Emissions relationships in western forest fire plumes – Part 1: Reducing the effect of mixing errors on emission factors

Studies of emission factors from biomass burning using aircraft data complement the results of lab studies and extend them to conditions of immense hot conflagrations. A new theoretical development of plume theory for multiple tracers is developed after examining aircraft samples. We illustrate and...

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Published in:Atmospheric Measurement Techniques
Main Authors: Chatfield, Robert B., Andreae, Meinrat O., ARCTAS Science Team, SEAC4RS Science Team
Format: Text
Language:English
Published: 2020
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Online Access:https://doi.org/10.5194/amt-13-7069-2020
https://amt.copernicus.org/articles/13/7069/2020/
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description Studies of emission factors from biomass burning using aircraft data complement the results of lab studies and extend them to conditions of immense hot conflagrations. A new theoretical development of plume theory for multiple tracers is developed after examining aircraft samples. We illustrate and discuss emissions relationships for 422 individual samples from many forest fire plumes in the Western USA. Samples are from two NASA investigations: ARCTAS (Arctic Research of the Composition of the Troposphere from Aircraft and Satellites) and SEAC4RS (Studies of Emissions and Atmospheric Composition, Clouds and Climate Coupling by Regional Surveys). This work provides sample-by-sample enhancement ratios (EnRs) for 23 gases and particulate properties. Many EnRs provide candidates for emission ratios (ERs, corresponding to the EnR at the source) when the origin and degree of transformation is understood. From these, emission factors (EFs) can be estimated, provided the fuel dry mass consumed is known or can be estimated using the carbon mass budget approach. This analysis requires understanding the interplay of mixing of the plume with surrounding air. Some initial examples emphasize that measured <math xmlns="http://www.w3.org/1998/Math/MathML" id="M1" display="inline" overflow="scroll" dspmath="mathml"><mrow><msub><mi>C</mi><mi mathvariant="normal">tot</mi></msub><mo>=</mo><mrow class="chem"><msub><mi mathvariant="normal">CO</mi><mn mathvariant="normal">2</mn></msub></mrow><mo>+</mo><mrow class="chem"><mi mathvariant="normal">CO</mi></mrow></mrow></math> <svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="81pt" height="13pt" class="svg-formula" dspmath="mathimg" md5hash="84305589fa4e90cbb65d6f0136852b6c"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="amt-13-7069-2020-ie00001.svg" width="81pt" height="13pt" src="amt-13-7069-2020-ie00001.png"/></svg:svg> in a fire plume does not necessarily describe the emissions of the total carbon liberated in the flames, C burn . Rather, it represents <math xmlns="http://www.w3.org/1998/Math/MathML" id="M3" display="inline" overflow="scroll" dspmath="mathml"><mrow><msub><mi>C</mi><mi mathvariant="normal">tot</mi></msub><mo>=</mo><msub><mi>C</mi><mi mathvariant="normal">burn</mi></msub><mo>+</mo><msub><mi>C</mi><mi mathvariant="normal">bkgd</mi></msub></mrow></math> <svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="92pt" height="14pt" class="svg-formula" dspmath="mathimg" md5hash="d7b80c67dccc42d28c3657949673d67e"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="amt-13-7069-2020-ie00002.svg" width="92pt" height="14pt" src="amt-13-7069-2020-ie00002.png"/></svg:svg> , which includes possibly varying background concentrations for entrained air. Consequently, we present a simple theoretical description for plume entrainment for multiple tracers from the flame tops to hundreds of kilometers downwind and illustrate some intrinsic linear behaviors. The analysis suggests a mixed-effects regression emission technique (MERET), which can eliminate occasional strong biases associated with the commonly used normalized excess mixing ratio (NEMR) method. MERET splits C tot to reveal C burn by exploiting the fact that C burn and all tracers respond linearly to dilution, while each tracer has consistent EnR behavior (slope of tracer concentration with respect to C burn ). The two effects are separable. Two or three or preferably more emission indicators are required as a minimum; here we used eight. In summary, MERET allows a fine spatial resolution (EnRs for individual observations) and comparison of similar plumes that are distant in time and space. Alkene ratios provide us with an approximate photochemical timescale. This allows discrimination and definition, by fire situation, of ERs, allowing us to estimate emission factors.
format Text
author Chatfield, Robert B.
Andreae, Meinrat O.
ARCTAS Science Team
SEAC4RS Science Team
spellingShingle Chatfield, Robert B.
Andreae, Meinrat O.
ARCTAS Science Team
SEAC4RS Science Team
Emissions relationships in western forest fire plumes – Part 1: Reducing the effect of mixing errors on emission factors
author_facet Chatfield, Robert B.
Andreae, Meinrat O.
