| 数据搜索系统,热门电子元器件搜索 |
|
ADA4940-1ACPZ-R2 数据表(PDF) 22 Page - Analog Devices |
|
|
|||||||||||||||||||||||||||||
ADA4940-1ACPZ-R2 数据表(HTML) 22 Page - Analog Devices |
|
22 / 32 page ![]() ADA4940-1/ADA4940-2 Data Sheet Rev. B | Page 22 of 32 APPLICATIONS INFORMATION ANALYZING AN APPLICATION CIRCUIT The ADA4940-1/ADA4940-2 use open-loop gain and negative feedback to force their differential and common-mode output voltages in such a way as 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 61). For most purposes, this voltage can be assumed to be zero. Similarly, the difference between the actual output common- mode voltage and the voltage applied to 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 mode gain of the circuit in Figure 61 can be determined by G F dm IN dm OUT R R V V = , , This assumes that the input resistors (RG) and feedback resistors (RF) on each side are equal. ESTIMATING THE OUTPUT NOISE VOLTAGE The differential output noise of the ADA4940-1/ADA4940-2 can be estimated using the noise model in Figure 63. The input-referred noise voltage density, vnIN, is modeled as a differential input, and the noise currents, inIN− and inIN+, appear between each input and ground. The noise currents are assumed to be equal and produce a voltage across the parallel combination of the gain and feedback resistances. vnCM is the noise voltage density at the VOCM pin. Each of the four resistors contributes (4kTRx)1/2. Table 14 summarizes the input noise sources, the multiplication factors, and the output-referred noise density terms. For more noise calculation information, go to the Analog Devices Differential Amplifier Calculator (DiffAmpCalc™), click ADIDiffAmpCalculator.zip and follow the on-screen prompts. ADA4940-1/ ADA4940-2 + RF2 VnOD VnCM VOCM VnIN RF1 RG2 RG1 VnRF1 VnRF2 VnRG1 VnRG2 inIN+ inIN– Figure 63. ADA4940-1/ADA4940-2 Noise Model As with conventional op amp, the output noise voltage densities can be estimated by multiplying the input-referred terms at +IN and −IN by the appropriate output factor, where: ( ) 2 1 N β β G + = 2 is the circuit noise gain. G1 F1 G1 1 R R R β + = and G2 F2 G2 2 R R R β + = are the feedback factors. When RF1/RG1 = RF2/RG2, then β1 = β2 = β, and the noise gain becomes G F N R R β G + = = 1 1 Note that the output noise from VOCM goes to zero in this case. The total differential output noise density, vnOD, is the root-sum- square of the individual output noise terms. ∑ = = 8 1 i 2 nOi nOD v v Table 14. Output Noise Voltage Density Calculations Input Noise Contribution Input Noise Term Input Noise Voltage Density Output Multiplication Factor Output-Referred Noise Voltage Density Term Differential Input vnIN vnIN GN vnO1 = GN (vnIN) Inverting Input inIN− inIN− × (RG2||RF2) GN vnO2 = GN [inIN− × (RG2||RF2)] Noninverting Input inIN+ inIN+ × (RG1||RF1) GN vnO3 = GN [inIN+ × (RG1||RF1)] VOCM Input vnCM vnCM GN (β1 − β2) vnO4 = GN (β1 − β2)(vnCM) Gain Resistor RG1 vnRG1 (4kTRG1)1/2 GN (1 − β2) vnO5 = GN (1 − β2)(4kTRG1)1/2 Gain Resistor RG2 vnRG2 (4kTRG2)1/2 GN (1 − β1) vnO6 = GN (1 − β1)(4kTRG2)1/2 Feedback Resistor RF1 vnRF1 (4kTRF1)1/2 1 vnO7 = (4kTRF1)1/2 Feedback Resistor RF2 vnRF2 (4kTRF2)1/2 1 vnO8 = (4kTRF2)1/2 |
|
链接网址 |
| ALLDATASHEET是否为您带来帮助? [ DONATE ] |
关于 Alldatasheet | 广告服务 | 联系我们 | 隐私政策 | 数据表链接 | 链接交换 | 制造商名单 All Rights Reserved©Alldatasheet.com |
| Russian : Alldatasheetru.com | Korean : Alldatasheet.co.kr | Spanish : Alldatasheet.es | French : Alldatasheet.fr | Italian : Alldatasheetit.com Portuguese : Alldatasheetpt.com | Polish : Alldatasheet.pl | Vietnamese : Alldatasheet.vn Indian : Alldatasheet.in | Mexican : Alldatasheet.com.mx | British : Alldatasheet.co.uk | New Zealand : Alldatasheet.co.nz |
|
Family Site : ic2ic.com |
icmetro.com |