrasonic waves in a single walled armchair carbon nanotube resting on nonlinear foundation subjected to thermal and in plane magnetic fields

  • Selvamani, Rajendran;Jayan, M. Mahaveer Sree;Ebrahimi, Farzad
    • Coupled systems mechanics
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    • 제10권1호
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    • pp.39-60
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    • 2021
  • The present paper is concerned with the study of nonlinear ultrasonic waves in a magneto thermo (MT) elastic armchair single-walled carbon nanotube (ASWCNT) resting on polymer matrix. The analytical formulation is developed based on Eringen's nonlocal elasticity theory to account small scale effect. After developing the formal solution of the mathematical model consisting of partial differential equations, the frequency equations have been analyzed numerically by using the nonlinear foundations supported by Winkler-Pasternak model. The solution is obtained by ultrasonic wave dispersion relations. Parametric work is carried out to scrutinize the influence of the non local scaling, magneto-mechanical loadings, foundation parameters, various boundary condition and length on the dimensionless frequency of nanotube. It is noticed that the boundary conditions, nonlocal parameter, and tube geometrical parameters have significant effects on dimensionless frequency of nano tubes. The results presented in this study can provide mechanism for the study and design of the nano devices like component of nano oscillators, micro wave absorbing, nano-electron technology and nano-electro- magneto-mechanical systems (NEMMS) that make use of the wave propagation properties of armchair single-walled carbon nanotubes embedded on polymer matrix.

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.

심해저 광물자원 채광시스템의 통합거동 해석 (Total Dynamic Analysis of Deep-Seabed Integrated Mining System)

  • 김형우;홍섭;최종수;여태경
    • 한국해양공학회:학술대회논문집
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    • 한국해양공학회 2006년 창립20주년기념 정기학술대회 및 국제워크샵
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    • pp.311-314
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    • 2006
  • This paper concerns about total dynamic analysis of integrated mining system. This system consists of vertical steel pipe, intermediate buffer station, flexible pipe and self-propelled miner. The self-propelled miner and buffer are assumed as rigid-body of 6-dof. Discrete models of vertical steel pipe and flexible pipe are adopted, which are obtained by means of lumped-parameter method. The motion of mining vessel is not considered. Instead, the motion of mining vessel is taken into account in form of various boundary conditions (e.g. forced excitation in slow motion and/or fast oscillation and so on). A terramechanics model of extremely soft cohesive soil is applied to the self-propelled miner. The hydrodynamic forces and moments are included in the dynamic models of vehicle and lifting pipe system. Hinged and fixed constraints are used to define the connections between sub-systems (vertical steel pipe, buffer, flexible pipe, miner). Equations of motion of the coupled model are derived with respect to the each local coordinates system. Four Euler parameters are used to express the orientations of the sub-systems. To solve the equations of motion of the total dynamic model, an incremental-iterative formulation is employed. Newmark-b method is used for time-domain integration. The total dynamic responses of integrated mining system are investigated.

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임의분포 사하중에 정적변위를 갖는 변단면 보의 자유진동 (Free Vibrations of Arbitrary Tapered Beams with Static Deflections due to Arbitrary Distributed Dead Loads)

  • 이병구;이용
    • 한국농공학회지
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    • 제38권3호
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    • pp.50-57
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    • 1996
  • A numerical method is presented to obtain the natural frequencies and mode shapes of the arbitrary tapered beams with static deflection due to arbitrary distributed dead loads. The differential equation governing free vibration of such beams is derived and solved numerically. The double integration method using the trapezoidal rule is used to solve the static behaviour of beams loaded arbitrary distributed dead load. Also, the Improved Euler method and the determinant search method are used to integrate the differential equation subjected to the boundary conditions and to determine the natural frequencies of the beams, respectively. In the numerical examples, the various geometries of the beams are considered : (1) linearly tapered beams as the arbitrary variable cross-section, (2) the triangular, sinusoidal and uniform loads as the arbitrary distributed dead loads and (3) the hinged-hinged, clamped-clamped and hinged-clamped ends as the end constraints. All numerical results are shown as the non-dimensional forms of the system parameters. The lowest three natural frequencies versus load parameter, slenderness ratio and section ratio are reported in figures. And for the comparison purpose, the typical mode shapes with and without the effects of static deflection are presented in the figure. According to the numerical results obtained in this analysis, the following conclusions may be drawn : (1) the natural frequencies increase when the effects of static deflections are included, (2) the effects are larger at the lower modes than the higher ones and (3) it should be betteF to include the effect of static deflection for calculating the frequencies when the beams are supported by both hinged ends or one hinged end.

