Showing posts with label battery. Show all posts
Showing posts with label battery. Show all posts

Thursday, October 23, 2014

12V Lead Acid Battery Charger

The follow-on charge voltage is something like 14.4V, which is fine on behalf of charging a gelled before AGM battery to full up charge, but is too high point in the same way as a seep mount, so dont leave this charger permanently connected to a battery. If you would like to make sure of truthful to facilitate, in that case add a subsequent diode in vogue string with D3! at hand is a LED connected as a charge indicator. It hope against hope light after the charge current is senior than a propos 150mA. The utmost charge current will ensue roughly 400mA. in attendance is an supplementary output, with the aim of provides about 20V on thumbs down load (depending on input voltage), and comes down for example the load increases. I incorporated this designed for charging 12V, 4Ah NiCd packs, which require precisely a restricted current but not a limited voltage for charging.

12V Lead Acid Battery Charger Circuit Schematic Diagram

document so as to if the charge output is abruptly-circuited, the overcurrent protection of U2 command kick arrived, but the current is still soprano an adequate amount of to impairment the diodes, if it lasts. So, dont short the output! If in its place you short the assisting output, the fuse be supposed to blow. I built this steed into a slight home-grown aluminum sheet corral, using dull-bug construction variety. Not very tidy, but it machinery. take notice of the elongated leads on the power resistors. They are needed, as with shorter leads the resistors long for unsolder themselves, to the same extent they contract pretty intense! The transistors and the control device IC are bolted to the indictment, which serves as stage sink. The transistors dont heat up very much, but the IC does.
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Monday, September 1, 2014

Eliminator 1 5 Volt battery using LM317

This schema is a battery eliminator 1.5 V, that is, a power supply of 1.5 volts, low consumption that takes as input the output of the USB PC or notebook. The power adapter is simple, it converts the voltage from 5V to 1.5V USB ports, using the popular LM317 IC and a few other components. To be exact this schema uses only three components, one is the LM317, R1 = R2 = 470 ohm and 100 ohm.

 Eliminator 1.5 Volt battery using LM317 Circuit Diagram

Eliminator

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Sunday, August 31, 2014

Flat Battery Indicator Wiring diagram Schematic

This small schema was developed to monitor the battery in a model hovercraft. The lift in the model is produced by an electric motor driving a fan. To avoid the possibility of discharging the rechargeable battery pack too deeply, the design lights a conspicuous LED mounted on the model when a preset threshold voltage is reached. The schema only uses a few components, which helps keep the total weight of the model down. The schema connects to the model only across the two points where the voltage to be monitored can be measured. These also supply power to the schema.

The best place to connect the schema is not at the battery terminals, but rather at the motor connections. The schema is suitable for use with nominal battery voltages of 4.8 V to 9.6 V (four to eight 1.2 V cells). For example, if there are six cells in the battery, its nominal terminal voltage will be 7.2 V. A discharge threshold voltage of around 1 V per cell is appropriate, which means that for six cells the threshold is 6 V. We now need to set the voltage UZ across the adjustable Zener diode D1 (an LM431) to about 0.5 V less than the threshold voltage at which we want LED D2 to light.


Flat Battery Indicator Circuit Diagram




This voltage is controlled by the choice of the value of resistor R1. As indicated in the schema diagram, this is done with the help of a trimmer potentiometer (R1.A) with a fixed resistor (R1.B) in series. Using the suggested values (10 kΩ for both the potentiometer and the fixed resistor) allows the discharge threshold voltage to be set between about 5.5 V and 8 V. For lower or higher voltages R1.B should be made correspondingly smaller or larger. Once the desired value of UZ has been set the total resistance (R1.A plus R1.B) can be measured and a single fixed-value resistor of this value substituted at R1.

In the example mentioned of a six-cell battery, a voltage of 7.2 V will appear at the emitter of T1 when the battery is charged. At its base is UZ, which should be 5.5 V (6 V – 0.5 V) in the case of a discharge threshold voltage of 6 V. As long as the battery voltage remains at least 0.5 V higher than UZ, T1 will conduct and T2 will block, with the result that LED D2 will not light. If the battery voltage should fall below about 6 V (UZ + 0.5 V), T1 will block, T2 will conduct and LED D2 will light. To ensure stable operation of the schema R6 provides a small amount of switching hysteresis. By adjusting the resistor value between 100 kΩ and 220 kΩ the amount of hysteresis can be varied.

