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

Wednesday, September 24, 2014

Simple Blown Fuse Indicator Circuit

 Base current for O1 is taken from the ‘earthy’ side of FS1. O1 will conduct its collector voltage falling to zero. Q2 base will also be zero, switching LED 1 off.
lf FS1 were to ’blow or cease to exist, depart for its maker, have a rest, go to sleep, peg out, become inoperative, deceased, out of order, or duff, kick the bucket, bite the dust, pass away, self destruct, become no longer intact, or cease to conduct in any way, due to war, flood, corrosion or act of God etc., O1 would switch off, causing its collector to rise to 12 V, switching O2 and LED 1 on. R2 is the current limit resistor for LED 1. SW1 will by-pass FS1 via emergency fuse 1, until FS1 can be replaced. 

Simple blown fuse indicator circuit is given below:


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Simple Battery Charge Dischare Indicator Circuit

Many of today’s cars and motor cycles are equipped with a meter for monitoring the battery voltage.
 However, this meter does not provide information on the battery condition, or whether it is being charged at all. When the voltmeter reading is too low, the battery is generally in such a poor state as to necessitate switching off heavy loads to save power for use of the starter engine later. Especially on motorcycles, the battery capacity is relatively low, which justifies the need for a reliable monitoring system. A standard 30 A ammeter. offers too low resolution, and is rather awkward to fit permanently. In this charge/discharge indi- cator, the measured current is converted into a potential difference by R*, which is either two lRO 5 W resistors, a fuse, or a few turns of copper wire.

The direction of the current through R+ is detected by comparator IC1, which then indicates whether the battery is being charged or discharged by lighting the relevant LED The l00R preset enables shifting the indication threshold somewhat. Input terminal + on the indicator unit is best connected to a point behind (that is, electrically behind) the contact switch, although it is also possible to fit the circuit with a separate on/off switch. Finally, the circuit is only suitable for use in or on vehicles having a 12 V battery.


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Thursday, September 18, 2014

Telephone Tapping Indicator

This simple circuit can indicate a misuse or tapping of Telephone line through a loud alarm. The circuit is too simple and can be easily assembled on a common PCB. Line voltage of Telephone lines is around 48 volts DC in the On hook state. When the handset is lifted, this voltage reduces to 12 volt DC. This change in voltage level is used to activate the circuit.When the switch S1 is closed, circuit becomes active and the telephone enters into the armed state.

Telephone Tapping Indicator Circuit diagram

The high volt DC from the telephone line passes through R1 and VR1 and bias T1 into conduction. As a result, the collector of T1 goes to ground potential to inhibit T2 from conduction. Buzzer and LED thus remain off. When the handset is lifted, the DC voltage from the telephone lines drops to 12 volts. This turns off T1 and T2 conducts. Buzzer beeps and LED lights indicating that the telephone is using.
 
Setting
Connect the circuit to Telephone lines using a telephone plug. The free socket of the telephone or Caller ID can be used. Close S1 and adjust VR1 till buzzer stops beeping. Lift the handset. Buzzer should sound. Otherwise, just adjust VR1 till buzzer beeps.
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Tuesday, September 16, 2014

12V Powered 12V Lead Acid Battery Charger with Indicator

Some of you might wonder why a charger is needed at all, to charge a 12 Volt battery from a 12 Volt source! Well, firstly the "12 Volt" source will typically vary anywhere from 11 Volt to 15 Volt, and then a battery needs a controlled charge current and voltage, which cannot result from connecting it directly to a voltage source. The charger described here is intended for charging small 12 Volt lead acid batteries, such as the gelled or AGM batteries of capacities between about 2 and 10 Ah, using a cars electrical system as power source, regardless of whether the car engine is running or not. I built this charger many years ago, I think I was still in school back then. On request of a reader of my web site, Im publishing it now, despite being a rather crude schema.

12V
It works, it is uncritical to build, and uses only easy-to-find parts, so it has something in its favor. The downside is mainly the low efficiency: This charger wastes about as much power as it puts into the battery. The charger consists of two stages: The first is a capacitive voltage doubler, which uses a 555 timer IC driving a pair of transistors connected as emitter followers, which in turn drive the voltage doubler proper. The doubler has power resistors built in, which limit the charging current. The second stage is a voltage regulator, using a 7815 regulator IC. Its output is applied to the battery via a diode, which prevents reverse current and also lowers the voltage a bit.

