Make A Simple 5 V USB Solar Charger

 

 How to build Simple 5 V USB Solar Charger (No Battery)? Charge phones/power 5 V gadgets directly in sunlight.

 

 

Chosen specs

  • Panel: 15 W “12 V” nominal mono panel, Vmp ≈ 18 V, Voc ≈ 22 V, Isc ≈ 0.9 A (common size ~300×350 mm)

  • Output: 5.0 V regulated, up to ~2 A peak (realistic ~1–1.5 A in good sun)

Topology

Panel → blocking diode → buck converter (to 5.00 V) → USB-A


Panel + ── Fuse(2A) ──|<|── +IN  Buck (LM2596 or MP1584)  +OUT ── +5V → USB-A pin 1

            D1: SS34   |                         

Panel − ─────────────────────── GND ───────────────── GND → USB-A pin 4

                             TVS(SMBJ24A) across +IN↔GND (optional)


BoM (example parts)

  • Solar Panel: 15 W, 12 V nominal, Vmp ~18 V, Isc ~0.9 A

  • D1 Blocking Diode: SS34 (3 A, 40 V Schottky) — low drop, low reverse leakage

  • Buck Module: LM2596 (3 A rated) or MP1584EN-based mini buck (3 A rated)

  • USB-A Female Jack: panel-mount or PCB type

  • Fuse (Panel+): 2 A blade or mini inline

  • TVS Diode (optional): SMBJ24A across buck input

  • Cable: 20–22 AWG for short USB, 18 AWG from panel to buck if >0.5 m

  • Enclosure: Small IP65 junction box, cable glands

Build notes

  • Set buck to 5.00 V with a multimeter before connecting a device.

  • Many LM2596-USB boards include data-pin resistors for phone charging. If using a plain USB jack, add 49.9 kΩ pull-downs or a “dumb charger” divider (D+/D− short or 2.0 V/2.7 V depending on device). Most modern phones accept D+/D− short.

  • Mount SS34 in series with panel + (stripe towards buck).

Testing

  1. Measure panel Voc in sun: ~20–22 V.

  2. With panel connected and no load, verify buck input 16–20 V, output 5.00 V.

  3. Plug a 5 V dummy load/phone—expect 0.5–1.5 A; output should hold 4.9–5.1 V.


Sourced By: Streampowers

Simple Solar Charger Circuit Diagram

This is a simple solar charger circuit can be constructed using this circuit diagram .The nominal voltage of the solar charger circuit module is determined by the number of battery cells to be charged. Because of the typical voltage drop of 0.3 to 0.4 V across Schottky diode D1, the nominal voltage should exceed the charge voltage set on P1 by about 0.3–0.4 V.

Simple Solar Charger Circuit Diagram  

Simple Solar Charger Circuit Diagram


The solar panel for this project is a typical solar module that consists of eight series connected solar cells. In sunshine the solar panel will supply about 140 mA -200mA or more( depends of the solar panel used ) at 8 times 0.45 V = 3.6 V.

If you don’t find a zenner diode with this value you can use two normal diodes connected in forward bias ( cathode connected to the ground ) .

Using the P1 potentiometer you can set the final charging voltage at the desired voltage .The voltage across the batteries is continuously monitored by the circuit around T2.

When the voltage rises above a certain level (full charge ), a power resistor is switched in parallel with the solar panel, which causes output voltage of the solar panel to drop and stops the batteries from being charged .

Mobile Cellphone Battery Charger

Charging of the mobile phone battery is a huge issue while traveling as power supply source is not usually available. In case you keep your mobile phone switched on continuously, its battery will go flat within to six hours, making the mobile phone useless. A fully charged battery becomes necessary when your distance from the nearest relay station increases. Here is a simple charger that replenishes the mobile phone battery within to hours. Fundamentally, the charger is a current-limited voltage source. Usually, mobile phone battery packs need three.6-6V DC & 180-200mA current for charging. These usually contain NiCd cells, each having one.2V rating. Current of 100mA is for charging the mobile phone battery at a slow rate. A 12V battery containing eight pen cells gives sufficient current (one.8A) to charge the battery connected across the output terminals.

