Elvidge (CMS 2015) Project Profile   (updated 15-May-2018)
Project Title:Global monitoring, reporting, and verification (MRV) system for carbon emissions from natural gas flaring

Science Team
Members:

Christopher (Chris) Elvidge, Colorado School of Mines (Project Lead)
Mikhail Zhizhin, University of Colorado

Project Duration: 2016 - 2019
Solicitation:NASA: Carbon Monitoring System (2015)
Abstract: NOAA has developed a prototype MRV (monitoring, reporting and verification) system for global gas flaring. The purpose of this project is to reduce the uncertainties in the carbon emission estimates and produce a consistent time series of annual CO2 emission estimates for individual flare sites spanning 2012 through 2018. The monitoring system is based near-infrared and short-wave infrared nighttime data collected by the Visible Infrared Imaging Radiometer Suite (VIIRS). Peak radiant emissions from gas flares occur near 1.62 um - center of the VIIRS M11 spectral band. Using detections in multiple spectral bands, the algorithm calculates temperature, source size and radiant heat. Flares are separated from biomass burning and industrial sites based on temperature and persistence. More than 7000 flares were found each year in 2012-2014. Fire each flaring site, annual average radiant heat is calculated from the cloud-free observation set. The current calibration is based on national level flaring data reported by Cedigaz. The uncertainty in the current estimates exceeds the year-to-year differences in flared gas volumes from individual countries, calling into question the estimates. It is believed that the large uncertainties arise from country level errors in the Cedigaz estimates. Methods: Nighttime VIIRS data will be collected on a series of test flares burning a precisely controlled natural gas flow rates. Measurements will be made over a range of view angles and three flow rates (low, medium and high). Additional test flare events will explore the effects of multiple flares inside a VIIRS pixel and the effects of black carbon. From this test set, a new calibration will be developed for estimating flared gas volumes. The calibration will then be applied to VIIRS data spanning 2012-2018 resulting in both site specific and national estimates of CO2 emissions from natural gas flaring. Significance: The project meets on of the primary calls in the announcement – for proposals to develop MRV systems using remotely sensed data. There are three primary applications for the gas flaring MRV:  A. Emission reductions to meet Intended Nationally Determined Contributions (INDC): Countries need to have historical records and annual updates of their CO2 emissions from gas flaring. The data will be used to gauge the level of effort to be placed on gas flaring reduction. For countries with large flaring emissions, reductions in flaring may be enough to meet their INDC. Other countries with small flaring volumes may decide to focus their efforts on achieving their INDC targets in other sectors. Accurate gas flaring emission data are key to these decisions. The MRV data will also be used to document the INDC emission reductions from gas flaring. B. Zero Routine Flaring by 2013: The gas flaring MRV data are crucial this initiative. The MRV data will be used to identify the routine flares. This will likely be done based on duty cycle. Certainly flares detected 50-100% of the time are routine. As the duty cycle declines, at some point the flare will be deemed to be œnon-routine. The VIIRS data can be used to distinguish routine versus non- routine flaring once a decision has been made on the duty cycle threshold. For the routine flares, these can be tracked over time to document changes indicating the flare has been extinguished or converted to non-routine status. C. Low Carbon Fuel Standards (LCFS): Site specific MRV data can be assigned to specific production fields as one of the data sources used to calculate the carbon intensity of fuels. This approach can be used to establish flaring baseline for specific production fields and tracking of changes in flaring that count towards carbon emission reductions.
CMS Primary Theme:
  • Land-Atmosphere Flux
CMS Science Theme(s):
  • Land-Atmosphere Flux
  • Global Surface-Atmosphere Flux
  • MRV

Participants:

Kimberly Baugh, University of Colorado
Christopher (Chris) Elvidge, Colorado School of Mines
Stephane Germain, GHGSat
Tilottama Ghosh, NOAA
Deborah (Debbie) Gordon, Rocky Mountain Institute (RMI)
Karen Griffin, U.S. Energy Information Administration
Bjorn Hamso, The World Bank
Martyn Howells, World Bank Global Gas Flaring Reduction Initiative (GGFR)
Feng Hsu, NOAA
Pietro Mezzano, Oil and Gas Climate Initiative
Frances (Fran) Reuland, Rocky Mountain Institute (RMI)
Stephanie Saunier, Carbon Limits
Hongjie Xie, University of Texas at San Antonio
Mikhail Zhizhin, University of Colorado

Contact Support to request an email list of project participants.

Project URL(s): None provided.
 