12V
The resulting charge voltage is about 14.4V, which is fine for charging a gelled or AGM battery to full charge, but is too high as a trickle charger, so dont leave this charger permanently connected to a battery. If you would like to do just that, then add a second diode in series with D3! There is a LED connected as a charge indicator. It will light when the charge current is higher than about 150mA. The maximum charge current will be roughly 400mA. There is an auxiliary output, that provides about 20V at no load (depending on input voltage), and comes down as the load increases. I included this for charging 12V, 4Ah NiCd packs, which require just a limited current but not a limited voltage for charging.

12V
Note that if the charge output is short-schemaed, the overcurrent protection of U2 will kick in, but the current is still high enough to damage the diodes, if it lasts. So, dont short the output! If instead you short the auxiliary output, the fuse should blow. I built this charger into a little homemade aluminum sheet enclosure, using dead-bug construction style. Not very tidy, but it works. Note the long leads on the power resistors. They are necessary, because with shorter leads the resistors will unsolder themselves, as they get pretty hot! The transistors and the regulator IC are bolted to the case, which serves as heat sink. The transistors dont heat up very much, but the IC does.

Source by Streampowers
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Saturday, August 30, 2014

3 Level Audio Power Indicator Circuits Wiring diagram

This schema is designed to indicate the power level output of any audio amplifier. Its simple, portable, and displays three power levels can be adjusted to any desired value.


 3 Level Audio Power Indicator Circuits Diagram


3

Parts:
R1__________100K1/4W Resistor
R2___________50K1/2W Trimmer Cermet
R3__________330K1/4W Resistor
R4____________1M21/4W Resistor
R5__________470K1/4W Resistor
R6,R7_______500K1/2W Trimmers Cermet
R8____________1K51/4W Resistor
R9-R11______470R1/4W Resistors
 
C1___________47pF63V Ceramic Capacitor
C2__________100nF63V Polyester Capacitor
C3___________47µF25V Electrolytic Capacitor
C4____________1µF25V Electrolytic Capacitor
 
D1______BZX79C5V1 5.1V 500mW Zener Diode
D2_________1N414875V 150mA Diode
D3-D5________3mm.Yellow LEDs
 
IC1_________LM339Quad Voltage Comparator IC
 
SW1__________SPSTSlider Switch
 
B1_____________9VPP3
 
Clip for 9V PP3 Battery
 
 

Circuit operation:

This schema is intended to indicate the power output level of any audio amplifier. It is simple, portable, and displays three power levels that can be set to any desired value. For a standard HiFi stereo power amplifier like the 25W  Audio Amplifier described in these pages, the power output values suggested are as follows:
  • D5 illuminates at 2W
  • D4 illuminates at 12.5W
  • D3 illuminates at 24.5W
The above values were chosen for easy setup, but other settings are possible.
IC1A is the input buffer, feeding 3 voltage comparators and LEDsdrivers by means of a variable dc voltage obtained by R5 and C4 smoothing action. In order to achieve setting stability, the supply of IC1 and trimmers R6 & R7 is reduced and clamped to 5.1V by Zener diode D1.

Notes:

  • The simplest way to connect this schema to the amplifier output is to use a twisted pair cable terminated with two insulated crocodile clips.
  • Setup is best accomplished with an oscilloscope or an audio millivoltmeter like the one described in these pages. Precision Audio Millivoltmeter
  • A 1KHz sine wave generator with variable output is also required (see a suitable schema in this website also). 1KHz Sinewave Generator
  • Connect the generator to the amplifiers input and the Audio Power Indicator to the output of the amplifier, in parallel with the oscilloscope probe or the audio millivoltmeter input.
  • When using high power outputs disconnect the loudspeakers to avoid Tweeters damage and connect in their place an 8 Ohm 20-30 Watt wirewound resistor.
  • Remember that VRMS output is equal to output Peak-to-Peak Voltage divided by 2.828.
  • RMS power output in Watts is equal to VRMS2 divided by speaker impedance (usually 8 or 4 Ohm).
  • Example: set the output of the 1KHz sinewave generator to read 14V on the audio millivoltmeter (24.5W @ 8 Ohm). Set R2 until D3 illuminates, and be sure that D3 turns-off when diminishing a little the generators output.
  • Do the same with R7 for D4 and R6 for D5. The readings of the audio millivoltmeter must be 10V (12.5W @ 8 Ohm) and 4V (2W @ 8 Ohm) respectively.
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Friday, August 29, 2014