Mobile Cellphone Battery Charger
Diagram  of cellphone charger

The circuit also monitors the voltage level of the battery. It automatically cuts off the charging system when its output terminal voltage increases above the predetermined voltage level. Timer IC NE555 is used to charge & monitor the voltage level in the battery. Control voltage pin five of IC1 is supplied with a reference voltage of five.6V by zen-er diode ZD1. Threshold pin 6 is supplied with a voltage set by VR1 & trigger pin two is supplied with a voltage set by VR2. When the discharged mobile phone battery is connected to the circuit, the voltage given to trigger pin two of IC1 is below 1/3Vcc & hence the flip-flop in the IC is switched on to take output pin three high.



When the battery is fully charged, the output terminal voltage increases the voltage at pin two of IC1 above the trigger point threshold. This switches off the flip-flop & the output goes low to terminate the charging method. Threshold pin 6 of IC1 is referenced at 2/3Vcc set by VR1. Transistor T1 is used to enhance the charging current. Value of R3 is critical in providing the necessary current for charging. With the given value of 39-ohm the charging current is around 180 mA.

The circuit can be constructed on a tiny general-purpose PCB. For calibration of cut-off voltage level, use a variable DC power source. Connect the output terminals of the circuit to the variable power supply set at 7V. Fine-tune VR1 in the middle position & slowly fine-tune VR2 until LED1 goes off, indicating low output. LED1 ought to turn on when the voltage of the variable power supply reduces below 5V. Enclose the circuit in a tiny plastic case & use suitable connector for connecting to the cell phone battery.

IC LM3914 Battery Monitor Circuit Diagram

This is the simple IC LM3914 Battery Monitor Circuit Diagram. This 2-volt battery monitor circuit IC LM3914 allows you to monitor the charging process to the next level. Adjustsments end are simple and all you need is a digital voltmeter for the necessary accuracy. Connect an input voltage of 12.65 volts between the positive and negative poles and adjust the 10K potentiometer until the LED lights 10. Reduce tension and the sequence of all other LED lights. Control has been an enlightening about 11.89 volts.


IC LM3914 Battery Monitor Circuit Diagram


IC LM3914 Battery Monitor Circuit Diagram


At 12.65 volt and higher the battery is fully charged, and 11.89 is considered "empty". This circuit, with the components shown, uses less than 10 mA. Of course you can adapt this circuit to their needs, making small changes. The circuit is set to the previous mode "point", which means that only one LED at a time goes on. To use the mode of "bar", then connect pin 9 to the positive supply rail, but of course more power consumption. The LED brightness can be adjusted up or down by choosing a different value for the 4K7 resistor connected to pin 6 / 7.

Battery operated emergency light Circuit Diagram

This is the Simple Battery operated emergency light Circuit Diagram. This simple circuit providers battery operated emergency lighting instantaneously upon failure of the regular ac service. When line power is restored, the emergency light turns off and the battery recharges automatically.

Simple Battery operated emergency light Circuit Diagram

 

 

Simple Battery operated emergency light Circuit Diagram


The circuit is ideal for use in elevator cars, corridors and similar places where loss of light due to power failure would be undesirable. Completely static in operation, the circuit requires no maintenance. With ac power on, capacitor CI charges through rectifier CRI and resistor Rl to develop a negative voltage at the gate of the C106Y SCR . By this means, the SCR is prevented from being triggered, and the emergency light stays off. At the same time, the battery is kept fully charged by rectifier CR2 and resistor R2.

Should the ac power fail, CI discharges and the SCR is triggered on by battery power through resistor R3. The SCR then energizes the emergency light. Reset is automatic when ac is restored, because the peak ac line voltage biases the SCR and turns it off.




