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문대호,이상현,황재승,백길옥,박홍근,Mun, Dae-Ho,Lee, Sang-Hyun,Hwang, Jae-Seung,Baek, Gil-Ok,Park, Hong-Gun 한국전산구조공학회 2015 한국전산구조공학회논문집 Vol.28 No.6
본 논문에서는 유한요소법을 이용하여 공동주택의 중량충격음을 예측하기 위해 구조해석 모델과 음향해석 모델을 개발하고 예측결과와 실험결과를 비교하여 정확성을 검증하였다. 패널 임피던스 값을 사용하여 거실의 적절한 흡음 특성을 반영할 수 있었으며, 수치해석에 주파수 응답함수 특성을 적용하여 1회 수치해석만으로 다양한 충격원에 대한 응답을 예측할 수 있도록 하였다. 구조진동에 의한 실내 소음해석은 유한요소 수치해석 기법이 진동 및 음향모드에 대한 응답을 비교적 정확하게 예측할 수 있도록 하였으며, 본 연구의 예측결과는 실험결과와 비교적 유사한 값을 나타내었다. 향후 정확도가 보다 향상된 수치해석 모델개발을 통해 바닥충격음 저감에 효과적인 공동주택 설계가 가능할 것으로 판단된다. In this study floor impact noise and structure acceleration response of bare concrete slabs were predicted by using Finite Element Analysis(FEA). Prediction results were compared with experimental results to prove the accuracy of numerical model. Acoustic absorption were addressed by using panel impedance coefficients with frequency characteristics and structural modal damping of numerical model were applied by modal testing results and analysis of prediction and test results. By using frequency response function, the floor acceleration and acoustic pressure responses for various impact sources were calculated at the same time. In the FEA, the natural frequencies and the shapes of vibration and acoustic modes can be estimated through the eigen-value analysis, and it can be visually seen the vibration and sound pressure field and the contribution of major modes.
문대호(Mun, Dae-Ho),박홍근(Park, Hong-Gun),황재승(Hwang, Jae-Seung),홍건호(Hong, Geon-Ho),임주혁(Im, Ju-Hyeuk) 한국소음진동공학회 2012 한국소음진동공학회 논문집 Vol.22 No.7
Numerical analysis was performed to investigate the heavy-weight impact noise of apartment houses. The FEM is practical method for prediction of low-frequency indoor noise. The results of numerical analysis, the shape of the acoustic modes in room-2 are similar to that of acoustic pressure field at the fundamental frequency of acoustic modes. And the acoustic pressure was amplified at the natural frequency of the acoustic modes and structural modes. The numerical analysis result of sound pressure level at 63 Hz and 125 Hz octave-band center frequency are similar to the test results, but at 250 Hz and 500 Hz have some errors. Considering most of bang-machine force spectrum exists below 100 Hz, the noise at 250 Hz and 500 Hz are not important for heavy-weight impact noise. Thus, the FEM numerical analysis method for heavy-weight impact noise can apply to estimate heavy-weight impact noise for various building systems.