The good, the bad, and the future: Systematic review identifies best use of biomass to meet air quality and climate policies in California
暂无分享,去创建一个
[1] B. Jenkins,et al. Integrated economic and environmental modeling of forest biomass for renewable energy in California: Part I - Model development , 2023, Biomass and Bioenergy.
[2] M. Wei,et al. Techno-economic assessment of renewable methanol from biomass gasification and PEM electrolysis for decarbonization of the maritime sector in California , 2022, Energy Conversion and Management.
[3] Tyler J. Lark,et al. Environmental outcomes of the US Renewable Fuel Standard , 2022, Proceedings of the National Academy of Sciences of the United States of America.
[4] B. Collins,et al. Innovative wood use can enable carbon-beneficial forest management in California , 2021, Proceedings of the National Academy of Sciences.
[5] Suduan Gao,et al. Effects of biochar and fertilizer sources on nitrogen uptake by chilli pepper plants under Mediterranean climate , 2021, Soil Use and Management.
[6] Russell K. Jones,et al. Seasonal Challenges for a Zero-Carbon Grid in California , 2021, Photovoltaic Specialists Conference.
[7] Jun Wong,et al. Market Potential for CO2 Removal and Sequestration from Renewable Natural Gas Production in California , 2021, Environmental science & technology.
[8] G. Norris,et al. Carbon intensity of corn ethanol in the United States: state of the science , 2021, Environmental Research Letters.
[9] S. Davis,et al. Economic footprint of California wildfires in 2018 , 2020, Nature Sustainability.
[10] Sonal K. Thengane,et al. Life cycle assessment of rice husk torrefaction and prospects for decentralized facilities at rice mills , 2020 .
[11] Sonal K. Thengane,et al. Technoeconomic and emissions evaluation of mobile in-woods biochar production , 2020, Energy Conversion and Management.
[12] J. Canadell,et al. Increasing anthropogenic methane emissions arise equally from agricultural and fossil fuel sources , 2020, Environmental Research Letters.
[13] Michael S. Delgado,et al. Response to Santeramo and Searle (2019) , 2020 .
[14] D. Kammen,et al. Characterization of the woody biomass feedstock potential resulting from California’s drought , 2020, Scientific Reports.
[15] Jianlin Hu,et al. Regional sources of airborne ultrafine particle number and mass concentrations in California , 2019 .
[16] C. Field,et al. The future of bioenergy , 2019, Global change biology.
[17] J. Wilcox,et al. Getting to Neutral: Options for Negative Carbon Emissions in California , 2019 .
[18] Yi-Ming Wei,et al. Life cycle environmental impact assessment of fuel mix-based biomass co-firing plants with CO2 capture and storage , 2019, Applied Energy.
[19] D. Rajagopal,et al. Life-cycle energy and climate benefits of energy recovery from wastes and biomass residues in the United States , 2019, Nature Energy.
[20] T. Durbin,et al. Inflammatory marker and aryl hydrocarbon receptor-dependent responses in human macrophages exposed to emissions from biodiesel fuels. , 2019, Chemosphere.
[21] D. Blake,et al. Source Apportionment of Ambient Methane Enhancements in Los Angeles, California, To Evaluate Emission Inventory Estimates. , 2019, Environmental science & technology.
[22] Xuesong Zhang,et al. The Renewable Fuel Standard May Limit Overall Greenhouse Gas Savings by Corn Stover-Based Cellulosic Biofuels in the U.S. Midwest: Effects of the Regulatory Approach on Projected Emissions. , 2019, Environmental science & technology.
[23] W. Horwath,et al. Impact of Composting Food Waste with Green Waste on Greenhouse Gas Emissions from Compost Windrows , 2019, Compost Science & Utilization.
[24] D. Jaffe,et al. Investigation of high ozone events due to wildfire smoke in an urban area , 2018, Atmospheric Environment.
[25] H. Breunig,et al. Temporal and geographic drivers of biomass residues in California , 2018, Resources, Conservation and Recycling.
[26] C. Simmons,et al. Obtaining Multiple Coproducts from Red Grape Pomace via Anthocyanin Extraction and Biogas Production. , 2018, Journal of Agricultural and Food Chemistry.
[27] John P. Weyant,et al. Global energy sector emission reductions and bioenergy use: overview of the bioenergy demand phase of the EMF-33 model comparison , 2018, Climatic Change.
[28] K. Mach,et al. Managing cropland and rangeland for climate mitigation: an expert elicitation on soil carbon in California , 2018, Climatic Change.
[29] K. Winans,et al. Sugar beet ethanol (Beta vulgaris L.): A promising low-carbon pathway for ethanol production in California , 2018 .
