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1.
The real-world fuel efficiency and exhaust emission profiles of CO, HC and NOx for light-duty diesel vehicles were investigated. Using a portable emissions measurement system, 16 diesel taxies were tested on different roads in Macao and the data were normalized with the vehicle specific power bin method. The 11 Toyota Corolla diesel taxies have very good fuel economy of (5.9 ± 0.6) L/100 km, while other five diesel taxies showed relatively high values at (8.5 ± 1.7) L/100 km due to the variation in transmission systems and emission control strategies. Compared to similar Corolla gasoline models, the diesel cars confirmed an advantage of ca. 20% higher fuel efficiency. HC and CO emissions of all the 16 taxies are quite low, with the average at (0.05 ± 0.02) g/km and (0.38 ± 0.15) g/km, respectively. The average NOx emission factor of the 11 Corolla taxies is (0.56 ± 0.17) g/km, about three times higher than their gasoline counterparts. Two of the three Hyundai Sonata taxies, configured with exhaust gas recirculation (EGR) + diesel oxidation catalyst (DOC) emission control strategies, indicated significantly higher NO2 emissions and NO2/NOx ratios than other diesel taxies and consequently trigger a concern of possibly adverse impacts on ozone pollution in urban areas with this technology combination. A clear and similar pattern for fuel consumption and for each of the three gaseous pollutant emissions with various road conditions was identified. To save energy and mitigate CO2 emissions as well as other gaseous pollutant emissions in urban area, traffic planning also needs improvement.  相似文献   

2.
为了获得机动车排放源中乙醛的δ13C(稳定碳同位素丰度)特征及其影响因素,进行不同负荷下的发动机台架试验,采集不同怠速下的机动车尾气样品. 利用气相色谱-燃烧-同位素比值质谱(GC-C-IRMS)分析乙醛δ13C值,并与ρ(乙醛)进行分析. 结果显示:①在发动机燃烧过程中,乙醛的生成和消除反应同时存在. 在发动机低负荷运行时,乙醛的δ13C分馏值为负(-1.4‰~-0.4‰),表明生成反应占主导;而在高负荷运行时,分馏值为正(0.5‰~1.3‰),表明消除反应占主导. ②乙醛的δ13C值与其质量浓度无明显相关性,主要受发动机燃烧温度和尾气净化装置的影响. 整车尾气中乙醛的δ13C值在-29.1‰~-24.4‰之间,平均值为-26.5‰±1.6‰. 其中,汽油车为-25.9‰~-24.4‰,平均值为-24.9‰±0.5‰;柴油车为-29.1‰~-27.0‰,平均值为-28.0‰±0.6‰. ③南方机动车尾气排放源与植物排放源中的乙醛的δ13C值范围不同,表明δ13C值可用于大气乙醛的源解析. 通过机动车尾气中c(乙醛)/c(CO2)估算广州汽油车和轻型柴油车乙醛的排放因子,二者分别为(13±16)和(169±106)mg/L.   相似文献   

3.
重型柴油车道路循环工况下排放特性的仿真分析   总被引:1,自引:0,他引:1  
柴油车道路工况下NOx排放和排温的动态特性对柴油机排气后处理系统的工作以及后处理系统控制策略的确定具有重要的影响.根据6114涡轮增压柴油机的万有特性及NOx和排温的MAP图,仿真分析了道路循环工况下配有6114柴油机的重型柴油车的NOx排放和排温的动态变化;研究了道路工况、行驶特征、驾驶行为以及柴油车载荷等对柴油车排放的影响规律.研究结果表明,城市道路循环工况下,柴油车NOx排放的整体水平不高,但变化频繁、剧烈;高速公路道路循环工况下,柴油车NOx排放整体水平较高,但变化平缓;加速过程,尤其是在高速区对柴油车排放的影响显著;冲动的驾驶方式会显著提高柴油车的排放水平;满载时,柴油车的高排放区将由半载时的高速高加速区向外扩展至其他工况点,高排放区显著增大.  相似文献   

