• Title/Summary/Keyword: 캐비티소음

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A study on the relationship between acoustic modes in tire-wheel guard space and high frequency road noise (타이어-휠가드 공간의 음장모드와 고주파성 로드노이즈의 상관성 연구)

  • Lee, Jong Hyun;Ku, Yo Cheon;Lee, Jin Mo
    • The Journal of the Acoustical Society of Korea
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    • v.35 no.4
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    • pp.288-294
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    • 2016
  • The space between tire and wheel guard acts as a path for tire pattern noise transmission. In this study, acoustic phenomenon occurring in the tire-wheel guard space is investigated using acoustic mode analysis and visualization of the sound pressure distribution over the wheel guard surface. We introduced a cavity over the wheel guard surface to reduce the tire pattern noise, where the cavity acts as an acoustic damper. The interior noise was reduced by 2 dB(A), and the noise control measures treated in this study may provide an efficient method to improve interior sound quality without increasing cost and weight at the final stage of the vehicle development.

A Study on the Noise Performance of Silencer Fused with Hole-Cavity Resonance Technology and Micro-Sphere Stainless Chip Sintering Technology (Hole-Cavity 공명기술과 미세공 스테인레스칩 소결 융합 소음기의 소음성능에 관한 연구)

  • Cho, Dong-Hyun;BacK, Nam-Do
    • Journal of the Korean Society of Manufacturing Process Engineers
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    • v.18 no.1
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    • pp.101-108
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    • 2019
  • In this study, the hole-cavity resonance technology and the micro pore stainless chip sintering technology were fused to develop silencers with excellent noise attenuation performance even at fluid pressures exceeding 30 bar for the first time at home and abroad. As a result of this study, the noise attenuation performance was greatly improved as reflection, loss, and resonance were made to occur thousands of times simultaneously when fluids pass through the sintered micro pore stainless steel chip sound absorber. The noise of the gas emitted from the bomb without the silencer was shown to be 125dB. And noise test conducted after installation of the silencer showed the noise of 67dB. Given the study results, the amount of noise was greatly reduced in the sintered silencer.

Measurement of Cavitation Noise of a Hydrofoil and Prediction of Cavity Bubble Behavior (수중익의 캐비테이션 소음 계측 및 캐비티 기포 거동 해석)

  • Jong-Woo Ahn;Kwan-Hyoung Kang;In-Haeng Song;Kyung-Youl Kim
    • Journal of the Society of Naval Architects of Korea
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    • v.37 no.4
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    • pp.40-47
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    • 2000
  • The cavitation noise of a hydrofoil is measured in a cavitation tunnel. It is exhibited that the noise level sharply increases with the inception of cavitation and increase with the decrease of the cavitation number until a moderate cavitation number. Below the cavitation number, the trend is reversed, which may be resulted from the interference effect between cavities. The trajectory of bubble is predicted by using the Lagrangian method. Meanwhile the size of the bubble is predicted based on the Kirkwood-Bethe approximation. The predicted results for the bubble size are compared with the experimental results. It is shown that the numerical method predicts the time history of cavities fairly well.

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Fluid Dynamic & Cavity Noise by Turbulence Model of the FDLBM with Subgrid Model (차분래티스 Subgrid모델의 난류모델을 이용한 유동현상 및 Cavity Noise 계산)

  • Kang, Ho-Keun;Ro, Ki-Deok;Kang, Myeong-Hoon;Kim, You-Taek;Lee, Young-Ho
    • Proceedings of the Korean Society of Marine Engineers Conference
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    • 2005.06a
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    • pp.1149-1154
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    • 2005
  • The finite difference lattice Boltzmann method(FDLBM) is a quite recent approach for simulating fluid flow, which has been proven as a valid and efficient tool in a variety of complex flow problems. It is considered an attractive alternative to conventional FDM and FVM, because it recovers the Navier-Stokes equations and is computationally more stable, and easily parallelizable to simulate for various laminar flows and a direct simulation of aerodynamics sounds. However, the research of a numerical simulation of turbulent flow by FDLBM, which is important to analyze the structure of turbulent flow in engineering fields, is not carried out. In this research, the FDLBM built in the turbulent model is applied, and a flowfield around 2-dimensional square to validate the applied model with 2D9V is simulated. Besides, 2D computation of the cavity noise generated by flow over a cavity at a Mach number of 0.1 and a Reynolds number based on cavity depth of 5000 is calculated. The computation result is well presented a understanding of the physical phenomenon of tonal noise occurred primarily by well-jet shear layer and vortex shedding and an aeroacoustic feedback loop.

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Effect of Gas-Filled Cavity Of! Frequency Response of a Pressure Transducer (기포로 채워진 캐비티가 압력 센서의 주파수 응답 특성에 미치는 영향)

  • Kang, Kwan-Hyoung;Lee, Mu-Yeol;Kim, Young-Gi
    • Proceedings of the Korean Society for Noise and Vibration Engineering Conference
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    • 2000.06a
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    • pp.785-790
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    • 2000
  • The resonant frequency of a gas-filled cylindrical Helmholtz resonator in a liquid is obtained analytically. The equation of motion of the resonator is derived by using the condition of equilibrium of forces acting on the mass in the neck of the resonator. The reaction force on the upper side of the cylinder due to the acceleration of external fluid and sound radiation is obtained by using the analytical results for the baffled circular-piston problem. From the frequency response function of the resonator, a formula to predict the resonant frequency of the resonator is derived. It is shown that the resonant frequency of the Helmholtz resonator significantly decreases due to the cushioning effect of gas inside the cavity. Therefore, when a pressure transducer is to be installed in a pin-hole type mounting method, much care should be paid to remove the gas from the cavity.

