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Solar Water Pump for Agriculture: Complete Irrigation Guide

T
Trista Solar Water Pump Specialist · Factory-direct experience
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The short answer: to size a solar pump for agriculture, you need two numbers: (1) how much water your crops need per day, and (2) how deep your water source is. The daily need divided by sun hours gives you the required flow rate. Then match those to a pump curve. This guide gives you the numbers for common crops and irrigation methods.

Water needs by irrigation method

MethodWater use per hectare per dayEfficiencyBest for
Drip irrigation20-40 m³90-95%Vegetables, orchards, row crops
Sprinkler30-60 m³70-80%Field crops, pastures
Flood/furrow60-120 m³40-60%Rice, large-scale grain
Micro-sprinkler25-45 m³85-90%Greenhouses, nurseries

Drip irrigation uses the least water and is the best match for solar pumps — it needs lower flow rates, which means smaller pumps and fewer solar panels.

Water needs by crop

CropDaily water need (m³/ha)SeasonTotal season need (m³/ha)
Tomatoes30-504-5 months4,000-7,000
Corn/Maize25-403-4 months2,500-5,000
Wheat15-254-5 months2,000-3,500
Cotton30-455-6 months4,500-8,000
Vegetables (mixed)20-35Varies2,000-5,000
Citrus/fruit trees25-40Year-round8,000-12,000
Rice (paddy)50-803-4 months5,000-10,000
Alfalfa35-55Per cutting4,000-8,000

Treat these as planning numbers, not gospel — local weather, soil, and variety shift them by 20-30%.

How to calculate your pump size

Step 1: Total daily water need = hectares × crop water need per hectare

  • Example: 3 hectares of tomatoes at 35 m³/ha/day = 105 m³/day

Step 2: Required flow rate = daily water ÷ irrigation hours

  • If you irrigate 8 hours/day: 105 ÷ 8 = 13 m³/h
  • If using solar (6h sun): 105 ÷ 6 = 17.5 m³/h
  • Use a water tank to extend irrigation beyond sun hours — fill the tank during sunlight, irrigate from the tank during evening/night

Step 3: Calculate total dynamic head (TDH)

Step 4: Match to a pump

  • Find a pump whose curve passes above your operating point (flow + head)
  • Use our sizing tool for instant matching

Note: “irrigation hours” in Step 2 can differ from “sun hours” — if you pump 6 hours and irrigate 8-10 from the tank, you size the pump from the sun hours but run the field on your own schedule.

Scheduling irrigation around the sun

Solar power and good irrigation practice line up well — once there’s a tank in the system:

  • Pump during peak sun (roughly 10:00-16:00), when panels produce the most.
  • Irrigate early morning and late afternoon. This cuts evaporation and avoids leaf burn on hot crops.
  • Let the tank bridge the gap. A typical day: the pump fills the tank midday while drip lines run 06:00-09:00 and 17:00-20:00 from it.
  • Cloudy days: with 1.5-2 days of tank storage, irrigation runs from stored water while the pump takes whatever sun it can get.

Filtration: drip emitters are picky

The most common cause of a dead drip system isn’t the pump — it’s clogged emitters. Sand, silt, and algae that pass the pump block drip lines within weeks:

  • Install a screen or disc filter (120-mesh or finer for most well water) on the mainline before the drip laterals.
  • For sandy wells, add a sand separator (hydrocyclone) upstream of the filter.
  • Monitor the pressure gauge across the filter — when pressure drop grows, it’s cleaning time.
  • Size the filter for the pump’s flow, not the field’s average use.
  • Add the filter’s 0.2-0.5 bar loss to your TDH — a pump sized without it will under-deliver at the emitters.

Soil and crop considerations

Your soil type changes the schedule even when the crop is the same:

  • Sandy soil drains fast — smaller, more frequent irrigations keep the root zone wet.
  • Clay soil holds water — bigger, less frequent irrigations and a larger tank.
  • Crop stage matters: seedlings need light, frequent watering; mature crops need more volume less often. Size the tank for the seedling stage and the pump for the peak stage.
  • Hot, dry, windy weather pushes evaporation up — irrigate earlier in the morning.