4.
This study presents the emission factor of gaseous pollutants(CO, CO_2, and NO X) from on-road tailpipe measurement of 14 passenger cars of different types of fuel and vintage. The trolley equipped with stainless steel duct, vane probe velocity meter, flue gas analyzer, Nondispersive infra red(NDIR) CO_2 analyzer, temperature, and relative humidity(RH) sensors was connected to the vehicle using a towing system. Lower CO and higher NO X emissions were observed from new diesel cars(post 2010) compared to old cars(post 2005), which implied that new technological advancement in diesel fueled passenger cars to reduce CO emission is a successful venture,however, the use of turbo charger in diesel cars to achieve high temperature combustion might have resulted in increased NO X emissions. Based on the measured emission factors(g/kg), and fuel consumption(kg), the average and 95% confidence interval(CI) bound estimates of CO, CO_2,and NO X from four wheeler(4W) in Delhi for the year 2012 were 15.7(1.4–37.1), 6234(386–12,252),and 30.4(0.0–103) Gg/year, respectively. The contribution of diesel, gasoline and compressed natural gas(CNG) to total CO, CO_2 and NO X emissions were 7:84:9, 50:48:2 and 58:41:1respectively. The present work indicated that the age and the maintenance of vehicle both are important factors in emission assessment therefore, more systematic repetitive measurements covering wide range of vehicles of different age groups, engine capacity, and maintenance level is needed for refining the emission factors with CI.  相似文献   

5.
柴油轿车颗粒多环芳烃的排放特性   总被引:4,自引:3,他引:1  
谭丕强  周舟  胡志远  楼狄明 《环境科学》2013,34(3):1150-1155
以一辆柴油轿车为研究样车,分别使用纯柴油、生物柴油掺混比例为10%的B10燃油,进行了NEDC整车循环工况试验,测取了该车HC、CO、NOx、颗粒等法规限制的排放,利用气相色谱-质谱法对采集的排气颗粒样品进行了分析,重点研究了颗粒中多环芳烃的排放特性.结果表明,与柴油相比,燃用B10燃油的HC、CO、NOx和颗粒等常规排放均有所降低;两种燃料产生的颗粒多环芳烃排放中均以荧蒽和芘最多,与纯柴油相比,燃用B10燃油产生的低环数PAHs排放略有增加,中高环数的PAHs排放降幅明显.苯并[a]芘等效毒性分析结果显示燃用B10燃油的BEQs值比纯柴油降低了21.6%,表明柴油轿车燃用生物柴油后,排气颗粒的多环芳烃毒性有所下降.  相似文献   

6.
Over the past decade, the emission standards and fuel standards in Beijing have been upgraded twice, and the vehicle structure has been improved by accelerating the elimination of 2.95 million old vehicles. Through the formulation and implementation of these policies, the emissions of carbon monoxide (CO), volatile organic compounds (VOCs), nitrogen oxides (NOx), and fine particulate matter (PM2.5) in 2019 were 147.9, 25.3, 43.4, and 0.91 kton in Beijing, respectively. The emission factor method was adopted to better understand the emissions characteristics of primary air pollutants from combustion engine vehicles and to improve pollution control. In combination with the air quality improvement goals and the status of social and economic development during the 14th Five-Year Plan period in Beijing, different vehicle pollution control scenarios were established, and emissions reductions were projected. The results show that the emissions of four air pollutants (CO, VOCs, NOx, and PM2.5) from vehicles in Beijing decreased by an average of 68% in 2019, compared to their levels in 2009. The contribution of NOx emissions from diesel vehicles increased from 35% in 2009 to 56% in 2019, which indicated that clean and energy-saving diesel vehicle fleets should be further improved. Electric vehicle adoption could be an important measure to reduce pollutant emissions. With the further upgrading of vehicle structure and the adoption of electric vehicles, it is expected that the total emissions of the four vehicle pollutants can be reduced by 20%-41% by the end of the 14th Five-Year Plan period.  相似文献   

7.
为公正评价汽车代用燃料的能耗与环境效益,运用生命周期评价方法,研究了在燃料中分别添加不同比例的乙醇和甲酯2种生物质,带来的生命周期能耗和污染物排放变化,并对含氧生物质燃料的未来情景进行了预测分析.结果表明:乙醇代用燃料未降低化石燃料消耗,甲酯代用燃料可降低约20%的化石燃料消耗;几种配比的代用燃料均可降低石油消耗,甲酯代用燃料降低的趋势更加明显;各种代用燃料的温室气体排放都比较严重;乙醇代用燃料增加了NOx排放,而甲酯代用燃料可降低约50%的NOx排放;乙醇和甲酯的加入均能降低车用阶段的PM10排放;燃料生产阶段的SO2排放在整个生命周期中约占80%,必须严格控制;甲酯代用燃料可降低VOC排放.  相似文献   

