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WATER HARVESTING & MANAGEMENT (WHM) FOR CROP & PASTURE PRODUCTION FFA Regional Training  March 22 – 24, 2011 Mombasa, Kenya. Presented By: Kimeu P. M & Mutiso J.W.
What is Water Harvesting (WH) ,[object Object],[object Object],Catchment ( e.g. roofs, ground surfaces, road surfaces, rock catchments, intermittent or ephemeral water courses ) Cultivated Area RUNOFF
 
Classification of Water Harvesting Techniques Water Harvesting Rainwater Harvesting (Local Source) Floodwater Harvesting (Channel Flow) Rooftop Harvesting (collection from rooftops) Runoff Harvesting (overland/rill flow) Deep Ponding (storage) Water Supply Deep Ponding (storage) Water Supply Soil Storage Plant Production Runoff Farming** Micro-Catchment Systems (Short slope catchment techniques) External Catchment Systems (Long slope catchment techniques Deep Ponding (storage) Water Supply Soil Storage Plant Production Floodwater farming = Water spreading 1. 2. 3. Sub Divisions Main plant production categories Productive use* Storage Category of WH system by source NB: * Water supply systems (i.e. ponded water) used for a variety of purposes, mainly domestic and stock water but also some supplementary irrigation ** ‘Farming’ in ‘’Runoff farming’’ broadly used to include trees, agro-forestry, rangeland rehabilitation, crops etc.
DEFINITIONS & CLASSIFICATION ,[object Object],[object Object],[object Object]
Basic Categories of Water Harvesting Systems for Crop Production ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Negarims Examples of main WH systems Contour Bunds Semi-Circular Bunds Contour Ridges
Trapezoidal Bund Contour stone bunds Permeable rock dams Water spreading bunds
OVERVIEW OF MAIN WH SYSTEMS Structure Classification Main Uses Description Where Appropriate Limitations Negarim Micro-catchment Trees & Grass Closed grid of diamond shapes or open ended V’s formed by small earth ridges within infiltration pits - Tree planting in areas where land is uneven or only a few trees are planted ,[object Object],[object Object],Contour Bunds Micro-catchment Trees & Grass Earth bunds on contour spaced at 5-10m apart with furrow upslope and cross-ties - Tree planting on a large scale esp when mechanized - Not suitable for uneven terrain Semi-circular bunds Micro-catchment Rangeland & fodder (also trees) Semi-circular shaped earth bunds with tips on contour. In a series with bunds in staggered formation -Useful for grass reseeding, fodder or tree planting in degraded rangeland - Cannot be mechanized hence limited to areas with available hand labour Contour ridges Micro-catchment Crops Small earth ridges on contours 1.5 – 5m apart with furrow upslope and cross ties. Uncultivated catchment btn ridges - For crop production in semi-arid areas esp where soil is fertile and easy to work - Requires new technique of land preparation & planting thus may be problem with acceptance
Structure Classification Main Uses Description Where Appropriate Limitations Trapezoidal bunds External catchment Crops Trapezoidal shaped earth bunds capturing runoff from external catchment and overflowing around wing tips - Widely suitable (in a variety of designs) for crop production in ASALs - Labour intensive and uneven depth of runoff withing plot Contour stone bunds External catchment Crops Small stone bunds constructed on contour at 15-35m apart slowing & filtering runoff ,[object Object],[object Object],-Only possible where abundant loose stones are available Permeable rock dams Floodwater farming technique Crops Long low rock dams across valleys slowing and spreading floodwater as well as healing gullies - Suitable for situation where gently sloping valleys are becoming gullies and better water spreading is required - Very site specific and needs considerable stones as well as provision of transport Water spreading bunds Floodwater farming technique Crops & rangeland Earth bunds set at a gradient, with a ‘’dogleg’’ shape, spreading diverted floodwater -For arid areas where water is diverted from water course onto crop or fodder block -Does not impound much water and maintenance high in early stages after construction
DESIGN CRITERIA
A. WATER REQUIREMENTS FOR CROPS ,[object Object],[object Object],Crop Crop water need (mm/total growing period) Beans 300 - 500 Citrus 900 - 1200 Cotton 700 - 1300 Groundnut 500 - 700 Maize 500 - 800 Sorghum/Millet 450 - 650 Soybean 450 - 700 Sunflower 600 - 1000
Factors influencing CWR ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Calculation of crop water requirements (CWR) ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Crop Factors (Kc) CROP Average Kc per growing season Cotton 0.82 Maize 0.82 Millet 0.79 Sorghum 0.78 Grain/small 0.78 Legumes 0.79 Ground nuts 0.79
Calculation of  Et o   ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Climatic Zone Mean Daily Temp 15 o 15-25 o 25 o Desert/arid 4-6 7-8 9-10 Semi arid 4-5 6-7 8-9 Sub-humid 3-4 5-6 7-8 Humid 1-2 3-4 5-6
EXAMPLE: Calculation of ET crop ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Water requirements for trees, rangeland & fodder ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Because the objective of rangeland & fodder grown in ASAL under WH systems is to improve performance, within economic constraints, and to ensure the survival of the plants from season to season, rather than fully satisfying water requirements!
