Reexamination of evaporation from horizontal surfaces with implications for solar interfacial evaporation experiments
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arXiv
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| Auteurs principaux: | , , , |
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| Format: | Preprint |
| Publié: |
2024
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| _version_ | 1866917892830789632 |
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| author | Zhang, James H. Mittapally, Rohith Lv, Guangxin Chen, Gang |
| author_facet | Zhang, James H. Mittapally, Rohith Lv, Guangxin Chen, Gang |
| contents | To explain reported solar interfacial-evaporation rates from porous materials beyond an apparent 100% efficiency using the thermal evaporation mechanism, many publications hypothesize that intermediate water inside porous materials have a reduced latent heat. Key supporting evidence is that water-only surfaces have lower dark evaporation rates than porous evaporators, with the ratio of the two rates taken as the latent heat reduction. Through simulations and experiments, we present benchmark evaporation rates of water and show that reported differences in natural evaporation are likely due to experimental error from recessed evaporating surfaces rather than from reduced latent heat. A few millimeters recession of the evaporating surface can drop evaporation rates over 50% due to a stagnant air layer, suggesting that the comparative experiments are prone to error and the latent heat reduction hypothesis cannot be substantiated. Our results indicate that new mechanistic directions need to be pursued to understand superthermal evaporation. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2411_12186 |
| institution | arXiv |
| publishDate | 2024 |
| record_format | arxiv |
| spellingShingle | Reexamination of evaporation from horizontal surfaces with implications for solar interfacial evaporation experiments Zhang, James H. Mittapally, Rohith Lv, Guangxin Chen, Gang Applied Physics Fluid Dynamics To explain reported solar interfacial-evaporation rates from porous materials beyond an apparent 100% efficiency using the thermal evaporation mechanism, many publications hypothesize that intermediate water inside porous materials have a reduced latent heat. Key supporting evidence is that water-only surfaces have lower dark evaporation rates than porous evaporators, with the ratio of the two rates taken as the latent heat reduction. Through simulations and experiments, we present benchmark evaporation rates of water and show that reported differences in natural evaporation are likely due to experimental error from recessed evaporating surfaces rather than from reduced latent heat. A few millimeters recession of the evaporating surface can drop evaporation rates over 50% due to a stagnant air layer, suggesting that the comparative experiments are prone to error and the latent heat reduction hypothesis cannot be substantiated. Our results indicate that new mechanistic directions need to be pursued to understand superthermal evaporation. |
| title | Reexamination of evaporation from horizontal surfaces with implications for solar interfacial evaporation experiments |
| topic | Applied Physics Fluid Dynamics |
| url | https://arxiv.org/abs/2411.12186 |