Sourced By:Circuitsan

12 Vdc Battery Operated 120 Vac Power source Circuit Diagram

This is the Simple 12 Vdc Battery Operated 120 Vac Power source Circuit Diagram. This simple 120 V: 24 V, center-tapped control transformer and four additional components can do the job. This circuit outputs a clean 200 V pk-pk square wave at 60 Hz and can supply up to 20 W. The circuit is self-starting and free-running. If Q1 is faster and has a higher gain than Q2, it will tum on first when you apply the input power and will hold Q2 off.

 Simple 12 Vdc Battery Operated 120 Vac Power source Circuit Diagram

Simple 12 Vdc Battery Operated 120 Vac Power source Circuit Diagram


Load current and transformer magnetizing current then flows in the upper half of the primary winding, and auto transformer action supplies the base drive until the transformer saturates. When that action occurs, Q1 loses its base drive. As it turns off, the transformer voltages reverse, turning Q2 on and repeating the cycle. The output frequency depends on the transformer iron and input voltage, but not on the load.

The frequency will generally range between 50 to 60 Hz with a 60-Hz transformer and car battery or equivalent source. The output voltage depends on turns ratio and the difference between input voltage and transistor saturation voltage. For higher power, use larger transformers and transistors. This type of inverter normally is used in radios, phonographs, hand tools, shavers, and small fluorescent lamps. It will not work with reactive loads (motors) or loads with high inrush currents, such as coffee pots, frying pans, and heaters.




Sourced By: Streampowers

Battery operated emergency light Circuit Diagram

This is the Simple Battery operated emergency light Circuit Diagram. This simple circuit providers battery operated emergency lighting instantaneously upon failure of the regular ac service. When line power is restored, the emergency light turns off and the battery recharges automatically.

Battery operated emergency light Circuit Diagram

 

 

Simple Battery operated emergency light Circuit Diagram


The circuit is ideal for use in elevator cars, corridors and similar places where loss of light due to power failure would be undesirable. Completely static in operation, the circuit requires no maintenance. With ac power on, capacitor CI charges through rectifier CRI and resistor Rl to develop a negative voltage at the gate of the C106Y SCR . By this means, the SCR is prevented from being triggered, and the emergency light stays off. At the same time, the battery is kept fully charged by rectifier CR2 and resistor R2.

Should the ac power fail, CI discharges and the SCR is triggered on by battery power through resistor R3. The SCR then energizes the emergency light. Reset is automatic when ac is restored, because the peak ac line voltage biases the SCR and turns it off.



Sourced By: Streampowers

Cheap cost Universal charger for NiCD - NiMH batteries Circuit Diagram

This is the very simple and Cheap cost Universal charger for NiCD - NiMH batteries Circuit Diagram. This circuit is ideal for car use. It has ability to transform a mains adapter for the charger. This can be used to recharge cell phones, toys, video batteries, MP3 players, ... and is selectable charging current. A LED is located in the circuit to indicate charging. Can be built on a breadboard or a general purpose PCB. Hope you like it.

Universal charger for NiCD - NiMH batteries Circuit Diagram


Universal charger for NiCD - NiMH batteries Circuit Diagram


Parts:

R1 = 120R-0...5W
R2 = See Diagram
C1 = 220uF-35V
D1 = 1N4007
D2 = 3mm. LED
Q1 = BD135
J1 = DC Input Socket

Specifications:

Ideal for in car use.
LED charge indication.
Selectable charge current.
Charges Ni Cd or NiMH batteries.
Transforms a mains adapter into a charger.
Charge cellular phone, toys, portables, video batteries …

 Features:

LED function indication.
Power supply polarity protected.
Supply current: same as charge current.
Supply voltage: from 6.5VDC to 21VDC (depending on used battery)
Charge current (±20%): 50mA, 100mA, 200mA, 300mA, 400mA. (selectable)

Determining the supply voltage:

This table indicates the minimum and maximum voltages to supply the charger. See supply voltage selection chart below.

Example:

To charge a 6V battery a minimum supply voltage of 12V is needed, the maximum voltage is then 15V.