Dimmable Low Battery Indicator Wiring diagram Schematic

The schema of battery indicator consists of a 741 operational amplifier configured as a voltage comparator, using a zener diode as a reference voltage pattern. This schema can be adapted to work with battery between 6 and 18 V, and the only changes required would be a lower Zener voltage and current limit resistor in the case of low voltage below 9 V and greater for higher voltages.The adjustment is made with R2 which can be a trim pot.

Dimmable Low Battery Indicator Circuit Diagram

Dimmable

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Sunday, August 24, 2014

Stereo Balance Indicator

Stereo
Mechanical deficiencies that affect the reproduction of sound in a stereo amplifier is probably what you are thinking, armpit all the problems have been overcome. And actually bigger role than we know. True, the effect is so small that only a few of us who record it, or divert it to other things.

Most of such shortcomings can be traced back toto the stereo volume control ,maybe two in the no -stepresistance . As a result, the volume difference arises between the two channels and can usually be in balance again by the regulator balance. If you intend to define these differences precisely, stereo balance these indicators can fulfill your purpose.
stereo
Stereo Balance Indicator circuit

Quite simply, this circuit by connecting the output terminal and the right channel loudspeaker left channel of the amplifier and feed the same signal, should sinusoid (or cues mono) to the second input channel amplifier. If then the signals at both terminals tarafnya exact same loudspeakers, meters (zero in the middle) in the indicator of this balance will not deviate. However, if the signal level in the left channel is higher than the right channel meter will deviate to the left (or right if the opposite occurs). In this regulatory balance can be set up to read something about zero feet again, then the effect of volume control tracking error can be eliminated.

Trimpot P1 on balance the indicator should be set for full scale meter deflection, when only one channel worked.
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Sunday, August 17, 2014

Stereo Indicator Detects L R Signal Difference

This true stereo indicator is different from what we usually find on FM radio receiver, which is usually a pilot tone detector. A stereo broadcast from FM radio station contain pilot tone, but a presence of pilot tone doesn’t necessarily a stereo broadcast signal since a mono FM transmitter ca broadcast pilot tone as well.  Since this schema detect the difference between left and right channel, this schema can detect a real stereophonic programs. 

When there is no difference between R and L input signals, the output A1 and output A2 is at the same potential. That will make a a virtual ground rail at half the supply voltage. Here is the schematic diagram of the schema. The A1 will supply a negative or positive voltage when A1 detects a difference between R and L input signals with respect to the virtual ground rail. 

The C4 will be charged via D2 an C3 via D1. The LED is turned on by the comparator A3/A4 via OR schema D3/D4. The input signal level should be greater than 100mV to compensate for the drop across D2 or D1. P1 is used to adjust the sensitivity of stereo indicator.

 Stereo Indicator Detects L-R Signal Difference Circuit Diagram

Stereo

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Sunday, August 10, 2014

Maximum Minimum Voltage Indicator

This schema indicates which of three voltages in the range from about about -4V to about +4V - at A, B and C - is the highest by lighting one of three indicator LEDs. Alternatively, it can be wired to indicate the lowest of three voltages or to indicate both the highest and lowest voltages. Op amps IC1a, IC1b & IC1c are wired as comparators, while the three indicator LEDs and their series 1kO current limiting resistors are strung across the op amp outputs to implement the appropriate logic functions.


maximum-minimum-voltage-indicator schema diagram Maximum Minimum Voltage Indicator Circuit Diagram

For example, LED A will light only when pin 8 of IC1c is low (ie, A greater B) and pin 7 of IC1b is high (ie, A greater C). Similarly, LED B will light only when pin 8 of IC1c is high (ie, B greater A) and pin 1 of IC1a is low (ie, B greater C). LED C works in similar fashion if the voltage at C is the highest. Note that if all the LEDs and their parallel 1N4148 diodes are reversed, the schema will indicate the lowest of the three input voltages. And if each 1N4148 diode is replaced by a LED, the schema will indicate both the highest and lowest inputs.

Author: Andrew Partridge - Copyright: Silicon Chip
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