8.
应用PART5模式计算机动车尾气管的颗粒物排放   总被引:12,自引:1,他引:11  
采用修正的PART5模式获得了北京市机动车尾气管的颗粒物(PM10和PM2.5)排放因子.在此基础上,计算了北京市1995和1998年机动车PM10和PM2.5的排放总量,并确定了分车型的排放分担率和颗粒物中各组分(铅、硫酸盐、可溶性有机物和残余碳等)的比例.结果表明,北京市机动车PM10和PM2.5的平均排放因子很高,其中汽油车、摩托车和重型柴油车的排放因子分别是美国同期水平的1.7~8.6倍、2.1~3.5倍和1.3~1.5倍.1995年北京市机动车尾气管排放的PM10和PM2.5分别为2445t和1890t,1998年则分别增至3359t和2694t,增加的幅度为37.4%和42.5%.  相似文献   

9.
重型柴油车实际道路油耗与排放模拟及其应用研究   总被引:1,自引:0,他引:1  
基于实际行驶状态下重型车动力需求和传动系统变化规律,建立了重型柴油车整车的瞬态油耗和排放模拟方法,可实现整车发动机工况及油耗与排放的实时模拟.为验证模型的有效性,利用重型车车载排放测试手段,以柴油公交车为研究案例,模拟并验证了车辆在实际运营线路上的油耗与排放水平.公交车综合线路实测百公里油耗为16.38L,NOx、CO和THC排放因子分别为4.44、3.35、1.96g·km-1,模拟结果与实测值基本吻合,其油耗与排放因子与实测值之比均在1.06倍左右.模拟结果显示,实测公交车怠速、NOx控制区及其它区域工况点分别占32.6%、7.1%和60.4%,增加10t负载或提高1.5倍车速可使发动机负荷利用率上升,控制区比例上升至18.4%和18.8%,同时增加负载和提高车速,控制区工况可提高至33.9%.相应地,增加负载或提高车速情景分别使车辆油耗与排放上升至1.5~1.7倍和1.6~1.8倍,同时增加负载和提高车速,油耗与排放可增至2.5倍~3.0倍,控制区油耗与排放比例均有大幅度上升.总体上,该模型方法可以为评价和研究重型柴油车在实际道路上的能耗及其排放状况提供新的模拟方法和分析手段.  相似文献   

10.
近年来,汽油车尾气排放已成为城市大气污染的主要来源之一.为减少油耗、温室气体和大气污染物的排放,汽油直喷技术(GDI)、醇类燃料替代以及混合动力系统等新兴技术被应用到汽车产品中,该研究对GDI发动机汽车、醇类燃料车和混合动力车的颗粒物(PM)、氮氧化物(NOx)、总碳氢化合物(THC)的排放研究进行梳理和总结,综合评估先进动力技术和醇类燃料的环境影响.结果表明:GDI汽油车的PM排放因子为进气道喷射(PFI)汽油车的1.2~5倍,加装汽油颗粒物捕集器(GPF)后GDI汽油车的PM排放大幅下降,同时具备催化能力的GPF可减少NOx和THC排放.与汽油车相比,乙醇燃料车PM排放量减少了35%~56%,尾气THC排放减少了10%~44%,但挥发性有机物(VOCs)蒸发排放增加了20%~41%,其主要来自于日呼吸损失.各类型车辆的NOx排放差异较小,比较结果存在一定的不确定性.混合动力车相比传统内燃机汽车污染物减排优势明显,可积极推广其在公共交通和私家车队中的应用.建议今后研究应着重关注以下几个方面:①GDI和混合动力车在实际条件下排放污染物的环境影响;②醇类燃料车VOCs蒸发排放控制技术及相关法规标准的完善;③新兴技术汽油车排放污染物的生成机理及其影响因素.   相似文献   

