Authors
Shreyas Chavan, Thomas Foulkes, Yashraj Gurumukhi, Kalyan Boyina, Kazi Fazle Rabbi, Nenad Miljkovic
Publication date
2019/8/12
Journal
Applied Physics Letter
Volume
115
Issue
7
Description
Frost formation and ice accretion are major problems for a plethora of industries. Common defrosting and deicing techniques utilize energy-intensive mechanical actuation to dislodge ice/frost or heating methods to melt ice/frost from surfaces. Here, we develop an ultraefficient method to defrost/deice surfaces by spatially and temporally localizing thermal energy at the substrate-ice/frost interface. To remove ice/frost efficiently, it is beneficial only to melt the interfacial layer adhering the ice/frost to the solid surface by using a localized “pulse” of heat, allowing gravity or gas shear in conjunction with the ultrathin lubricating melt water layer to remove the ice/frost. To probe the physics of pulse defrosting, we first developed a transient numerical heat transfer model. Experimental validation of the model was achieved via pulse (⁠≈ 100 ms) joule heating of indium tin oxide on glass samples. Utilizing transient heat fluxes …
Total citations
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Scholar articles
S Chavan, T Foulkes, Y Gurumukhi, K Boyina… - Applied Physics Letters, 2019