• Infrared and Laser Engineering
  • Vol. 52, Issue 10, 20230009 (2023)
Xindi Su1,2, Yuge Han1,2, and Dengfeng Ren1,2
Author Affiliations
  • 1School of Energy and Power Engineering, Nanjing University of Science and Technology, Nanjing 210094, China
  • 2MIIT Key Laboratory of Thermal Control of Electronic Equipment, Nanjing University of Science and Technology, Nanjing 210094, China
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    DOI: 10.3788/IRLA20230009 Cite this Article
    Xindi Su, Yuge Han, Dengfeng Ren. Calculation model of surface temperature of ground target under the coupling effect of wind-driven rain and moisture and heat[J]. Infrared and Laser Engineering, 2023, 52(10): 20230009 Copy Citation Text show less
    References

    [1] Juncheng Sui, Dengfeng Ren, Yuge Han. Inversion and model validation method of missing parameters in infrared modeling of ground targets. Infrared and Laser Engineering, 51, 20220033(2022).

    [2] Jincheng Chen, Yuge Han. Simplified analysis method of the surface temperature of complex structure camouflage screen with large surface. Infrared and Laser Engineering, 47, 0304002(2018).

    [3] Lin Qunqing. Research on the effects of lets particles on thermal radiative acteristics of vehicles credibility evaluation method f thermal radiation model[D]. Nanjing: Nanjing University of Science Technology, 2018. (in Chinese)

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    [5] A Kubilay, D Derome, B Blocken, et al. Numerical simulations of wind-driven rain on an array of low-rise cubic buildings and validation by field measurements. Building and Environ-ment, 81, 283-295(2014).

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    [9] An Yuan. Numerical calculation and analysis of wind driving rain based on euler multiphase flow model. Scientific and Technological Innovation, 70-73(2022).

    [10] J Franke, A Hellsten, K H Schlunzen, et al. The COST 732 best practice guideline for CFD simulation of flows in the urban environment: a summary. Int J of Environment and Pollution, 44, 419-427(2011).

    [11] A Kubilay, D Derome, J Carmeliet. Coupled numerical simulations of cooling potential due to evaporation in a street canyon and an urban public square. Journal of Physics Conference Series, 1343, 012016(2019).

    [12] Svetlana Vujovic, Bechara Haddad, Hamzé Karaky, et al. Urban heat island: causes, consequences, and mitigation measures with emphasis on reflective and permeable pavements. Civil Eng, 2, 459-484(2021).

    [13] A Kubilay, D Derome, J Carmeliet. Coupling of physical phenomena in urban microclimate: A model integrating air flow, wind-driven rain, radiation and transport in building materials. Urban Climate, 24, 398-418(2018).

    [14] A Kubilay, D Derome, B Blocken, et al. CFD simulation and validation of wind-driven rain on a building facade with an Eulerian multiphase model. Building & Environment, 61, 69-81(2013).

    [15] T Defraeye, B Blocken, J Carmeliet. An adjusted temperature wall function for turbulent forced convective heat transfer for bluff bodies in the atmospheric boundary layer. Building & Environment, 46, 2130-2141(2011).

    [16] B J E Blocken, S Roels, J E Carmeliet. A combined CFD–HAM approach for wind-driven rain on building facades. Journal of Wind Engineering and Industrial Aerodynamics, 95, 585-607(2007).

    Xindi Su, Yuge Han, Dengfeng Ren. Calculation model of surface temperature of ground target under the coupling effect of wind-driven rain and moisture and heat[J]. Infrared and Laser Engineering, 2023, 52(10): 20230009
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