• 제목/요약/키워드: Vibrational properties

검색결과 182건 처리시간 0.031초

벨로우즈의 장착에 따른 자동차 배기계의 동특성 개선 및 벨로우즈의 최적위치 평가 (Improvement of the Vibrational Characteristics According to Attachment of Bellows and Evaluation of Bellows Optimal Position in Automobile Exhaust System)

  • 고병갑;이완익;박경진
    • 한국자동차공학회논문집
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    • 제2권3호
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    • pp.21-32
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    • 1994
  • The Problem of mechanical vibration is investigated for an automotive exhaust system. The vibrational reduction effect is systematically evaluated according to the attachment of the exhaust system. Moreover, the optimal attachment position of bellows is determined from the viewpoint of vibration isolation. The structure is analysed by the finite element technique where the geometry, the mass, the stiffness and the damping properties of the exhaust pipe are modeled. The validity of the developed model is verified by comparing with the experimental results. An optimization is carried out by the quadratic approximation algorithm. The reaction transferred to an automobile body by the hanger is considered ad the objective function. It is shown that the exhaust system which has the bellows at the optimal position is more effective for the vibrational characteristics than the others. It is also proved that this analytical method is quite useful in the design stage of the exhaust system.

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Effects of CNTs waviness and aspect ratio on vibrational response of FG-sector plate

  • Tahouneh, Vahid
    • Steel and Composite Structures
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    • 제25권6호
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    • pp.649-661
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    • 2017
  • This paper is motivated by the lack of studies in the technical literature concerning to the influence of carbon nanotubes (CNTs) waviness and aspect ratio on the vibrational behavior of functionally graded nanocomposite annular sector plates resting on two-parameter elastic foundations. The carbon nanotube-reinforced (CNTR) plate has smooth variation of CNT fraction based on the power-law distribution in the thickness direction, and the material properties are also estimated by the extended rule of mixture. In this study, the classical theory concerning the mechanical efficiency of a matrix embedding finite length fibers has been modified by introducing the tube-to-tube random contact, which explicitly accounts for the progressive reduction of the tubes' effective aspect ratio as the filler content increases. Parametric studies are carried out to highlight the influence of CNTs volume fraction, waviness and aspect ratio, boundary conditions and elastic foundation on vibrational behavior of FG-CNT thick sectorial plates. The study is carried out based on three-dimensional theory of elasticity and in contrary to two-dimensional theories, such as classical, the first- and the higher-order shear deformation plate theories, this approach does not neglect transverse normal deformations. The annular sector plate is assumed to be simply supported in the radial edges while any arbitrary boundary conditions are applied to the other two circular edges including simply supported, clamped and free. For an overall comprehension on 3-D vibration of annular sector plates, some mode shape contour plots are reported in this research work.

Deep neural networks trained by the adaptive momentum-based technique for stability simulation of organic solar cells

  • Xu, Peng;Qin, Xiao;Zhu, Honglei
    • Structural Engineering and Mechanics
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    • 제83권2호
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    • pp.259-272
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    • 2022
  • The branch of electronics that uses an organic solar cell or conductive organic polymers in order to yield electricity from sunlight is called photovoltaic. Regarding this crucial issue, an artificial intelligence-based predictor is presented to investigate the vibrational behavior of the organic solar cell. In addition, the generalized differential quadrature method (GDQM) is utilized to extract the results. The validation examination is done to confirm the credibility of the results. Then, the deep neural network with fully connected layers (DNN-FCL) is trained by means of Adam optimization on the dataset whose members are the vibration response of the design-points. By determining the optimum values for the biases along with weights of DNN-FCL, one can predict the vibrational characteristics of any organic solar cell by knowing the properties defined as the inputs of the mentioned DNN. To assess the ability of the proposed artificial intelligence-based model in prediction of the vibrational response of the organic solar cell, the authors monitored the mean squared error in different steps of the training the DNN-FCL and they observed that the convergency of the results is excellent.

Coupled IoT and artificial intelligence for having a prediction on the bioengineering problem

  • Chunping Wang;Keming Chen;Abbas Yaseen Naser;H. Elhosiny Ali
    • Earthquakes and Structures
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    • 제24권2호
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    • pp.127-140
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    • 2023
  • The vibration of microtubule in human cells is the source of electrical field around it and inside cell structure. The induction of electrical field is a direct result of the existence of dipoles on the surface of the microtubules. Measuring the electrical fields could be performed using nano-scale sensors and the data could be transformed to other computers using internet of things (IoT) technology. Processing these data is feasible by artificial intelligence-based methods. However, the first step in analyzing the vibrational behavior is to study the mechanics of microtubules. In this regard, the vibrational behavior of the microtubules is investigated in the present study. A shell model is utilized to represent the microtubules' structure. The displacement field is assumed to obey first order shear deformation theory and classical theory of elasticity for anisotropic homogenous materials is utilized. The governing equations obtained by Hamilton's principle are further solved using analytical method engaging Navier's solution procedure. The results of the analytical solution are used to train, validate and test of the deep neural network. The results of the present study are validated by comparing to other results in the literature. The results indicate that several geometrical and material factors affect the vibrational behavior of microtubules.

