Efficiency and Productivity of Water in Agriculture, Dr. Pasquale Steduto, FAO

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Efficiency & Productivity of Water in Agriculture The conceptual framework Pasquale STEDUTO Deputy director Land & Water Division FAO, Rome

description

Dr. Pasquale Steduto, Deputy Director Land & Water Division Food & Agriculture Organization of the UN. His presentation at The Water Network's event on Efficient Use of Agricultural Water in Zurich on January 23, 2013

Transcript of Efficiency and Productivity of Water in Agriculture, Dr. Pasquale Steduto, FAO

Page 1: Efficiency and Productivity of Water in Agriculture, Dr. Pasquale Steduto, FAO

Efficiency & Productivity of Water in Agriculture The conceptual framework

Pasquale STEDUTO Deputy director

Land & Water Division FAO, Rome

Page 2: Efficiency and Productivity of Water in Agriculture, Dr. Pasquale Steduto, FAO

Drinking 2-4 Domestic 40-400 Food 1000-5000

Strong & Inextricable Link between food and water

Roughly, 1 liter per Kcal

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•  Population growth •  Dietary changes •  Urbanization •  Income •  ………

•  Increased climate variability and change • Progressive water scarcity (food water)

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Yield Increase

(77%)

Cropping Intensity

(14%) Arable Land Expansion

(9%)

Supply side Expand arable land Increase intensification Higher productivity

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•  In post harvest (storage, transport, market)

•  At home

Promote sustainable diets

EU, avg waste of 179 kg p-1 y-1

Reduce losses and waste

•  400 M obese

•  1,400 M overweight

Demand side

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Bio-fuels Stocks reduction Energy costs increase Recurrent Droughts ………

Conducive to more crop and water productivity (or water use efficiency)

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It is a-dimensional (input-output same units)

It has theoretical limits (0-1)

It implies causality between input and output

e = out in

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It has specific units (e.g., Kg m-3)

It has no 0-1 limits

No causality between input and output

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Wres_out/Wres_in  

Wfarm-­‐gate/Wres_out  

Wcrop-­‐field/Wfarm-­‐gate  

Wapplied/Wcrop-­‐field  Wroot-­‐zone/Wapplied  

Wsoil-­‐stored/Wrain  

Wroot-­‐zone/Wsoil-­‐stored  

WET/Wroot-­‐zone  

WT/WET  

Hydrology  

Agron

.  Ph

ysiol.   CO2  assimil./WT  

Biomass/CO2  assimil.  

Yield/Biomass  

‘e’

WP

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•  Climatic environment - season shift - ET control - CO2 enrichment

M6

M1

M3

M4

Abov

e-gr

ound

bio

mas

s (M

ha-

1 )

Evapotranspiration (ET, mm)

(A)

(B)

(C)

(E) (D)

ET1 ET2

M5

(A’)

•  Genetics - A/T - phenology - canopy - roots - resistances

•  Management - soil health - fertility - pest/dis/weed - water soil moisture irrigation

E1 E2

M2

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management

Plant Nutrition Land & Water

Pest & disease

technology New varieties

From Sadras & Angus (2006)

climate

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United States

China

Latin America

Sub-Saharan Africa

Maize Productivity

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Wat

er P

rodu

ctiv

ity

(Kg

m-3

)

Land Productivity (Kg ha-1)

Relationship between WP & Yield

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stat

isti

cs

mod

elin

g RS

Socio-Econ.

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•  World food demand in 2050 = today x 2 •  Without increase in water productivity, or a significant reduction of the demand, water consumption in 2050 = today + 70-90%

•  The World is exposed to a progressive and critical increase in water scarcity (+ climate change) •  To respond to the future food demand we need to act on both supply and demand side of the food equation

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•  Without a comprehensive view of Y&WP, i.e., agronomy, technology, market, economy, etc. the risks of failures in responses are high

•  Assessing Y&WP variability, and related causes, provides a strong basis for effective policies and strategies of interventions, for benchmarking and for monitoring progress

•  This will provide better understanding of what is “manageable” from what is not and therefore prioritizing the policy measures and implementation strategies

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www.fao.org/nr/water

Thank You