西安交通大学能源与动力工程学院,710049,西安
西安热工研究院有限公司,710054,西安
北京理工大学机械与车辆学院,100081,北京
作者简介:吴馨(1996—),女,博士生;
高铁瑜(通信作者),男,教授,博士生导师。
收稿:2026-01-22,
网络首发:2026-06-12,
纸质出版:2026-09-10
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吴馨, 高铁瑜, 龚建英, 等. 超声波激励下倾斜表面液滴逆重力迁移的润湿特性研究[J]. 西安交通大学学报,2026,60 (9):142-153. https://doi.org/10.7652/xjtuxb202609014.
WU Xin, GAO Tieyu, GONG Jianying, et al. Wetting Characteristics of Droplet Migration Against Gravity on Inclined Surfaces under Ultrasonic Excitation[J]. Journal of Xi'an Jiaotong University,2026,60 (9):142-153. https://doi.org/10.7652/xjtuxb202609014.
吴馨, 高铁瑜, 龚建英, 等. 超声波激励下倾斜表面液滴逆重力迁移的润湿特性研究[J]. 西安交通大学学报,2026,60 (9):142-153. https://doi.org/10.7652/xjtuxb202609014. DOI:
WU Xin, GAO Tieyu, GONG Jianying, et al. Wetting Characteristics of Droplet Migration Against Gravity on Inclined Surfaces under Ultrasonic Excitation[J]. Journal of Xi'an Jiaotong University,2026,60 (9):142-153. https://doi.org/10.7652/xjtuxb202609014. DOI:
为了研究35 kHz超声波激励下液滴在倾斜铝板表面逆重力迁移过程中的动态润湿行为,通过定量分析液滴体积、超声振动速度以及表面倾斜角对液滴直径铺展率及接触角滞后的影响,揭示了超声作用下液滴在倾斜表面逆重力迁移过程中的润湿行为演化规律,建立了液滴微观润湿特性与宏观动力学行为的协同作用关系。进一步基于受力竞争机制构建了包含声学韦伯数和邦德数的综合无量纲数,确立了液滴动力学响应的预测经验关系式。研究结果表明,超声激励可显著增强液滴润湿能力,并驱动液滴在30°、60°、90°倾斜表面实现逆重力迁移,最大位移约为5.04 mm。液滴直径铺展率在超声作用下呈现出增大-峰值-回缩-稳态的非线性演变,最大直径铺展率变化范围为1.16~1.51,且主要受超声振动速度正向调控。此外,超声振动可有效削弱重力诱导的润湿非对称性,推动接触角滞后由重力主导的负值状态向声场主导的正值状态转变,该转变临界值对应的综合无量纲数为18.79。该研究为基于声场的液滴输运与表面润湿调控提供了理论与实验依据。
To investigate the dynamic wetting behavior of droplets migrating against gravity on an inclined aluminum surface under 35 kHz ultrasonic excitation
the effects of droplet volume
ultrasonic vibration velocity
and surface inclination angle on the droplet diameter spreading ratio and contact angle hysteresis are quantitatively analyzed.The evolution of the wetting behavior during droplet migration against gravity on the inclined surface is revealed
and the synergistic relationship between microscopic wetting characteristics and macroscopic dynamic behavior is established.Furthermore
based on the force competition mechanism
a combined dimensionless number involving the acoustic Weber number and Bond number is constructed
and an empirical relationship for predicting the droplet dynamic response is established.The results show that droplet wettability is significantly enhanced by ultrasonic excitation
and migration against gravity is achieved on surfaces inclined at 30°
60°
90°
with a maximum displacement of approximately 5.04 mm.Under ultrasonic excitation
the droplet diameter spreading ratio exhibits a nonlinear evolution of “increase-peak-retraction-steady state”
with the maximum diameter spreading ratio ranging from 1.16 to 1.51 and mainly increasing with ultrasonic vibration velocity.In addition
gravity-induced wetting asymmetry is effectively weakened by ultrasonic vibration
and contact angle hysteresis is shifted from a gravity-dominated negative state to an acoustic-field-dominated positive state.The combined dimensionless number corresponding to the critical transition is 18.79.A theoretical and experimental basis for acousticfield-based droplet transport and surface wetting control is provided by this study.
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