진동해머의 진동특성에 대한 해석적 연구 (Analytical Study on Vibrational Properties of Vibro-hammer)

  • 이승현;김응석;윤기용
    • 한국산학기술학회논문지
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    • 제14권7호
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    • pp.3577-3581
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    • 2013
  • 진동해머에 의해 시공되는 말뚝의 해석을 위해서는 진동해머의 진동특성을 파악함이 우선되어야 한다. 진동해머의 진동특성을 살펴보고자 해석적 연구를 수행하였다. 진동시스템에 대한 지배방정식 구성에 있어서는 진동기만의 질량에 의해 발생하는 스프링작용력을 말뚝에 작용시키는 개념보다는 기진기와 말뚝이 연결된 단일 질량체를 고려하여 지배방정식을 구성하는 것이 타당할 것으로 판단된다. 공운전시 스프링상수가 증가함에 따라 진폭의 변화량은 크지 않았으나 스프링작용력은 대체로 스프링상수에 비례하여 증가하였다. 공운전시 기진기질량이 증가함에 따라 진폭은 대체로 반비례관계를 보였으며 스프링작용력은 진폭의 변화율과 일치함을 알 수 있다. 스프링작용력과 변위의 방향은 회전운동 중인 편심질량이 가리키는 방향과 반대가 됨을 알 수 있었다.

알루미늄 샌드위치 패널의 구조적 형상 및 진동 특성에 관한 연구 (A Study on the Structural Shape and Vibrational Characteristics of Aluminum Sandwich Panel)

  • 배동명;손정대
    • 수산해양기술연구
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    • 제40권4호
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    • pp.351-359
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    • 2004
  • 본 연구에서는 실선에 적용된 알루미늄 하니콤 샌드위치 판 (AHSP)을 저자가 제안한 심재의 형상이 피라미드인 알루미늄 샌드위치 판의 구조적 특성 및 진동특성을 검토해 보았다. 알루미늄 피라미드 샌드위치 판(APSP)의 기초 자료로 쓰일 수 있게 심재의 각도변화, 높이변화 및 면재와 심재의 두께변화에 따른 구조적 특성을 검토한 결과 APSP가 강도 및 강성에서 우수함을 보였으며, 질량대비 큰 강성 때문에 고유진동수도 다소 크게 평가되었다.

수소화붕소[BnHn, BnHn+1, BnHn+2 (n = 3-6)]의 분자구조 및 분광학적 성질에 대한 이론 연구 (Theoretical study for the molecular structures and spectroscopic properties of various boron hydrides (BnHn, BnHn+1, BnHn+2, n = 3-6))

  • 김시조;송미선;김승준
    • 대한화학회지
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    • 제54권4호
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    • pp.387-394
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    • 2010
  • 여러 수소화붕소류 가운데 상대적으로 덜 알려진 $B_nH_n$, $B_nH_{n+1}$, $B_nH_{n+2}$ (n = 3-6)의 여러 가능한 구조들을 B3LYP/6-311G$^*$ 이론 수준에서 최적화하여 구조적인 특성과 에너지와의 상호 연관성을 조사하였다. 각 화합물의 가장 안정한 분자구조(global minimum)를 확인하고, 보다 정확한 상대 에너지를 계산하기 위하여 진동주파수를 계산하여 영점진동에너지(ZPVE)를 보정 하였다. 중성 $B_3H_3$, $B_3H_4$, $B_3H_5$에서 BH 단량체가 늘어남에 따라 나타나는 구조적인 뒤틀림이나 기하학적인 변화를 조사하고 기저에너지와 상대에너지를 계산하여 BH 단량체가 증가함에 따른 결합에너지와 평균에너지의 경향성을 예측하였다.

바이올린용 소재의 진동모드 해석에 관한 연구 -제2보. 소재 연륜폭 및 절삭방향이 브릿지의 공진주파수에 미치는 영향 (Studies on the vibrational modal analysis of solid woods for the violin making II, Effect of annual ring width and cutting direction on the resonant frequency of the bridges)

  • 정우양
    • 한국가구학회지
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    • 제16권1호
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    • pp.17-23
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    • 2005
  • European maple is famous for the optimum solid wood for making bridge which is the most important part in violin acoustics. This study was carried out to investigate the variation of main features, i. e. annual ring width and cutting direction of costly imported violin bridge blanks and to examine the effect of these features of the blanks on the vibrational characteristics of bridge blanks. Imported violin bridge blanks had somewhat large variation in major macroscopical and physical properties and there was little relationship between annual ring density and weight of maple blanks. Resonant frequency of violin bridge blanks had some positive correlation with weight, however, damping having negative relationship with frequency was seldom affected by any physical properties of the maple blanks. Deviation from the radial cutting of tail side(ray direction from top toward feet on the edge of bridge blank) lowered the resonant frequency. Consequently, weight and ray direction should be taken for the critical quality decisive factors(QDF) of incoming bridge blanks by not only inspectors also luthiers who tune the bridge by shaping and are responsible for the final timbre quality of this complicate instrument.

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Vibrational characteristics of multi-phase nanocomposite reinforced circular/annular system

  • Zhou, Changlin;Zhao, Yi;Zhang, Ji;Fang, Yuan;Habibi, Mostafa
    • Advances in nano research
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    • 제9권4호
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    • pp.295-307
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    • 2020
  • The vibrational characteristics of Multi-Phase Nanocomposite (MPC) reinforced annular/circular plate under initially stresses are presented using the state-space formulation based on three-dimensional elasticity theory (3D-elasticity theory) and Differential Quadrature Method (DQM). The MPC reinforced annular/circular plate is under initial lateral stress and composed of multilayers with Carbon Nanotubes (CNTs) uniformly dispersed in each layer, but its properties change layer-by-layer along the thickness direction. The State-Space based Differential Quadrature Method (SS-DQM) is presented to examine the frequency behavior of the current structure. Halpin-Tsai equations and fiber micromechanics are used in the hierarchy to predict the bulk material properties of the multi-scale composite. A singular point is investigated for modeling the circular plate. The CNTs are supposed to be randomly oriented and uniformly distributed through the matrix of epoxy resin. Afterward, a parametric study is done to present the effects of various types of sandwich circular/annular plates on frequency characteristics of the MPC reinforced annular/circular plate using 3D-elasticity theory.