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AD7653ACPZ Folha de dados(PDF) 19 Page - Analog Devices |
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AD7653ACPZ Folha de dados(HTML) 19 Page - Analog Devices |
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19 / 27 page ![]() AD7653 Data Sheet Rev. C | Page 18 of 26 Voltage Reference Input The AD7653 allows the choice of either a very low temperature drift internal voltage reference or an external 2.5 V reference. Unlike many ADCs with internal references, the internal reference of the AD7653 provides excellent performance and can be used in almost all applications. To use the internal reference along with the internal buffer, PDREF and PDBUF should both be LOW. This will produce a 1.207 V voltage on REFBUFIN which, amplified by the buffer, will result in a 2.5 V reference on the REF pin. The output impedance of REFBUFIN is 11 kΩ (minimum) when the reference is enabled. It is useful to decouple REFBUFIN with a 100 nF ceramic capacitor. Thus, the 100 nF capacitor provides an RC filter for noise reduction. To use an external reference along with the internal buffer, PDREF should be HIGH and PDBUF should be LOW. This powers down the internal reference and allows the 2.5 V reference to be applied to REFBUFIN. To use an external reference directly on the REF pin, PDREF and PDBUF should both be HIGH. PDREF and PDBUF, respectively, power down the internal reference and the internal reference. Note that the PDREF and PDBUF input current should never exceed 20 mA. This could eventually occur when input voltage is above AVDD (for instance at power-up). In this case, a 100 Ω series resistor is recommended. The internal reference is temperature compensated to 2.5 V ± 20 mV. The reference is trimmed to provide a typical drift of 7 ppm/°C. This typical drift characteristic is shown in Figure 17. For improved drift performance, an external reference such as the AD780 can be used. The AD7653 voltage reference input REF has a dynamic input impedance; it should, therefore, be driven by a low impedance source with efficient decoupling between the REF and REFGND inputs. This decoupling depends on the choice of the voltage reference, but usually consists of a low ESR capacitor connected to REF and REFGND with minimum parasitic inductance. A 10 μF (X5R, 1206 size) ceramic chip capacitor (or 47 μF tantalum capacitor) is appropriate when using either the internal reference or one of these recommended reference voltages: The low noise, low temperature drift ADR421 and AD780 The low power ADR291 The low cost AD1582 For applications that use multiple AD7653s, it is more effective to use the internal buffer to buffer the reference voltage. Care should be taken with the voltage reference’s temperature coefficient, which directly affects the full-scale accuracy, if this parameter matters. For instance, a ±15 ppm/°C temperature coefficient of the reference changes full scale by ±1 LSB/°C. Note that VREF can be increased to AVDD – 1.85 V. Since the input range is defined in terms of VREF, this would essentially increase the range to 0 V to 3 V with an AVDD above 4.85 V. The AD780 can be selected with a 3 V reference voltage. The TEMP pin, which measures the temperature of the AD7653, can be used as shown in Figure 24. The output of the TEMP pin is applied to one of the inputs of the analog switch (e.g., ADG779), and the ADC itself is used to measure its own temperature. This configuration is very useful for improving the calibration accuracy over the temperature range. ADG779 AD8021 CC 02966-0-024 ANALOG INPUT (UNIPOLAR) AD7653 IN TEMPERATURE SENSOR TEMP Figure 24. Temperature Sensor Connection Diagram Power Supply The AD7653 uses three power supply pins: an analog 5 V supply AVDD, a digital 5 V core supply DVDD, and a digital input/output interface supply OVDD. OVDD allows direct interface with any logic between 2.7 V and DVDD + 0.3 V. To reduce the supplies needed, the digital core (DVDD) can be supplied through a simple RC filter from the analog supply, as shown in Figure 22. The AD7653 is independent of power supply sequencing once OVDD does not exceed DVDD by more than 0.3 V, and is thus free of supply voltage induced latch-up. |
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