[30] G. D. Jenerette,et al. Trade‐offs across productivity, GHG intensity, and pollutant loads from second‐generation sorghum bioenergy , 2017 .
[31] Nathan Parker,et al. Renewable natural gas in California: An assessment of the technical and economic potential , 2017 .
[32] U. Nair,et al. Quantifying O3 Impacts in Urban Areas Due to Wildfires Using a Generalized Additive Model. , 2017, Environmental science & technology.
[33] C. Simmons,et al. Valorization of tomato pomace by sequential lycopene extraction and anaerobic digestion , 2017 .
[34] T. Ghezzehei,et al. Using National Ambient Air Quality Standards for fine particulate matter to assess regional wildland fire smoke and air quality management. , 2017, Journal of environmental management.
[35] Ajay Kumar,et al. Engine power generation and emission performance of syngas generated from low-density biomass , 2017 .
[36] D. Page-Dumroese,et al. Comparison of Heat Transfer and Soil Impacts of Air Curtain Burner Burning and Slash Pile Burning , 2017 .
[37] P. Shepson,et al. Field measurements and modeling to resolve m2 to km2 CH4 emissions for a complex urban source: An Indiana landfill study , 2017 .
[38] Jeff Kuo,et al. Biogas production from anaerobic digestion of food waste and relevant air quality implications , 2017, Journal of the Air & Waste Management Association.
[39] C. E. Thomas. Stopping Climate Change: the Case for Hydrogen and Coal , 2017 .
[40] T. Tsotsis,et al. Feasibility Study of Biogas Reforming To Improve Energy Efficiency and To Reduce Nitrogen Oxide Emissions , 2017 .
[41] S. Montzka,et al. Estimating methane emissions from biological and fossil‐fuel sources in the San Francisco Bay Area , 2017 .
[42] A. Angelsen,et al. A causal analysis framework for land-use change and the potential role of bioenergy policy , 2016 .
[43] R. Weiss,et al. Estimating methane emissions in California's urban and rural regions using multitower observations , 2016 .
[44] J. Balmes,et al. Air-Quality Impacts and Intake Fraction of PM2.5 during the 2013 Rim Megafire. , 2016, Environmental science & technology.
[45] F. Dijkstra,et al. Biochar Field Study: Greenhouse Gas Emissions, Productivity, and Nutrients in Two Soils , 2016 .
[46] E. Thoma,et al. Comparison of Field Measurements to Methane Emissions Models at a New Landfill. , 2016, Environmental Science and Technology.
[47] M. Burger,et al. Direct green waste land application: How to reduce its impacts on greenhouse gas and volatile organic compound emissions? , 2016, Waste management.
[48] J. Randerson,et al. Spatial patterns and source attribution of urban methane in the Los Angeles Basin , 2016 .
[49] Johan Six,et al. Carbon Abatement and Emissions Associated with the Gasification of Walnut Shells for Bioenergy and Biochar Production , 2016, PloS one.
[50] Michael Q. Wang,et al. Policy Implications of Allocation Methods in the Life Cycle Analysis of Integrated Corn and Corn Stover Ethanol Production , 2016, BioEnergy Research.
[51] D. Dabdub,et al. Assessment of the emissions and air quality impacts of biomass and biogas use in California , 2016, Journal of the Air and Waste Management Association.
[52] Kenneth A. Walz,et al. Atmospheric impacts of black carbon emission reductions through the strategic use of biodiesel in California. , 2015, The Science of the total environment.
[53] Qi Zhang,et al. Influences of emission sources and meteorology on aerosol chemistry in a polluted urban environment: Results from DISCOVER-AQ California , 2015 .
[54] Gail Taylor,et al. A synthesis of the ecosystem services impact of second generation bioenergy crop production , 2015 .
[55] S. K. Akagi,et al. Aerosol emissions from prescribed fires in the United States: A synthesis of laboratory and aircraft measurements , 2014 .
[56] Han-Sup Han,et al. Life cycle impacts of manufacturing redwood decking in northern California. , 2014 .
[57] S. Sohi,et al. Impact of pine chip biochar on trace greenhouse gas emissions and soil nutrient dynamics in an annual ryegrass system in California , 2014 .
[58] J. Six,et al. Biochar does not mitigate field-scale N2O emissions in a Northern California vineyard: An assessment across two years , 2014 .
[59] J. Six,et al. An estimation of annual nitrous oxide emissions and soil quality following the amendment of high temperature walnut shell biochar and compost to a small scale vegetable crop rotation. , 2013, The Science of the total environment.
