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1.
当前采用何种冷却屋顶材料缓解城市化带来的高热灾害是城市气象领域的热点问题。本文基于城镇能量平衡模式(TEB),分析了4种不同材料的冷却屋顶,包括转化效率为14%的太阳能板(覆盖面积分别占屋顶面积的100%及50%)和3种高反照率材料:铝箔沥青膜、白色TPO膜、科罗拉多大学新研发的玻璃聚合物混合超材料,在2017年夏季高温热浪时间段(7月16~30日)对建筑物街区屋顶表面温度及辐射热量产生的影响。结果表明在持续高温的天气背景下,在屋顶铺设超材料和100%覆盖面积的太阳能板降温效果最好,屋顶表面温度白天平均分别可降低18.59 K和19.58 K,铝箔沥青膜效果次之,平均降低13.47 K,50%覆盖面积的太阳能板 TPO膜再次,平均降低9.7 K和5.4 K,夜间也具有1.08~4.53 K的降温。铺设冷却屋顶材料可以直接或间接地减少冷却能源需求,铺设100%太阳能板以及超材料屋顶可以使建筑物冷却能耗降到最低,每平方米分别至多可降低2.1 W m?2和2.16 W m?2,使用铝箔沥青膜效果次之,至多降低1.47 W m?2,50%铺设面积的太阳能屋顶及TPO膜再次。其中所选太阳能光伏板每日可额外产生最多1.84 kW h的电量,模拟的两周内产生电量可全部抵消同期空调制冷能耗。  相似文献   

2.
多层城市冠层模式的建立及数值试验研究   总被引:4,自引:1,他引:3  
王咏薇  蒋维楣 《气象学报》2009,67(6):1013-1024
为在城市气象数值模拟中更好地体现由城市发展引起的下垫面土地利用改变及人为活动对大气过程的影响,建立了基于建筑物三维分布的多层城市冠层模式,冠层内动力方程组考虑了建筑物冠层拖曳力的作用及雷诺应力的影响,通过引入建筑物宽度、间距以及垂直分布密度指数等建筑物形态特征参数,以更好地体现城市复杂地表对大气温度、湿度及动量方程的影响.同时,该模式分屋顶、4个侧壤及地面分别考虑辐射及能量平衡求解表面温度,计算各表面与大气的通量交换,并考虑辐射阴影效应、冠层内部各个面之间的可视因子、以及与冠层内建筑物密度指数、可视因子等相关的多重反射辐射导致的辐射截陷作用.模式的离线检验结果表明:(1)冠层模式计算风廓线与风洞实验测量数据吻合良好;(2)离线冠层模式能够模拟实际小区的风速、温度垂直廓线,并能够较好地体现小区内气温日变化.冠层模式与区域边界层模式耦合检验结果表明:(1)耦合模拟的近地面(2 m处)气温及地表温度的结果明显优于传统的水泥平板方案,尤其是在夜间,水泥平板方案与实测气温最大偏差4 K左右,耦合模拟方案为1-2 K;(2)耦合模拟方案考虑了建筑物对冠层之上的拖曳力影响以及建筑物形态结构对雷诺应力的影响,风速(10 m处)计算结果与观测值相差约在1 m/s,水泥平板方案偏差3 m/s左右.  相似文献   

3.
王豫  王咏薇  赵小艳  郭良辰  张艳晴 《气象》2019,45(8):1149-1157
为缓解南京夏季城市热环境危机,利用天气研究和预报模式(WRF),模拟了3类屋顶(普通屋顶、高反照率屋顶、随机玻璃-聚合物混合超材料屋顶)对南京夏季高温天气的影响。结果表明:(1)冷却屋顶(高反照率屋顶和随机玻璃-聚合物混合超材料屋顶)均可通过削弱到达城市表面的太阳辐射而使城市降温,随机玻璃-聚合物混合超材料屋顶白天平均降温为0.8~1.2℃,夜间平均降温为0.2~0.4℃,高反照率屋顶白天平均降温为0.6~0.8℃,夜间平均降温为0.2℃;(2)表面温度指数可表征冷却屋顶的热力性能,随机玻璃-聚合物混合超材料屋顶的表面温度指数为0.16~0.43,高反照率屋顶的表面温度指数为0.05~0.26,表明随机玻璃-聚合物混合超材料屋顶的冷却效果强于高反照率屋顶;(3)高反照率屋顶和随机玻璃-聚合物混合超材料屋顶分别能将36.7%和47.1%的太阳短波辐射返回到大气层,分别比普通屋顶少吸收19.6%和34.8%的热量。  相似文献   