Voltage selection:
Determining the charge current:


Determining the charge current:

Before building the circuit, you must determinate how much current will be used to charge the battery or battery pack. It is advisable to charge the battery with a current that is 10 times smaller then the battery capacity, and to charge it for about 15 hours. If you double the charge current , then you can charge the battery in half the time. Charge current selection chart is located in diagram.

Example:

A battery pack of 6V / 1000mAh can be charged with 100mA during 15 hours. If you want to charge faster, then a charge current of 200mA can be used for about 7 hours.

Caution:

The higher charge current, the more critical the charge time must be checked. When faster charging is used, it is advisable to discharge the battery completely before charging. Using a charge current of 1/10 of the capacity will expand the lifetime of the battery. The charge time can easily be doubled without damaging the battery.

Note:

    Mount the transistor together with the heatsink on the PCB, bend the leads as necessary. Take care that the metal back of the transistor touches the heatsink. Check that the leads of the transistor do not touch the heatsink.


Lead Acid Battery Charger Circuit Diagram

Lead acid battery charger schematic using the famous IC LM 317. The circuit provides the correct voltage to charge the 12v sealed lead acid battery or 12v SLA battery. The charging current can be adjust with 1k potentiometer. This sealed lead acid battery charger circuit is automatic so you don't have to pay attention on the battery to full charge because the circuit automatically shift its function to trickle charge when the battery become full charge. Connect the battery which you want to charge in series with a meter and adjust potentionmeter to get the desired charging current. Use a good heat sink with IC, the input current should be minimum 15V to get 12V output to charge the battery. 

 Lead Acid Battery Charger Circuit Diagram


Lead Acid Battery Charger Circuit Diagram

Using LM3914 Test a car battery voltage

This is a ic based  Using LM3914  Test a car battery voltage Circuit Diagram. This circuit uses the popular and easy to find LM3914 IC. This IC is very simple to drive, needs no voltage regulators (it has a built in voltage regulator) and can be powered from almost every source.

 Using LM3914  Test a car battery voltage Circuit Diagram


 Using LM3914  Test a car battery voltage Circuit Diagram


This circuit is very easy to explain:

When the test button is pressed, the Car battery voltage is feed into a high impedance voltage divider. His purpose is to divide 12V to 1,25V (or lower values to lower values). This solution is better than letting the internal voltage regulator set the 12V sample voltage to be feed into the internal voltage divider simply because it cannot regulate 12V when the voltage drops lower (linear regulators only step down). Simply wiring with no adjust, the regulator provides stable 1,25V which is fed into the precision internal resistor cascade to generate sample voltages for the internal comparators. Anyway the default setting let you to measure voltages betw1een 8 and 12V but you can measure even from 0V to 12V setting the offset trimmer to 0 (but i think that under 9 volt your car would not start). There is a smoothing capacitor (4700uF 16V) it is used to adsorb EMF noise produced from the ignition coil if you are measuring the battery during the engine working. Diesel engines would not need it, but i`m not sure. If you like more a point graph rather than a bar graph simply disconnect pin 9 on the IC (MODE) from power. The calculations are simple (default)

For the first comparator the voltage is : 0,833 V corresponding to 8 V

voltage is : 0,875 V corresponding to 8,4 V

for the last comparator the voltage is : 1,25 V corresponding to 12 V

Simple Portable battery Powered USB Charger Circuit Diagram

This is a portable battery powered USB charger circuit. This circuit is able to charge your PDAs, Ipods, Mp3 players and any device that plug in to a computer USB to charge. If you fit this circuit in a small box with a 9V battery then it will become a portable emergency USB charger. 

Simple Portable battery Powered USB Charger Circuit Diagram

Simple Portable battery Powered USB Charger Circuit Diagram


The schematic is so simple using only few components so you can make this circuit in some minutes if all parts available with you. The circuit is using low dropout regulator IC LM7805 which is easily available in the market and it is also very cheap. The circuit takes voltage from 9V battery and step down the voltage in to a DC 5V output.