11.
The alteration and formation of toxic compounds and potential changes in the toxicity of emissions when using after-treatment technologies have gained wide attention. Volatile organic compound(VOC), carbonyl compound and particle-phase polycyclic aromatic hydrocarbon(PAH) emissions were tested at European Steady State Cycle(ESC) to study unregulated emissions from a diesel engine with a fuel-borne catalyst and diesel particulate filter(FBC–DPF). An Fe-based fuel-borne catalyst was used for this study. According to the results, brake specific emissions of total VOCs without and with DPF were 4.7 and4.9 mg/kWh, respectively, showing a 4.3% increase. Benzene and n-undecane emissions increased and toluene emission decreased, while other individual VOC emissions basically had no change. When retrofitted with the FBC–DPF, total carbonyl compound emission decreased 15.7%, from 25.8 to 21.8 mg/kWh. The two highest carbonyls, formaldehyde and acetaldehyde, were reduced from 20.0 and 3.7 to 16.5 and 3.3 mg/kWh respectively. The specific reactivity(SR) with DPF was reduced from 6.68 to 6.64 mg/kWh. Total particle-phase PAH emissions decreased 66.4% with DPF compared to that without DPF. However, the Benzo[a]pyrene equivalent(BaPeq) with DPF had increased from 0.016 to 0.030 mg/kWh.Fluoranthene and Pyrene had the greatest decrease, 91.1% and 88.4% respectively. The increase of two- and three-ring PAHs with DPF indicates that the fuel-borne catalyst caused some gas-phase PAHs to adsorb on particles. The results of this study expand the knowledge of the effects of using a particulate filter and a Fe-based fuel-borne catalyst on diesel engine unregulated emissions.  相似文献   

12.
柴油车的黑碳排放对空气质量和气候变化有重要影响,但我国柴油车黑碳排放清单编制仍有较大局限性. 为进一步提高柴油车黑碳排放清单编制精度,采用整车转毂台架和热光折射的方法研究不同排放标准、行驶工况和负载状况对重型柴油货车黑碳排放的影响. 结果表明:我国排放标准升级对重型柴油货车的黑碳排放有重要影响,从国Ⅰ、国Ⅱ排放标准升级到国Ⅲ、国Ⅳ和国Ⅴ排放标准,黑碳在颗粒物中的占比由41%左右逐步提至72%左右. 行驶工况对重型柴油货车的黑碳排放也有一定影响,车辆在C-WTVC (中国重型商用车燃料消耗量测试工况)下的黑碳排放占比较VECC (重型车典型道路行驶工况)下高5%~10%. 与半载状态相比,重型柴油货车在满载状态下黑碳排放占比更高,国Ⅲ、国Ⅳ重型柴油货车满载状态下黑碳排放占比较半载状态高7%~8%,国Ⅱ重型柴油货车满载状态下黑碳排放占比较半载状态高15%左右. 研究显示,柴油货车黑碳排放清单编制要综合考虑排放标准、驾驶特征、负荷状况等对黑碳排放的影响,不宜使用固定系数利用颗粒物排放因子外推黑碳排放因子.   相似文献   

13.
The paper assesses options and challenges of reducing black carbon emissions from diesel vehicles in Russia. Black carbon is a product of incomplete diesel combustion and is a component of fine particulate matter. Particulate matter emissions have adverse health impacts, causing cardiopulmonary disease and lung cancer; black carbon is also a large climate forcer. Black carbon emissions from Russian diesel sources affect not only the Russian territory but also contribute to overall pollution. This paper analyzes current ecological standards for vehicles and fuel, evaluates policies for emission reductions from existing diesel vehicle fleet, and assesses Russia's attempts to encourage the use of natural gas as a vehicle fuel. Based on best practices of black carbon emission reductions, this paper provides a number of policy recommendations for Russia.  相似文献   

14.
Vehicular emissions in China in 2006 and 2010 were calculated at a high spatial resolution based on the data released by the National Bureau of Statistics, by taking the emission standards into consideration. China's vehicular emissions of carbon monoxide(CO),nitrogen oxides(NO_x), volatile organic compounds(VOCs), ammonia(NH_3), fine particulate matters(PM_(2.5)), inhalable particulate matters(PM_(10)), black carbon(BC), and organic carbon(OC) were 30,113.9, 4593.7, 6838.0, 20.9, 400.2, 430.5, 285.6, and 105.1 Gg, respectively, in 2006 and 34,175.2, 5167.5, 7029.4, 74.0, 386.4, 417.1, 270.9, and 106.2 Gg, respectively, in 2010. CO,VOCs, and NH_3 emissions were mainly from motorcycles and light-duty gasoline vehicles,whereas NO_X, PM_(2.5), PM_(10), and BC emissions were mainly from rural vehicles and heavyduty diesel trucks. OC emissions were mainly from motorcycles and heavy-duty diesel trucks. Vehicles of pre-China Ⅰ(vehicular emission standard of China before phase Ⅰ) and China Ⅰ(vehicular emission standard of China in phase Ⅰ) were the primary contributors to all of the pollutant emissions except NH_3, which was mainly from China Ⅲ and China Ⅳ gasoline vehicles. The total emissions of all the pollutants except NH_3 changed little from2006 to 2010. This finding can be attributed to the implementation of strict emission standards and to improvements in oil quality.  相似文献   