B. SOIL REQUIREMENTS FOR WH ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
C. RAINFALL-RUNOFF ANALYSIS ,[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
7. Return period T (in yrs) can be easily derived once exceedance probability P (%) is known from the equation: T=  100 (years) P E.g. T 67%  = 100/67 = 1.5 (years)
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
 
Design Model for Catchment : Cultivated Area Ratio C:CA calculation for crop production systems Rule: WATER HARVESTED = EXTRA WATER REQUIRED Interpolating the above we obtain CWR – Design Rainfall________________  =  C Design Rainfall X Runoff Coeff X Eff Factor CA N.B   Runoff coeff  is proportion of rainfall which flows along ground as surface runoff (ranges between 0.1 and 0.5) Efficiency factor  takes to account the inefficiency of uneven distribution of water within field as well as evaporation losses and deep percolation (ranges between 0.5 and 0.75)
Example on C:CA calculation for crop production ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object]
Example:  Microcatchment system (Negarim microcatchment) for trees   MC = RA x  WR - DR DR – K - EFF where:  MC = total size of microcatchment (m 2 ) RA = area exploited by root system (m 2 ) WR = water requirement (annual) (mm) DR = design rainfall (annual) (mm) K = runoff coefficient (annual) EFF = efficiency factor As a rule of thumb, it can be assumed that the area to be exploited by the root system is equal to the area of the canopy of the tree.
Example:   Semi-arid area,  fruit tree grown in Negarim microcatchment  Annual water requirement (WR) = 1000 mm Annual design rainfall (DR) = 350 mm Canopy of mature tree (RA) = 10 m 2 Runoff coefficient (K) = 0.5 Efficiency factor (EFF) = 0.5 Total size MC = 10 x {(1000-350)/(350 x 0.5 x 0.5)} =  84m 2   As a rule of thumb,  for multipurpose trees in ASAL, the size of the microcatchment per tree (C and CA together) should range between 10 and 100 m 2 , depending on the aridity of the area and the species grown. Flexibility can be introduced by planting more than one tree seedling within the system and removing surplus seedlings at a later stage if necessary.
