Showing posts with label charger. Show all posts
Showing posts with label charger. Show all posts

Thursday, 2 October 2014

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Posted in Arrangement, Art, Business

New Zip charge Quick Charger

Why you may need a zipcharge quick charger? With so many devices around these days, making sure they have enough juice to run on is essential wherever we go. The Zipcharge Quick Charger aims to help you out with that, where it comes in the form of a rechargeable power stick that takes a mere 15 minutes of charging to provide your iPod with another 20 hours of audio playback, while you get 10 more hours of talk time.

Now, these are all theoretical figures, so you might want to take it with a pinch of salt. How about a 60 second charge that offers 2 hours of playback on your iPod?

Charging the sleek ZipCharge for a paltry 15 minutes will store enough oomph to give your iPod an extra 20 hours of playtime or your mobile phone an additional 10 hours of talk time. If you’re in a pant-trippingly awful rush, a 60 second charge whooshes in sufficient juice to power an iPod for 2 hours, a mobile phone for 8 hours, 2 Way Radio for 1 hour 20 mins or a camera for 80 photos.

zipcharge charger
So how does it work? Not being particularly spammy of head, we’re not entirely sure, but it’s got something to do with clever nano physics and cutting edge battery chemistry. But who cares about spoddy tech nonsense? The ZipCharge is set to revolutionise your gidgity gadgety life. And that’s not empty flannel because it’s brought to you by Freeplay, the game-changing boffins behind the world’s first wind-up radio. link

zipcharge quick charger

Wednesday, 18 December 2013

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Posted in Arrangement, Art, Business

Simple 12 V Battery Charger Circuit Diagram

This 12 V Battery Charger Circuit Diagram is a high performance charger for gelled electrolyte lead-acid batteries. Charger quickly recharges battery and shuts off at full charge. Initially, charging current is limited to 2A. As the battery voltage rises, current to the battery decreases, and when the current has decreased to 150 mA, the charger switches to a lower float voltage preventing overcharge.

 12 V Battery Charger Circuit Diagram

12 V Battery Charger Circuit Diagram


When the start switch is pushed, the output of the charger goes to 14 V. As the battery approaches full charge, the charging current decreases and the output voltage is reduced from 14 V to about 12 5 V terminating the charging. Transistor Ql then lights the LED as a visual indication of full charge.

Saturday, 31 August 2013

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Posted in Arrangement, Art, Business

USB Powered Mobile Phone Battery Charger Circuit

Description 
 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.
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.

Source - http://www.extremecircuits.net/2010/02/usb-powered-mobile-phone-battery.html

    Friday, 9 August 2013

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    Posted in Arrangement, Art, Business

    Car Battery 12v Charger

    The usual chargers of battery automotive, are simple and cheap appliances that charge continuously the battery, with a rythm of few amperes, for the time where the appliance is ON. If the holder do not close in time the charger, the battery will overcharge and her electrolytic faculty are lost with evaporation or likely exists destruction of her elements. The charger of circuit exceeds these faults. It checks electronic the situation of charge of battery and it has circuit of control with retroaction, that forces the battery charge with biggest rythm until charge completely. 
     
    Circuit diagram:
    Car_baterry_charger Circuit Diagram
    Car Battery 12v Charger Circuit Diaram
    When charge completely, it turns on one RED led (LD2). The charger has been drawn in order to charge batteries of 12V, ONLY. What should watch it from what it manufactures the circuit, they are the cables that connect the transformer with the circuit and in the continuity the battery, should they are big cross-section, so that heat when it passes from in them the current of charge and also they do not cause fall of voltage at the way of current through them.
    Adjustment
    After assembling of the circuit, adjust TR1 to null value, power-up and make the following adjustments :-
    1. Without connecting the battery check that the 2 LED?s are turned on.
    2. Connect a car battery to the circuit and check that LD2 is OFF and a current (normally 2A to 4A) is flowing to the battery.
    3. Adjust TR1 until LD2 turns ON and the charge current is cut.
    4. Adjust TR1 to null value and charge the battery using the hydrometer technique (if you do not have or do not know how to use a hydrometer, then use a good condition battery and charge).

    Carefully adjust TR1 so that LD2 begins to turn ON and the charge current falls to a few hundred milliamps (mA). If TR1 is set correctly then in the next round of charging you will noticed LD2 begin to flicker as the battery is being charged. When battery is completely charged, LD2 turns ON completely.TR1 does not need further adjustment anymore. Q1 is connected in line with the battery and is fired by R3, R4 and LD2. The R2, C1, TR1 and D2 sense the voltage of the battery terminal and activate Q2 when the voltage of the battery terminal exceeds the value predetermined by TR1.

