• 제목/요약/키워드: sound intensity

검색결과 339건 처리시간 0.023초

보강판의 방사소음저감을 위한 제진재의 최적 위치 선정 (Optimal Adherent Position of Viscoelastic Material for the Reduction of Sound Power Radiated from the Stiffened Plate)

  • 김사수;조대승;안호일;정상민
    • 한국해양공학회지
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    • 제12권2호통권28호
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    • pp.22-32
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    • 1998
  • Many of steel structures having little internal damping consist of stiffened plates. In case that viscoelastic materials are adhered to the stiffened plates for the reduction of structure-borne noise, their effects are varied by the adhered position and dynamic characteristics of the structures as well as their material properties and adhered amount. In this paper, sound reduction effects of viscoelastic materials partially adhered to the different positions of a stiffened steel plate have been investigated by the measurement of vibratory velocity and sound intensity. The results show that optimal adherent positions of viscoelastic materials to reduce sound radiation power are the loop areas of modes.

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다중층 음향 재료의 투과손실 예측과 측정 (Prediction and Measurement of Sound Transmission Loss for Multi-layered Acoustical Materials)

  • 박소희;박철민;채기상;강연준
    • 한국소음진동공학회논문집
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    • 제17권11호
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    • pp.1013-1020
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    • 2007
  • In this paper, the predictions and measurements of sound transmission loss(STL) are discussed for various types of acoustical materials and carpets. Random incidence sound transmission losses are measured by the sound intensity method. The in-house software HONUS2005 is used to predict TL and estimate the various physical properties such as the flow resistivity, the structure factor, the porosity, the Possion's ratio, and etc. After this estimation, various multi-layered materials with a steel plate are measured and predicted. In particular, Carpets are assumed to be membranes to predict acoustical performance. To confirm this assumption, double and triple-layered cases are also observed including two different kinds of carpets.

스피커 어레이를 사용한 공간의 음향 파워 제어 방법 (A Method to Manipulate Sound Power within a Selected Region Using Source Array)

  • 최정우;김양한
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2004년도 춘계학술대회논문집
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    • pp.278-281
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    • 2004
  • Multiple sound sources are controlled to enhance sound power within a zone of interest. The problem of enhancing acoustic variable can be regarded as an optimization problem, which seeks an optimal control input that maximizes the acoustic variable. It should be noted that enhancing sound power of a selected region requires both the magnitude and direction to be controlled. For this reason, two kinds of cost functions that can represent the spatially distributed intensity are defined. Theoretical formulation shows the possibility of sound power control in a zone, and the detailed procedures of the proposed method are validated by numerical simulations.

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Sound Intensity를 이용한 건물부재의 차음성능 실험실 측정방법 KS규격 제정안

  • Soo, Jung-Sung;Kook Chan;Kim, Sun-Woo
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2002년도 추계학술대회논문초록집
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    • pp.393.2-393
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    • 2002
  • In this study, the ISO 15186-1 "Measurement of sound insulation in buildings and of building elements using sound intensity - Part 1 Laboratory conditions" was reviewed in order to make it as a new Korean Insustrial Standard. Several main contents are discussed and a new Korean Korean Insustrial Standard is proposed.

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표면 인텐시티법을 이용한 건물부위의 음향투과손실 측정 (Measurement of Transmission Loss Using Surface Intensity Method in Building Elements)

  • 김흥식;손장열;오재응
    • 한국음향학회지
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    • 제6권3호
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    • pp.17-22
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    • 1987
  • 새로운 차음성능 측정방법인 표면인텐시티법을 이용하여 실제 건축물의 현장에서 각부위별 차음성능 평가하고. 이를 종래의 음압측정방법과 은향인텐시티법 및 이론계산에 의한 결과 치 와 비교 . 검토하였다. 표면인텐시티법에 의한 건물부위의 차음성능 측정결과치는 음향인 텐시티법 및 이론계산에 의한 결과치와 잘 일치하였으며, 표면 인텐시티법은 음향인텐시티 법과 더불어 종래의 음압측정방법에 비해 측정시 주위 암소음 및 flanking transmission의 영향을 적게 받는 것으로 나타났다.