15.
A total of 15 light-duty diesel vehicles(LDDVs) were tested with the goal of understanding the emission factors of real-world vehicles by conducting on-board emission measurements. The emission characteristics of hydrocarbons(HC) and nitrogen oxides(NOx) at different speeds, chemical species profiles and ozone formation potential(OFP) of volatile organic compounds(VOCs) emitted from diesel vehicles with different emission standards were analyzed. The results demonstrated that emission reductions of HC and NOxhad been achieved as the control technology became more rigorous from Stage I to Stage IV. It was also found that the HC and NOxemissions and percentage of O2 dropped with the increase of speed, while the percentage of CO2 increased. The abundance of alkanes was significantly higher in diesel vehicle emissions, approximately accounting for 41.1%–45.2%, followed by aromatics and alkenes. The most abundant species were propene,ethane, n-decane, n-undecane, and n-dodecane. The maximum incremental reactivity(MIR)method was adopted to evaluate the contributions of individual VOCs to OFP. The results indicated that the largest contributors to O3 production were alkenes and aromatics, which accounted for 87.7%–91.5%. Propene, ethene, 1,2,4-trimethylbenzene, 1-butene, and1,2,3-trimethylbenzene were the top five VOC species based on their OFP, and accounted for 54.0%-64.8% of the total OFP. The threshold dilution factor was applied to analyze the possibility of VOC stench pollution. The majority of stench components emitted from vehicle exhaust were aromatics, especially p-diethylbenzene, propylbenzene, m-ethyltoluene, and p-ethyltoluene.  相似文献   

16.
选取5辆典型国六重型柴油车,进行基于C-WTVC的挥发性有机物(VOCs)排放测试,分析了包括7种苯系物以及14种醛酮类物质的比排放量.结果表明,甲苯、苯、苯乙烯是国六重型柴油车苯系物排放的主体物质,占总量的60%~86%;而甲醛、乙醛、苯甲醛是醛酮污染物的主要物质,占总量的72%~87%.在同时包含市区、市郊和高速综合工况的试验车会产生较高的苯系物和醛酮类物质的排放,苯、苯乙烯在综合工况下的比排放量分别为处于市郊工况车型的1.25倍、1.45倍,市区占比为40%的货车具有最高的甲醛比排放量20.84mg/(kW×h),有超甲醇车甲醛排放限值的风险;在市郊工况下车型的甲苯、乙醛排放平均分别为其余车型的1.65倍、2.1倍.测试车辆的臭氧潜势均值达到(249.53±10) mgO3/(kW×h).  相似文献   

17.
重型柴油公交车实际道路颗粒物排放的理化特征   总被引:1,自引:0,他引:1       下载免费PDF全文
为研究重型柴油公交车实际道路颗粒物排放的理化特征,采用车载排放测试方法,选取了2辆国Ⅲ和4辆国Ⅳ柴油公交车,对气态污染物和颗粒物排放因子、粒径分布及颗粒物中的组分(包括碳组分、离子、元素和有机组分)排放特征进行了实测分析.结果表明:测试车辆的颗粒数量主要集中在100 nm以下粒径段,颗粒质量排放总体呈倒U型分布,粒径峰值位于300 nm左右.OC和EC分别占尾气颗粒物总质量的36.10%±8.94%和27.97%±10.00%,离子和元素组分分别占7.75%±1.01%和22.71%±3.09%.柴油质量对柴油车尾气颗粒物成分具有较大影响,燃用国Ⅲ柴油的车辆尾气中富含S、Ca、Mg、Na等元素组分,其主要来自燃油中的硫分和杂质.在可检出的弱极性可溶有机物中,正构烷烃和脂肪酸的含量较为丰富,分别占颗粒物总质量的1.95%和5.13%,此外还有一定量的藿烷和PAHs(多环芳烃).其中,正构烷烃组分主要分布于C19~C29,正构烷酸主要集中在C12、C14、C16和C18等偶数碳组分.国Ⅲ和国Ⅳ柴油公交车的PAHs排放因子分别为198.2、62.5 μg/km,以3环和4环PAHs为主,菲、荧蒽、芘、惹烯、苯并荧蒽、、苯并[123-cd]芘和苯并苝是较为主要的PAHs组分.需要指出的是,由于采用定比例稀释方法,颗粒物中组分的测试结果可能与其实际排放存在一定偏差.   相似文献   

