Characterizing formaldehyde emissions from forklifts in China based on real-world online measurements
暂无分享,去创建一个
Zhijiong Huang | M. Zhu | Junyu Zheng | Zeyan Wu | Yongxin Wu | Zhipeng Tu | Cheng Li | Wenqin Zhou | Xiaoliang Gui | Xueqin Zheng
[1] Shaojun Zhang,et al. Comprehensive characterization of speciated volatile organic compounds (VOCs), gas-phase and particle-phase intermediate- and semi-volatile volatility organic compounds (I/S-VOCs) from Chinese diesel trucks. , 2023, The Science of the total environment.
[2] Fa-she Li,et al. Effects of fuel components and combustion parameters on the formation mechanism and emission characteristics of aldehydes from biodiesel combustion , 2023, Renewable Energy.
[3] Cheng Chen,et al. [Evolution Characteristics of Atmospheric Formaldehyde Emissions in Guangdong Province from 2006 to 2020]. , 2023, Huan jing ke xue= Huanjing kexue.
[4] Hao Wang,et al. Ground-based formaldehyde across the Pearl River Delta: A snapshot and meta-analysis study , 2023, Atmospheric Environment.
[5] X. Yang,et al. Characteristics of atmospheric carbonyls pollution in winter around petrochemical enterprises over North China , 2023, Air Quality, Atmosphere & Health.
[6] Shuiyuan Cheng,et al. Multi-component emission characteristics and high-resolution emission inventory of non-road construction equipment (NRCE) in China. , 2023, The Science of the total environment.
[7] Mi Zhang,et al. Real-world emission for in-use non-road construction machinery in Wuhan, China , 2023, Environmental Science and Pollution Research.
[8] Junyu Zheng,et al. Characterizing Operating Condition-Based Formaldehyde Emissions of Light-Duty Diesel Trucks in China Using a PEMS-HCHO System. , 2023, Environmental science & technology.
[9] Xinyue Cao,et al. Real-world emissions and ozone formation potential of carbonyl compounds originating from construction machinery based on a portable emission measurement system , 2023, Frontiers in Environmental Science.
[10] Taosheng Jin,et al. Emissions of air pollutants from non-road construction machinery in Beijing from 2015 to 2019. , 2022, Environmental pollution.
[11] B. Giechaskiel,et al. Real-Time Measurements of Formaldehyde Emissions from Modern Vehicles , 2022, Energies.
[12] Yifeng Xue,et al. Multi-pollutant emission characteristics of non-road construction equipment based on real-world measurement. , 2022, The Science of the total environment.
[13] D. Truhlar,et al. Master equation study of hydrogen abstraction from HCHO by OH via a chemically activated intermediate. , 2022, Faraday discussions.
[14] Banglin Deng,et al. A comparative investigation between particle oxidation catalyst (POC) and diesel particulate filter (DPF) coupling aftertreatment system on emission reduction of a non-road diesel engine. , 2022, Ecotoxicology and environmental safety.
[15] Xinyue Cao,et al. Real-world emission characteristics of carbonyl compounds from agricultural machines based on a portable emission measurement system. , 2022, Journal of environmental sciences.
[16] Wenju Jiang,et al. Exhaust emission inventory of typical construction machinery and its contribution to atmospheric pollutants in Chengdu, China. , 2022, Journal of environmental sciences.
[17] S. Shuai,et al. Advances in emission control of diesel vehicles in China. , 2021, Journal of environmental sciences.
[18] Z. Yao,et al. Non-negligible emissions of black carbon from non-road construction equipment based on real-world measurements in China. , 2021, The Science of the total environment.
[19] Xinming Wang,et al. Real-world emissions of carbonyls from vehicles in an urban tunnel in south China , 2021 .
[20] Di Chen,et al. A comprehensive review on anthropogenic volatile organic compounds (VOCs) emission estimates in China: Comparison and outlook. , 2021, Environment international.
