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冷凝器冷却水通道声传递特性
引用本文:劳星胜,彭旭,姚世卫. 冷凝器冷却水通道声传递特性[J]. 噪声与振动控制, 2018, 38(1): 42-45
作者姓名:劳星胜  彭旭  姚世卫
作者单位:( 热能动力技术重点实验室,武汉第二船舶设计研究所,武汉,430064 )
摘    要:为阐明冷凝器冷却水通道的声传递特性、提高循环水系统声学设计能力,将换热方程和一维平面波方程耦合,推导得到换热管内冷却水声传递矩阵,针对冷凝器几何结构建立总传递矩阵并求解得到其冷却水通道声传递损失。建立试验系统验证了冷凝器冷却水管路声传递损失计算结果。根据换热管双向流固耦合分析计算结果,管外蒸汽绕流对换热管内冷却水脉动压力的影响可以忽略,冷凝器进出口管内水声和管壁振动测试结果也表明,该系统内冷却水脉动和管壁振动耦合紧密,管内流体脉动是管壁振动的主要激励源。研究结果还表明,通过调整冷凝器冷却水通道结构参数可以调节冷却水声传递损失。

关 键 词:声学  冷凝器  冷却水  换热管  声传递  
收稿时间:2017-04-18

Study on Sound Transmission Characteristics of Condenser Coolant Channels
Abstract:Aiming for clarification of sound transmission characteristic of condenser coolant channel and acoustic design level improvement of circulation coolant system, heat exchange equation is coupled into plane wave transmission equations and then the acoustic transfer matrix is derived. A whole condenser acoustic transfer matrix is deduced by employing the configuration parameters and the acoustic transfer loss is calculated. The calculated results are compared to data collected in experiment and agree well with them. Two way fluid and structure interaction analysis is conducted on single heat transfer pipe with surrounding flow. The results show that effect of surrounding steam flow on internal flow characteristics could be neglected. Experimental results also show that flow fluctuation is the main exciting source of pipe wall vibration as coolant flow sound pressure fluctuation and coolant pipe wall vibration are closely interacted. Variation of condenser construction parameters can be employed to regulating coolant sound transfer loss in circulation coolant system.
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