4.
空调系统对城市大气温度影响的模拟研究   总被引:5,自引:0,他引:5  
王咏薇  王恪非  陈磊  张蕾 《气象学报》2018,76(4):649-662
人为热排放对城市边界层气候效应的影响起着举足轻重的作用。在人为热源的组成中,建筑物内部的能源消耗、热量产生以及室内外热量传输与交换,对于城市热环境的改变有着非常重要的作用。因此,为研究室内空调系统的产热和通过屋顶、墙面、地面进行室内外热量传输扩散,并对室外热环境产生的影响,运用WRF(Weather Research and Forecasting Model)模式,选取BEP+BEM城市冠层参数化方案,即基于多层城市冠层方案BEP(Building Effect Parameterization)增加室内空调系统影响的建筑物能量模式BEM(Building Energy Model)的方案,以南京2010年8月2—3日,夏季三伏天晴天小风天气作为背景天气进行模拟研究。结果表明,采用WRF模式考虑空调系统室内、外能量交换的BEP+BEM参数化方案,能够更好地模拟出夏季晴天城市近地层气温。当假设空调全天开启时,白天模拟值与观测值吻合较好。夜间温度模拟值高于观测值,在22时—次日00时(北京时),存在1℃左右的偏差。白天空调系统开启对于城市近地层气温的影响不明显,而夜间使得城市气温普遍升高0.6℃,尤其是在居民区密集的地方,22—23时最大有2℃左右的升温。当调整室内空调目标温度从25℃调至27℃时,空调系统能量总释放量减少12.66%,13—16时温度下降最大,平均约为1℃,建筑物越是密集,温度下降幅度越大。   相似文献   

5.
利用WRF(Weather Research and Forecasting)模式耦合单层城市冠层模式,研究了南京地区一次高温热浪过程(2013年8月5—10日)中气溶胶的辐射效应、城市扩张对边界层的影响和它们间的相互作用。结果显示,由于气溶胶的直接辐射效应,在白天,南京近地面温度平均降低约0.11℃,净辐射平均降低约12 W/m~2;城市扩张使近地面温度增加约1.7℃,在本次试验过程中,城市扩张的增暖效应明显强于气溶胶冷却效应。另外,由于城市扩张后产生了较强的增暖作用,加强了周围气流的辐合运动,城市区域风速平均增加约0.8 m/s。白天潜热通量的减少与感热通量的增加导致城市边界层内温度升高,并且城市增暖引起的上升运动将气溶胶抬升至更高层,使边界层更不稳定,气溶胶与城市边界层稳定性之间可能存在正反馈。  相似文献   

6.
屋顶绿化对城市降温效应的模拟分析——以南京市为例   总被引:3,自引:3,他引:0  
沈滢洁  王成刚  曹乐  郜海阳  王咏薇 《气象》2017,43(5):610-619
利用WRF模式耦合单层城市冠层模式,针对屋顶绿化对城市降温效果进行了模拟,结果表明:(1)南京夏季绿化后的屋顶反照率约为0.15,较水泥及其他反光材料的反照率略小,在白天可造成约0.2℃的升温。(2)绿化后的屋顶热容量明显增加,可使白天气温下降0.33℃;在夜间,可使气温升高0.21℃左右。(3)在植被阻挡作用及土壤层阻挡作用下,屋顶的导热率降低。在白天,净辐射能很难向下层传递,从而转化为感热加热大气,造成气温升高。(4)土壤湿度的改变使更多净辐射能转化为潜热释放。在白天可使温度降低1.23℃;在夜间,平均降温幅度为0.44℃。除此之外,模拟不同季节的统计结果表明,屋顶绿化降温效果在夏季最为明显,最大降幅可达1.22℃,春季0.96℃,秋季0.75℃,冬季只有0.38℃。  相似文献   

7.
利用昆明、北京两座城市内建筑物为研究对象, 对其不同朝向外墙壁面、屋顶面表面温度及壁面近旁气温进行了观测, 分析了建筑物外墙壁面表面温度及其近旁气温的垂直分布以及壁面、屋顶对周围大气的热力效应特征, 并对两座城市内建筑物的热力状况进行了比较分析。研究表明:建筑物表面温度受太阳辐射的影响要比近旁气温大得多, 一般说来, 壁面昼间是热源, 夜间是热汇; 受研究对象所在的大区域气候、人类活动等影响, 建筑物外表面的热力效应有许多异同; 建筑物屋顶面与近旁空气间的平均热通量基本为正值, 呈现较强的热源效应, 其热力效应强度与太阳辐射呈现正相关; 城市建筑物的外表面 (壁面、屋顶面) 已成为城市区域内有别于城市地面, 且对城市立体气候的形成具有不可忽视影响的热力作用面。  相似文献   

