Description: The circuit is a light switch that activates when the light intensity drops on a photoresistor. It features a straightforward construction and can be utilized in numerous applications. The photoresistor and the trimmer function as a voltage divider and also bias the transistor TR1. TR1 activates TR2, which in turn drives the relay. The trimmer R7 is used to adjust the sensitivity of the circuit. Parts include: R (photoresistor), R1 (4.7 kΩ), R2 (1.2 kΩ), R3 (2.2 kΩ), R4 (1.2 kΩ), R5 (1.2 kΩ), R6 (2.7 kΩ), R7 (100 kΩ trimmer), C1 (10 µF/16V electrolytic), TR1 (BC107 or BC108 NPN), TR2 (BC107 or BC108 NPN), TR3 (BC557 or BC558 PNP or BC327), D1 (1N4148), and a 12V relay.
This circuit operates as a light-sensitive switch, making it ideal for applications such as automatic lighting systems, security lights, or garden lights that turn on at dusk. The core component of the circuit is the photoresistor, which changes its resistance based on the ambient light level. As light intensity decreases, the resistance of the photoresistor increases, affecting the voltage across it.
The voltage divider formed by the photoresistor and the trimmer (R7) is critical for setting the threshold at which the circuit activates. The trimmer allows for fine-tuning of sensitivity, enabling the user to adjust the light level required to trigger the switch. When the voltage across the photoresistor reaches a certain level, it provides enough base current to turn on transistor TR1.
Transistor TR1, being an NPN type, conducts when its base receives sufficient voltage, allowing current to flow from the collector to the emitter. This action turns on transistor TR2, which operates in a similar manner, amplifying the current to drive the relay. The relay, rated for 12V, serves as the output mechanism that can control larger loads, such as lights or other electrical devices, by switching them on or off based on the light conditions detected by the photoresistor.
The circuit also includes a diode (D1) connected in parallel with the relay to protect the transistors from back EMF generated when the relay coil is de-energized. Capacitor C1 acts as a filter capacitor, smoothing out any voltage fluctuations in the circuit, ensuring stable operation.
The combination of these components results in a reliable light-activated switch that can be adapted for various uses, providing a practical solution for automatic lighting control in different environments.The circuit is a light switch who triggers when light drops on photo resistor. It is fairly simple in construction and can be used in a million applications. The photoresistor and the trimmer work as a voltage divider and also polarize the transistor TR1. TR1 triggers TR2 and TR2 drives the relay. Trimmer R7 is for adjusting the sensitivity of the circuit. Parts:
R = photoresistor
R1= 4.7 Kohm
R2= 1.2 Kohm
R3= 2.2 Kohm
R4= 1.2 Kohm
R5= 1.2 Kohm
R6= 2.7 Kohm
R7= 100Kohm Trimmer
C1 = 10uf/16V electrolytic
TR1= BC107 - BC108 NPN
TR2= BC107 - BC108 NPN
TR3= BC557 - BC558 PNP - BC327
D1 = 1N4148
Relay = any 12Volt relay
The circuit consists of a delay loop, discriminators, output circuits, power supply, and indicator lights, divided into five parts. The power regulation is achieved through a resistor (R), while the power regulator is constructed using a voltage source. In the...
This transistor-based alarm system includes automatic exit and entry delays, a timed bell cut-off, and a system reset feature. In addition to the exit/entry zone, the basic alarm board is equipped with one instant zone, which is sufficient for many...
Single Transistor Amplifier Revisited Part 3, Common Base vs Common Emitter Configuration, Update One nagging question that I have long had is this: How do...
The single transistor amplifier is a fundamental building block in electronic circuits, and its configurations—common base...
A common-emitter transistor amplifier produces an output signal that is 180 degrees out of phase with the input signal, commonly referred to as an inverting amplifier. When the electrical path for amplifying the pulse signal is activated, this circuit functions...
An analysis of certain radios reveals the impressive engineering by Japanese designers, particularly in creating a radio capable of driving a speaker with only two transistors. The first transistor (Q1) serves a dual function; it operates as an RF amplifier...
This circuit is designed to drive a relay coil using a low power output, typically from an integrated circuit (IC) such as a 555 timer or a TTL/CMOS device. It facilitates the switching of high loads or loads requiring AC...
During the power-up of the apparatus, the capacitor is primarily responsible for the emergence of surge current. The schematic diagram of the principle is illustrated in Fig. 1. After K1 closes, the capacitor begins to charge, assuming that the direct...
The circuit depicted involves a photoresistor (LDR) connected to a transistor, which operates at either a high or low level based on light conditions. The amplification factor of the transistor is 100, which is adequate for the application. The resistance...
This circuit is similar to the previous one but employs positive feedback to enhance the amplitude delivered to the speaker. It is adapted from a small 5-transistor radio that utilizes a 25-ohm speaker. In the earlier circuit, the load resistor...
We use cookies to enhance your experience, analyze traffic, and (if you allow) serve personalized ads.
By clicking Accept All, you agree to our use of cookies.
Learn more