18.
中国国道和省道机动车尾气排放特征   总被引:7,自引:7,他引:0  
王人洁  王堃  张帆  高佳佳  李悦  岳涛 《环境科学》2017,38(9):3553-3560
近年来,随着我国机动车保有量的持续增长,机动车排放已成为我国重要的大气污染物来源之一.现有的机动车排放研究多关注城市内的机动车大气污染物排放,针对城市间的大气污染物排放研究较少.我国城市间交通道路主要包括国道和省道,截止至2015年我国国道里程18.53万km、省道里程32.97万km,约占全国等级公路总里程的13%,因此开展我国国道和省道机动车大气污染物排放研究十分重要.本研究基于全国国道和省道交通监测站的年均监测数据,采用环境保护部发布的《道路机动车大气污染物排放清单编制技术指南(试行)》中的指导方法,计算了2015年我国国道和省道机动车的大气污染物排放清单,分析了污染物排放的时空分布特征.结果表明,我国国道和省道公路机动车排放的一氧化碳(CO)、氮氧化物(NO_x)、颗粒物(PM)和碳氢化合物(HC)排放量分别占全国机动车污染物总排放量的4.5%、27.9%、14.4%和7.7%;不同车型对国道和省道机动车大气污染物排放的分担率不同,其中大货车是NO_x、PM_(10)、PM_(2.5)的主要来源,摩托车是CO和HC的主要来源;不同道路类型中各车型的大气污染物排放分担率也不同,如高速路上大货车是NO_x、PM_(10)和PM_(2.5)的主要来源,普通道路上大客车和大货车是NO_x、PM_(10)和PM_(2.5)的主要来源.  相似文献   

19.
采用遥感尾气测试系统实测了柴油车在实际道路工况下的CO、HC和NO排放特征,修正了排放因子的计算方法,并与车载排放测试系统(PEMS)实测结果进行了验证,获得了实测车辆的CO、HC和NO排放因子.测试结果显示,在各种遥感监测的工况下柴油车尾气中均含有较高浓度的氧气,未考虑氧气影响的燃烧方程反演获得的各污染物体积浓度计算值与PEMS实测值的偏差较大,且氧气浓度越大,偏差越大.经过氧气修正的燃烧方程反演计算的尾气浓度与PEMS实测值吻合度大幅提升,适用于实际工况下遥感检测车辆尾气的反演计算.修正算法得到CO、HC和NO的排放因子离散性较小,精确度较高,可以为量化柴油车尾气排放贡献提供科学依据.  相似文献   

20.
基于唐山市机动车定期环保检测数据获取不同类型车辆的本地年均行驶里程,建立城区内典型车辆的"里程-注册年"特征曲线.采用车载排放测试法获取唐山市典型国Ⅵ阶段轻重型汽车实际道路排放因子.利用COPERT模型进行机动车排放因子本地化修正,建立涵盖不同排放阶段和燃料动力类型的唐山市机动车排放清单,结合唐山市路网信息,建立基于ArcGIS的3km×3km高时空分辨率网格化排放清单,并分析了国三及以下中重型柴油车(简称高排放车)不同淘汰与DPF排放治理比例情景下机动车减排与投入成本效益.研究表明,2020年机动车CO,HC,NOx,PM2.5,PM10年排放量分别为92403.51,10034.53,70568.35,2036.51,2160.65t,其中:NOx,PM2.5和PM10排放主要来源于柴油车,分担率分别为92%,89%和89%;CO和HC排放主要来自汽油车,分担率分别为71%和73%.唐山市实施二环内国Ⅳ及以下柴油货车限行区政策后,二环内CO和HC年排放量削减率分别为22.41%和21.68%;而NOx,PM10和PM2.5污染物排放强度显著降低,年排放量削减率分别为78.60%,84.85%和84.79%.在高排放车淘汰与治理情景下,随着高排放车淘汰比例的增长,投入成本和NOx年均减排量呈线性上升趋势,且NOx减排效果更加显著,而PM减排辆略呈下降趋势.高排放车淘汰率每增长10%,NOx年均减排量增加892.41t,PM年均减排量减少7.56t,年投入成本增加1.13亿元.  相似文献   

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