USB Powered Mobile Phone Battery Charger Circuit diagram

This simple circuit can give regulated 4.7 volts for charging a mobile phone. USB outlet can give 5 volts DC at 100mA current which is sufficient for the slow charging of mobile phones. Most of the Mobile Phone batteries are rated 3.6 volts at 1000 to 1300 mAh. These battery packs have 3 NiMh or Lithium cells having 1.2 volt rating. Usually the battery pack requires 4.5 volts at 300-500 mA current for fast charging.

But low current charging is better to increase the efficiency of the battery. The circuit described here provides 4.7 regulated voltage and sufficient current for the slow charging of the mobile phone. Transistor Q1 is used to give the regulated output. Any medium power NPN transistor like CL100, BD139, TIP122 can be used. Zener diode D2 controls the output voltage and D1 protects the polarity of the output supply. Front end of the circuit should be connected to a A type USB plug.

Connect a red wire to pin1 and black wire to pin 4 of the plug for easy polarity identification. Connect the output to a suitable charger pin to connect it with the mobile phone. After assembling the circuit, insert the USB plug into the socket and measure the output from the circuit. If the output is OK and polarity is correct, connect it with the mobile phone.

USB Powered Mobile Phone Charger Circuit Diagram


USB Powered Mobile Phone Charger Circuit Diagram

Parts:

Q1 = BD139

D1 = 1N4001

D2 = 4.7V - 1/2W

R1 = 560R - 1/2W

C1 = 16V - 100uF

Note:

    If the polarity is incorrect, it will destroy the mobile battery. So take extreme care.

Battery Charger for 12v SLA Project

Before we go into the operation of the SLA Battery Charger circuit, there are a number of points we need to cover about the care and use of Sealed Lead Acid batteries. The words Sealed Lead Acid covers a number of batteries that do not have a "filling hole."

You cannot get to the electrolyte and the battery can be used in any position. This discussion also covers AGM batteries (Absorbed Glass Mats) that have a separator between the plates and the electrolytic is thick and will not spill.

Another type: GEL CELL and FLOODED LEAD ACID all have the same or similar charging requirements and can be used with this charger because it is a low-current charger (about 300mA) and will not damage anything. It also has the feature of providing pulses to the battery when 13.4v is detected and this will eventually fully charge any battery and keep a it fully charged for months, and even years.

Firstly, Sealed Lead Acid batteries must be charged, discharged and stored very carefully. We normally think batteries can be stored for months (if not years) and they will be available for immediate use. This is not the case with SLA batteries.

If you store a NEW, full charged SLA battery for 6 months or more, you will find it may be fully discharged.
You may also find you cannot charge it!!   It may be worthless. That's how delicate SLA batteries are. They must be charged on a regular basis to prevent them discharging to a very low voltage level.

If the terminal voltage of a SLA battery is allowed to go below 8v, a process called SULPHATION starts to cover the surface of the plates and prevents the battery being re-charged. The internal resistance of the battery increases and it becomes useless.


HOW THE CIRCUIT WORKS


The circuit consists of 5 building blocks:

 The circuit does not turn on until a battery is connected across the terminals as shown in the diagram. (A push switch has been provided to start the circuit when a totally flat battery is fitted.) This action turns on the PNP transistor in the "Turn ON" block. The resistance between the collector-emitter terminals decreases and the indicator LED comes on.

The path to the bottom rail of the circuit goes through a signal diode, the gate-cathode junction of the SCR and through two 1R8 resistors in parallel. This is why the LED illuminates.

MUST USE AC PLUG PACK
Before we go any further, the circuit works on an AC plug pack. It must be an AC supply as we do not want any electrolytics to be present on the power rail as this will allow a very high charge-current to flow and possibly damage the SCR. A DC supply will not allow the SCR to turn off, as it turns off when the current through it falls to zero.

THE CIRCUIT IS A HALF-WAVE RECTIFIER!
The circuit is actually a half-wave rectifier. It only charges the battery on every half cycle. The plug pack doesn't like this as it leaves residual flux in the core of the transformer and causes it to overheat. But that's the only drawback with the circuit.