8.
冷却屋顶对北京城市热环境影响的模拟研究   总被引:1,自引:0,他引:1  
两种类型冷却屋顶(高反照率屋顶、绿色屋顶)的研究对于北京夏季城市高温的缓解作用具有重要的意义。耦合单层城市冠层模式(SLUCM)与天气研究与预报(WRF3.8)模式, 采用北京市及其外围地区158个站点气象资料评估模式对照案例(case1)的模拟性能, 并选取7组不同反照率屋顶案例(case2—4)和不同覆盖比例的绿色屋顶案例(case5—8)进行敏感性试验。研究结果表明:(1)在北京城市区域, 高反照率为0.85的屋顶(case4)比绿色占比100%的屋顶(case8)具有更好的降温效果, case4的3 d平均降温可达到0.90℃, 而case8降温为0.46℃。(2)屋顶反照率每增加0.1, 会导致北京城市区域最高气温降低0.27℃; 绿色屋顶比例的增大也会导致温度的降低, 每增加10%, 最高气温降低0.16℃。(3)两种冷却屋顶对城市热岛也存在显著的影响, 在13—14时(北京时), case4与case1对比的城市热岛(UHI)降温最大差值为1.47℃, 比case8的城市热岛降温更加明显。(4)在城市区域垂直高度上, 冷却屋顶的降温作用可达到1.2 km, 同时湍流运动存在明显的减弱; 在3 d的12—18时, case4、case8与case1对比, 边界层高度平均降低了669与430 m。   相似文献   

9.
太阳能屋顶的安装预计能在一定程度上缓解城市化带来的能源危机及对城市热环境的破坏。利用耦合了城市单层冠层方案(UCM)的WRF模式,以南京2010年7月27日至8月5日夏季晴天微风天气为背景,模拟了不同发电效率的太阳能屋顶的安装对城市高温的缓解效应。结果表明:(1)太阳能屋顶可以通过削弱到达城市表面的太阳辐射使城市2 m高气温降低,随着发电效率的提高,降温效果更明显,且白天降温效果明显优于夜间;白天2 m高气温最大降低0.4-1.3℃,夜间降低0.2-0.5℃。(2)太阳能屋顶可使边界层内气温降低,白天在边界层400 m以下降温显著,夜间在边界层高度200 m以下降温显著;白天边界层内最大降温出现在中午前后,降温0.1-0.8℃,夜间边界层内最大降温0.5℃。(3)发电效率为40%时,模拟期间的发电量为18.1×109 kW·h。   相似文献   

10.
复杂地形城市冬季边界层对气溶胶辐射效应的响应   总被引:6,自引:3,他引:6  
郑飞  张镭  朱江 《大气科学》2006,30(1):171-179
作者着眼于城市气溶胶辐射效应与大气边界层的相互作用问题,针对地形复杂的兰州市及周边地区,开发应用了WRF(Weather Research and Forecasting,天气研究和预报)模式,使之与包含了大气气溶胶辐射效应和气溶胶粒子扩散的综合大气边界层数值模式嵌套起来.通过个例分析,揭示了冬季气溶胶辐射效应对边界层结构的定量影响.主要特征为夜间气溶胶的长波辐射效应使地面附近的气温增高,增温幅度为0.1~0.3 K/h,使低空(25~300 m)大气层冷却,降温幅度为0.08~0.15 K/h,风速在150 m以下减小;白天气溶胶的短波辐射效应使地面层内明显增温,1 h内升温约0.5 K,增温最大值在混合层顶500~600 m高度.受增温影响,垂直风场和水平风场随之调整,风速在450 m以下增大约0.1 m/s左右,而在450 m以上风速减小0.1 m/s左右.  相似文献   