ARCTAS Science Team
SEAC4RS Science Team
author_sort Chatfield, Robert B.
title Emissions relationships in western forest fire plumes – Part 1: Reducing the effect of mixing errors on emission factors
title_short Emissions relationships in western forest fire plumes – Part 1: Reducing the effect of mixing errors on emission factors
title_full Emissions relationships in western forest fire plumes – Part 1: Reducing the effect of mixing errors on emission factors
title_fullStr Emissions relationships in western forest fire plumes – Part 1: Reducing the effect of mixing errors on emission factors
title_full_unstemmed Emissions relationships in western forest fire plumes – Part 1: Reducing the effect of mixing errors on emission factors
title_sort emissions relationships in western forest fire plumes – part 1: reducing the effect of mixing errors on emission factors
publishDate 2020
url https://doi.org/10.5194/amt-13-7069-2020
https://amt.copernicus.org/articles/13/7069/2020/
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spelling ftcopernicus:oai:publications.copernicus.org:amt77441 2023-05-15T15:19:54+02:00 Emissions relationships in western forest fire plumes – Part 1: Reducing the effect of mixing errors on emission factors Chatfield, Robert B. Andreae, Meinrat O. ARCTAS Science Team SEAC4RS Science Team 2020-12-23 application/pdf https://doi.org/10.5194/amt-13-7069-2020 https://amt.copernicus.org/articles/13/7069/2020/ eng eng doi:10.5194/amt-13-7069-2020 https://amt.copernicus.org/articles/13/7069/2020/ eISSN: 1867-8548 Text 2020 ftcopernicus https://doi.org/10.5194/amt-13-7069-2020 2020-12-28T17:22:12Z Studies of emission factors from biomass burning using aircraft data complement the results of lab studies and extend them to conditions of immense hot conflagrations. A new theoretical development of plume theory for multiple tracers is developed after examining aircraft samples. We illustrate and discuss emissions relationships for 422 individual samples from many forest fire plumes in the Western USA. Samples are from two NASA investigations: ARCTAS (Arctic Research of the Composition of the Troposphere from Aircraft and Satellites) and SEAC4RS (Studies of Emissions and Atmospheric Composition, Clouds and Climate Coupling by Regional Surveys). This work provides sample-by-sample enhancement ratios (EnRs) for 23 gases and particulate properties. Many EnRs provide candidates for emission ratios (ERs, corresponding to the EnR at the source) when the origin and degree of transformation is understood. From these, emission factors (EFs) can be estimated, provided the fuel dry mass consumed is known or can be estimated using the carbon mass budget approach. This analysis requires understanding the interplay of mixing of the plume with surrounding air. Some initial examples emphasize that measured <math xmlns="http://www.w3.org/1998/Math/MathML" id="M1" display="inline" overflow="scroll" dspmath="mathml"><mrow><msub><mi>C</mi><mi mathvariant="normal">tot</mi></msub><mo>=</mo><mrow class="chem"><msub><mi mathvariant="normal">CO</mi><mn mathvariant="normal">2</mn></msub></mrow><mo>+</mo><mrow class="chem"><mi mathvariant="normal">CO</mi></mrow></mrow></math> <svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="81pt" height="13pt" class="svg-formula" dspmath="mathimg" md5hash="84305589fa4e90cbb65d6f0136852b6c"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="amt-13-7069-2020-ie00001.svg" width="81pt" height="13pt" src="amt-13-7069-2020-ie00001.png"/></svg:svg> in a fire plume does not necessarily describe the emissions of the total carbon liberated in the flames, C burn . Rather, it represents <math xmlns="http://www.w3.org/1998/Math/MathML" id="M3" display="inline" overflow="scroll" dspmath="mathml"><mrow><msub><mi>C</mi><mi mathvariant="normal">tot</mi></msub><mo>=</mo><msub><mi>C</mi><mi mathvariant="normal">burn</mi></msub><mo>+</mo><msub><mi>C</mi><mi mathvariant="normal">bkgd</mi></msub></mrow></math> <svg:svg xmlns:svg="http://www.w3.org/2000/svg" width="92pt" height="14pt" class="svg-formula" dspmath="mathimg" md5hash="d7b80c67dccc42d28c3657949673d67e"><svg:image xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="amt-13-7069-2020-ie00002.svg" width="92pt" height="14pt" src="amt-13-7069-2020-ie00002.png"/></svg:svg> , which includes possibly varying background concentrations for entrained air. Consequently, we present a simple theoretical description for plume entrainment for multiple tracers from the flame tops to hundreds of kilometers downwind and illustrate some intrinsic linear behaviors. The analysis suggests a mixed-effects regression emission technique (MERET), which can eliminate occasional strong biases associated with the commonly used normalized excess mixing ratio (NEMR) method. MERET splits C tot to reveal C burn by exploiting the fact that C burn and all tracers respond linearly to dilution, while each tracer has consistent EnR behavior (slope of tracer concentration with respect to C burn ). The two effects are separable. Two or three or preferably more emission indicators are required as a minimum; here we used eight. In summary, MERET allows a fine spatial resolution (EnRs for individual observations) and comparison of similar plumes that are distant in time and space. Alkene ratios provide us with an approximate photochemical timescale. This allows discrimination and definition, by fire situation, of ERs, allowing us to estimate emission factors. Text Arctic Copernicus Publications: E-Journals Arctic Atmospheric Measurement Techniques 13 12 7069 7096