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CLC1001AST6X 数据表(PDF) 13 Page - Cadeka Microcircuits LLC. |
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CLC1001AST6X 数据表(HTML) 13 Page - Cadeka Microcircuits LLC. |
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13 / 17 page ![]() Data Sheet ©2007-2008 CADEKA Microcircuits LLC www.cadeka.com 13 Application Information Basic Operation Figures 1 and 2 illustrate typical circuit configurations for non-inverting, inverting, and unity gain topologies for dual supply applications. They show the recommended bypass capacitor values and overall closed loop gain equations. + - Rf 0.1μF 6.8μF Output G = 1 + (Rf/Rg) Input +Vs -Vs Rg 0.1μF 6.8μF RL Figure 1. Typical Non-Inverting Gain Circuit Figure 2. Typical Inverting Gain Circuit Achieving Low Noise in an Application Making full use of the low noise of the CLC1001 requires careful consideration of resistor values. The feedback and gain set resistors (Rf and Rg) and the non-inverting source impedance (Rsource) all contribute noise to the circuit and can easily dominate the overall noise if their values are too high. The datasheet is specified with an Rg of 22.1Ω, at which point the noise from Rf and Rg is about equal to the noise from the CLC1001. Lower value resistors could be used at the expense of more distortion. Figure 3 shows total input voltage noise (amp+resistors) versus Rf and Rg. As the value of Rf increases, the total input referred noise also increases. 0.5 0.75 1 1.25 1.5 1.75 2 2.25 2.5 2.75 100 1000 Rf (Ohms) G = +11 G = +21 G = +41 Figure 3: Input Referred Voltage Noise vs. Rf and Rg The noise caused by a resistor is modeled with either a voltage source in series with the resistance: 4kTR Or a current source in parallel with it: i R R = 4kT Op amp noise is modeled with three noise sources, en, in and ii. These three sources are analogous to the DC input voltage and current errors Vos, Ibn and Ibi. The noise models must be analyzed in-circuit to deter- mine the effect on the op amp output noise. Since noise is statistical in nature rather than a continuous signal, the set of noise sources in circuit add in an RMS (root mean square) fashion rather than in a linear fashion. For uncorrelated noise sources, this means you add the squares of the noise voltages. A typical non-inverting ap- plication (see figure 1) results in the following noise at the output of the op amp: + - Rf 0.1μF 6.8μF Output G = - (Rf/Rg) For optimum input offset voltage set R1 = Rf || Rg Input +Vs -Vs 0.1μF 6.8μF RL Rg R1 |
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