• 제목/요약/키워드: shock wave propagation

검색결과 115건 처리시간 0.024초

Sensor placement strategy for high quality sensing in machine health monitoring

  • Gao, Robert X.;Wang, Changting;Sheng, Shuangwen
    • Smart Structures and Systems
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    • 제1권2호
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    • pp.121-140
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    • 2005
  • This paper presents a systematic investigation of the effect of sensor location on the data quality and subsequently, on the effectiveness of machine health monitoring. Based on an analysis of the signal propagation process from the defect location to the sensor, numerical simulations using finite element modeling were conducted on a bearing test bed to determine the signal strength at several representative sensor locations. The results showed that placing sensors closely to the machine component being monitored is critical to achieving high signal-to-noise ratio, thus improving the data quality. Using millimeter-sized piezoceramic plates, the obtained results were evaluated experimentally. A comparison with a set of commercial vibration sensors verified the developed structural dynamics-based sensor placement strategy. It further demonstrated that the proposed shock wave-based sensing technique provided an effective alternative to vibration measurement, while requiring less space for sensor installation.

Response of anisotropic porous layered media with uncertain soil parameters to shear body-and Love-waves

  • Sadouki, Amina;Harichane, Zamila;Elachachi, Sidi Mohammed;Erken, Ayfer
    • Earthquakes and Structures
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    • 제14권4호
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    • pp.313-322
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    • 2018
  • The present study is dedicated to investigate the SH body-as well as Love-waves propagation effects in porous media with uncertain porosity and permeability. A unified formulation of the governing equations for one-dimensional (1-D) wave propagation in anisotropic porous layered media is presented deterministically. The uncertainties around the above two cited parameters are taken into account by random fields with the help of Monte Carlo Simulations (MCS). Random samples of the porosity and the permeability are generated according to the normal and lognormal distribution functions, respectively, with a mean value and a coefficient of variation for each one of the two parameters. After performing several thousands of samples, the mathematical expectation (mean) of the solution of the wave propagation equations in terms of amplification functions for SH waves and in terms of dispersion equation for Love-waves are obtained. The limits of the Love wave velocity in a porous soil layer overlaying a homogeneous half-space are obtained where it is found that random variations of porosity change the zeros of the wave equation. Also, the increase of uncertainties in the porosity (high coefficient of variation) decreases the mean amplification function amplitudes and shifts the fundamental frequencies. However, no effects are observed on both Love wave dispersion and amplification function for random variations of permeability. Lastly, the present approach is applied to a case study in the Adapazari town basin so that to estimate ground motion accelerations lacked in the fast-growing during the main shock of the damaging 1999 Kocaeli earthquake.

Computational Study on Unsteady Mechanism of Spinning Detonations

  • Matsuo, Akiko;Sugiyama, Yuta
    • 한국전산유체공학회:학술대회논문집
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    • 한국전산유체공학회 2008년도 학술대회
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    • pp.367-373
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    • 2008
  • Spinning detonations propagating in a circular tube were numerically investigated with a one-step irreversible reaction model governed by Arrhenius kinetics. Activation energy is used as parameter as 10, 20, 27 and 35, and the specific heat ratio and the heat release are fixed as 1.2 and 50. The time evolution of the simulation results was utilized to reveal the propagation mechanism of single-headed spinning detonation. The track angle of soot record on the tube wall was numerically reproduced with various levels of activation energy, and the simulated unique angle was the same as that of the previous reports. The maximum pressure histories of the shock front on the tube wall showed stable pitch at Ea=10, periodical unstable pitch at Ea=20 and 27 and unstable pitch consisting of stable, periodical unstable and weak modes at Ea=35, respectively. In the weak mode, there is no Mach leg on the shock front, where the pressure level is much lower than the other modes. The shock front shapes and the pressure profiles on the tube wall clarified the mechanisms of these stable and unstable modes. In the stable pitch at Ea=10, the maximum pressure history on the tube wall remained nearly constant, and the steady single Mach leg on the shock front rotated at a constant speed. The high and low frequency pressure oscillations appeared in the periodical unstable pitch at Ea=20 and 27 of the maximum pressure history. The high frequency was one cycle of a self-induced oscillation by generation and decay in complex Mach interaction due to the variation in intensity of the transverse wave behind the shock front. Eventually, sequential high frequency oscillations formed the low frequency behavior because the frequency behavior was not always the same for each cycle. In unstable pitch at Ea=35, there are stable, periodical unstable and weak modes in one cycle of the low frequency oscillation in the maximum pressure history, and the pressure amplitude of low frequency was much larger than the others. The pressure peak appeared after weak mode, and the stable, periodical unstable and weak modes were sequentially observed with pressure decay. A series of simulations of spinning detonations clarified that the unsteady mechanism behind the shock front depending on the activation energy.