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The Effect of Propeller Skew and Rake on the Fluctuating Pressure (프로펠러 스큐 및 레이크가 변동압력에 미치는 영향)

  • G.I.Choi
    • Journal of Advanced Marine Engineering and Technology
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    • v.21 no.4
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    • pp.364-371
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    • 1997
  • 프로펠러 캐비테이션은 선체진동 및 수중소음에 악영향을 끼치는 주요한 원인중의 하나로 생각되어왔다. 그러나 근래 선박의 고속화와 프로펠러 하중의 증가로 캐비테이션이 전혀 없는 프로펠러의 설계개념 적용은 사실상 불가능하다. 고스큐 프로펠러는 기존의 프로펠러와 비교하여 수중소음과 저주파 압력 펄스를 약하게 하는데 유리한 것으로 인식되고 있다. 변동압력에 대하여 프로펠러 스큐와 레이크의 영향을 조사하기 위하여 체계적인 실험을 캐비테이션 터널에서 수행하였으며 본 논문에서는 여러 가지 스큐와 레이크 분포를 갖는 모형 프로펠러에 대한 캐비테이션 관찰시험과 변동압력 계측결과에 대하여 논의하고 토론하였다. 연구 결과 고스큐는 균일류 및 불균일류에서 공히 변동압력 경감에 효ㄱ과가 있음이 확인되었는데 이는 아마도 날개에서의 캐비테이션 안정성에 의한 것으로 예측된다. 그러나 레이크는 날개에서의 캐비티 크기나 거동에 큰 영향을 주지 못하였으며, 변동압력이 또한 거의 같은 수준으로 나타나는 결과를 가져왔다.

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Study on Interior Noise Transfer Path Analysis by Tire Cavity Resonance (타이어 공동의 공명에 의한 차량 실내음 전달경로 연구)

  • Lee, Sang-Ju;Kang, Byun-Seok
    • Proceedings of the Korean Society for Noise and Vibration Engineering Conference
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    • 2005.11b
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    • pp.129-133
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    • 2005
  • Vibration transmitted through rolling tire is a major source of road noise in vehicle interior noise on the range of low frequency.($0{\sim}500Hz$) Among various road noises, tire cavity noise has very peak on $200{\sim}250Hz$. And generally it is generated by cavity resonance of tire. In this paper, tire cut-sample is used to calculate the tire cavity frequency. Cavity resonance frequency of tire is measured through vertical/tangential forces at load cell of axle using drum cleat impact. This method is useful to find cavity peak because measured forces do not have complex peaks. And changing the test conditions (air inflation, loads), tire cavity resonance characteristics are identified. Finally, vehicle interior noise is measured as tire/vehicle are changing. As difference of tire vertical force is bigger, interior noise level is higher at cavity frequency. Also we can assume that vehicle sensitivity is important factor at tire cavity noise.

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추진기 캐비테이션 성능해석법

  • 이진태
    • Bulletin of the Society of Naval Architects of Korea
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    • v.31 no.4
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    • pp.10-13
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    • 1994
  • 최근 선박의 대형화, 고속화로 인하여 추진기의 부하가 증가되고 있으며, 특히 최근 등장한 1,000TEU급 콘테이너선의 경우 추진기가 흡수해야되는 축마력이 70,000HP 이상인 경우도 잇다. 커다란 축마력을 흡수하여 선박을 빠른 속도로 추진시켜야 되는 최근의 추진기는 작동 원리상 캐비테이션 발생을 피할 수 없으며 캐비테이션 발생량의 허용범위 및 캐비테이션 거동의 특성을 고려하여 추진기를 설계하여야 된다. 캐비테이션의 여유가 없이 추진기 설계가 수행되기 때문에 추진기 캐비테이션의 성능해석은 엄밀한 정밀도가 요구된다. 캐비테이션이란 일정한 온도에서 유체동력학 작용에 의해서 유체주위의 압력이 일정한 압력(예 : 증기압) 이하로 낮아질 때 물이 기화하여 수증기로 변하면서 빈 공간을 형성하는 현상을 말한다. 이렇게 발생된 캐비티는 주위 압력환경에 따라 생성, 성장, 수축, 붕괴의 과정을 거치게 된다. 특히 붕괴의 과정은 짧은 시간 내에 급격히 진행되기 때문에 진동 및 소음의 원인이 되고, 심할 경우 추진기 혹은 주위 물체 표면에 침식작용의 원인이 되기도 한다. 본 고에서는 캐비테이션의 물리적 특성 및 분류방법을 간단히 소개하고, 캐비테이션에 의한 선박추진기의 성능저하 특성 및 모형시험 기법을 이용한 캐비테이션 성능해석법을 소개하였다.

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