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ADA4625-1ARDZ-R7 Scheda tecnica(PDF) 32 Page - Analog Devices |
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ADA4625-1ARDZ-R7 Scheda tecnica(HTML) 32 Page - Analog Devices |
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32 / 35 page ![]() ADA4625-1/ADA4625-2 Data Sheet Rev. A | Page 32 of 35 RECOMMENDED POWER SOLUTION Analog Devices has a wide range of power management products to meet the requirements of most high performance signal chains. For a dual-supply application, the ADA4625-1 typically needs a ±15 V supply. Low dropout (LDO) linear regulators such as the ADP7118 or the ADP7142 for the positive supply and the ADP7182 for the negative supply help improve the PSRR at high frequency and generate a low noise power rail. In addition, if a negative supply is not available, the ADP5070 can generate the negative supply from a positive supply. Figure 108 shows an example of this power solution configuration for the ADA4625-1. ADP5070 ADP7118 ADP7182 +12V +16V +15V –15V –16V Figure 108. Power Solution Configuration for the ADA4625-1 Table 9. Recommended Power Management Devices Product Description ADP5070 DC-to-dc switching regulator with independent positive and negative outputs ADP7118 20 V, 200 mA, low noise, CMOS LDO linear regulator ADP7142 40 V, 200 mA, low noise, CMOS LDO linear regulator ADP7182 −28 V, −200 mA, low noise, linear regulator It is recommended to use a low ESR, 0.1 μF bypass capacitor close to each power supply pins of the ADA4625-1 and ground to reduce errors coupling in from the power supplies. For noisy power supplies, place an additional 10 μF capacitor in parallel with the 0.1 μF for better performance. INPUT OVERVOLTAGE PROTECTION The ADA4625-1 has internal protective circuitry that allows voltages as high as 0.2 V beyond the supplies to be applied at the input of either terminal without causing damage. For higher input voltages, a series resistor is necessary to limit the input current. Determine the resistor value by (VIN − VS)/RS ≤ 20 mA where: VIN is the input voltage. VS is the voltage of either V+ or V−. RS is the series resistor. With a very low bias current of <5.5 nA up to 125°C, higher resistor values can be used in series with the inputs. A 500 Ω resistor protects the inputs from voltages as high as 10 V beyond the supplies and adds less than 2.75 µV to the offset. However, note that the added series resistor (RS) may increase the overall noise and lower the bandwidth due to the addition of a pole introduced by RS and the input capacitor of the amplifier. DRIVING CAPACITIVE LOADS The inherent output resistance of the op amp combined with a capacitive load forms an additional pole in the transfer function of the amplifier. Adding capacitance to the output of any op amp results in additional phase lag. This lag reduces stability and leads to overshoot or oscillation, which is a common situation when an amplifier is used to drive the input of switched capacitor analog-to-digital converters (ADCs). The ADA4625-1 has a high phase margin and low output impedance and is capable of directly driving a capacitive load up to 1 nF with no external compensation at unity-gain without oscillation. For other considerations and various circuit solutions, see the Ask the Applications Engineer-25, Op Amps Driving Capacitive Loads Analog Dialogue article. THERMAL MANAGEMENT The ADA4625-1 can operate with up to a 36 V supply voltage with a typical 4 mA quiescent current. Heavy loads increase power dissipation and raise the chip junction temperature. The maximum safe power dissipation for the ADA4625-1 is limited by the associated rise in junction temperature (TJ) on the die. Two conditions affect TJ: power dissipation (PD) of the device and ambient temperature (TA) surrounding the package. This relationship is shown in Equation 11. TJ = PD × θJA + TA (11) where θJA is the thermal resistance between the die and the ambient environment. The total power dissipation in the amplifier is the sum of the power dissipated in the output stage plus the quiescent power. Power dissipation for the sourcing current is shown in Equation 12, where VSY is the total supply voltage (V+) – (V−). PD = VSY × ISY + ((V+) − VOUT)IOUT (12) Replace ((V+) − VOUT) in Equation 12 with ((V−) − VOUT) when sinking current. For symmetrical supplies with a ground referenced load, use the following equation to calculate the average power for the amplifier processing sine signal. ( ) × − × + × + × = L 2 PEAK L PEAK R 2 V R V ) (V π 2 SY SY SINE AVG, I V P (13) where VPEAK is the peak value of a sine wave output voltage. The specified thermal resistance θJA of the ADA4625-1/ADA4625-2 is 52.8°C/W. A good PCB layout and an external heat sink can improve thermal performance by reducing junction to ambient temperature. The ADA4625-1/ADA4625-2 features an exposed pad that floats internally to provide the maximum flexibility and ease of use. Solder the exposed pad to the PCB board GND, or the V+ or V− plane for best thermal transfer. Where thermal heating is not an issue, the exposed pad can be left floating. Incorporate the use of thermal vias or heat pipes into the design of the mounting pad for the exposed pad to lower the overall θJA. |
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