[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Design and Construction of Negarim microcatchments ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Negarims under construction in different parts of Kenya  Taita Taveta district Taita Taveta district Taita Taveta district Turkana district
[object Object]
[object Object],Micro catchments area Bund height (cm) 2-3% slope 4-5% slope 10-40sqm 25cm 35-45cm 40-60sqm 25-35cm 45-55cm 60—100sqm 35-60cm 60cm >100m2 40-60 Not recommended
V-Shaped micro-catchments  Sometimes, open-faced V shaped MC may be constructed to allow surplus water to overflow
[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object]
Zai pits constructed in Kilifi district
[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object]
Contour bunds shortly after rains in Garissa district
Illustration of contour bunds
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Contour ridges field layout
Contour ridges in Marigat, Baringo
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Construction: Stake out using survey equipment the tip of control contour and using string stake the continuous contour
[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Source; FAO Water Harvesting Manual 2
Layout of trapezoidal bunds and a completed structure in Makueni district
Trapezoidal bunds Field arrangement of a large catchment area
Recommended dimensions of one TB unit %slope Length of base bund (m) Length of wing wall (m) Distance between tips (m) Earth work per bund Cultivated area per bund (sqm) 0.5% 40 114 200 355 9600 1.0% 40 57 120 220 3200 1.5% 40 38 94 175 1800
Consequences of poor compaction of TBs
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Intake from stream Field layout of water spreading bunds
[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],Land slope Spacing between dams Volume of stone /ha cultivated 0.5% 140m 70 1.0% 70m 140 1.5% 47 208 2.0% 35 280
Permeable rock check dams for gully control and catchment conservation in a water project site, Makueni district
[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
F . ACCOMPANYING TECHNOLOGIES TO WH FOR CROP MGT ,[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Fanya Juu Design and construction ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
General, slope-dependent dimensions of Fanya Juu terraces: Slope, % VI, m HI,  m Width, m Depth, m Channel area,  m 5 1.00 20 0.50 0.50 0.25 10 1.35 14 0.50 0.55 0.28 15 1.73 12 0.60 0.55 0.33 20 1.80 9 0.60 0.60 0.36
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Measuring slopes and marking contours using line level NOTE:  The gully in the left….  What do we do when the fanya juu has to cross such an area?
DEMONSTRATIONS: Field assembly of an A – Frame and field calibration as well as usage of the A – Frame to mark contours A – Frames very precise but not recommended for layout of terraces in large areas….. WHY??? Can A- Frame be used to measure/determine slopes??
What are these people doing?
Discuss the above photos
[object Object],[object Object],[object Object],[object Object],Soil embankment stabilized with napier grass. A grass adds value so that no part of the land is perceived as wasted.
[object Object],[object Object],[object Object],[object Object],[object Object]
Which soil & water conservation structure is this??
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object]

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RHM for improved crop & pasture production

  • 1. WATER HARVESTING & MANAGEMENT (WHM) FOR CROP & PASTURE PRODUCTION FFA Regional Training March 22 – 24, 2011 Mombasa, Kenya. Presented By: Kimeu P. M & Mutiso J.W.
  • 2.
  • 3.  
  • 4. Classification of Water Harvesting Techniques Water Harvesting Rainwater Harvesting (Local Source) Floodwater Harvesting (Channel Flow) Rooftop Harvesting (collection from rooftops) Runoff Harvesting (overland/rill flow) Deep Ponding (storage) Water Supply Deep Ponding (storage) Water Supply Soil Storage Plant Production Runoff Farming** Micro-Catchment Systems (Short slope catchment techniques) External Catchment Systems (Long slope catchment techniques Deep Ponding (storage) Water Supply Soil Storage Plant Production Floodwater farming = Water spreading 1. 2. 3. Sub Divisions Main plant production categories Productive use* Storage Category of WH system by source NB: * Water supply systems (i.e. ponded water) used for a variety of purposes, mainly domestic and stock water but also some supplementary irrigation ** ‘Farming’ in ‘’Runoff farming’’ broadly used to include trees, agro-forestry, rangeland rehabilitation, crops etc.
  • 5.
  • 6.
  • 7.
  • 8.
  • 9. Negarims Examples of main WH systems Contour Bunds Semi-Circular Bunds Contour Ridges
  • 10. Trapezoidal Bund Contour stone bunds Permeable rock dams Water spreading bunds
  • 11.
  • 12.
  • 14.
  • 15.
  • 16.
  • 17. Crop Factors (Kc) CROP Average Kc per growing season Cotton 0.82 Maize 0.82 Millet 0.79 Sorghum 0.78 Grain/small 0.78 Legumes 0.79 Ground nuts 0.79
  • 18.
  • 19.
  • 20.
  • 21.
  • 22. Because the objective of rangeland & fodder grown in ASAL under WH systems is to improve performance, within economic constraints, and to ensure the survival of the plants from season to season, rather than fully satisfying water requirements!
  • 23.
  • 24.
  • 25.
  • 26. 7. Return period T (in yrs) can be easily derived once exceedance probability P (%) is known from the equation: T= 100 (years) P E.g. T 67% = 100/67 = 1.5 (years)
  • 27.
  • 28.  