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비선형 하중제어 모델의 예측기 설계 및 알고리즘 구현을 위한 수치연산 오차 분석과 평가 (Realization and Design of Predictor Algorithm and Evaluation of Numerical Method on Nonlinear Load Control Model)

  • 왕현민;우광준
    • 전자공학회논문지SC
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    • 제46권6호
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    • pp.73-79
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    • 2009
  • 운동하는 물체를 제어하기 위한 제어이론은 디지털 컴퓨터(임베디드시스템)를 이용하여 복잡한 신경망 이론, 인공지능 이론, 비선형 모델 예측 제어 이론등이 제어기 설계 단계에서 구현되고 있다. 비행제어 시스템의 비선형 모델 예측 제어 예측기는 구현하는 컴퓨터의 성능과 각종 모듈의 응용프로그램을 하드실시간(Hard Real-Time)으로 처리할 수 있도록 응답 시간을 충족 하여야 한다. 이와 동시에 제어 시스템에의 성능을 충분히 발휘할 수 있는 정확성도 고려하여야 한다. 수학적 영역에서의 오류는 전체 알고리즘 구현에 영향을 준다. 그러나 이러한 수학적 오류 발생 요인은 예측기에서 생성되는 파라미터에서 최종 정확도 계산에 가끔 고려하지 않는다. 본 논문에서는 비행체 제어를 위한 디지털 제어 시스템에서 하드실시간 하중제어 모델 예측기를 구현하고, 알고리즘의 응답시간을 살펴본다. 또한 이에 따른 정밀도를 보장하는 고효율 예측기를 구현하는 알고리즘을 살펴본다. 예측기는 하중 제어 모델에서 오일러 방법, Heun 방법, Runge-kutta 방법, 테일러 방법의 수치적분 알고리즘을 사용하여 구현된다.

Analytical Solutions for the Inelastic Lateral-Torsional Buckling of I-Beams Under Pure Bending via Plate-Beam Theory

  • Zhang, Wenfu;Gardner, Leroy;Wadee, M. Ahmer;Zhang, Minghao
    • 국제강구조저널
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    • 제18권4호
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    • pp.1440-1463
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    • 2018
  • The Wagner coefficient is a key parameter used to describe the inelastic lateral-torsional buckling (LTB) behaviour of the I-beam, since even for a doubly-symmetric I-section with residual stress, it becomes a monosymmetric I-section due to the characteristics of the non-symmetrical distribution of plastic regions. However, so far no theoretical derivation on the energy equation and Wagner's coefficient have been presented due to the limitation of Vlasov's buckling theory. In order to simplify the nonlinear analysis and calculation, this paper presents a simplified mechanical model and an analytical solution for doubly-symmetric I-beams under pure bending, in which residual stresses and yielding are taken into account. According to the plate-beam theory proposed by the lead author, the energy equation for the inelastic LTB of an I-beam is derived in detail, using only the Euler-Bernoulli beam model and the Kirchhoff-plate model. In this derivation, the concept of the instantaneous shear centre is used and its position can be determined naturally by the condition that the coefficient of the cross-term in the strain energy should be zero; formulae for both the critical moment and the corresponding critical beam length are proposed based upon the analytical buckling equation. An analytical formula of the Wagner coefficient is obtained and the validity of Wagner hypothesis is reconfirmed. Finally, the accuracy of the analytical solution is verified by a FEM solution based upon a bi-modulus model of I-beams. It is found that the critical moments given by the analytical solution almost is identical to those given by Trahair's formulae, and hence the analytical solution can be used as a benchmark to verify the results obtained by other numerical algorithms for inelastic LTB behaviour.

