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AD5171BRJ50-R2 数据表(PDF) 17 Page - Analog Devices |
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AD5171BRJ50-R2 数据表(HTML) 17 Page - Analog Devices |
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17 / 20 page ![]() AD5171 APPLICATIONS PROGRAMMABLE VOLTAGE REFERENCE (DAC) It is common to buffer the output of the digital potentiometer as a DAC unless the load is much larger than RWB. The buffer serves the purpose of impedance conversion as well as delivering higher current, which may be needed. GND VIN VOUT 1U1 5V 2 3 V0 AD8601 5V A W B AD1582 ADR03 A1 AD5171 U2 Figure 40. Programmable Voltage Reference (DAC) GAIN CONTROL COMPENSATION The digital potentiometers are commonly used in gain controls (Figure 41) or sensor transimpedance amplifier signal conditioning applications. To avoid gain peaking or in worst- case oscillation due to step response, a compensation capacitor is needed. In general, C2 in the range of a few picofarads to no more than a few tenths of a picofarad is adequate for the compensation. U1 C2 4.7pF A B W R2 100k Ω VO VI R1 47k Ω Figure 41. Typical Noninverting Gain Amplifier PROGRAMMABLE VOLTAGE SOURCE WITH BOOSTED OUTPUT For applications that require high current adjustment, such as a laser diode driver or tunable laser, a boosted voltage source can be considered (Figure 42). +V W SIGNAL CC RBIAS LD VIN A B VOUT U1 AD5171 U3 2N7002 AD8601 U2 –V IL Figure 42. Programmable Booster Voltage Source In this circuit, the inverting input of the op amp forces the VOUT to be equal to the wiper voltage set by the digital potentiometer. The load current is then delivered by the supply via the N-Ch FET N1. N1 power handling must be adequate to dissipate (VI − VO) × IL power. This circuit can source a maximum of 100 mA with a 5 V supply. For precision applications, a voltage reference such as ADR421, ADR03, or ADR370 can be applied at the A terminal of the digital potentiometer. LEVEL SHIFTING FOR DIFFERENT VOLTAGE OPERATION When users need to interface a 2.5 V controller with AD5171, a proper voltage level shift must be employed so that the digital potentiometer can be read from or written to the controller; Figure 43 shows one of the implementations. M1 and M2 should be low threshold N-Ch power MOSFETs, such as FDV301N. 2.5V CONTROLLER 2.7V–5.5V AD5171 Rp Rp Rp Rp VDD1 = 2.5V VDD2 = 5V G G S D M1 S D M2 SDA1 SCL1 SDA2 SCL2 Figure 43. Level Shifting for Different Voltage Operation RESISTANCE SCALING The AD5171 offers 5 kΩ, 10 kΩ, 50 kΩ, and 100 kΩ nominal resistances. For users who need to optimize the resolution with an arbitrary full-range resistance, the following techniques can be used. By paralleling a discrete resistor (Figure 44) a proportion tely lower voltage appears at terminal A to B, which is applicable to only the voltage divider mode. This translates into a finer degree of precision because the step size at terminal W will be smaller. The voltage can be found as DD AB AB W V D R R R R R D V × × + = 64 2 || 3 ) 2 || ( ) ( (5) R1 R2 B A VDD R3 W Figure 44. Lowering the Nominal Resistance Rev. PrC | Page 17 of 20 Preliminary Technical Data |
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