The SCR turns on during each half cycle and current flows into the battery. A voltage is developed across the two 1R8 resistors (in parallel) and this voltage is fed into the 47u electrolytic. It charges and turns on the BC547 transistor. The transistor robs the SCR of gate voltage and the SCR turns off. The energy in the 47u feeds into the transistor but after a short time it cannot keep the transistor turned on.

The transistor turns off and the SCR switches on and delivers another pulse of current to the battery. As the battery charges, its voltage increases and this is monitored by the "Voltage Monitor" block. The circuit is very complex and one way to look at the operation is to consider the top rail as a fixed rail and as the battery voltage increases, the rail connected to the negative terminal of the battery is pushed down.

This lets you see how the "Turn On" transistor is activated and how the "Voltage Monitor" components create voltage drops across each of them. The "Voltage Monitor" components consist of a transistor and zener diode as well as an 8k2 resistor, the 1k pot, a 1k5 resistor, a 150R resistor and a signal diode. The signal diode is actually part of the flasher circuit and we discuss its operation later.

As the voltage across the battery increases to 13.4 volts, each resistor in the "voltage detecting network"  will have a voltage drop across it that corresponds to the resistance of the resistor. The diode will have a constant 0.7v across it. The voltage on the wiper of the pot will be about 3.25v and the voltage across the zener will be 10v. This leaves 0.6v between the base and emitter of the Voltage Monitor transistor.

This voltage is sufficient to turn the transistor ON.
When the Voltage Monitor transistor turns ON, it robs the "Turn On" transistor of base-emitter voltage and the circuit turns off.

The SCR has only two states: ON and OFF.
During the half-cycle when it is turned on, the battery gets a high pulse of current and the current is only limited by the capability of the plug pack. There are no electrolytics to allow very high pulses of current to be delivered and this is fortunate as the SCR is only a 0.8 amp device, but will endure surges of 10amp for half a cycle.

Whenever the SCR is triggered into conduction during the half cycle of its operation, it remains in conduction until the voltage delivered by the plug pack falls to zero. This is when the SCR turns off. When the plug pack delivers a negative voltage to the top rail and a positive voltage to the lowest rail, the SCR is not triggered into conduction and none of the components in the circuit deliver current to the battery. The SCR delivers current for a few half-cycles and then it is turned off for a few cycles. This is how the average current delivered to the battery is controlled.

The circuit is designed to deliver about 300 - 400 mA average charge-current. The maximum value is determined by the 1R8 resistors. They do not allow any more than 900mA to flow during a half-cycle and if this current flows, the lower 47u is charged and the lower transistor turns on to prevent the SCR turning on.
When the battery is fully charged, the indicator LED begins to flash.

The flashing is produced by the 2k2 resistor and 47u (connected to the voltage monitor section). When the battery is charging, the 47u is charged via the diode connected to the BC557 transistor and through the 150R and signal diode to the negative of the battery.

When the battery is fully charged, the Voltage Monitor section turns ON and turns off the "Turn ON" section.
This removes the voltage on the positive side of the 47u and the positive side is brought to the negative rail via the 2k2 resistor. This brings down the negative side of the 47u and the 150R resistor is  allowed to drop below the negative rail due to the presence of the diode, as the diode becomes reverse-biased.

This holds the circuit in the "off" condition, as the voltage monitor section sees an extra voltage across it and thinks the battery it is "over-charged."



The 47u discharges and the circuit turns ON to pump a small burst of current into the battery to keep it charged. This is called "Trickle Mode"  or "Pulse Mode."


HOW TO SET THE POT
Charge a battery and when the voltage reaches 13.4v, adjust the pot so the LED flashes.


DEAD BATTERIES
The circuit will not turn on if the voltage of the battery you are charging is less than 4 volts. If you have a good battery that has been totally discharged, you can manually start the charging process by connecting the battery and pressing the button. This will raise the voltage on each cell and the circuit will take over in the normal way once the voltage rises more than 4 volts.