Investigation of nonlinear vibration behavior of the stepped nanobeam

  • Mustafa Oguz Nalbant;Suleyman Murat Bagdatli;Ayla Tekin
    • Advances in nano research
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    • 제15권3호
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    • pp.215-224
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    • 2023
  • Nonlinearity plays an important role in control systems and the application of design. For this reason, in addition to linear vibrations, nonlinear vibrations of the stepped nanobeam are also discussed in this manuscript. This study investigated the vibrations of stepped nanobeams according to Eringen's nonlocal elasticity theory. Eringen's nonlocal elasticity theory was used to capture the nanoscale effect. The nanoscale stepped Euler Bernoulli beam is considered. The equations of motion representing the motion of the beam are found by Hamilton's principle. The equations were subjected to nondimensionalization to make them independent of the dimensions and physical structure of the material. The equations of motion were found using the multi-time scale method, which is one of the approximate solution methods, perturbation methods. The first section of the series obtained from the perturbation solution represents a linear problem. The linear problem's natural frequencies are found for the simple-simple boundary condition. The second-order part of the perturbation solution is the nonlinear terms and is used as corrections to the linear problem. The system's amplitude and phase modulation equations are found in the results part of the problem. Nonlinear frequency-amplitude, and external frequency-amplitude relationships are discussed. The location of the step, the radius ratios of the steps, and the changes of the small-scale parameter of the theory were investigated and their effects on nonlinear vibrations under simple-simple boundary conditions were observed by making comparisons. The results are presented via tables and graphs. The current beam model can assist in designing and fabricating integrated such as nano-sensors and nano-actuators.

Dynamic analysis of nanotube-based nanodevices for drug delivery in sports-induced varied conditions applying the modified theories

  • Shaopeng Song;Tao Zhang;Zhiewn Zhui
    • Steel and Composite Structures
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    • 제49권5호
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    • pp.487-502
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    • 2023
  • In the realm of nanotechnology, the nonlocal strain gradient theory takes center stage as it scrutinizes the behavior of spinning cantilever nanobeams and nanotubes, pivotal components supporting various mechanical movements in sport structures. The dynamics of these structures have sparked debates within the scientific community, with some contending that nonlocal cantilever models fail to predict dynamic softening, while others propose that they can indeed exhibit stiffness softening characteristics. To address these disparities, this paper investigates the dynamic response of a nonlocal cantilever cylindrical beam under the influence of external discontinuous dynamic loads. The study employs four distinct models: the Euler-Bernoulli beam model, Timoshenko beam model, higher-order beam model, and a novel higher-order tube model. These models account for the effects of functionally graded materials (FGMs) in the radial tube direction, giving rise to nanotubes with varying properties. The Hamilton principle is employed to formulate the governing differential equations and precise boundary conditions. These equations are subsequently solved using the generalized differential quadrature element technique (GDQEM). This research not only advances our understanding of the dynamic behavior of nanotubes but also reveals the intriguing phenomena of both hardening and softening in the nonlocal parameter within cantilever nanostructures. Moreover, the findings hold promise for practical applications, including drug delivery, where the controlled vibrations of nanotubes can enhance the precision and efficiency of medication transport within the human body. By exploring the multifaceted characteristics of nanotubes, this study not only contributes to the design and manufacturing of rotating nanostructures but also offers insights into their potential role in revolutionizing drug delivery systems.

