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LTC4085-3 датащи(PDF) 21 Page - Linear Technology |
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LTC4085-3 датащи(HTML) 21 Page - Linear Technology |
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21 / 24 page ![]() LTC4085-3 21 40853f The final solution is shown in Figure 4, where RNOM = 124k, R1 = 24.3k and RNTC = 100k at 25°C Using the WALL Pin to Detect the Presence of a Wall Adapter The WALL input pin identifies the presence of a wall adapter (the pin should be tied directly to the adapter output voltage). This information is used to disconnect the input pin, IN, from the OUT pin in order to prevent back conduction to whatever may be connected to the input. It also forces the ACPR pin low when the voltage at the WALL pin exceeds the input threshold. In order for the presence of a wall adapter to be acknowledged, both of the following conditions must be satisfied: 1. The WALL pin voltage exceeds VWAR (approximately 4.25V); and 2. The WALL pin voltage exceeds VWDR (approximately 75mV above VBAT) The input power path (between IN and OUT) is re-enabled and the ACPR pin assumes a high impedance state when either of the following conditions is met: 1. The WALL pin voltage falls below VWDF (approximately 25mV above VBAT); or 2. The WALL pin voltage falls below VWAF (approximately 3.12V) Each of these thresholds is suitably filtered in time to prevent transient glitches on the WALL pin from falsely triggering an event. Power Dissipation The conditions that cause the LTC4085-3 to reduce charge current due to the thermal protection feedback can be approximated by considering the power dissipated in the part. For high charge currents and a wall adapter applied to VOUT, the LTC4085-3 power dissipation is approximately: PD = (VOUT – VBAT) • IBAT Where, PD is the power dissipated, VOUT is the supply voltage, VBAT is the battery voltage, and IBAT is the battery charge current. It is not necessary to perform any worst- case power dissipation scenarios because the LTC4085-3 will automatically reduce the charge current to maintain the die temperature at approximately 105°C. However, the approximate ambient temperature at which the thermal feedback begins to protect the IC is: TA = 105°C – PD • θJA TA = 105°C – (VOUT – VBAT) • IBAT • θJA Example: Consider an LTC4085-3 operating from a wall adapter with 5V at VOUTproviding0.8Atoa3VLi-Ionbattery. The ambient temperature above which the LTC4085-3 will begin to reduce the 0.8A charge current, is approximately TA = 105°C – (5V – 3V) • 0.8A • 43°C/W TA = 105°C – 1.6W • 43°C/W = 105°C – 69°C = 36°C APPLICATIONS INFORMATION |
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