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Flow-Induced Whistle in the Joint of Thermal Expansion Valve and Suction Tube in Automotive Refrigerant System

机译:热膨胀阀接头中的流动吹口和汽车制冷系统中的吸管

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In the thermal expansion valve (TXV) refrigerant system, transient high-pitched whistle around 6.18 kHz is often perceived following air-conditioning (A/C) compressor engagements when driving at higher vehicle speed or during vehicle acceleration, especially when system equipped with the high-efficiency compressor or variable displacement compressor. The objectives of this paper are to conduct the noise source identification, investigate the key factors affecting the whistle excitation, and understand the mechanism of the whistle generation. The mechanism is hypothesized that the whistle is generated from the flow/acoustic excitation of the turbulent flow past the shallow cavity, reinforced by the acoustic/structural coupling between the tube structural and the transverse acoustic modes, and then transmitted to evaporator. To verify the mechanism, the transverse acoustic mode frequency is calculated and it is coincided to the one from measurement. In the end, the recommendations for preventing the system from having whistle are also provided.
机译:在热膨胀阀(TXV)制冷剂系统中,瞬态高倾口哨距离6.18 kHz约为6.18 kHz,在空调(A / C)压缩机在较高车速或车辆加速期间驱动时感知,特别是当系统配备时高效压缩机或可变排量压缩机。本文的目的是进行噪声源识别,调查影响口哨激励的关键因素,并了解哨子的机制。该机构被假设是从浊度的流动/声学激发经过浅腔的流动/声学激发产生哨子,通过管结构和横向声学模式之间的声学​​/结构耦合加强,然后传递到蒸发器。为了验证机制,计算横向声模式频率,并将其与测量值一致。最后,还提供了防止系统吹口哨的建议。

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