    When an uncharged battery is connected, the terminal voltage is low. Under this circumstance, Q2 is turned OFF and Q1 is fired in each half cycle by R3, R4 and LD2. The Q1 functions as a simple rectifier and charges the battery. If the battery terminal voltage is increased above the level that had been fixed by TR1, then Q2 shifts the control of Q1 gate. This deactivates Q1 and cuts off the current supply to the battery and turns LD2 ON indicating that the charge has been completed. Q1 and bridge rectifier GR1 should be mounted on heatsinks to prevent overheating. M1 is a 5A DC ammeter to measure the charge current.

    Source :users.otenet.gr

    Friday, 2 August 2013

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    Posted in Arrangement, Art, Business

    Ni cad Charger Circuit Diagram

    Ni-cad charger with current and voltage limiting. Lamp LI will glow brightly and the LED will be out when the battery is low and being charged, but the LED will be bright and the light bulb dim when the battery is almost ready. Ll should be a light bulb rated for the current you want (usually the battery capacity divided by 10). Diode D1 should be at least 1 A, and Z1 is a 1W zener diode with a voltage determined by the full-charge battery voltage minus 1 V. After the battery is fully charged, the circuit will float it at about battery capacity divided by 100 mA.

    Ni-cad Charger Circuit Diagram


    Ni-cad Charger Circuit Diagram

    Friday, 12 April 2013

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    Posted in Arrangement, Art, Business

    Low Cost Universal Battery Charger Schematic

    Low cost solution for charging of each NiCd and NiMh batteries
    Here is the circuit diagram of a low price universal costr for NiCD - NiMH batteries. This circuit is Ideal for automobile use. It has capability to transform a primes adapter in to a costr . This one can be used to cost mobile phone, toys, moveables, video batteries, MP3 gamers, ... and has selectable cost present. An LED is situated in circuit to indicate charging. Can be built on a basic purpose PCB or a veroboard. I hope you in point of fact love it.
    Picture of the circuit: 
     A Low Cost Universal Charger Circuit Schematic
    Circuit diagram:
    A Low Cost Universal Charger 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 cost current.
    • Charges Ni Cd or NiMH batteries.
    • Transforms a primarys adapter into a costr.
    • Charge cellular phone, toys, transportables, video batteries …
    Features:
    • LED perform indication.
    • Power provide polarity protected.
    • Supply current: similar as cost current.
    • Supply voltage: from 6.5VDC to 21VDC (depending on used battery)
    • Charge present (±20%): 50mA, 100mA, 200mA, 300mA, 400mA. (selectable)
    Determining the availability voltage:
    This desk indicates the minimum and most voltages to supply the charger. See provide voltage choice chart under.
    Example:
    To cost a 6V battery a minimum supply voltage of 12V is needed, the utmost voltage is then 15V.
    Voltage choice:

    Voltage Selection Chart For Low Cost Universal Battery Charger

    Determining the cost current:
    Before constructing the circuit, you have to determinate how a lot present will probably be used to charge the battery or battery pack. It is a good suggestion to cost the battery with a present that is 10 occasions smaller then the battery capability, and to charge it for about 15 hours. If you double the charge current , then that you may charge the battery in half of the time. Charge present selection chart is positioned in diagram.

    Example:
    A battery pack of 6V / 1000mAh will additionally be charged with 100mA during 15 hours. If you need to charge quicker, then a cost present of 200mA can be utilized for approximately 7 hours.
    Caution:
    The larger cost present, the extra essential the cost time need to be checked. When faster charging is used, you should discharge the battery totally sooner than charging. Using a cost present of 1/10 of the capacity will increase the lifetime of the battery. The cost time can easily be doubled with out damaging the battery.
    Note:
    • Mount the transistor in conjunction with the heatsink on the PCB, bend the leads as important. Take care that the metal again of the transistor touches the heatsink. Check that the leads of the transistor don't touch the heatsink.
    Source : http://www.ecircuitslab.com

    Tuesday, 9 April 2013

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    Posted in Arrangement, Art, Business

    Battery Charger based on AVR ATMega 8535

    Battery Charger in general can be interpreted as a means to recharge the battery charge. Principles of good charger circuit is capable of providing resources to perform effectively charging the battery, efficient and safe. AVR-Based Battery Charger ATMega 8535 With LCD Display This is an idea that had just emerged from the author.
    In AVR-Based Battery Charger design ATMega 8535 With LCD Display is using AVR microcontroller processor charger with ATMega 8535, process the data viewer charger with LCD, a safety from a hot temperature with the temperature sensor LM35 and several buttons for setting the charger. And component power charger Battery Charger Based on AVR ATMega 8535 With LCD Display is a FET.
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    Function-Based Battery Charger Part Series AVR ATMega 8535 With LCD Display
    ATMega 8535 AVR microcontroller serves as the controlling process of the charger.
    Button S1 - S5 as input data charger settings (setting the current, maximum temperature, peak voltage batteries)
    LM35 Temperature Sensor function as heat sensors in the battery during charge.
    LCD Display function to display data and display settings charger battery charger process measurement data.
    FET serves as a power charger that will flow into the battery charging current.

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