  • 29. Design Model for Catchment : Cultivated Area Ratio C:CA calculation for crop production systems Rule: WATER HARVESTED = EXTRA WATER REQUIRED Interpolating the above we obtain CWR – Design Rainfall________________ = C Design Rainfall X Runoff Coeff X Eff Factor CA N.B Runoff coeff is proportion of rainfall which flows along ground as surface runoff (ranges between 0.1 and 0.5) Efficiency factor takes to account the inefficiency of uneven distribution of water within field as well as evaporation losses and deep percolation (ranges between 0.5 and 0.75)
  • 30.
  • 31.
  • 32. Example: Microcatchment system (Negarim microcatchment) for trees MC = RA x WR - DR DR – K - EFF where: MC = total size of microcatchment (m 2 ) RA = area exploited by root system (m 2 ) WR = water requirement (annual) (mm) DR = design rainfall (annual) (mm) K = runoff coefficient (annual) EFF = efficiency factor As a rule of thumb, it can be assumed that the area to be exploited by the root system is equal to the area of the canopy of the tree.
  • 33. Example: Semi-arid area, fruit tree grown in Negarim microcatchment Annual water requirement (WR) = 1000 mm Annual design rainfall (DR) = 350 mm Canopy of mature tree (RA) = 10 m 2 Runoff coefficient (K) = 0.5 Efficiency factor (EFF) = 0.5 Total size MC = 10 x {(1000-350)/(350 x 0.5 x 0.5)} = 84m 2 As a rule of thumb, for multipurpose trees in ASAL, the size of the microcatchment per tree (C and CA together) should range between 10 and 100 m 2 , depending on the aridity of the area and the species grown. Flexibility can be introduced by planting more than one tree seedling within the system and removing surplus seedlings at a later stage if necessary.
  • 34.
  • 35.
  • 36.
  • 37. Negarims under construction in different parts of Kenya Taita Taveta district Taita Taveta district Taita Taveta district Turkana district
  • 38.
  • 39.
  • 40. V-Shaped micro-catchments Sometimes, open-faced V shaped MC may be constructed to allow surplus water to overflow
  • 41.
  • 42.
  • 43.
  • 44. Zai pits constructed in Kilifi district
  • 45.
  • 46.
  • 47.
  • 48. Contour bunds shortly after rains in Garissa district
  • 50.
  • 52. Contour ridges in Marigat, Baringo
  • 53.
  • 54. Construction: Stake out using survey equipment the tip of control contour and using string stake the continuous contour
  • 55.
  • 56.
  • 57.
  • 58. Source; FAO Water Harvesting Manual 2
  • 59. Layout of trapezoidal bunds and a completed structure in Makueni district
  • 60. Trapezoidal bunds Field arrangement of a large catchment area
  • 61. Recommended dimensions of one TB unit %slope Length of base bund (m) Length of wing wall (m) Distance between tips (m) Earth work per bund Cultivated area per bund (sqm) 0.5% 40 114 200 355 9600 1.0% 40 57 120 220 3200 1.5% 40 38 94 175 1800
  • 62. Consequences of poor compaction of TBs
  • 63.
  • 64. Intake from stream Field layout of water spreading bunds
  • 65.
  • 66.
  • 67. Permeable rock check dams for gully control and catchment conservation in a water project site, Makueni district
  • 68.
  • 69.
  • 70.
  • 71.
  • 72.
  • 73.
  • 74. General, slope-dependent dimensions of Fanya Juu terraces: Slope, % VI, m HI, m Width, m Depth, m Channel area, m 5 1.00 20 0.50 0.50 0.25 10 1.35 14 0.50 0.55 0.28 15 1.73 12 0.60 0.55 0.33 20 1.80 9 0.60 0.60 0.36
  • 75.
  • 76. Measuring slopes and marking contours using line level NOTE: The gully in the left…. What do we do when the fanya juu has to cross such an area?
  • 77. DEMONSTRATIONS: Field assembly of an A – Frame and field calibration as well as usage of the A – Frame to mark contours A – Frames very precise but not recommended for layout of terraces in large areas….. WHY??? Can A- Frame be used to measure/determine slopes??
  • 78. What are these people doing?
  • 80.
  • 81.
  • 82. Which soil & water conservation structure is this??
  • 83.
  • 84.
  • 85.