Advantages of using a fast urban boundary layer model as compared to a full mesoscale model to simulate the urban heat island of Barcelona

被引:24
|
作者
Garcia-Diez, Markel [1 ]
Lauwaet, Dirk [2 ]
Hooyberghs, Hans [2 ]
Ballester, Joan [1 ,4 ]
De Ridder, Koen [2 ]
Rodo, Xavier [1 ,3 ,4 ]
机构
[1] Inst Catala Ciencies Clima, Barcelona, Catalonia, Spain
[2] VITO, Antwerp, Belgium
[3] ICREA, Barcelona, Catalonia, Spain
[4] Barcelona Inst Global Hlth, ISGlobal, Climate & Hlth Program, Barcelona, Catalonia, Spain
关键词
ENERGY-CONSUMPTION; AIR-QUALITY; WRF MODEL; CLIMATE; WAVES; TEMPERATURE; PROJECTIONS; MORTALITY; HEALTH; IMPACT;
D O I
10.5194/gmd-9-4439-2016
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
As most of the population lives in urban environments, the simulation of the urban climate has become a key problem in the framework of the climate change impact assessment. However, the high computational power required by high-resolution (sub-kilometre) fully coupled land-atmosphere simulations using urban canopy parameterisations is a severe limitation. Here we present a study on the performance of UrbClim, an urban boundary layer model designed to be several orders of magnitude faster than a full-fledged mesoscale model. The simulations are evaluated with station data and land surface temperature observations from satellites, focusing on the urban heat island (UHI). To explore the advantages of using a simple model like UrbClim, the results are compared with a simulation carried out with a state-of-the-art mesoscale model, the Weather Research and Forecasting Model, which includes an urban canopy model. This comparison is performed with driving data from ERA-Interim reanalysis (70 km). In addition, the effect of using driving data from a higher-resolution forecast model (15 km) is explored in the case of UrbClim. The results show that the performance of reproducing the average UHI in the simple model is generally comparable to the one in the mesoscale model when driven with reanalysis data (70 km). However, the simple model needs higher-resolution data from the forecast model (15 km) to correctly reproduce the variability of the UHI at a daily scale, which is related to the wind speed. This lack of accuracy in reproducing the wind speed, especially the sea-breeze daily cycle, which is strong in Barcelona, also causes a warm bias in the reanalysis driven UrbClim run. We conclude that medium-complexity models as UrbClim are a suitable tool to simulate the urban climate, but that they are sensitive to the ability of the input data to represent the local wind regime. UrbClim is a well suited model for impact and adaptation studies at city scale without high computing requirements, but does not replace the need for mesoscale atmospheric models when the focus is on the two-way interactions between the city and the atmosphere
引用
收藏
页码:4439 / 4450
页数:12
相关论文
共 50 条
  • [41] Using WRF mesoscale model to restore temperature profile in atmosphere boundary layer in Tomsk
    Akhmetshina, A. S.
    Kizhner, L., I
    Kuzhevskaia, I., V
    Bart, A. A.
    Zuev, V. V.
    Shelekhov, A. P.
    21ST INTERNATIONAL SYMPOSIUM ON ATMOSPHERIC AND OCEAN OPTICS: ATMOSPHERIC PHYSICS, 2015, 9680
  • [42] Modeling Impacts of Urbanization and Urban Heat Island Mitigation on Boundary Layer Meteorology and Air Quality in Beijing Under Different Weather Conditions
    Chen, Lei
    Zhang, Meigen
    Zhu, Jia
    Wang, Yongwei
    Skorokhod, Andrei
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2018, 123 (08) : 4323 - 4344
  • [43] Sensitivity of Predictions of the Urban Surface Energy Balance and Heat Island to Variations of Urban Canopy Parameters in Simulations with the WRF Model
    Nemunaitis-Berry, Kodi L.
    Klein, Petra M.
    Basara, Jeffrey B.
    Fedorovich, Evgeni
    JOURNAL OF APPLIED METEOROLOGY AND CLIMATOLOGY, 2017, 56 (03) : 573 - 595
  • [44] Improving the Representation of the Nocturnal Near-Neutral Surface Layer in the Urban Environment with a Mesoscale Atmospheric Model
    Husain, Syed Zahid
    Belair, Stephane
    Mailhot, Jocelyn
    Leroyer, Sylvie
    BOUNDARY-LAYER METEOROLOGY, 2013, 147 (03) : 525 - 551
  • [45] Evaluation of the Urban Heat Island of 12 cities of France in a high-resolution regional climate model simulation
    Michau, Y.
    Lemonsu, A.
    Lucas-Picher, P.
    Caillaud, C.
    URBAN CLIMATE, 2023, 47
  • [46] Multi-temporal trajectory of the urban heat island centroid in Beijing, China based on a Gaussian volume model
    Quan, Jinling
    Chen, Yunhao
    Zhan, Wenfeng
    Wang, Jinfei
    Voogt, James
    Wang, Mengjie
    REMOTE SENSING OF ENVIRONMENT, 2014, 149 : 33 - 46
  • [47] A New Approach for Surface Urban Heat Island Monitoring Based on Machine Learning Algorithm and Spatiotemporal Fusion Model
    Yao, Yuan
    Chang, Cun
    Ndayisaba, Felix
    Wang, Shuang
    IEEE ACCESS, 2020, 8 : 164268 - 164281
  • [48] The Sensitivity of Urban Heat Island to Urban Green Space-A Model-Based Study of City of Colombo, Sri Lanka
    Maheng, Dikman
    Ducton, Ishara
    Lauwaet, Dirk
    Zevenbergen, Chris
    Pathirana, Assela
    ATMOSPHERE, 2019, 10 (03)
  • [49] Analysis of Heat Mitigation Capacity in a Coastal City using InVEST Urban Cooling Model
    Chung, Jinwook
    Kim, Jiwon
    Sung, Kijune
    SUSTAINABLE CITIES AND SOCIETY, 2024, 113
  • [50] Urban-Scale Computational Fluid Dynamics Simulations with Boundary Conditions from Similarity Theory and a Mesoscale Model
    Bouris, Demetri
    Triantafyllou, Athanasios G.
    Krestou, Athina
    Leivaditou, Elena
    Skordas, John
    Konstantinidis, Efstathios
    Kopanidis, Anastasios
    Wang, Qing
    ENERGIES, 2021, 14 (18)