11.
应用城市冠层模式研究建筑物形态对城市边界层的影响   总被引:5,自引:1,他引:4  
文中将城市冠层模式耦合到南京大学城市尺度边界层模式中,通过模拟对比发现,耦合模式对城市地区气温模拟结果更接近于观测值,尤其是对城市地区夜间气温模拟的改进.运用改进耦合模式通过多个敏感性试验的模拟,从城市面积扩张、建筑物高度增加、建筑物分布密度变化等角度研究城市建筑物三维几何形态变化对城市边界层及城市气象环境的影响,试验结果表明:(1)城市面积扩张使得城市下垫面的热通量增大,热力湍流活动增强,动量通量输送增强,城市湍能增大,湍流扩散系数变大,城市气温升高,且对不同时刻城市区域大气层结稳定度均有不同程度的影响.(2)建筑物高度增加增大了城市下垫面的粗糙度和零平面位移.同时也增大了城市街渠高宽比.城市建筑物越高,白天城市地区地表热通量越小,城市上空大气温度越低,平均风速减小,湍能减小;夜间由于高大建筑物释放储热比低矮建筑物要多,其热力湍流相对活跃,地表热通量增大,使得城市区域气温较高.(3)建筑物密度增大,会减小城市下垫面的粗糙度同时增强街渠对辐射的影响.建筑物密度增大在白天会减小地表热通量和动量通量,使城市气温降低,平均风速增大,城市湍流活动能力减弱;夜间城市释放较多储热使得气温较高.  相似文献   

12.
An urban canopy model is incorporated into the Nanjing University Regional Boundary Layer Model. Temperature simulated by the urban canopy model is in better agreement with the observation, especially in the night time, than that simulated by the traditional slab model. The coupled model is used to study the effects of building morphology on urban boundary layer and meteorological environment by changing urban area, building height, and building density.It is found that when the urban area is expanded, the urban boundary layer heat flux, thermal turbulence, and the turbulent momentum flux and kinetic energy all increase or enhance, causing the surface air temperature to rise up. The stability of urban atmospheric stratification is affected to different extent at different times of the day.When the building height goes up, the aerodynamic roughness height, zero plane displacement height of urban area, and ratio of building height to street width all increase. Therefore, the increase in building height results in the decrease of the surface heat flux, urban surface temperature, mean wind speed, and turbulent kinetic energy in daytime. While at night, as more heat storage is released by higher buildings, thermal turbulence is more active and surface heat flux increases, leading to a higher urban temperature.As the building density increases, the aerodynamic roughness height of urban area decreases, and the effect of urban canopy on radiation strengthens. The increase of building density results in the decrease in urban surface heat flux, momentum flux, and air temperature, the increase in mean wind speed, and the weakening of turbulence in the daytime. While at night, the urban temperature increases due to the release of more heat storage.  相似文献   

13.
Summary Adaptive geometrical configurations are presented, which aim to create intelligent urban forms, and which include screening methods applicable to the linear- and grid-type building layouts. They are especially suitable for mid-latitude cities characterized by seasonally swinging climates which necessitate heating in winter and cooling in summer. The screens are envisaged as shading devices in the summer blocking the incoming solar radiation during day-time (that is, on-position), while being removed at night to enhance nocturnal radiative cooling (that is, off-position). In winter they are assumed to be in off-position during sunshine hours to promote the access of solar radiation and in on-position at night to obstruct the sky energy sink and reduce radiant heat losses. Their implications for the urban street canyon climate and the thermal performance of the built environment are simulated using the cluster thermal time constant (CTTC) model. The diurnal variation of both the ambient air temperature and net radiant flux within the urban canopy layer serve as criteria by which the climatetempering effectiveness of the screens is assessed.With 9 Figures  相似文献   

14.
Two deterministic models were combined: one for canopy leaf energy budgets and one for street canyon energy budgets. The effects of street parks and roof gardens in contrast to non-vegetated city blocks were examined by the use of four typical urban morphologies, which were exposed latitudinally to summer and winter simulations. A variety of increases and decreases in shortwave radiation, net radiation, sensible heat flux, and system reradiation resulted. These changes appear to represent the generalized limits of the possible responses to the addition of vegetation to non-vegetated city blocks.  相似文献   

15.
We developed a simple, single-layer urban canopy model, and comparedit to both multi-layer and slab models. Our single-layer model has thefollowing features: (a) It is a column model of energy and momentumexchange between an urban surface and the atmosphere, (b) it includesthe influence of street canyons, which are parameterized to representthe urban geometry, (c) it includes shadowing from buildings andreflection of radiation, and (d) it estimates both the surfacetemperatures of, and heat fluxes from, three surface types: roof, wall,and road. In the simulation of the single-layer model, the roof washottest during the daytime, but coolest from midnight to early morning.This is consistent with output from the multi-layer model and fieldobservations at a residential area on a clear, summer day. The diurnalvariation of the energy budget from the single-layer model agrees wellwith that from the multi-layer model. Our single-layer model'sperformance is nearly that of a multi-layer model for studyingmesoscale heat islands. Nevertheless, it is simply parameterized,and thus easily included in larger-scale atmospheric models. The slabmodel has the largest nighttime cooling rate of the three models. Toovercome this, it needs more adjustments than for the canopy models.  相似文献   

