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Showing posts with label acid. Show all posts
Showing posts with label acid. Show all posts

Tuesday, July 9, 2013

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 circuit.

12V Powered 12V Lead Acid Battery Charger with Indicator
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 Powered 12V Lead Acid Battery Charger with Indicator
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 Powered 12V Lead Acid Battery Charger with Indicator
Note that if the charge output is short-circuited, 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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Friday, April 12, 2013

Lead Acid Battery Protector

The circuit described right here can be used to  ensure  that  a  12 V  sealed  lead  acid  (SLA)  gel battery isn’t discharged too deeply. The  predominant part of the circuit is a bistable relay,  which is pushed by using the output of an op amp. 

Circuit diagram :

Lead Acid Battery Protector Circuit Diagram
The battery voltage is first diminished by way of D1, R1,  P1 and R2, and then repeatedly compared  with a reference voltage set up with the support of diode D2.  When the battery discharges too much and  its terminal voltage drops beneath the level  set by using P1, the output of the opamp becomes  High, which causes the relay to toggle. This  in turn isolates the weight from the battery. The  battery will additionally be reconnected by manner of S1 once the  battery has been changed or recharged. 

The relay used in the prototype is a 5 V bistable type made through Omron (G6AK-234P-ST-US  5 VDC). The two windings of the relay each  have a resistance of 139 Ω (for the RAL-D 5  W-K made with the aid of Fujitsu that is 167 Ω). When the  battery voltage starts to develop into too low and  the relay is being reset the present consumption of the circuit is ready 45 mA. Shortly  after the burden has been disconnected, when the battery voltage upward throughsts above the reference  voltage once more, the reset coil will no longer be  powered and the current consumption drops  back to about 2.5 mA. 

The vary of P1 has deliberately been kept  small. With a reference voltage of 5.6 V (D2)  and a voltage drop of 0.64 V throughout D1, the circuit reacts within a voltage span of eleven.5 V and  11.8 V. This vary is clearly depending on the zener diode used and the tolerance. 

For a larger span you can use a larger value  for P1 without any problems. With the potentiometer at its mid setting the circuit switches  at about 11.6 V.
 
 
Author : Jürgen Stannieder
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