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Remote Sensing of Crop Development and Evapotranspiration 2014 FREP/WPHA Conference Lee Johnson Sr. Research Scientist CSU Monterey Bay NASA Ames Research Center [email protected]
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Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

May 22, 2020

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Page 1: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Remote Sensing of Crop Development

and Evapotranspiration

2014 FREP/WPHA Conference

Lee Johnson

Sr. Research Scientist

CSU Monterey Bay

NASA Ames Research Center

[email protected]

Page 2: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Outline

• Intro/context

• Supporting technologies

• Satellite-based mapping in California

• Example applications

Page 3: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Water resource management challenges

• Competing demands

• Drought impacts

• Water quality and impaired water bodies

• Aging water conveyance infrastructure

• Groundwater overdraft

• Population growth and climate change

• Interaction w/ nitrate mgt

Page 4: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Improving irrigation management

• Agronomic

• Engineering

• Institutional

• Managerial; eg, ET-based scheduling

Howell (2001)

Page 5: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Definitions

• Evapotranspiration (ET): Water lost to the atmosphere from combined

processes of evaporation from soil/plant surfaces, and transpiration by

plant tissues.

• Reference evapotranspiration (ETo): ET from a well-watered

reference crop (grass in Calif.)

• Crop ET (ETc): ET from an agricultural crop (basal vs. net)

• Crop coefficient (Kc): A unitless coefficient used to convert ETo to ETc

for a specific crop.

• Fractional cover: proportion of field covered by green crop (vs. bare

soil) as viewed from above

Page 6: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Basal conditions (ET potential transpiration)

Well-watered crop, on drip

Page 7: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Non-basal conditions

Bare-soil evaporation

Deficit irrigation (water stress)

Page 8: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Remote sensing of crop ET

• Vegetation index methods (e.g., SIMS)

– Primarily uses two spectral bands: red & near-infrared

– Basal conditions (potential transpiration)

– Optional post-processing via soil water balance model

• Surface energy balance methods (SEBAL, METRIC)

– Uses all spectral bands, including thermal infrared

– Accounts for crop stress and soil evaporation

– Automation a continuing challenge

2 main approaches:

Page 9: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Building blocks

• Landsat system & associated research

• Prior ag-engineering/irrigation research

• CIMIS data availability

Page 10: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Landsat 7, 8

¼ acre resolution, overpass every 8 days

Page 11: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Landsat spectral bands

“typical” plant

canopy spectrum

Page 12: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Normalized Difference Vegetation Index (NDVI)

More green cover:

Higher NIR,

Lower red

Higher NDVI

Less green cover:

Lower NIR,

Higher red

Lower NDVI

Canopy Reflectance

Page 13: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

NDVI vs. crop development

Trout et al., 2008; Johnson & Trout, 2012

-Led by USDA/ARS

-Good relationship NDVI vs. green crop cover shown for several Calif. crops

-Additional testing ongoing in collaboration with UC Cooperative Extension

RMSE=6.2%

Page 14: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

ETc drivers

• Crop fractional cover (net radiation)

• Crop height (aerodynamic resistance)

• Stomatal control (canopy resistance)

• Evaporation from exposed soil

FAO-56 (Crop Evapotranspiration: Guidelines for

Computing Crop Water Requirements)

Page 15: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Basal crop coefficient (Kcb)

(Amer. Soc. Agric. Bio. Engrs.)

- Fractional cover (and crop height) as basis for crop coeff. estimation

- “Density coefficient” approach

Page 16: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

CIMIS reference evapotranspiration

California Irrigation Management Information System (CIMIS)

– Calif. Dept. Water Resources

– Operating since 1982

– Statewide network archives daily measurements of ETo

– Spatial CIMIS 2km statewide grid, daily

GOES geostationary satellite used to modify clear-sky radiation estimates

Partnership between CDWR & UC Davis (Hart et al., 2009)

Spatial CIMIS ETo 13-Oct-2014

Photo credit: DWR CIMIS

Page 17: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

CDL (crop type)

Landsat + other

satellite imagery

informed by Farm

Service Agency ground

data

>100 crop classes

Annual update

Retrospective (year-

end)

Page 18: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

SIMS

Page 19: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

SIMS flowchart

Melton et al., 2012

Page 20: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

SIMS NDVI

Shown:

Basal ETc and NDVI for 13-Sep-2014

Page 21: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

NDVI close-up

Individual fields/sub-

fields are clearly visible

at 30m resolution

Page 22: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Crop fractional green cover

Page 23: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Crop coefficient (basal)

Page 24: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Daily crop ET (basal)

Page 25: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Polygon tool

Page 26: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Mobile-optimized interface under development

Page 27: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Calculation of Ks and Ke

FAO-56; ASABE manual

Requires some add’l info:

-irrigation schedule

-delivery method

-soil texture

-crop type

Derive stress & evaporation

coeff’s: Ks, Ke

Calculate adjusted ET as:

ETc adj = (Ks*Kcb + Ke)*ETo

Soil water balance model:

Page 28: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Monitor seasonal ET by soil water

balance:

ET = P + I - D - DS

P = precip, I = irrigation

D = drainage below root zone

DS = change in soil water content

SIMS evaluation

Page 29: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Seasonal ET

~10-15% error vs. ground measurements of seasonal ET for several crops:

Almond

Garlic

Lettuce

Melon

Peach

Tomato

Wheat

Cotton*

Grape (raisin)*

Grape (wine)*

Orange*

*after post-processing with soil water balance model

Page 30: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Daily ET

r2 = 0.93

mae = 0.55mm/d (10.3%)

rmse = 0.67mm/d (12.6%)

Field data courtesy Dr. Ray Anderson, USDA/ARS

Daily ETc (mm) for SJV peach orchard, 4/6/2012-12/3/2012

Eddy covariance station

for energy balance

Page 31: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Example applications

• ET-based irrigation scheduling

• Calculation of agricultural water use fractions

• Fallowed area mapping

Page 32: Remote Sensing of Crop Development and Evapotranspiration · •Crop fractional cover (net radiation) •Crop height (aerodynamic resistance) •Stomatal control (canopy resistance)

Summary

• Background, concepts

• Remote sensing of ET (SIMS

example)

Applications:

• ET-based irrigation

• Water use fractions

• Fallowed area mapping

Acknowledgments: F. Melton, K. Post, A. Guzman, J. Shupe, C. Lund, C. Rosevelt

Sponsors: NASA Earth Sci, USDA/CDFA-SCBGP, Cal DWR, CSU-ARI