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Ultrasonic Guided Wave Phased Array Focusing Technology and Its Application to Defrosting Performance Improvement of Air-Source Heat Pumps

机译:超声波引导波分阶段阵列聚焦技术及其在除霜性能改善空气源热泵性能下的应用

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摘要

Previous studies have indicated that a basic frost layer negatively affects the heat-transfer efficiency and is difficult to remove using a single ultrasonic transducer. Herein, an ultrasonic phased array technology is proposed for evaporator coil defrosting. First, the dispersion curve of the guided wave in the vibration transfer plate and frosting fin is calculated, and the advance time of each ultrasonic vibrator and the ultrasonic near-field pressures under different velocities are determined through numerical calculations using the MATLAB software. Next, according to the advance time, ultrasonic array focusing is performed to remove the basic frost layer. Finally, the power consumption, heat-supply enthalpy difference, and coefficient of performance (COP) of the air-source heat pump (ASHP) unit are analysed. The theoretical analysis, numerical calculations, and experimental results consistently revealed that ultrasonic array focusing compensates for the energy dissipation and expends the effective defrosting area. Additionally, the perpendicular stress elicited by the Lamb wave and the differential transverse shear stress generated by the SH wave exceed the tensile strength and adhesion stress of the basic frost layer. The basic frost layer cracks and falls away, owing to the combination of the ultrasonic stress effect and the cavitation effect. The defrosting power consumption of the ASHP unit under ultrasonic array excitation decreases from −3.27% to 0.12%, whereas the heat-supply enthalpy difference increases from 4.47% to 10.86%. Therefore, the percentage increment of the COP is between 7.16% and 11.12%, and the power consumption of the reverse-cycle defrosting is 3−12 times that of ultrasonic array defrosting.
机译:以前的研究表明,基本霜层对传热效率产生负面影响,并且难以使用单个超声换能器去除。这里,提出了一种用于蒸发器线圈除霜的超声相位阵列技术。首先,计算振动转移板和磨损翅片中的引导波的分散曲线,并且通过使用MATLAB软件的数值计算确定每个超声振动器和超声波近场压力的超声波近场压力。接下来,根据提前时间,执行超声波阵列聚焦以去除基本霜层。最后,分析了空气源热泵(ASHP)单元的功耗,供热焓差和性能系数(COP)。理论分析,数值计算和实验结果始终如一地揭示了超声阵列聚焦补偿能量耗散并消耗有效的除霜区域。另外,由羔羊波引起的垂直应力和由SH波产生的差异横向剪切应力超过碱性霜层的拉伸强度和粘附应力。由于超声波应力效应和空化效果的组合,基本霜层裂缝并掉落。超声波阵列激发下ASHP单元的除霜功耗从-3.27%降至0.12%,而供热焓差从4.47%增加到10.86%。因此,警察的百分比增量在7.16%和11.12%之间,反向周期除霜的功耗为超声波阵列除霜3-12倍。

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