Anti-Icing Property of Superhydrophobic Nanostructured Brass via Deposition of Silica Nanoparticles and Nanolaser Treatment

被引:8
作者
Hussain, Saqib [1 ]
Muangnapoh, Tanyakorn [2 ]
Traipattanakul, Bhawat [1 ]
Lekmuenwai, Milin [1 ]
机构
[1] Thammasat Univ, Sirindhorn Int Inst Technol, Sch Mfg Syst & Mech Engn, Pathum Thani 12120, Thailand
[2] Natl Sci & Technol Dev Agcy NSTDA, Natl Nanotechnol Ctr NANOTEC, Pathum Thani 12120, Thailand
关键词
superhydrophobic; brass; silica nanoparticles; nanolaser; anti-icing; droplet; icing time; HEAT-TRANSFER; SURFACE; FABRICATION;
D O I
10.3390/nano13071139
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Ice accumulation on brass surfaces can lead to heat transfer inefficiency, equipment degradation, and potential accidents. To address this issue, superhydrophobic surface technology is utilized. This work aims to develop superhydrophobic nanostructured brass surfaces using the combination of nanolaser ablation and the deposition of silica nanoparticles to achieve the anti-icing property. Four distinct types of brass surfaces namely, the bare surface (BS), the lasered surface (LS), the coated surface (CS), and the coated-lasered surface (CLS) were prepared. The anti-icing performances of the fabricated samples including the effects of the surface structure, the droplet size, and the surface temperature were investigated and evaluated. The results showed that the delayed icing time increased with the increases in the apparent contact angle, the droplet size, and the surface temperature. When the apparent contact angle increased, the contact area between the droplet and the cooling substrate reduced, leading to the longer delayed icing time. With the deposition of silica nanoparticles and nanolaser treatment, CLS achieved the greatest apparent contact angle of 164.5 degrees, resulting in the longest delayed icing time under all experimental conditions. The longest delayed icing time on CLS recorded in this study was 2584 s, which was 575%, 356%, and 27% greater than those on BS, LS, and CS, respectively. The study also revealed that the surface structure played a more crucial role in achieving the anti-icing property when compared to the surface temperature or the droplet size. The shortest delayed icing time on CLS at the lowest surface temperature and at the smallest droplet size was longer than those on BS and LS at all conditions. The results were also discussed in relation to a heat transfer model. The findings of this research can serve as an avenue for advancing knowledge on heat transfer enhancement and energy efficiency.
引用
收藏
页数:13
相关论文
共 39 条
[1]   TEOS-Based Superhydrophobic Coating for the Protection of Stone-Built Cultural Heritage [J].
Adamopoulos, Fotios G. ;
Vouvoudi, Evangelia C. ;
Pavlidou, Eleni ;
Achilias, Dimitris S. ;
Karapanagiotis, Ioannis .
COATINGS, 2021, 11 (02) :1-12
[2]   Characterization of titanium alkoxide sol-gel systems designed for anti-icing coatings: I. Chemistry [J].
Ayres, Jennifer ;
Simendinger, W. H. ;
Balik, C. M. .
JOURNAL OF COATINGS TECHNOLOGY AND RESEARCH, 2007, 4 (04) :463-471
[3]   Fabrication of anti-icing/de-icing superhydrophobic composite coating based on hydrangea-like ZnO@CuS [J].
Bao, Yan ;
Yang, Hong ;
Gao, Lu ;
Zheng, Xi ;
Shi, Xiujuan ;
Zhang, Wenbo ;
Liu, Chao .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2022, 245
[4]   Wettability of porous surfaces. [J].
Cassie, ABD ;
Baxter, S .
TRANSACTIONS OF THE FARADAY SOCIETY, 1944, 40 :0546-0550
[5]   Heat Transfer through a Condensate Droplet on Hydrophobic and Nanostructured Superhydrophobic Surfaces [J].
Chavan, Shreyas ;
Cha, Hyeongyun ;
Orejon, Daniel ;
Nawaz, Kashif ;
Singla, Nitish ;
Yeung, Yip Fun ;
Park, Deokgeun ;
Kang, Dong Hoon ;
Chang, Yujin ;
Takata, Yasuyuki ;
Miljkovic, Nenad .
LANGMUIR, 2016, 32 (31) :7774-7787
[6]   Facile Preparation of Ag-Coated Superhydrophobic/Superoleophilic Mesh for Efficient Oil/Water Separation with Excellent Corrosion Resistance [J].
Du, Zhiping ;
Ding, Peng ;
Tai, Xiumei ;
Pan, Zihe ;
Yang, Hengquan .
LANGMUIR, 2018, 34 (23) :6922-6929
[8]   Analysis of an air cycle refrigerator driving air conditioning system integrated desiccant system [J].
Elsayed, SS ;
Hamamoto, Y ;
Akisawa, A ;
Kashiwagi, T .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2006, 29 (02) :219-228
[9]  
Farzaneh M., 2022, Techniques for Protecting Overhead Lines in Winter Conditions: Dimensioning, Icephobic Surfaces, De-Icing Strategies, P157
[10]   Petal effect: A superhydrophobic state with high adhesive force [J].
Feng, Lin ;
Zhang, Yanan ;
Xi, Jinming ;
Zhu, Ying ;
Wang, Nue ;
Xia, Fan ;
Jiang, Lei .
LANGMUIR, 2008, 24 (08) :4114-4119