Showing posts with label powered. Show all posts
Showing posts with label powered. Show all posts
Monday, December 23, 2013
Solar Powered Lithium Ion Battery Charger
The circuit below feeds a controlled current and voltage to a 3.6v lithium ion battery. The current is limited to 300ma and the voltage is limited to 4.2 volts. The circuit uses a LTC1734 IC from Linear Technology. No diode is needed between the circuit and a 6 volt solar panel. Some very nice 6 volt solar panels are available from www.plastecs.com Their SP6-200-12 cranks out about 1 watt while the SP6-300-12 can produce about 2 watts. Assuming a 6 hour sunlit day, the 2 watt panel will pump about 1.8 amp-hours into a battery.

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Thursday, October 3, 2013
Mains Powered White LED Lamp
Did it ever occur to you that an array of white LEDs can be used as a small lamp for the living room? If not, read on. LED lamps are available ready-made, look exactly the same as standard halogen lamps and can be fitted in a standard 230-V light fitting. We opened one, and as expected, a capacitor has been used to drop the voltage from 230 V to the voltage suitable for the LEDs. This method is cheaper and smaller compared to using a transformer. The lamp uses only 1 watt and therefore also gives off less light than, say, a 20 W halogen lamp. The light is also somewhat bluer. The circuit operates in the following manner: C1 behaves as a voltage dropping ‘resistor’ and ensures that the current is not too high (about 12 mA).

The bridge rectifier turns the AC voltage into a DC voltage. LEDs can only operate from a DC voltage. They will even fail when the negative voltage is greater then 5 V. The electrolytic capacitor has a double function: it ensures that there is sufficient voltage to light the LEDs when the mains voltage is less than the forward voltage of the LEDs and it takes care of the inrush current peak that occurs when the mains is switched on. This current pulse could otherwise damage the LEDs. Then there is the 560-ohm resistor, it ensures that the current through the LED is more constant and therefore the light output is more uniform.

There is a voltage drop of 6.7 V across the 560-Ω resistor, that is, 12 mA flows through the LEDs. This is a safe value. The total voltage drop across the LEDs is therefore 15 LEDs times 3 V or about 45 V. The voltage across the electrolytic capacitor is a little more than 52V. To understand how C1 functions, we can calculate the impedance (that is, resistance to AC voltage) as follows: 1/(2π·f·C), or: 1/ (2·3.14·50·220·10-9)= 14k4. When we multiply this with 12 mA, we get a voltage drop across the capacitor of 173 V. This works quite well, since the 173-V capacitor voltage plus the 52-V LED voltage equals 225 V. Close enough to the mains voltage, which is officially 230 V.
Moreover, the latter calculation is not very accurate because the mains voltage is in practice not quite sinusoidal. Furthermore, the mains voltage from which 50-V DC has been removed is far from sinusoidal. Finally, if you need lots of white LEDs then it is worth considering buying one of these lamps and smashing the bulb with a hammer (with a cloth or bag around the bulb to prevent flying glass!) and salvaging the LEDs from it. This can be much cheaper than buying individual LEDs…
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The bridge rectifier turns the AC voltage into a DC voltage. LEDs can only operate from a DC voltage. They will even fail when the negative voltage is greater then 5 V. The electrolytic capacitor has a double function: it ensures that there is sufficient voltage to light the LEDs when the mains voltage is less than the forward voltage of the LEDs and it takes care of the inrush current peak that occurs when the mains is switched on. This current pulse could otherwise damage the LEDs. Then there is the 560-ohm resistor, it ensures that the current through the LED is more constant and therefore the light output is more uniform.

There is a voltage drop of 6.7 V across the 560-Ω resistor, that is, 12 mA flows through the LEDs. This is a safe value. The total voltage drop across the LEDs is therefore 15 LEDs times 3 V or about 45 V. The voltage across the electrolytic capacitor is a little more than 52V. To understand how C1 functions, we can calculate the impedance (that is, resistance to AC voltage) as follows: 1/(2π·f·C), or: 1/ (2·3.14·50·220·10-9)= 14k4. When we multiply this with 12 mA, we get a voltage drop across the capacitor of 173 V. This works quite well, since the 173-V capacitor voltage plus the 52-V LED voltage equals 225 V. Close enough to the mains voltage, which is officially 230 V.
Wednesday, September 11, 2013
Simpled Solar Powered Lithium Ion Battery Charger Circuit
The circuit below feeds a controlled current and voltage to a 3.6v lithium ion battery. The current is limited to 300ma and the voltage is limited to 4.2 volts. The circuit uses a LTC1734 IC from Linear Technology. No diode is needed between the circuit and a 6 volt solar panel. Some very nice 6 volt solar panels are available from www.plastecs.comTheir SP6-200-12 cranks out about 1 watt while the SP6-300-12 can produce about 2 watts. Assuming a 6 hour sunlit day, the 2 watt panel will pump about 1.8 amp-hours into a battery.

Saturday, April 13, 2013
Solar Powered SLA Battery Maintenance
This circuit used to be designed to ‘baby-sit’ SLA (sealed lead-acid or ‘gel’) batteries the use of freely available solar energy. SLA batteries suffer from quite high interior vitality loss which shouldn't be normally a problem except you go on vacations and disconnect them from their trickle current charger. In some instances, the absence of trickle charging present may cause SLA batteries to move utterly flat within a few weeks. The circuit proven here is intended to stop this from happening. Two 3-volt solar panels, every shunted via a diode to viapass them when no electrical energy is generated, energy a MAX762 step-up voltage converter IC.
Circuit diagram:
Solar Powered SLA Battery Maintenance Circuit Diagram
The ‘762 is the 15-volt-out model of the most likely extra familiar MAX761 (12 V out) and is used right here to lift 6 V to 15 V.C1 and C2 are decoupling capacitors that suppress high and low frequency spurious parts produced by way of the switch-mode regulator IC. Using Schottky diode D3, power is saved in inductor L1 in the form of a magnetic container. When pin 7 of IC1 is open-circuited through the interior switching signal, the saved vitality is diverted to the 15-volt output of the circuit. The V+ (sense) enter of the MAX762, pin 8, is used to deal with the output voltage at 15 V. C4 and C5 serve to maintain the ripple on the output voltage as small as that which you could imagine. R1, LED D4 and pushbutton S1 will let you check the presence of the 15-V output voltage.
D5 and D6 scale back the 15-volts to about thirteen.6 V which is a regularly quoted nominal standby trickle charging voltage for SLA batteries. This corresponds neatly with the IC’s maximum, interiorly restricted, output current of about one hundred twenty mA. The worth of inductor L1 is not crucial — 22 µH or 47 µH will also work superb. The coil needs to be rated at 1 A although in view of the height current thru it. The switching frequency is ready 300 kHz. A advice for a pragmatic coil is sort M from the WEPD sequence equipped through Würth (www.we-online.com). Remarkably, Würth provide one-off inductors to particular person consumers. At the time of writing, it was once imaginable, under sure stipulations, to acquire patterns, or order small portions, of the MAX762 IC during the Maxim website online at www.maxim-ic.com.
Author : Myo Min
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