Sound Insulation Property Simulation of Door Weatherstrip Considering Practice Working Condition[J]. 2015, 49(11): 142-148.
DOI:
Sound Insulation Property Simulation of Door Weatherstrip Considering Practice Working Condition[J]. 2015, 49(11): 142-148.DOI: 10.7652/xjtuxb201511023.
Sound Insulation Property Simulation of Door Weatherstrip Considering Practice Working Condition
The existing work on door weatherstrip sound insulation performance mainly focuses on the vertical compression of its two-dimensional cross-section with a single compression ratio
but tangential force is seldom taken into consideration in the door closing process. For the door system of an excavator cabin
three-dimensional models of curved and straight weatherstrip sections are established and their distortion characteristics are acquired with different compression ratio. The characteristics include both compression and sliding states
and distortion at some parts of the weatherstrip. A new acoustic cavity is generated since the internal surface is self-interacted under full compression. By acquiring prestressing modal of the three-dimensional weatherstrip model
mode superposition is carried out to gain the sound insulation value in reverberation and anechoic chamber. The results indicate that the sound insulation value of weatherstrip increases at a decreased rate as the compression ratio increases
a small leakage causes serious leaking noise. Furthermore
the sound insulation increases obviously due to the generation of a new acoustic cavity. These results can be used to guide designing door sealing clearance and investigating cross-section shape of weatherstrip and compression load.
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