Example configurations

Small farm: 1-2 hectares, drip irrigation

  • Water need: 30-60 m³/day
  • Typical well: 30-60m
  • Pump: 1-2 HP (750W-1500W), DC submersible
  • Solar panels: 4-8 × 550W
  • Budget: $1,500-3,000 (pump + controller + panels)

Medium farm: 3-5 hectares, drip irrigation

  • Water need: 90-200 m³/day
  • Typical well: 50-100m
  • Pump: 3-5 HP (2200W-3700W), AC/DC submersible
  • Solar panels: 12-20 × 550W
  • Budget: $5,000-12,000

Large farm: 10+ hectares, mixed irrigation

  • Water need: 300+ m³/day
  • Typical well: 80-150m
  • Pump: 10-30 HP (7500W-22000W), AC/DC high-power
  • Solar panels: 30-80 × 550W
  • Budget: $15,000-50,000+

Water tank strategy for solar irrigation

A water tank is your “battery” — it stores water pumped during sunlight for use anytime. This is cheaper and more reliable than battery storage for the solar panels.

Tank sizing rule: 1.5-2× your daily water need

  • If you need 100 m³/day, use a 150-200 m³ tank
  • This gives you 1-2 days of buffer for cloudy weather

Benefits:

  • Pump runs at optimal efficiency during peak sun
  • Irrigation happens at consistent pressure from the tank
  • Cloudy days don’t stop irrigation
  • Smaller pump can serve larger area (fills tank slowly, irrigates fast)

For a full comparison of storage options, see my battery vs tank guide.

Regional recommendations

RegionCommon cropsTypical wellRecommended system
Africa (Sahel)Maize, millet, vegetables30-80m2-3HP DC pump + drip
Middle EastDates, vegetables, wheat80-200m5-10HP AC/DC + drip
Southeast AsiaRice, vegetables10-40m2-5HP DC pump + sprinkler
Latin AmericaCoffee, corn, beans20-80m3-5HP AC/DC + drip
Central AsiaCotton, wheat50-150m5-15HP AC/DC + flood

Ready to size your irrigation pump? Use the sizing tool with your well depth and daily water need. For complex multi-hectare projects, message me on WhatsApp — I’ll help design the complete system.

Frequently asked questions

How much water does drip irrigation need per hectare?
Drip irrigation typically needs 20-40 m³ per hectare per day, depending on the crop, climate, and soil type. In hot, arid regions (Middle East, Africa), it can reach 50 m³/ha/day. In temperate regions, 15-25 m³/ha/day is common.
Can a solar pump run drip irrigation at night?
A pure DC solar pump only runs during sunlight hours. To irrigate at night, use either: (1) an AC/DC pump with grid backup, (2) a water tank that fills during the day and gravity-feeds drip lines at night, or (3) a timer on the controller for scheduled pumping.
What size solar pump do I need for 5 hectares?
For 5 hectares of drip irrigation at 30 m³/ha/day = 150 m³/day. With 6 hours of sun, you need 25 m³/h flow. With a well depth of 60m, you need a pump rated for at least 70m head and 25 m³/h flow — roughly a 4-5 HP pump.
Can a solar pump push water through a drip filter system?
Yes, but plan for the filter's pressure loss: drip systems need 1-2 bar at the emitters, and a sand or disc filter adds another 0.2-0.5 bar. Add that to your total dynamic head, and keep the pump's flow within the filter's rated capacity — oversized flow pushes sediment straight through the media.
Should I pump directly to the drip lines or to a tank first?
Tank first, whenever possible. A tank decouples pumping from irrigating: the pump fills it during sun hours, and drip lines run at stable pressure morning and evening — even on cloudy days. Direct-to-drip works, but flow varies with the sun, making emitter dosing inconsistent.

Still sizing your system? Send me your well depth, daily water need and location on WhatsApp — I'll check your sizing for free.

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