Literature DB >> 26079559

Sensor transition failure in the high flow sampler: Implications for methane emission inventories of natural gas infrastructure.

Touché Howard1, Thomas W Ferrara, Amy Townsend-Small.   

Abstract

UNLABELLED: Quantification of leaks from natural gas (NG) infrastructure is a key step in reducing emissions of the greenhouse gas methane (CH4), particularly as NG becomes a larger component of domestic energy supply. The U.S. Environmental Protection Agency (EPA) requires measurement and reporting of emissions of CH4 from NG transmission, storage, and processing facilities, and the high-flow sampler (or high-volume sampler) is one of the tools approved for this by the EPA. The Bacharach Hi-Flow Sampler (BHFS) is the only commercially available high-flow instrument, and it is also used throughout the NG supply chain for directed inspection and maintenance, emission factor development, and greenhouse gas reduction programs. Here we document failure of the BHFS to transition from a catalytic oxidation sensor used to measure low NG (~5% or less) concentrations to a thermal conductivity sensor for higher concentrations (from ~5% to 100%), resulting in underestimation of NG emission rates. Our analysis includes both our own field testing and analysis of data from two other studies (Modrak et al., 2012; City of Fort Worth, 2011). Although this failure is not completely understood, and although we do not know if all BHFS models are similarly affected, sensor transition failure has been observed under one or more of these conditions: (1) Calibration is more than ~2 weeks old; (2) firmware is out of date; or (3) the composition of the NG source is less than ~91% CH4. The extent to which this issue has affected recent emission studies is uncertain, but the analysis presented here suggests that the problem could be widespread. Furthermore, it is critical that this problem be resolved before the onset of regulations on CH4 emissions from the oil and gas industry, as the BHFS is a popular instrument for these measurements. IMPLICATIONS: An instrument commonly used to measure leaks in natural gas infrastructure has a critical sensor transition failure issue that results in underestimation of leaks, with implications for greenhouse gas emissions estimates as well as safety.

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Year:  2015        PMID: 26079559     DOI: 10.1080/10962247.2015.1025925

Source DB:  PubMed          Journal:  J Air Waste Manag Assoc        ISSN: 1096-2247            Impact factor:   2.235


  4 in total

1.  Assessment of methane emissions from the U.S. oil and gas supply chain.

Authors:  Ramón A Alvarez; Daniel Zavala-Araiza; David R Lyon; David T Allen; Zachary R Barkley; Adam R Brandt; Kenneth J Davis; Scott C Herndon; Daniel J Jacob; Anna Karion; Eric A Kort; Brian K Lamb; Thomas Lauvaux; Joannes D Maasakkers; Anthony J Marchese; Mark Omara; Stephen W Pacala; Jeff Peischl; Allen L Robinson; Paul B Shepson; Colm Sweeney; Amy Townsend-Small; Steven C Wofsy; Steven P Hamburg
Journal:  Science       Date:  2018-06-21       Impact factor: 47.728

2.  Methane emissions from the Marcellus Shale in southwestern Pennsylvania and northern West Virginia based on airborne measurements.

Authors:  Xinrong Ren; Dolly L Hall; Timothy Vinciguerra; Sarah E Benish; Phillip R Stratton; Doyeon Ahn; Jonathan R Hansford; Mark D Cohen; Sayantan Sahu; Hao He; Courtney Grimes; Ross J Salawitch; Sheryl H Ehrman; Russell R Dickerson
Journal:  J Geophys Res Atmos       Date:  2017-04-20       Impact factor: 4.261

3.  Assessment of Uinta Basin Oil and Natural Gas Well Pad Pneumatic Controller Emissions.

Authors:  Eben D Thoma; Parikshit Deshmukh; Russell Logan; Michael Stovern; Chris Dresser; Halley L Brantley
Journal:  J Environ Prot (Irvine, Calif)       Date:  2017-04

4.  Design and Use of a Full Flow Sampling System (FFS) for the Quantification of Methane Emissions.

Authors:  Derek R Johnson; April N Covington; Nigel N Clark
Journal:  J Vis Exp       Date:  2016-06-12       Impact factor: 1.355

  4 in total

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