[60] Michael R. Olson,et al. Source apportionments of PM2.5 organic carbon using molecular marker Positive Matrix Factorization and comparison of results from different receptor models , 2013 .
[61] M. Kleeman,et al. Development of a source oriented version of the WRF/Chem model and its application to the California regional PM 10 / PM 2.5 air quality study , 2013 .
[62] S. Hoekman,et al. A review of variability in indirect land use change assessment and modeling in biofuel policy , 2013 .
[63] Katharine Hammond,et al. Analysing the effects of the 2002 McNally fire on air quality in the San Joaquin Valley and southern Sierra Nevada, California , 2012 .
[64] Mark Z. Jacobson,et al. Examining the impacts of ethanol (E85) versus gasoline photochemical production of smog in a fog using near-explicit gas- and aqueous-chemistry mechanisms , 2012 .
[65] Qi Zhang,et al. Primary and secondary organic aerosols in Fresno, California during wintertime: Results from high resolution aerosol mass spectrometry , 2012 .
[66] Kent C. Johnson,et al. Evaluation of the impacts of biodiesel and second generation biofuels on NO(x) emissions for CARB diesel fuels. , 2012, Environmental science & technology.
[67] Robert A Okamoto,et al. Emissions of acrolein and other aldehydes from biodiesel-fueled heavy-duty vehicles. , 2012, Environmental science & technology.
[68] D. Kong,et al. Evaluating greenhouse gas impacts of organic waste management options using life cycle assessment , 2012, Waste Management Research.
[69] Bruce R. Hartsough,et al. Fuel treatment impacts on estimated wildfire carbon loss from forests in Montana, Oregon, California, and Arizona , 2012 .
[70] Jee Eun Kang,et al. Projecting full build-out environmental impacts and roll-out strategies associated with viable hydro , 2011 .
[71] L. Chen,et al. PM2.5 source profiles for black and organic carbon emission inventories. , 2011 .
[72] B. Metz. The Intergovernmental Panel on Climate Change , 2011 .
[73] A. Thomson,et al. The representative concentration pathways: an overview , 2011 .
[74] J. Bogner,et al. Seasonal greenhouse gas emissions (methane, carbon dioxide, nitrous oxide) from engineered landfills: daily, intermediate, and final California cover soils. , 2011, Journal of environmental quality.
[75] M. Kleeman,et al. Volatile organic compound emissions from green waste composting: Characterization and ozone formation , 2011 .
[76] T. Rumsey,et al. Volatile Fatty acids and Alcohols Production during Anaerobic Storage of Dairy Manure , 2011 .
[77] J. McCarty. Remote Sensing-Based Estimates of Annual and Seasonal Emissions from Crop Residue Burning in the Contiguous United States , 2011, Journal of the Air & Waste Management Association.
[78] Tad Mason,et al. Emission Reductions from Woody Biomass Waste for Energy as an Alternative to Open Burning , 2011, Journal of the Air & Waste Management Association.
[79] Ajith Kaduwela,et al. Pollution influences on atmospheric composition and chemistry at high northern latitudes: Boreal and California forest fire emissions , 2010 .
[80] Qi Ying,et al. Source apportionment of airborne particulate matter in Southeast Texas using a source-oriented 3D air quality model , 2010 .
[81] Jee Eun Kang,et al. Systematic planning to optimize investments in hydrogen infrastructure deployment , 2010 .
[82] Judith C Chow,et al. Black and Organic Carbon Emission Inventories: Review and Application to California , 2010, Journal of the Air & Waste Management Association.
[83] Daniel Sperling,et al. Low Carbon Fuel Standards: Implementation Scenarios and Challenges , 2010 .
[84] M. Kleeman,et al. Direct measurements of the ozone formation potential from livestock and poultry waste emissions. , 2010, Environmental science & technology.
[85] Andrew D. Jones,et al. Effects of US Maize Ethanol on Global Land Use and Greenhouse Gas Emissions: Estimating Market-Mediated Responses , 2010 .
[86] C. Wiedinmyer,et al. Prescribed fire as a means of reducing forest carbon emissions in the western United States. , 2010, Environmental science & technology.
[87] C. Justice,et al. The spatial and temporal distribution of crop residue burning in the contiguous United States. , 2009, The Science of the total environment.
[88] Daniel M. Kammen,et al. Molasses for ethanol: the economic and environmental impacts of a new pathway for the lifecycle greenhouse gas analysis of sugarcane ethanol , 2009 .
[89] T. Moore,et al. Source Contributions to Visibility Impairment in the Southeastern and Western United States , 2009, Journal of the Air & Waste Management Association.
