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Heterogeneous wetting surfaces with graphitic petal-decorated carbon nanotubes for enhanced flow boiling

机译:石墨花瓣装饰的碳纳米管的非均质润湿表面可增强流动沸腾

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Two-phase cooling is widely employed in temperature-sensitive devices for high heat flux dissipation owing to the benefits of latent heat exchange. The objective of this work is to elucidate the subcooled flow boiling characteristics of heterogeneous wetting surfaces using water as the working fluid. Heterogeneous wetting surfaces with alternating parallel stripes of superhydrophobic (SHo) and super-hydrophilic (SHi) regions are fabricated with graphitic petal-decorated carbon nanotube (GPCNT) coatings. Graphitic petals are a carbon nanostructure comprising of stacks of graphene layers standing vertically on a substrate. GPCNTs are synthesized on bulk copper substrates by a two-step microwave plasma enhanced chemical vapor deposition technique. A combination of Teflon coating, shadow mask, and oxygen plasma treatment is utilized to create composite wetting surfaces with differing superhydro-philic area fractions and SHo to SHi channel width ratios. Boiling experiments reveal that heterogeneous wetting surfaces with higher superhydrophilic area fraction (0.66 and 0.85) exhibit significant reduction in surface superheat and higher heat transfer coefficients throughout the entire boiling regime as opposed to uniform SHo and SHi boiling surfaces. Flow visualization reveals enhanced active nucleation site density and preferential bubble nucleation in the superhydrophobic channels of composite wetting surfaces. Isolated near-spherical vapor morphologies on surfaces with higher superhydrophilic area fraction promote thin film evaporation and enhanced bubble ebullition cycles, thereby leading to improved two-phase thermal performance.
机译:由于潜热交换的优势,两相冷却广泛用于温度敏感型设备中,以实现高热通量消散。这项工作的目的是阐明使用水作为工作流体的非均质润湿表面的过冷流动沸腾特性。用石墨修饰的花瓣状碳纳米管(GPCNT)涂层制造具有超疏水(SHo)和超亲水(SHi)区域交替平行条纹的异质润湿表面。石墨花瓣是一种碳纳米结构,包括垂直堆积在基板上的石墨烯层堆叠。 GPCNT是通过两步微波等离子体增强化学气相沉积技术在块状铜基板上合成的。将特氟隆涂层,荫罩和氧等离子体处理相结合,以创建具有不同超亲水面积分数和SHo与SHi通道宽度比的复合润湿表面。沸腾实验表明,与均匀的SHo和SHi沸腾表面相反,具有较高超亲水面积分数(0.66和0.85)的非均质润湿表面在整个沸腾过程中表现出明显的表面过热降低和较高的传热系数。流动可视化显示了复合材料润湿表面的超疏水通道中增强的活性成核位点密度和优先的气泡成核作用。超亲水面积分数较高的表面上孤立的近球形蒸气形态可促进薄膜蒸发并增强气泡沸腾循环,从而改善两相热性能。

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