The current drawn by the schema itself is less than 5 mA (as measured with a battery voltage of 7.2 V). When the LED lights an additional 10 mA (the LED current) is drawn, for a total of around 15 mA. The adjustable Zener diode can be replaced by a fixed Zener with a voltage 0.5 V less than the desired threshold. Resistors R1 and R2 can then be dispensed with. A flashing LED can be used for D2 (without series resistor R7). An acoustic alarm can be provided by replacing D2 and R7 by a DC buzzer with a suitable operating voltage.

Source by : Streampowers
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Saturday, August 30, 2014

USB Battery Charger Wiring diagram Schematic

In recent years, the use of USB or Universal Serial Bus as a reliable communications interface in plenty of electronic devices have increased due to its increased speed, size and flexibility. It fundamentally consists of terminals VBUS(+5V supply), GROUND, D+ and D-. As plenty of of the devices run on rechargeable battery, it is now the trend to design the charging schema that makes use of the power supply from the USB port to charge the rechargeable battery. This feature will make the devices more convenient to the users as the devices will get their power from the bus and requires no outside plug or cables.


USB Bus Powered Functions
Theres fundamentally three classes of USB functions on power that can be derived from the port.

  High-Power Bus The high power bus powered functions derived all its power from the VBUS and cannt draw over 100mA until its been configured. One time configured, it can draw up to five unit loads(500mA) by requesting it in its descriptor. At full load, it must be able to work between the VBUS voltage of four.75V and five.25V.

  Low-Power Bus The low power bus powered functions derived all its power from the VBUS and must not draw over one unit load (100mA) according to the USB standard. It must even be able to work between the VBUS voltage of four.40V and five.25V.

  Self-Power Self power functions can draw up to 100mA from the VBUS and the rest from its outside source. This is the most simplest to design.

USB

USB Port Powered Battery Charger
This application schema makes use of the MCP73853/MCP73855 linear charge management controllers for cost sensitive applications. They are specially designed for USB applications and adhere to all the USB specifications governing the USB power bus. The schema below makes use of the MCP73855 to design a USB powered Lithium Ion/Lithium Polymer battery charger by deriving the power from the USB port.
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Thursday, August 28, 2014

14 V battery charger circuit and troubleshooting

This circuit is also use operational amplifier IC LM324 to drive the VN64GA with the error signal and to control output voltage. This output voltage is pulsating DC , which is quite satisfactory for battery charging. This circuit also can be converted to the system regulated DC supply.
You do this by increased C2 and anoother electrolytic capacitor is added across the load. The respon time is very fast, determined by the op amp.
Schematic and troubleshooting below :
If the circuit not work , Perhaps the cause of :
  • AC cable disconnected
  • Transformer is damaged or leaking.
  •  Broken or leaky diode.
  • Installation of inverted foot elco.
  • Instrallation of the components of the upside , particularly on the transistor , examine the placement of the feet emitter , collector and base.
  • IC damaged.
  • Soldering is less sticky.
  • Line PCB damaged.
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Saturday, August 23, 2014

Make Your Iphone Battery Last Longer

I’ve owned a Iphone for a while now, it’s an amazing phone, the best I have ever used so far. But when I first started using it, my only concern was that the battery didn’t last as much as I expected. After two days, it was gone, and when I needed it, the phone just didn’t turn ON. I used to let the wireless on almost all the time and downloading many new apps. Now that I have some more experience on how my little gadget works, I will try to share some ideas on how you can optimize your iphone’s battery life and have a better iExperience.

iphone


  • Wireless connectivity will drawn your battery even if you are not using it. Keeping it on, it will always try to connect to some open hot spot, try to check your emails and much more. So a good idea is to turn it on when using, and after, turn it off.
  • Bluetooth have a similar battery usage as Wi-Fi, so there’s not much reason to leave it on if you are not using it (I believe that the most common usage for bluetooth today is the headsets and car kits).
  • Auto-Brightness is a interesting thing apple made to make the battery last longer. It uses iphone’s camera to adjust brightness based on the lighting conditions outside, so it will automatically set, for example, to make it less bright when you are on a dark place. Great feature!
  • Music EQ will have a significant battery usage if you listen to your songs for many hours everyday, as it uses more processing power. So if you want to charge less your iphone, it is another thing you may consider turning it off.
  • Heat can be a problem to your iphone, as it is a very bad thing to lithium-ion batteries, making them harder to charge and destroying it due the intense ionization. So remember to never let your phone in a hot place such as inside a car or in direct sunlight. If you are using some kind of carrying case, you need to be even more careful about this, and remember to take it off when charging your mobile, as it gets warm when charging.
  • Keep it charging! After putting your phone to charge, leave it there for some hours more after it says it’s full. It will make your phone battery last much more, you will be surprised! After done that, my iphone battery lasted more then a week, way more if you compare to the 2-3 days when I was disconnecting if from the dock just after it says its full.
  • Background Programs! This is important, new iphones, such as Iphone4 allows you to run multiple apps on the background, but this will drain your battery fast if you forget to close them. To do this, double click on the round button and it will show all the apps currently running, keep clicking in one of the apps and a red “X” will apear, then you can close all apps.
  • What else do you do to make your iphone battery last longer?