Data
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Product Title:  Global Gas Flare Survey by Infrared Imaging, VIIRS Nightfire, 2012-2019
Start Date:  01/2012      End Date:  12/2019     (2012-2019)
Description:  This dataset contains annual global flare site surveys from 2012-2019 derived from Visible Infrared Imaging Radiometer Suite (VIIRS) on the Suomi National Polar Partnership (SNPP) satellite. Gas flaring sites were identified from heat anomalies first estimated by the VIIRS Nightfire (VNF) algorithm from which high-temperature biomass burning and low-temperature gas flaring were separated based on temperature and persistence. Nightly observations for each flare site were drawn to determine their activity in the given calendar year. Data include flare location, temperature, and estimated flared gas volume; flaring data summarized by country; and KMZ files for viewing flaring locations in Google Earth. This dataset is valuable for measuring the current status of global gas flaring, which can have significant environmental impacts.
Status:  Archived
CMS Science Theme(s):  MRV
Keywords:  Source, uncertainties & standard errors, evaluation. Methane gas flaring. VIIRS. Nationally Determined Contributions
Spatial Extent:  Global
Spatial Resolution:  point locations
Temporal Frequency:  annual
Input Data Products:  VIIRS Nightfire nightly infrared combustion source detections
Algorithm/Models Used:  Remote sensing for nighttime multispectral detection of IR combustion sources. Linear regression between the average radiant heat and flared gas volume.
Evaluation:  Calibrated with CEDIGAZ country-level annual gas flaring volume reports
Intercomparison Efforts/Gaps:  Ground-truth calibration with a single variable size flare is planned in 2017
Uncertainty Estimates:  10%
Uncertainty Categories:  Model-data comparison
Application Areas:  VIIRS Nightfire data provide site-specific tracking of natural gas flaring for use in evaluating efforts to reduce and eliminate routine flaring.
Relevant Policies/Programs:  Gas flaring regulations and reduction
Potential Users:  World Bank, state regulators, carbon cycle researchers
Stakeholders:  Carbon Limits (Point of Contact: Stéphanie Saunier stephanie.saunier@carbonlimits.no); Department of Geological Sciences, University of Texas at San Antonio (Point of Contact: Prof. Hongjie Xie hongjie.xie@utsa.edu); GHGsat (Point of Contact: Stephane Germain stephane.germain@ghgsat.com); Oil and Gas Climate Initiative (Point of Contact: Pietro Mezzano PietroM@ogci.com); Radia LLC (Point of Contact: Porter Montgomery porter@radia.com); U.S. DOE Energy Information Administration (EIA) (Point of Contact: Karen Griffin Karen.Griffin@eia.gov); World Bank Global Gas Flaring Reduction Initiative (GGFR) (Point of Contact: Martyn Howells hhowells@worldbank.org)
Current Application Readiness Level:  5
Start Application Readiness Level:  3
Target Application Readiness Level:  9
Future Developments:  Ground-truth calibration using a single flare with varying size and atmospheric conditions
Limitations:  Flares are observed 1-2 times per night. Can be masked by thick clouds. Diffrerences in flare design contribute to uncertainty.
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Assigned Data Center:  ORNL DAAC
Metadata URL(s):

https://eogdata.mines.edu/download_global_flare.html
Data Server URL(s):

https://eogdata.mines.edu/download_global_flare.html
Archived Data Citation:  Elvidge, C.D., and M. Zhizhin. 2021. Global Gas Flare Survey by Infrared Imaging, VIIRS Nightfire, 2012-2019. ORNL DAAC, Oak Ridge, Tennessee, USA. DOI: 10.3334/ORNLDAAC/1874

Bounding Coordinates:
West Longitude:-180.00000 East Longitude:180.00000
North Latitude:90.00000 South Latitude:-90.00000

 
Publications: Elvidge, C. D., Bazilian, M. D., Zhizhin, M., Ghosh, T., Baugh, K., Hsu, F. 2018. The potential role of natural gas flaring in meeting greenhouse gas mitigation targets. Energy Strategy Reviews. 20, 156-162. DOI: 10.1016/j.esr.2017.12.012

Elvidge, C., Zhizhin, M., Baugh, K., Hsu, F., Ghosh, T. 2015. Methods for Global Survey of Natural Gas Flaring from Visible Infrared Imaging Radiometer Suite Data. Energies. 9(1), 14. DOI: 10.3390/en9010014

Elvidge, C., Zhizhin, M., Baugh, K., Hsu, F., Ghosh, T. 2019. Extending Nighttime Combustion Source Detection Limits with Short Wavelength VIIRS Data. Remote Sensing. 11(4), 395. DOI: 10.3390/rs11040395

Archived Data Citations: Elvidge, C.D., and M. Zhizhin. 2021. Global Gas Flare Survey by Infrared Imaging, VIIRS Nightfire, 2012-2019. ORNL DAAC, Oak Ridge, Tennessee, USA. DOI: 10.3334/ORNLDAAC/1874