16.
利用耦合单层城市冠层模型的中尺度数值模式WRF/UCM,选取8组不同反照率和绿化比例的屋顶冷却方案进行敏感性试验,模拟研究不同冷却屋顶方案对长三角城市群2013年夏季城市热环境的影响,并分析其影响机制。结果表明:不同冷却屋顶方案对城市群热环境的缓解效果与屋顶参数之间呈很强的线性关系。高温热浪天气下,HR4(反照率为1.0)和GR4(屋顶绿化率为100%)方案的制冷度日数分别降低了14.7%和10.9%,节约的能源比普通夏日更多。同时,高温热浪天气会增强热岛强度,高反照率屋顶方案在白天对热岛起到更有效的缓解,热浪天气下日平均热岛强度最大可降低1.36℃。相同方案下,在高温热浪天气下的缓解效果均胜于普通夏日,平均而言,高反照率屋顶和屋顶绿化的降温效果分别增大38.5%和34.9%,增湿效果分别增大29.5%和21.9%,这主要是由于在高温热浪天气下,高反照率屋顶方案能够减少更多的净辐射通量,屋顶绿化方案能够释放更多的潜热通量。此外,城市格点密集区域的降温效果优于分散的城市区域,处于城市群中的常州区域较单独的杭州区域的降温幅度平均高32%。  相似文献   

17.
The impact of diurnal variations of the heat fluxes from building and ground surfaces on the fluid flow and air temperature distribution in street canyons is numerically investigated using the PArallelized Large-eddy Simulation Model (PALM). Simulations are performed for a 3 by 5 array of buildings with canyon aspect ratio of one for two clear summer days that differ in atmospheric instability. A detailed building energy model with a three-dimensional raster-type geometry—Temperature of Urban Facets Indoor-Outdoor Building Energy Simulator (TUF-IOBES)—provides urban surface heat fluxes as thermal boundary conditions for PALM. In vertical cross-sections at the centre of the spanwise canyon the mechanical forcing and the horizontal streamwise thermal forcing at roof level outweigh the thermal forces from the heated surfaces inside the canyon in defining the general flow pattern throughout the day. This results in a dominant canyon vortex with a persistent speed, centered at a constant height. Compared to neutral simulations, non-uniform heating of the urban canyon surfaces significantly modifies the pressure field and turbulence statistics in street canyons. Strong horizontal pressure gradients were detected in streamwise and spanwise canyons throughout the day, and which motivate larger turbulent velocity fluctuations in the horizontal directions rather than in the vertical direction. Canyon-averaged turbulent kinetic energy in all non-neutral simulations exhibits a diurnal cycle following the insolation on the ground in both spanwise and streamwise canyons, and it is larger when the canopy bottom surface is paved with darker materials and the ground surface temperature is higher as a result. Compared to uniformly distributed thermal forcing on urban surfaces, the present analysis shows that realistic non-uniform thermal forcing can result in complex local airflow patterns, as evident, for example, from the location of the vortices in horizontal planes in the spanwise canyon. This study shows the importance of three-dimensional simulations with detailed thermal boundary conditions to explore the heat and mass transport in an urban area.  相似文献   

18.
Rapid urbanization has intensified summer heat waves in recent decades in Beijing, China. In this study, effectiveness of applying high-reflectance roofs on mitigating the warming effects caused by urban expansion and foehn wind was simulated for a record-breaking heat wave occurred in Beijing during July 13–15, 2002. Simulation experiments were performed using the Weather Research and Forecast (WRF version 3.0) model coupled with an urban canopy model. The modeled diurnal air temperatures were compared well with station observations in the city and the wind convergence caused by urban heat island (UHI) effect could be simulated clearly. By increasing urban roof albedo, the simulated UHI effect was reduced due to decreased net radiation, and the simulated wind convergence in the urban area was weakened. Using WRF3.0 model, the warming effects caused by urban expansion and foehn wind were quantified separately, and were compared with the cooling effect due to the increased roof albedo. Results illustrated that the foehn warming effect under the northwesterly wind contributed greatly to this heat wave event in Beijing, while contribution from urban expansion accompanied by anthropogenic heating was secondary, and was mostly evident at night. Increasing roof albedo could reduce air temperature both in the day and at night, and could more than offset the urban expansion effect. The combined warming caused by the urban expansion and the foehn wind could be potentially offset with high-reflectance roofs by 58.8 % or cooled by 1.4 °C in the early afternoon on July 14, 2002, the hottest day during the heat wave.  相似文献   

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