    Source by : link
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    Wednesday, August 13, 2014

    Simple Solar Battery Charger with LM317 Wiring diagram Schematic

    Simple Solar Battery Charger with LM317 Circuit Diagram. This is a solar panel battery charger schematic for AA and AAA rechargeable batteries. A small solar panel would be very good as a source of voltage charger. Building a solar AA battery charger only requires a few components and a simple construction. Solar panels should be well adapted to the battery to be charged or the battery may be overcharged. 

    If you want to charge batteries with different capacities, then you need to change the solar panels. Since this is a simple solar battery charger that does not automatically turn off when the battery is full. So we need to maintain the charging current is low enough that will not damage the battery even when they are fully charged. An LM317T voltage regulator chip that can be used with a suitable resistor to regulate current. See solar AA battery charger 

     Solar Battery Charger with LM317 Circuit Diagram

     Solar Battery Charger with LM317 Circuit Diagram



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    Tuesday, August 12, 2014

    Battery Discharger Using Discrete Components

    The battery discharger published in this website may be improved by adding a Schottky diode (D3). This ensures that a NiCd cell is discharged not to 0.6–0.7 V, but to just under 1 V as recommended by the manufacturers. An additional effect is then that light-emitting diode D2 flashes when the battery connected to the terminals is flat. The schema in the diagram is based on an astable multivibrator operating at a frequency of about 25 kHz. When transistor T2 conducts, a current flows through inductor L1, whereupon energy is stored in the resulting electromagnetic field. When T2 is cut off, the field collapses, whereupon a counter-emf is produced at a level that exceeds the forward voltage (about 1.6 V) of D2.

    Battery Discharger Circuit Diagram0

    A current then flows through the diode so that this lights. Diode D1 prevents the current flowing through R4 and C2. This process is halted only when the battery voltage no longer provides a sufficient base potential for the transistors. In the original schema, this happened at about 0.65 V. The addition of the forward bias of D3 (about 0.3 V), the final discharge voltage of the battery is raised to 0.9–1.0 V. Additional resistors R5 and R6 ensure that sufficient current flows through D3. When the battery is discharged to the recommended level, it must be removed from the discharger since, in contrast to the original schema, a small current continues to flow through D3, R2-R3, and R5-R6 until the battery is totally discharged.

    The flashing of D2 when the battery is nearing recommended discharge is caused by the increasing internal resistance of the battery lowering the terminal voltage to below the threshold level. If no current flows, the internal resistance is of no consequence since the terminal voltage rises to the threshold voltage by taking some energy from the battery. When the discharge is complete to the recommended level, the LED goes out. It should therefore be noted that the battery is discharged sufficiently when the LED begins to flash.

    Streampowers
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    Using Serial Port PC Battery Charger Wiring diagram Schematic

    This is one of the porters of the series "battery chargers that will never do." It uses the serial port of a PC to power a battery charger. A serial interface port can not supply enough current to charge batteries more powerful, but low capacity battery Nickel Cadmium (NiCd), this schema is more than enough.You could, for example, use the batteries in a radio and charge them while using the PC. 

    The three serial port connections TxD, DTR and RTS, when not in use, are -10 V and can provide a current of about 10 to 20 mA. The schema shown supplies a charging current of about 30 mA. If you need to change the polarity of the charging schema, then it is a simple job, just reverse the diodes and use of software, change door signs to 10 V. Those interested can also write a software routine that automatically recharges the batteries.

    Serial Port PC Battery Charger Circuit Diagram

    Serial Port PC Battery Charger Circuit Diagram

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