SCR: MCR100     
type - 6     400v
current     0.8A
Max current
for half cycle     10A

DON'T WASTE YOUR TIME
If you have a battery that does not charge, even after you have pressed the push button, don't waste your time. If it has been standing for more than 6 months in an uncharged state, it will not charge. This charger is ideal in determining if a battery is able to be charged.

Just connect it to the charger and monitor the voltage across the battery. If it remains at less than 8v after 1 hour, the battery is scrap. You can easily test a battery by putting a 12v car globe across the terminals. Even a tail light globe will require a current of more than 1 amp to get it to glow and if the battery cannot deliver this current, it is DEAD.

The only "dead" battery that can be recovered is one that has been connected to equipment and is totally exhausted. The equipment has exhausted the battery. If you charge it within a few weeks, the process of "sulphation" will not have damaged it and it can be fully charged. If the battery is "dead" due to standing for a long time, the chances of recovery are virtually nil.

Sealed Batteries
Sealed batteries have the acid either gelled or put into a sponge-like glass mat. They have the advantage/disadvantage of being completely liquid-tight. They can operate in any position, even sideways or upside down, and will not leak acid. Because the electrolyte moves more slowly, these batteries cannot tolerate high rates of charging or discharging for extended periods, although their thinner plates will allow high rates for a short time. Their sealed construction, which makes them ideal for some limited applications, makes it impossible to check individual cell conditions with a hydrometer. Although these cells are "sealed," they do have vents to prevent pressure build-up in case of gassing. Many PV charge controls will push charging voltage too high for sealed batteries. Premature failure will result due to loss of water vapor. We recommend sealed batteries only in situations where hydrogen gassing during charging cannot be tolerated, or the battery is going to be moved and handled a great deal, or in conditions where the battery needs to fit into unique, tight spaces. Boats, UPS computer power supplies, and remote expeditions are the most common uses. Special lower voltage charge controls must be used with these batteries. Life expectancy is two to five years for most AGM (absorbed glass mat) batteries, and five to ten years for the higher quality, but more difficult to manufacture, gel cell batteries. Most sealed batteries are AGM types.


Here is a Printed Circuit board made by Tom Kelly, one of our readers:


You can clearly see the track-work under the board and it is easy to copy the layout and produce your own board. The board was produced by Tom Kelly.  You can email him for the file so you can make your own PC board.

Or you can buy a PCB from Talking Electronics with overlay and tinned solder-lands for $3.00 plus $3.00 postage

PCB

PARTS LIST
12v SLA Battery Charger
PCB $3.00 plus $3.00 post

2 - 1R8 0.5watt resistors
1 - 150R 0.25 watt resistor
1 - 180R
1 - 560R
1 - 1k5
3 - 2k2
1 - 3k3
1 - 4k7
1 - 8k2
1 - 1k mini trim pot

1 - 1n ceramic
2 - 47u 25v electrolytics

1 - 5mm red LED

4 - 1N4148 signal diodes
1 - 10v 0.25watt zener
1 - BC 547 transistor
2 - BC557 transistors
1 - MCR100-6 SCR
1 - 1m red lead
1 - 1m black lead
2 - alligator clips
1 - 2m very fine solder

1 - SLA Battery Charger PCB

Also required:
1 - 12v AC transformer (500mA AC)
1 - power lead
1 - case


Sourced by: talkingelectronics

NiMH, NiCd, Li-ion, lead acid Solar Powered Battery Charger

This is the NiMH, NiCd, Li-ion, lead acid Solar Powered Battery Charger Circuit Diagram. solar battery charger that will charge a variety of batteries: NiMH, NiCd, Li-ion, lead acid. Although there are solar battery chargers on the market, most are only for one application: cell phone, NiMH batteries, etc. Our charger will have the user input the battery type, capacity, and voltage. It will display the charge status and incorporate various safety systems, including temperature monitoring and battery polarity checking.