Swash대역에서의 해빈표사 부유거동에 관한 연구 (Suspension of Sediment over Swash Zone)

  • 조용준;김권수;유하상
    • 대한토목학회논문집
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    • 제28권1B호
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    • pp.95-109
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    • 2008
  • 본 연구에서는 LDS 난류응력 모형, Van Rijn의 pick up 함수를 활용하여 일정 경사부에서의 파랑의 이행과 천수, 연이은 쇄파현상, plunging breaker에 후행하는 해저질의 역동적인 부유와 down rush와 후행 파랑에 의한 표사의 재분배를 수치모의 하였다. 이 과정에서 해저질과 소통하는 저면 유체력에 대한 quadratic law를 중심으로 한 기존의 연구 성과들은 정상상태에 기초하여 급속히 가속되고 감속되는 swash 대역의 수리특성을 반영할 수 없다는 결론에 도달하고 이러한 인식에 기초하여 새로운 산출방법이 제시되었다. 새로운 산출방법을 토대로 수치모의하여 비선형 천수과정의 일반적인 특징, 동조 비동조 고차 조화성분으로 전이된 파랑에너지로 인해 상당히 예리하고 왜도된 파형, 파형의 마루로부터 시작되는 물입자 자유낙하, 착수로 인한 커다란 물보라의 형성, 물보라 형성층의 해변으로의 이행, wave finger (Narayanaswamy와 Dalrymple, 2002), swash 대역에서 진행되는 부유사 순환과정, swash 대역에서 처오름으로 인해 부유된 부유사 무리의 off shore 방향으로의 순 이동 등이 비교적 정확히 재현되는 등 상당히 고무적인 결과를 얻을 수 있었다. 이러한 결과는 기존의 Euler 좌표계에서 정의되는 파랑모형과 이동경계 기법의 한계를 뛰어 넘는 것으로 향후 보다 정확한 침식해석이 가능 할 것으로 판단된다.

무시멘트 콘크리트를 활용한 강판콘크리트 구조의 유효좌굴길이 계수 분석에 관한 연구 (A Study on the Effective Length Factor for Steel Plate-Concrete Structures using Cementless Concrete)

  • 한명환;최병정
    • 한국산학기술학회논문지
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    • 제19권5호
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    • pp.661-671
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    • 2018
  • 강판 콘크리트구조에 대한 국내 연구는 대체적으로 강도가 큰 원전 구조물에 초점을 맞추고 있다. 현재 안전성과 시공성 측면에서 유리한 SC구조는 특수구조물에만 한정되어 적용되어 왔으며, 최근 구조적으로 장점이 명확한 SC구조에 대해 일반건축물에 적용하기 위한 연구가 진행되고 있다. 본 연구에서는 SC 구조를 일반 건축물에 적용하기 위한 기초 연구로서 특히 SC 구조에서 중요한 요소인 콘크리트의 시멘트를 고로슬래그로 대체하여 친환경성에 부합한 구조체를 계획하기 위해 무시멘트 콘크리트를 적용한 SC 구조의 기본 설계 정보를 제시하고자 한다. 이 논문에서는 압축 특성, 중심 압축 하중을 받는 유효좌굴길이계수에 대해 연구하였다. 유효좌굴길이계수를 산정하기 위해서 판 이론을 적용하지 않고 오일러 기둥 이론으로 계산하였다. 유효좌굴길이계수를 계산할 때 필요한 변형률을 측정하여 강판의 항복강도, 강판의 좌굴 및 콘크리트가 파단되는 시점에서의 유효좌굴길이계수를 계산하였다. 또한, 세장비(B/t)를 변수로 최대 압축강도가 국외 및 국내 기준식에 부합하는 지를 검토하였으며 기둥 이론을 적용하여 실험체의 좌굴을 분석하고 측정된 강판의 변형률을 선택하는 방법에 따라 유효좌굴길이계수를 분석하여 기준식에서 제시하는 값과 비교하였다.