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Computational Study on Unsteady Mechanism of Spinning Detonations

  • Matsuo, Akiko;Sugiyama, Yuta
    • 한국전산유체공학회:학술대회논문집
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    • 한국전산유체공학회 2008년 추계학술대회논문집
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    • pp.367-373
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    • 2008
  • Spinning detonations propagating in a circular tube were numerically investigated with a one-step irreversible reaction model governed by Arrhenius kinetics. Activation energy is used as parameter as 10, 20, 27 and 35, and the specific heat ratio and the heat release are fixed as 1.2 and 50. The time evolution of the simulation results was utilized to reveal the propagation mechanism of single-headed spinning detonation. The track angle of soot record on the tube wall was numerically reproduced with various levels of activation energy, and the simulated unique angle was the same as that of the previous reports. The maximum pressure histories of the shock front on the tube wall showed stable pitch at Ea=10, periodical unstable pitch at Ea=20 and 27 and unstable pitch consisting of stable, periodical unstable and weak modes at Ea=35, respectively. In the weak mode, there is no Mach leg on the shock front, where the pressure level is much lower than the other modes. The shock front shapes and the pressure profiles on the tube wall clarified the mechanisms of these stable and unstable modes. In the stable pitch at Ea=10, the maximum pressure history on the tube wall remained nearly constant, and the steady single Mach leg on the shock front rotated at a constant speed. The high and low frequency pressure oscillations appeared in the periodical unstable pitch at Ea=20 and 27 of the maximum pressure history. The high frequency was one cycle of a self-induced oscillation by generation and decay in complex Mach interaction due to the variation in intensity of the transverse wave behind the shock front. Eventually, sequential high frequency oscillations formed the low frequency behavior because the frequency behavior was not always the same for each cycle. In unstable pitch at Ea=35, there are stable, periodical unstable and weak modes in one cycle of the low frequency oscillation in the maximum pressure history, and the pressure amplitude of low frequency was much larger than the others. The pressure peak appeared after weak mode, and the stable, periodical unstable and weak modes were sequentially observed with pressure decay. A series of simulations of spinning detonations clarified that the unsteady mechanism behind the shock front depending on the activation energy.

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캐비테이션 유동해석을 위한 기-액 2상 국소균질 모델 (GAS-LIQUID TWO-PHASE HOMOGENEOUS MODEL FOR CAVITATING FLOW)

  • 신병록
    • 한국전산유체공학회지
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    • 제12권2호
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    • pp.53-62
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    • 2007
  • A high resolution numerical method aimed at solving cavitating flow is proposed and applied to gas-liquid two-phase shock tube problem. The present method employs a finite-difference 4th-order Runge-Kutta method and Roe's flux difference splitting approximation with the MUSCL TVD scheme. By applying the homogeneous equilibrium cavitation model, the present density-based numerical method permits simple treatment of the whole gas-liquid two-phase flow field, including wave propagation and large density changes. The speed of sound for gas-liquid two-phase media is derived on the basis of thermodynamic relations and compared with that by eigenvalues. By this method, a Riemann problem for Euler equations of one dimensional shock tube was computed. Numerical results such as detailed observations of shock and expansion wave propagations through the gas-liquid two-phase media at isothermal condition and some data related to computational efficiency are made. Comparisons of predicted results and exact solutions are provided and discussed.

발파작업 시 충전매질에 따른 발파효과 비교 연구 (A Comparative Study on the Effect of Tamping Materials on the Impact Efficiency at Blasting Work)

  • 배상수;한우진;장승엽;방명석
    • 한국지반신소재학회논문집
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    • 제21권2호
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    • pp.57-65
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    • 2022
  • 본 연구에서는 폭약과 발파공 사이의 충전매질을 통한 충격파 전파 효과를 수치적으로 시뮬레이션하고 검증하였다. 고체(Lagrangian)와 유체(Eulerian)를 혼합 모델링하기 위해 Arbitrary Lagrangian-Eulerian(ALE) 방법을 선택하였다. 시간의존적 해석은 발파공정 시간 동안 수행되었다. 폭약과 매질(공기 또는 물)을 유한 요소망으로 모델링하였고, 발파공은 시작점(폭약)에서 발파공벽에 도달하는 전파 속도와 충격력을 결정할 수 있는 강체로 가정하였다. 해석결과에 따르면 물의 전파속도와 충격력은 공기의 경우보다 컸다. 추가로 발파 작업의 실제 현장을 모델링하고 시뮬레이션하였다. 암석은 탄소성체로 가정하였다. 해석결과에 따르면 충전매질이 물인 경우 순간 충격력이 더 크고, 파쇄블록 크기는 더 작은 것으로 나타났다. 반면 발파공배면에서의 충격량은 물인 경우에 더 작았는데, 이는 파쇄에 충격에너지가 상당부분 사용되고, 파쇄로 인한 감쇠 효과에 의해 주변의 고체를 통한 압력 전파는 공기보다 작아지기 때문이다. 이로써 충전매질로서 물이 공기보다 경제성이 더 높다는 것이 입증되었다.

