Key Specifications
| Parameter | Value / Description |
| Operating Voltage | $3.3\text{V} – 5.5\text{V DC}$ |
| Output Voltage | $0\text{V} – 3.0\text{V DC}$ (Analog output) |
| Interface | 3-Pin PH2.0-3P / 2.54mm Header |
| Sensor IC / Timer | NE555 or TLC555 timer chip |
| Dimensions | $98\text{ mm} \times 23\text{ mm}$ |
| Weight | Approx. $15\text{ g}$ |
Pinout Connection
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VCC: Power Supply ($3.3\text{V}$ or $5\text{V}$) -
GND: System Ground -
AOUT/AU: Analog Output Signal (connect to MCU Analog Pin, e.g.,A0)
How It Works & Calibration
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Capacitive Measurement: The probe forms a capacitor with the surrounding soil. As moisture levels change, the soil’s dielectric constant shifts, altering the output frequency/voltage.
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Inverted Output:
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Dry Air (0% Moisture): High voltage output ($\approx 2.8\text{V} – 3.0\text{V}$).
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Water (100% Moisture): Low voltage output ($\approx 1.2\text{V} – 1.5\text{V}$).
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Calibration: Record the analog reading in open air ($V_{\text{dry}}$) and submersed in water up to the red line ($V_{\text{wet}}$) to map raw ADC values to a $0\% – 100\%$ scale using your microcontroller code.
Key Features & Applications
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Corrosion Resistant: No exposed metal electrodes in direct contact with wet soil.
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Microcontroller Compatible: Easy to interface with Arduino, ESP32, ESP8266, and Raspberry Pi.
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Applications:
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Smart irrigation and automated plant watering systems
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Soil moisture logging for greenhouses and agriculture
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STEM and garden automation projects
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