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스펙트럼 이동을 이용한 청진음 강화 (Reinforcing Stethoscope Sound using Spectral Shift)

  • 정동근
    • 센서학회지
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    • 제30권1호
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    • pp.47-50
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    • 2021
  • Human hearing sensitivity is frequency-dependent. The sensitivity is low at both ends of the audible frequency, and the sensitivity is the highest in the middle band at 3000 Hz. The heart sound of a healthy person is concentrated at a low frequency of 200 Hz or less, and despite using a stethoscope, the hearing sensitivity of the human body is low, and the stethoscope sound is low. Amplifying the sound of the stethoscope is not effective in distinguishing heart sounds in noisy environments because it maintains the same signal-to-noise ratio. In this study, a method of enhancing auditory stimulation was developed by applying a method of moving the spectrum of auscultation sounds into a high-frequency region where the human body is highly sensitive to hearing. The spectrum of the auscultation sound was moved up by 500 Hz in the frequency domain, and an inverse fast Fourier transform (FFT) was performed to reconstruct the auscultation sound. The heart sounds reconstructed by moving the spectra were divided into the first heart and second heart sound components, as in the original heart sound, and it was confirmed that the intensity was large in the cochleagram representing auditory stimulation. Therefore, this study suggested that spectral shift is a method to enhance auditory stimulation during auscultation without increasing the intensity of the auscultation sound.

음향인텐시티법에 의한 고체진동 가진판의 소음원 검출에 관한 연구 (A study of noise source identification on plate excited structure borne sound by acoustic intensity method)

  • 오재응;김상헌;홍동표;이찬홍
    • 오토저널
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    • 제8권4호
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    • pp.43-55
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    • 1986
  • 소음저감에 대한 연구에서 소음언을 규명하기 위해서 소음의 발생 메카니즘을 안다는 것은 중요 하다. 구조물의 진동과 이로 인해서 발생되는 방사음과의 관계는 상당히 복잡하기 때문에 본 연 구에서는 음향인텐시티의 측정을 위하여 간단한 방사 모델을 대해 연구하였다. 소음원 규명의 첫 단계로서 본 연구에서는 음압측정에 의한 소음평가에 대해 알아 보았다. 두 번째 단계로서 음향 인텐시티법을 이용하여 음향 방사 모우드 패턴을 결정하였으며 음향인텐시티법이 소음원 검출에 유효함을 입증하였다. 또한 본 연구에서는 방진재 부착에 따른 음의 방사특성을 예측하고 방 진재 부착위치를 결정할 수 있었다.

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평판 인텐시티 측정을 통한 근접장 음향 인텐시티와 손실 계수 측정법 (Measurement of Near Field Sound Intensity and Loss Factor Using Plate Intensity Measurement)

  • 김용조;김양한
    • 소음진동
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    • 제7권4호
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    • pp.589-596
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    • 1997
  • A energy equation for a thin plate and surrounding fluid is derived. The equation essentially determines the relation between internal loss of thin plate, energy of acoustic radiation, and structure intensity. We attempted to use this relation to measure internal loss of thin plate. The significance of this approach is that internal loss at any point of a thin plate can be measured. The quality of this measure is dicated by the accuracy of associated measurement systems such as structure and acoustic intensity measurements. A strain gauge bridge system has been developed to measure structure intensity of thin plate. Its performance is tested by experiments.

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복소음향 인텐시티법을 이용한 소음원검출의 시뮬레이션 및 실차응용 (Computer Simulation for Noise Source Identification and Application to Vehicle Using Complex Acoustic Intensity Method)

  • 오재응;김상헌;안지훈
    • 한국자동차공학회논문집
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    • 제5권3호
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    • pp.159-171
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    • 1997
  • Sound intensity distributions and energy flow in the near field of dipole source system and flat plate were investigated. First, the effectiveness of complex acoustic intensity was proved by using mathmatical and experimental methods in order to inden- tify noise sources and transmission paths of dipole field which is effected by the presence of neighbouring coherent sources. Next, analytical complex acoustic intensity method was discussed and the characteristics and energy flow of sound induced from the plate are clarified. The velocity of plate obtained from Finite Element Method was used for calculation of complex acoustic intensity in the near field. Finally experimental complex acoustic intensity method using both of active and reactive intensity is vital in devising a strategy for the identification and the reduction of vibration and noise.

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Wavelet Transform을 이용한 Heart Sound Analysis (Analysis of Heart Sound Using the Wavelet Transform)

  • 위지영;김중규
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2000년도 제13회 신호처리 합동 학술대회 논문집
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    • pp.959-962
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    • 2000
  • A heart sound algorithm, which separates the heart sound signal into four parts; the first heart sound, the systolic period, the second heart sound, and the diastolic period has been developed. The algorithm uses discrete intensity envelopes of approximations of the wavelet transform analysis method to the phonocard-iogram(PCG)signal. Heart sound a highly nonstation-ary signal, so in the analysis of heart sound, it is important to study the frequency and time information. Further more, Wavelet Transform provides more features and characteristics of the PCG signal that will help physician to obtain qualitative and quantitative measurements of the heart sound.

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