Class 9 Skill Education Precision Farming Notes

Chapter 3: Precision Farming

Class 9 –Skill Education | Short Exam Notes

1. Precision Farming

Definition: Use of science and technology to improve agricultural yield while protecting the environment.

Benefits:

  • Saves water and fertilisers.
  • Improves crop quality and yield.
  • Reduces wastage and excessive pesticide use.
  • Enables need-based farming.

2. Traditional vs Precision Farming

Traditional FarmingPrecision Farming
Flood irrigationDrip irrigation
Experience-based decisionsData-based decisions
Estimated fertiliser useNeed-based fertiliser use
Limited climate controlControlled growing conditions

3. Crop Protection Methods

MethodUse
GreenhouseProtects crops from rain and frost; regulates temperature
Low-tunnelTraps heat and protects crops from harsh weather
Humidity chamberMaintains high humidity for seedlings
Shade-netProtects plants from excessive heat and sunlight

4. Important Tools

ToolUse
HygrometerMeasures humidity
Soil-moisture sensorMeasures soil moisture
LDR sensorDetects light
Hand trowelDigging and planting
Measuring tapeMeasuring spacing
Pruning scissorsCutting stems

5. Drip Irrigation

Definition: Supplies water drop by drop directly to plant roots.

Advantages: Saves water, reduces wastage, and supports efficient nutrient delivery.

Fertigation: Supplying fertilisers through irrigation water.

6. Soil Organic Carbon (SOC)

Importance:

  • Improves soil porosity and water-holding capacity.
  • Increases nutrient availability.
  • Supports beneficial microorganisms.

Ideal organic carbon content: 1.5%–2%.

Hydrogen peroxide test:

  • No bubbling: Very low organic carbon.
  • Light bubbling: Moderate organic carbon.
  • Intense bubbling: High organic carbon.

7. Biofertilisers

Definition: Products containing beneficial microorganisms that improve nutrient availability and soil fertility.

Examples: LAB culture and Trichoderma.

LAB Culture Preparation

  1. Collect rice-washing water and ferment for 3–5 days.
  2. Mix the cloudy liquid with milk in a 1:10 ratio.
  3. Ferment again for 3–5 days.
  4. Collect the yellowish liquid.

Application: Mix 1 litre of LAB culture with 9 litres of water.

8. Low-Tunnel

Definition: A tunnel-shaped structure that traps heat and protects crops.

Construction:

  1. Make a frame using bamboo, wood, or metal.
  2. Cover with transparent polyethylene.
  3. Spread sand and compost in a 1:1 ratio.
  4. Provide openings for ventilation.

9. Pest Management

  • Identify harmful insects before controlling them.
  • Light trap: Attracts and captures insects using light.
  • NPSS: Uses AI and ML for pest identification.
  • LDR sensor: Automates insect traps based on light.

10. Harvesting and Storage

  • Timely harvesting improves quality and shelf life.
  • Sensors monitor temperature and humidity during storage.
  • QR codes provide information about produce and harvest dates.
  • Smart packaging helps reduce transport losses.

11. Important Definitions

TermMeaning
Precision farmingTechnology-based farming for efficient resource use
FertigationFertiliser application through irrigation water
BiofertiliserProduct containing beneficial microorganisms
Humidity chamberStructure maintaining high humidity for seedlings
Bill of Materials (BOM)List of materials, quantities, and estimated costs
Light trapDevice that attracts insects using light

Important Exam Questions

  1. Define precision farming and write its benefits.
  2. Differentiate between traditional and precision farming.
  3. Explain the different crop protection methods.
  4. What is drip irrigation? State its advantages.
  5. Define fertigation and biofertiliser.
  6. Explain the preparation of LAB culture.
  7. What is soil organic carbon? State its importance.
  8. Explain the construction of a low-tunnel.
  9. Describe the role of sensors in precision farming.
  10. What is a light trap? Explain its use.

Quick Revision: SOC = 1.5–2% | LAB dilution = 1:9 | Sand : Compost = 1:1 | Rice liquid : Milk = 1:10.