[21] Ziyuan Yin,et al. Characterization of Pollutant Emissions from Typical Material Handling Equipment Using a Portable Emission Measurement System , 2021, Atmosphere.
[22] Junyu Zheng,et al. Variability in real-world emissions and fuel consumption by diesel construction vehicles and policy implications. , 2021, The Science of the total environment.
[23] Junyu Zheng,et al. Parent and methyl polycyclic aromatic hydrocarbons and n-alkanes emitted by construction machinery in China , 2021 .
[24] Z. Yao,et al. The effects of biodiesel blends on real-world carbonyl emissions from diesel trucks , 2020 .
[25] Z. Yuan,et al. Characterization of VOC emissions from construction machinery and river ships in the Pearl River Delta of China. , 2020, Journal of environmental sciences.
[26] Junyu Zheng,et al. A New Portable Instrument for Online Measurements of Formaldehyde: From Ambient to Mobile Emission Sources , 2020 .
[27] Junyu Zheng,et al. Characterization of particulate smoke and the potential chemical fingerprint of non-road construction equipment exhaust emission in China. , 2020, The Science of the total environment.
[28] Hu Li,et al. Quantification of the influence of NO2, NO and CO gases on the determination of formaldehyde and acetaldehyde using the DNPH method as applied to polluted environments , 2019, Atmospheric Environment.
[29] Kristen M. Fedak,et al. A Laboratory Assessment of 120 Air Pollutant Emissions from Biomass and Fossil Fuel Cookstoves. , 2019, Environmental science & technology.
[30] Jianguo Liu,et al. Primary and secondary sources of ambient formaldehyde in the Yangtze River Delta based on Ozone Mapping and Profiler Suite (OMPS) observations , 2019, Atmospheric Chemistry and Physics.
[31] Yunshan Ge,et al. Effects of different diesel particulate filter on emission characteristics of in-use diesel vehicles , 2019, Energy Sources, Part A: Recovery, Utilization, and Environmental Effects.
[32] G. Chase,et al. The effect of operating parameters on regeneration characteristics and particulate emission characteristics of diesel particulate filters , 2019, Applied Thermal Engineering.
[33] K. Chance,et al. Adjoint inversion of Chinese non-methane volatile organic compound emissions using space-based observations of formaldehyde and glyoxal , 2018, Atmospheric Chemistry and Physics.
[34] R. Suarez-Bertoa,et al. Intercomparison of ethanol, formaldehyde and acetaldehyde measurements from a flex-fuel vehicle exhaust during the WLTC , 2017 .
[35] Qingyu Zhang,et al. The effects of deterioration and technological levels on pollutant emission factors for gasoline light-duty trucks , 2017, Journal of the Air & Waste Management Association.
[36] P. Louie,et al. Seasonal behavior of carbonyls and source characterization of formaldehyde (HCHO) in ambient air , 2017 .
[37] Hiroyuki Yamada,et al. Mechanisms of Increased Particle and VOC Emissions during DPF Active Regeneration and Practical Emissions Considering Regeneration. , 2017, Environmental science & technology.
[38] X. Ren,et al. Detection of formaldehyde emissions from an industrial zone in the Yangtze River Delta region of China using a proton transfer reaction ion-drift chemical ionization mass spectrometer , 2016 .
[39] M. Shao,et al. Compilation of a source profile database for hydrocarbon and OVOC emissions in China , 2016 .
[40] Baofeng Di,et al. An overview of non-road equipment emissions in China , 2016 .
[41] Shichun Yang,et al. Comparative study on measurements of formaldehyde emission of methanol/gasoline fueled SI engine , 2015 .
[42] A. Mellouki,et al. Atmospheric chemistry of oxygenated volatile organic compounds: impacts on air quality and climate. , 2015, Chemical reviews.
[43] Sunyeong Lee,et al. On-road chasing and laboratory measurements of exhaust particle emissions of diesel vehicles equipped with aftertreatment technologies (DPF, urea-SCR) , 2015 .
