Showing posts with label indicator. Show all posts
Showing posts with label indicator. Show all posts

Thursday, October 30, 2014

Fastest Finger First Indicator Circuit Diagram

Quiz-type game shows are increasingly becoming popular on tale vision these days. In such games, fastest finger first indicators (FFFIs) are used to test the player’s reaction time. The player’s designated number is dis played with an audio alarm when the player presses his entry button. The circuit presented here determines as to which of the four contestants first pressed the button and locks out the remaining three entries. Simultaneously, an audio alarm and the correct decimal number display of the corresponding contestant are activated. 

Fastest Finger First Indicator Circuit Diagram:

 

Fastest Finger First Indicator Circuit Diagram
 
When a contestant presses his switch, the corresponding output of latch IC2 (7475) changes its logic state from 1 to 0. The combinational circuitry comprising dual 4-input NAND gates of IC3 (7420) locks out subsequent entries by producing the appropriate latch-disable signal. Priority encoder IC4 (74147) encodes the active-low input condition into the cor responding binary coded decimal (BCD) number output. The outputs of IC4 after inversion by inverter gates inside hex inverter 74LS04 (IC5) are coupled to BCD-to-7-segment decoder/display driver IC6 (7447). The output of IC6 drives common-anode 7-segment LED display (DIS.1, FND507 or LT543). 

The audio alarm generator comprises clock oscillator IC7 (555), whose output drives a loudspeaker. The oscillator frequency can be varied with the help of preset VR1. Logic 0 state at one of the outputs of IC2 produces logic 1 input condition at pin 4 of IC7, thereby enabling the audio oscillator.  IC7 needs +12V DC supply for sufficient alarm level. The remaining circuit operates on regulated +5V DC supply, which is obtained using IC1 (7805). Once the organiser identifies the contestant who pressed the switch first, he disables the audio alarm and at the same time forces the digital display to ‘0’ by pressing reset pushbutton S5. With a slight modification, this circuit can accommodate more than four contestants. 


Author : P. Rajesh Bhat  – Copyright : EFY

Thursday, September 11, 2014

230V LED Indicator circuit


This is very useful schema for you.You can use this schema as a current indicator.The special thing of this schema is this schema operates 110V to 230V.I myself have use this schema for my door bell.so visitors who come home at night can easily see the door bell.you your self think different way and do something newly






Parts

R2 = 1M-1/2W
R1 = 470R-1/2W
D1 = 1N4007
D2 = 1N4007
D3 = 1N4007
D4 = 1N4007
D5 = 5mm. Blue LED
C1 = 220nF-275vAC


Note

# When you deal with 230V be careful.If you are too little Dont try this schema

#Use Quality parts.Specially think about the W of your parts

Monday, September 8, 2014

Under voltage Indicator for Battery Equipment Wiring diagram Schematic

This is the simple Under voltage Indicator for Battery Equipment Circuit Diagram. Due to the low duty cycle of flashing LED, the average current drain is 1 mA or less. The NE555 will trigger the LED on when the monitored voltage falls to 12 volts.The ratio of Rl to R2 only needs to he changed if it is desired to change the voltage point at which the LED is triggered.


Under voltage Indicator for Battery Equipment Circuit Diagram


Under

Sunday, September 7, 2014

Power Supply Voltage Indicator Circuit

Power Supply Voltage Indicator Circuit

Notes

This simple and hardly odd ambit can acutely appearance the akin of the accumulation voltage (in a beyond device): as continued as the indicator has acceptable 12 volts at its input, LED1 gives steady, ceaseless (for the naked eye) chicken light. If the ascribe voltage avalanche beneath 11 V, LED1 will alpha to blink and the blinking will aloof get slower and slower if the voltage drops added - giving actual bright and automatic representation of the supplys status. The blinking will stop and LED1 will assuredly go out at a little beneath 9 volts.

On the added hand, if the ascribe voltage rises to 13 V, LED2 will alpha to glow, accepting at about abounding ability at 14 V.

The appropriate voltages can be adapted primarily by adjusting the ethics of R1 and R4.

The base-emitter diode of T2 basically aloof stands in for a zener diode. The emitter-collector aisle of T1 is inversely polarized and if the ascribe voltage is aerial abundant - T1 will account oscillations and the abundance will be proportional to the ascribe voltage. The alleviation oscillator ceases cycling back the ascribe voltage gets so low that it no best can account breakdown forth the emitter-collector path.

Not all baby NPN transistors appearance this affectionate of behavior back inversely polarized in a agnate manner, but abounding do. BC337-40 can alpha oscillations at a almost low voltage, added types about crave a volt or two more. If experimenting, be accurate not to bite a aperture through the accessory beneath test: they oscillate at 9-12 V or not at all.

via : http://www.zen22142.zen.co.uk

Friday, August 22, 2014

Peak Indicator

This indicator can be used, or to see if you can get the sound output. Damaged speakers with P1 lets you set the limit at which D1 LED lights. The potentiometer is 100k here, you can experiment. Themselves with other values ​​if you could turn a logical port on the LED or opto coupler would use, you can turn it so that the signal between the preamp and power amp would fall away. Or that the signal to the speakers with the aid of a relay would be turned OFF.

  • R1 = 680 Ω
  • R2 = 1.2 K?
  • P1 = 100 k linearly
  • B1 = 4 x B250C1000 or 1N4003
  • D1 = LED
  • T1 = 2N3904

Tuesday, August 19, 2014

Battery Equal Charge Indicator Wiring diagram Schematic

The schema below illuminates an LED to indicate unequal charges between two 12 volt lead batteries. It can be used to verify that two batteries are connected in parallel or isolated since the LED will be off when the voltages are equal within a tollerance, or on if the voltage difference is greater than 100 millivolts. Three comparators and three voltage dividers are used to determine battery conditions.

Battery Equal Charge Indicator Circuit Diagram

Battery

The upper left comparator (+) input at pin 5 is set to about 10 volts with battery #1 at 12 volts. The negative input (pin 4) is set to a slightly lower voltage by adding an additional 240 ohms to the voltage divider so that the output of the comparator will be positive when both battery voltages are equal and negative if battery 2 rises above battery 1 by 100 millivolts or more.

The voltage at pin 5 is used as a reference for the lower comparator and the negative input of the lower comparator is set to a lower voltage with the addition of 510 ohms, so that the output will also be positive when the battery voltages are equal and negative when battery #1 is greater than #2 by 100 millivolts or more.

The two comparator outputs are both connected to the positive input of the third comparator at pin 9 so that the LED will illuminate when either condition exists,
(Battery #1 > Battery #2) OR (Battery #2 > Battery #1).