Description: The values of R1, R2, and D1 are selected based on the voltage applied. Using a 12-volt battery, R1 is set to 10 kΩ, R2 to 5 kΩ, and D1 is a 5-volt zener diode or a string of forward-biased silicon rectifiers totaling approximately 5 volts. Transistor Q1 is a general-purpose Unijunction Transistor (UJT), while Q2 is any small-signal or switching NPN transistor. When the detector is connected across the battery terminals, it draws minimal current and does not interfere with other devices powered by the battery. If the voltage drops below the trip voltage set by R1, the speaker emits a warning beep. The frequency of the beeps is determined by the degree of undervoltage. If additional voltages are monitored, R1 should be chosen to draw only 1 mA or 2 mA. The zener diode D1 is approximately half of the desired trip voltage, and R2 is selected to bias it at about 1 mA.
The circuit operates as a voltage monitoring system that utilizes a combination of resistors, a zener diode, and transistors to provide an alert when the voltage level of a battery drops below a predefined threshold. The configuration begins with a 12-volt battery supplying the circuit. Resistor R1, valued at 10 kΩ, acts as a voltage divider, setting the reference voltage for the detection mechanism. Resistor R2, at 5 kΩ, provides the necessary biasing for the zener diode D1, which regulates the voltage to approximately 5 volts. This zener diode may be replaced by a series of forward-biased silicon rectifiers that also yield a similar voltage drop.
Transistor Q1, a Unijunction Transistor, is pivotal in the detection process, triggering the alert mechanism when the voltage falls below the threshold established by R1. The second transistor, Q2, serves as a small-signal or switching NPN transistor, which amplifies the signal from Q1 to activate the speaker. The speaker generates beeps as a warning signal that corresponds to the level of undervoltage detected. The frequency of the beeping is directly proportional to the amount of voltage drop, providing a clear indication of the battery's status.
The circuit is designed to draw minimal current when the detector is connected, ensuring that it does not adversely affect the operation of other devices powered by the same battery. In scenarios where multiple voltages are monitored, it is recommended to set R1 to draw only 1 mA to 2 mA, maintaining efficiency while ensuring accurate voltage monitoring. The selection of the zener diode D1 to be around half of the desired trip voltage is critical, as it allows for optimal performance of the voltage detection circuit. Overall, this design effectively combines simplicity and functionality, making it suitable for various battery monitoring applications.The values of Rl, R2, and D1 are selected for the voltage applied. Using a 12-volt battery, Rl = 10 K, R2 = 5 K and D1 is a 5-volt zener diode, or a string of forward-biased silicon rectifiers equaling about 5 volts. Transistor Ql is a general-purpose UJT (Unijunction Transistor), and Q2 is any small-signal or switching NPN transistor.
When detector is connected across the battery terminals, it draws little current and does not interfere with other de vices powered by the battery If voltage drops below the trip voltage selected with the Rl setting, the speaker beeps a warning. The frequency of the beeps is determined by the amount of undervoltage. If other voltages are being monitored, select Rl so that it draws only 1 mA or 2 mA. Zener diode D1 is about one-half of the desired trip voltage, and R2 is selected to bias it about 1 mA.
This is a simple circuit for automatic switchover between battery and USB port. This circuit uses a more general step-up converter architecture.
The circuit designed for automatic switchover between a battery and a USB power source employs a step-up converter...
Many later radios utilize four 7-pin valves and require a high tension (HT) supply of 90V at approximately 12mA, and a low tension (LT) supply of either 125mA or 250mA, depending on the specific valves used. The original batteries for...
The Automatic Loading Control (ALC) 100 volt 5 watt zener diode in Henry RF amplifiers is known to fail. Initially, it shorts, causing a high voltage (HV) surge, which typically results in the zener blowing open and tripping the main...
Many applications require analog signals to be sensed and digital signals to be controlled. A way to detect these points is by using a 555 timer in an unconventional configuration. This method will also add hysteresis to the circuit and...
Applying voltage to the circuit triggers SCR1. With SCR1 on, the voltage on the anode of SCR2 rises until SCR2 triggers to commutate SCR1. The voltage on the gate of SCR1 will swing negative at this time, and only after...
When the supply voltage falls below 10.2V, the yellow light-emitting diode (LED) VLi illuminates, indicating that the storage pool can no longer continue to discharge. Additionally, when the voltage exceeds 16.2V, the yellow, green, and red light-emitting diodes (LEDs) VLi,...
Flying hand launch gliders necessitate the use of small-capacity receiver NiCad battery packs. While these lightweight packs are advantageous, they have the significant drawback of quickly depleting. Although careful timing of flights can be employed, it often results in either...
A common need in many systems is to obtain positive and negative supplies from a single battery. Where current requirements are small, the circuit shown is a simple solution. It provides symmetrical +&- output voltages, both equal to one half...
Using a single 555 Timer IC and a small transformer to generate a high voltage, this circuit will test zener diodes of voltage ratings up to 50VDC. The 555 timer is used in the astable mode, the output at pin3...
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