[44] Xianbao Shen,et al. On-road emission characteristics of VOCs from rural vehicles and their ozone formation potential in Beijing, China , 2015 .
[45] Xianbao Shen,et al. On-road emission characteristics of VOCs from diesel trucks in Beijing, China , 2015 .
[46] T. Nunes,et al. Emissions from Light-Duty Diesel and Gasoline in-use Vehicles Measured on Chassis Dynamometer Test Cycles , 2015 .
[47] Haji Hassan Masjuki,et al. A review on idling reduction strategies to improve fuel economy and reduce exhaust emissions of transport vehicles. , 2014 .
[48] Gwi-Nam Bae,et al. NOx profile around a signalized intersection of busy roadway , 2014 .
[49] Yunshan Ge,et al. Unregulated emissions from diesel engine with particulate filter using Fe-based fuel borne catalyst. , 2014, Journal of environmental sciences.
[50] F. Keutsch,et al. Intercomparison of Hantzsch and fiber-laser-induced-fluorescence formaldehyde measurements , 2014 .
[51] Wei Zhang,et al. An Overview of the China Meteorological Administration Tropical Cyclone Database , 2014 .
[52] S. Herndon,et al. Chemical composition of gas-phase organic carbon emissions from motor vehicles and implications for ozone production. , 2013, Environmental science & technology.
[53] S. Herndon,et al. On-road measurement of gas and particle phase pollutant emission factors for individual heavy-duty diesel trucks. , 2012, Environmental science & technology.
[54] K. Ho,et al. Carbonyl emissions from vehicular exhausts sources in Hong Kong , 2012, Journal of the Air & Waste Management Association.
[55] Dan Luss,et al. Transient temperature rise during regeneration of diesel particulate filters , 2011 .
[56] Kenji Enya,et al. Transient Behavior of VOCs Emission and Particle Size Distribution during Active Regeneration of Diesel Particulate Filter Equipped Diesel Engine , 2011 .
[57] T. Salthammer,et al. Formaldehyde in the Indoor Environment , 2010, Chemical reviews.
[58] T. Bruckner,et al. Formaldehyde and chemosensory irritation in humans: a controlled human exposure study. , 2008, Regulatory toxicology and pharmacology : RTP.
[59] Ki‐Hyun Kim,et al. Experimental choices for the determination of carbonyl compounds in air. , 2007, Journal of separation science.
[60] A. Salmon,et al. Evaluation and Application of the RD50 for Determining Acceptable Exposure Levels of Airborne Sensory Irritants for the General Public , 2007, Environmental health perspectives.
[61] Hong He,et al. [Diesel emission control technologies: a review]. , 2007, Huan jing ke xue= Huanjing kexue.
[62] Shinichi Goto,et al. Characteristics of Aldehydes and VOCs Emission from Off-road Engines , 2006 .
[63] Jin Kusaka,et al. Experimental study on unregulated emission characteristics of turbocharged DI diesel engine with common rail fuel injection system , 2003 .
[64] J. A. Beukes,et al. Experimental and theoretical studies of gas phase NO3 and OH radical reactions with formaldehyde, acetaldehyde and their isotopomers , 2003 .
[65] R. Atkinson,et al. Kinetics of the reactions of the OH radical with HCHO and CH3CHO over the temperature range 299–426°K , 1978 .
[66] A. Rana. ANTHROPOGENIC, BIOGENIC AND PYROGENIC EMISSION SOURCES AND ATMOSPHERIC FORMALDEHYDE (HCHO) AND NITROGEN DIOXIDE (NO2) COLUMNS OVER DIFFERENT LANDUSE/LANDCOVERS OF SOUTH ASIA , 2019, Applied Ecology and Environmental Research.
[67] Z. Yao,et al. On-road emission characteristics of VOCs from light-duty gasoline vehicles in Beijing, China , 2016 .
[68] John R. Reisel,et al. Exhaust Emission Deterioration and Combustion Chamber Deposit Composition Over the Life Cycle of Small Utility Engines , 2003 .