[90] W. Johnson,et al. Developing resilient ponderosa pine forests with mechanical thinning and prescribed fire in central Oregon's pumice region , 2009 .
[91] Joan M. Ogden,et al. The role of biomass in California's hydrogen economy , 2008 .
[92] L. Waterland,et al. Full Fuel Cycle Assessment of Alternative Transportation Fuels in California , 2008 .
[93] D. Spracklen,et al. Interannual variations in PM2.5 due to wildfires in the Western United States. , 2008, Environmental science & technology.
[94] K. Krüger,et al. Cirrus, contrails, and ice supersaturated regions in high pressure systems at northern mid latitudes , 2007 .
[95] Lowell L. Ashbaugh,et al. Size distribution of polycyclic aromatic hydrocarbon particulate emission factors from agricultural burning , 2007 .
[96] R. Weiss,et al. Trace gas and particulate emissions from the 2003 southern California wildfires , 2007 .
[97] P. H. Robinson,et al. Volatile organic compound emissions from dairy cows and their waste as measured by proton-transfer-reaction mass spectrometry. , 2007, Environmental science & technology.
[98] A. Pullin,et al. Guidelines for Systematic Review in Conservation and Environmental Management , 2006, Conservation biology : the journal of the Society for Conservation Biology.
[99] L. Naeher,et al. Real-time and time-integrated PM2.5 and CO from prescribed burns in chipped and non-chipped plots: firefighter and community exposure and health implications , 2006, Journal of Exposure Science and Environmental Epidemiology.
[100] K. Palmer,et al. Air Emissions of Ammonia and Methane from Livestock Operations: Valuation and Policy Options , 2006, Journal of the Air & Waste Management Association.
[101] Christopher P. Kolodziej,et al. Production, fuel properties and combustion testing of an iso-olefins blendstock for modern vehicles , 2022, Fuel.
[102] V. Masson‐Delmotte,et al. Climate Change and Land: an IPCC special report on climate change, desertification, land degradation, sustainable land management, food security, and greenhouse gas fluxes in terrestrial ecosystems , 2019 .
[103] Yunsoo Choi,et al. Effects of Biomass Burning Emissions on Air Quality Over the Continental USA: A Three-Year Comprehensive Evaluation Accounting for Sensitivities Due to Boundary Conditions and Plume Rise Height , 2018 .
[104] Yueyue Fan,et al. A dynamic programming approach for modeling low-carbon fuel technology adoption considering learning-by-doing effect , 2017 .
[105] F. Alexis,et al. A Survey of VOC Emissions from Rendering Plants , 2017 .
[106] M. Burger,et al. Greenhouse gas emissions from green waste composting windrow. , 2017, Waste management.
[107] C. E. Thomas. Introduction to “Stopping Climate Change: The Case for Coal and Hydrogen” , 2017 .
[108] D. Zekkos,et al. The Influence of Waste Composition on the Physico-Biochemical-Hydraulic Characteristics of the Degradation Process of Municipal Solid Waste , 2016 .
[109] P. Tittmann. The wood in the forest: Why California needs to reexamine the role of biomass in climate policy , 2015 .
[110] A. Kendall,et al. Life cycle assessment of carbon dioxide for different arboricultural practices in Los Angeles, CA , 2015 .
[111] Brandon M. Collins,et al. Constraints on Mechanized Treatment Significantly Limit Mechanical Fuels Reduction Extent in the Sierra Nevada , 2015 .
[112] Randy S. Martin,et al. Ammonia Measurements and Emissions from a California Dairy Using Point and Remote Sensors , 2014 .
[113] W. M. Griffin,et al. Policy implications of uncertainty in modeled life-cycle greenhouse gas emissions of biofuels. , 2011, Environmental science & technology.
[114] D. Smart,et al. Discerning Agricultural Management Effects on Nitrous Oxide Emissions from Conventional and Alternative Cropping Systems: A California Case Study , 2011 .
[115] T. Marbach,et al. Equilibrium and Kinetics Analysis of NOx Reduction From Biogas Combustion , 2011 .
[116] Hansong Lee,et al. From Grease to Gas: Anaerobic Digestion of Fats, Oils, and Grease (FOG) at the Hyperion Treatment Plant , 2011 .
[117] Henry Lam,et al. A New Approach to Maximize the Potential of Reciprocating Engines Operating on Bio-Fuel Energy , 2011 .
[118] W. Horwath,et al. The Potential for California Agricultural Crop Soils to Reduce Greenhouse Gas Emissions , 2010 .
[119] Ramesha Chandrappa,et al. Greenhouse Gas Inventory , 2007 .