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ADA4930-2YCPZ-R7 数据表(PDF) 17 Page - Analog Devices |
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ADA4930-2YCPZ-R7 数据表(HTML) 17 Page - Analog Devices |
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17 / 25 page ![]() Data Sheet ADA4930-1/ADA4930-2 Rev. D | Page 17 of 25 THEORY OF OPERATION The ADA4930-1/ADA4930-2 differ fromconventional op amps in that they have two outputs whose voltagesmove in opposite directionsand anadditional input, VOCM. Likean op amp, theyrely on high open-loop gain and negative feedbackto force these outputs to the desired voltages. The ADA4930-1/ADA4930-2 behave much like standardvoltagefeedbackopamps and facilitate single-ended-to-differential conversions, common-mode level shifting, and amplifications of differential signals.Like op amps, the ADA4930-1/ADA4930-2 havehigh inputimpedance and low output impedance. Two feedbackloops control the differential and common-mode output voltages. The differential feedback, set with external resistors, controls the differential output voltage. The common- mode feedbackcontrolsthecommon-modeoutputvoltage.This architecture makesit easy to set the output common-modelevel to any arbitrary value within the specified limits. The output common-modevoltageis forced tobeequal tothevoltageapplied to the VOCM input by the internal common-modefeedbackloop. The internal common-mode feedbackloop produces outputs that are highly balanced over a wide frequency rangewithout requiring tightly matched external components. This results in differential outputs that arevery close to the ideal of being identical in amplitude and areexactly 180°apart in phase. ANALYZING ANAPPLICATIONCIRCUIT The ADA4930-1/ADA4930-2 use high open-loop gain and negative feedbackto force their differential and common-mode output voltages to minimize the differential and common-mode error voltages. The differential error voltage is defined as the voltage between the differential inputs labeled +IN and −IN (see Figure 42). For most purposes, this voltagecan be assumed to be zero. Similarly, the difference between the actual output common-modevoltage and the voltageappliedto VOCM can also be assumed to be zero. Starting from these two assumptions, any application circuit can be analyzed. SETTING THE CLOSED-LOOP GAIN The differential-modegain of the circuit in Figure 42 is determined by G F dm IN dm OUT R R V V = , , where the gain and feedbackresistors,RG and RF, on each side are equal. ESTIMATING THE OUTPUT NOISE VOLTAGE The differential output noiseof theADA4930-1/ADA4930-2 can be estimatedusingthenoisemodelin Figure43. Theinput-referred noise voltage density, vnIN, is modeled as differential. The noise currents, inIN− and inIN+, appear between each input and ground. ADA4930 + RF2 VnOD VnCM VOCM VnIN RF1 RG2 RG1 VnRF1 VnRF2 VnRG1 VnRG2 inIN+ inIN– Figure 43. Noise Model Similar to the case of conventional op amps, the output noise voltage densities can be estimated by multiplying the input- referredtermsat +IN and−INbyan appropriateoutputfactor. The output voltageduetovnIN is obtained by multiplying vnIN by the noise gain, GN. The circuit noise gain is ( ) 2 1 N β β G + = 2 where the feedbackfactorsare G1 F1 G1 1 R R R β + = and G2 F2 G2 2 R R R β + = . When the feedbackfactors arematched, RF1/RG1= RF2/RG2, β1 = β2 = β, and the noise gain becomes G F N R R β G + = = 1 1 . The noise currents are uncorrelated with thesamemean-square value, and eachproducesan output voltagethat is equal to the noise current multiplied by theassociated feedbackresistance. The noise voltage density at the VOCM pin is vnCM. When the feedbacknetworks havethe samefeedbackfactor, as in most cases, the output noise dueto vnCM is common-modeand the output noise fromVOCM is zero. Each of the four resistors contributes (4kTRxx)1/2. The noise from the feedbackresistorsappears directly at the output, and the noise from the gain resistorsappears at theoutputmultiplied by RF/RG. The total differential output noisedensity, vnOD, is the root-sum- square of the individual output noise terms. ∑ = = 8 1 i 2 ) ( nODi nOD v v |
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