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DOI10.1525/elementa.145
Field measurements and modeling to resolve m(2) to km(2) CH4 emissions for a complex urban source: An Indiana landfill study
Cambaliza, Maria Obiminda L.1,2,3; Bogner, Jean E.4; Green, Roger B.5; Shepson, Paul B.1,6; Harvey, Tierney A.7,10; Spokas, Kurt A.8; Stirm, Brian H.9; Corcoran, Margaret4,11
发表日期2017-07-04
ISSN2325-1026
卷号5
英文摘要

Large spatial and temporal uncertainties for landfill CH4 emissions remain unresolved by short-term field campaigns and historic greenhouse gas (GHG) inventory models. Using four field methods (aircraft-based mass balance, tracer correlation, vertical radial plume mapping, static chambers) and a new field-validated process-based model (California Landfill Methane Inventory Model, CALMIM 5.4), we investigated the total CH4 emissions from a central Indiana landfill as well as the partitioned emissions inclusive of methanotrophic oxidation for the various cover soils at the site. We observed close agreement between whole site emissions derived from the tracer correlation (8 to 13 mol s(-1)) and the aircraft mass balance approaches (7 and 17 mol s(-1)) that were statistically indistinguishable from the modeling result (12 +/- 2 mol s(-1) inclusive of oxidation). Our model calculations indicated that approximately 90% of the annual average CH4 emissions (11 +/- 1 mol s(-1); 2200 +/- 250 g m(-2) d(-1)) derived from the small daily operational area. Characterized by a thin overnight soil cover directly overlying a thick sequence of older methanogenic waste without biogas recovery, this area constitutes only 2% of the 0.7 km(2) total waste footprint area. Because this Indiana landfill is an upwind source for Indianapolis, USA, the resolution of m(2) to km(2) scale emissions at various temporal scales contributes to improved regional inventories relevant for addressing GHG mitigation strategies. Finally, our comparison of measured to reported CH4 emissions under the US EPA National GHG Reporting program suggests the need to revisit the current IPCC (2006) GHG inventory methodology based on CH4 generation modeling. The reasonable prediction of emissions at individual U.S. landfills requires incorporation of both cover-specific landfill climate modeling (e.g., soil temperature/moisture variability over a typical annual cycle driving CH4 transport and oxidation rates) as well as operational issues (e.g., cover thickness/properties, extent of biogas recovery).


语种英语
WOS记录号WOS:000405945000001
来源期刊ELEMENTA-SCIENCE OF THE ANTHROPOCENE
来源机构美国环保署
文献类型期刊论文
条目标识符http://gcip.llas.ac.cn/handle/2XKMVOVA/61727
作者单位1.Purdue Univ, Dept Chem, Lafayette, IN USA;
2.Ateneo Manila Univ, Dept Phys, Quezon City, Philippines;
3.Manila Observ, Quezon City, Philippines;
4.Univ Illinois, Dept Earth & Environm Sci, Chicago, IL USA;
5.Waste Management Inc, Cincinnati, OH USA;
6.Purdue Univ, Dept Earth Atmospher & Planetary, Lafayette, IN USA;
7.Duke Univ, Dept Civil & Environm Engn, Durham, NC 27706 USA;
8.USDA ARS, St Paul, MN USA;
9.Purdue Univ, Sch Aviat & Transportat Technol, W Lafayette, IN 47907 USA;
10.Univ Cent Oklahoma, Dept Engn & Phys, Edmond, OK USA;
11.US EPA, Great Lakes Natl Program Off, Chicago, IL USA
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Cambaliza, Maria Obiminda L.,Bogner, Jean E.,Green, Roger B.,et al. Field measurements and modeling to resolve m(2) to km(2) CH4 emissions for a complex urban source: An Indiana landfill study[J]. 美国环保署,2017,5.
APA Cambaliza, Maria Obiminda L..,Bogner, Jean E..,Green, Roger B..,Shepson, Paul B..,Harvey, Tierney A..,...&Corcoran, Margaret.(2017).Field measurements and modeling to resolve m(2) to km(2) CH4 emissions for a complex urban source: An Indiana landfill study.ELEMENTA-SCIENCE OF THE ANTHROPOCENE,5.
MLA Cambaliza, Maria Obiminda L.,et al."Field measurements and modeling to resolve m(2) to km(2) CH4 emissions for a complex urban source: An Indiana landfill study".ELEMENTA-SCIENCE OF THE ANTHROPOCENE 5(2017).
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