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ADP5360ACBZ-1-R7 Datasheet(PDF) 20 Page - Analog Devices |
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ADP5360ACBZ-1-R7 Datasheet(HTML) 20 Page - Analog Devices |
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20 / 60 page ![]() ADP5360 Data Sheet Rev. 0 | Page 20 of 60 THEORY OF OPERATION BATTERY CHARGER Charger Introduction The ADP5360 integrates a fully I2C-programmable charger for single-cell Li-Ion/Li-Poly batteries suitable for a wide range of portable applications. The linear charger architecture enables up to 500 mA of output current on the system power supply and up to 320 mA of charge current into the battery from a dedicated charger. The charger of the ADP5360 operates from an input voltage of up to 6.8 V but is tolerant of voltages up to 20 V to alleviate the concern of USB bus spiking during disconnection or connection scenarios. The ADP5360 features an internal FET between the linear charger output and the battery node to permit battery isolation and system power in a dead battery or no battery scenario, allowing instanteneous system function when connected to a USB power supply. The charger of theADP5360 enables charging via the mini VBUS pin (F6 pin) from a wall charger, car charger, or USB host port. Based on the type of USB source, which is detected by an external USB detection device, theADP5360 can apply the proper current limit for optimal charging and USB compliance. The USB charger permits correct operation under all USB compliant sources including wall chargers, host chargers, hub chargers, and standard hosts and hubs. A processor controls the USB charger using the I2C to program the charging current and numerous other parameters, including the following: • Trickle charge current level and voltage threshold • Fast charge (constant current) current level • Fast charge (constant voltage) termination voltage level • Fast charge safety timer period • Weak battery threshold detection • End of charge current level for charge completion • Recharge voltage threshold • VBUS input current limit Input Current Limit and USB Compatibility The VBUS input current limit is programmed via an internal I2C ILIM register (RILIM) from 50 mA to 500 mA, ensuring compatibility with different requirements. An external resistor from the ILIM pin to ground can also set the input current limit as the default. Floating the ILIM pin activates the register default value when powering up. Table 10. VBUS Input Current-Limit Default Set with ILIM Pin RILIM Value (kΩ) ILIM Value (mA) 100 50 68 100 47 150 36 200 27 250 20 300 15 400 10 500 The current-limit defaults to 100 mA to allow compatibility with a USB host or hub that is not configured. This input current limit resets to a default value of 100 mA during every VBUS power-on cycle, thereby protecting the USB port. When the input current-limit feature is used, it is possible for the available input current to be too low for the charger to meet the programmed charging current (ICHG), and the rate of charge reduces. In this case, the VBUS_ILIM bit flag sets. When VVBUS is between 3.9 V and 6.8 V, the VBUSOK bit is set. Trickle Charge Mode A deeply discharged Li-Ion cell can exhibit a low cell voltage, making it unsafe to charge the cell at high current rates. The ADP5360 charger uses its trickle charge mode to raise the cell voltage to a safe level for fast charging.A cell with a voltage lower than VTRK_DEAD charges with ITRK_DEAD. During trickle charge mode, the CHARGER_STATUS[2:0] bits of the CHARGER_STATUS1 register are set. During trickle charging, the VSYS node is regulated to VSYS_REG by the linear regulator. The battery isolation FET is off, therefore the battery is isolated from the system power supply. Refer to Table 11 for the VSYS_REG output voltages. Table 11. VSYS_REG Output Voltages VTRM Setting VSYS_REG (V) VSYSTEM =VTRM + 200 mV VSYSTEM = 5 V VTRM ≤ 4.26 V 4.4 5 4.26 V < VTRM ≤ 4.36 V 4.5 5 4.36 V < VTRM ≤ 4.46 V 4.6 5 4.46 V < VTRM ≤ 4.56 V 4.7 5 4.56 V < VTRM ≤ 4.66 V 4.8 5 When VVBUS is lower than the set value of VSYS_REG, VVSYS cannot be regulated, which impacts the charged current (see Figure 9). |
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