충격하중이 작용하는 평판의 동적 응력 해석 (Dynamic Stress Analysis on Impact Load in 2-Dimensional Plate)

  • 황갑운;조규종
    • 전산구조공학
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    • 제8권1호
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    • pp.137-146
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    • 1995
  • 본 논문에서는 최근 관심이 증대되고 있는 충격하중에 의해 시간의 흐름에 따라 형성되는 구조물의 응력분포 양상을 유한요소 해석적으로 고찰하기 위하여 동적 응력 해석 프로그램을 개발하였다. 유한요소 해석에 의하면, 종방향 응력파는 충격하중이 작용하는 방향과 동일한 방향으로 진행하며, 응력파 선단의 속도와 모양은 이론해석에 의한 결과와 같음을 알 수 있다. 또한 종파의 진행방향에 45.deg. 방향으로 전단파가 발생하여 진행함을 알 수 있으며, 전단파의 속도는 종파의 1/2이 되고, 종파보다 전단파의 강도가 큼을 알 수 있다.

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Impact of composite materials on buried structures performance against blast wave

  • Mazek, Sherif A.;Wahab, Mostafa M.A.
    • Structural Engineering and Mechanics
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    • 제53권3호
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    • pp.589-605
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    • 2015
  • The use of the rigid polyurethane foam (RPF) to strengthen buried structures against blast terror has great interests from engineering experts in structural retrofitting. The aim of this study is to use the RPF to strengthen the buried structures under blast load. The buried structure is considered to study the RPF as structural retrofitting. The Guowei model (Guowei et al. 2010) is considered as a case study. The finite element analysis (FEA) is also used to model the buried structure under shock wave. The buried structure performance is studied based on detonating different TNT explosive charges. There is a good agreement between the results obtained by both the Guowei model and the proposed numerical model. The RPF improves the buried structure performance under the blast wave propagation.

축소관과 확대관 출구로부터 방출되는 펄스파에 관한 연구 (A Study on the Impulse Waves Discharged from the Exit of the Convergent and Divergent Pipes)

  • 이동훈;이명호;권용훈;김희동;박종호
    • 한국소음진동공학회논문집
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    • 제12권5호
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    • pp.346-354
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    • 2002
  • The present study is to investigate the propagation characteristics of the impulse waves discharged from the exit of the convergent and divergent pipes. An experiment is carried out using a shock tube with an open end and is compared to the computation of the axisymmetric, compressible, unsteady Euler equations, which are solved by the second-order total variation diminishing (TVD) scheme. For the computational work, several initial compression waves are assumed inside the pipe so that those are the same to the experimental ones of the shock tube. The results show that the peak pressures of the impulse waves discharged from the exit of convergent and divergent pipes decrease with an increase in the wavelength of the initial compression wave. All of the impulse waves have a strong directivity toward the pipe axis, regardless of the exit type of the pipe employed. The impulse waves discharged from the divergent pipe are stronger than those from the straight pipe, while the impulse waves of the convergent pipe are weaker than those from the straight pipe. It is found that the convergent pipe can play a role of a passive control to reduce the peak pressure of the impulse wave. The present computations represent the experimented impulse waves with a good accuracy.

산업용 폭약을 이용한 폭발용접, 폭발성형과 충격분말고화에 관한 실험 및 수치해석적 연구 (Experimental and Numerical Studies on Application of Industrial Explosives to Explosive Welding, Explosive Forming, Shock Powder Consolidation)

  • 김영국;강성승;조상호
    • 터널과지하공간
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    • 제22권1호
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    • pp.69-76
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    • 2012
  • 본 논문은 폭약의 폭발현상을 이용한 폭발용접, 폭발성형과 충격분말고화기술의 기본적 원리와 실험방법, 실험결과에 대하여 기술한다. 타이타늄(Ti)과 스테인레스 강(Stainless steel, SUS 304) 판재의 폭발용접 실험결과, 두 재료 접촉면의 단면에서는 연속적인 젯(jet)모양의 파형이 관찰되었고, 두 금속판재의 설치 경사각도가 $15{\sim}20^{\circ}$ 이고 접착속도가 2,100~2,800 m/s인 경우에 최적의 접합조건을 보였다. 알루미늄(Al) 판재를 이용한 폭발성형 실험과 전형적인 가압성형 실험 결과를 비교분석하여, 폭발성형의 경우가 큰 곡률변형을 보여 가공성이 우수한 것으로 확인되었다. 끝으로 금속과 세라믹의 혼합분말($Fe_{11.2}La_2O_3Co_{0.7}Si_{1.1}$)에 대한 충격고화 실험법을 제안하고 실험을 수행한 결과, 고화체의 표면과 내부에 균열이 확인되지 않았으며 세라믹입자와 금속입자들의 강한 미세조직 결합이 형성되었다. 또한 충격분말고화실험에서 발생되는 폭약의 폭발에 의한 폭굉파와 수중 충격파의 전파 및 간섭현상을 분석하기 위하여 LS-Dyna 3D를 이용한 동적해석을 수행하였다. 그 결과, 물용기 내 벽면에서 반사된 수중충격파가 중앙부에서 중첩되어 폭약의 폭발압력보다 높은 20 GPa의 수중 충격압을 보여, 물용기 내부형상의 중요성을 입증하였다.