NiMH, NiCd, Li-ion, lead acid Solar Powered Battery Charger


NiMH, NiCd, Li-ion, lead acid Solar Powered Battery Charger

Simple Current-Limited 6-V Charger Circuit Diagram

This is the Simple Current-Limited 6-V Charger Circuit Diagram. An LM317HV regulator is used as a current-limited charger. If current through R4 exceeds 0.6 A, Ql is biased on which pulls the ADJ terminal of the LM317 HV to ground and reduces the battery-charging current. 

 Simple Current-Limited 6-V Charger Circuit Diagram



 Simple Current-Limited 6-V Charger Circuit Diagram

Simple Lithium Ion Charger 2 Cell Circuit Diagram

This is a Simple Lithium Ion Charger 2 Cell Circuit Diagram.  This circuit was build to charge a couple series Lithium cells (3.6 volts each, 1 Amp Hour capacity) installed in a portable transistor radio.

The charger operates by supplying a short current pulse through a series resistor and then monitoring the battery voltage to determine if another pulse is required. The current can be adjusted by changing the series resistor or adjusting the input voltage. When the battery is low, the current pulses are spaced close together so that a somewhat constant current is present. As the batteries reach full charge, the pulses are spaced farther apart and the full charge condition is indicated by the LED blinking at a slower rate.

Simple Lithium Ion Charger 2 Cell Circuit Diagram


Simple Lithium Ion Charger 2 Cell Circuit Diagram


A TL431, band gap voltage reference (2.5 volts) is used on pin 6 of the comparator so that the comparator output will switch low, triggering the 555 timer when the voltage at pin 7 is less than 2.5 volts. The 555 output turns on the 2 transistors and the batteries charge for about 30 milliseconds. When the charge pulse ends, the battery voltage is measured and divided down by the combination 20K, 8.2K and 620 ohm resistors so that when the battery voltage reaches 8.2 volts, the input at pin 7 of the comparator will rise slightly above 2.5 volts and the circuit will stop charging.

The circuit could be used to charge other types of batteries such as Ni-Cad, NiMh or lead acid, but the shut-off voltage will need to be adjusted by changing the 8.2K and 620 ohm resistors so that the input to the comparator remains at 2.5 volts when the terminal battery voltage is reached.

For example, to charge a 6 volt lead acid battery to a limit of 7 volts, the current through the 20K resistor will be (7-2.5)/ 20K = 225 microamps. This means the combination of the other 2 resistors (8.2K and 620) must be R=E/I = 2.5/ 225 uA = 11,111 ohms. But this is not a standard value, so you could use a 10K in series with a 1.1K, or some other values that total 11.11K

Be careful not to overcharge the batteries. I would recommend using a large capacitor in place of the battery to test the circuit and verify it shuts off at the correct voltage.

Battery charger circuit using L200

A very simple battery charger circuit having reverse polarity indication is shown here.The circuit is based on IC L200 . L200 is a five pin variable voltage voltage regulator IC. The charging circuit can be fed by the DC voltage from a bridge rectifier or center tapped rectifier.Here the IC L200 keeps the charging voltage constant.The charging current is controlled by the parallel combination of the resistors R2 & R3.The POT P1 can be used to adjust the charging current.

 Battery charger circuit using L200 With Parts list




This circuit is designed to charge a 12 V lead acid battery.The transistor t1,diode D3 and LED are used to make a battery reverse indicator.In case the battery is connected in reverse polarity ,the reverse polarity indicator red LED D5 glows.When the charging process is going on the battery charging indicator green LED D4 glows.


Notes.

The circuit can be assembled on a good quality PCB or common board.
The values of R2 & R3 can be obtained from the equation,
(R2//R3) =( V5-2)/(Io).

Where V5 is  the charging voltage (voltage at pin 5) and Io is the charging current.

The POT R8 can be used for fine adjustments of charging current.
If battery is connected in reverse polarity the RED LED will glow.
When the  charging is going on the GREEN LED will glow.
The rectified input voltage to the charger can be 18V.


Sourced By : Circuitstoday

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