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LMV791 датащи(PDF) 13 Page - National Semiconductor (TI) |
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LMV791 датащи(HTML) 13 Page - National Semiconductor (TI) |
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13 / 16 page ![]() Application Notes (Continued) For simplicity, the op amp is modelled as an ideal integrator with a unity gain frequency of A 0 . Hence, its transfer function (or gain) in the frequency domain is A 0/s. Solving the circuit equations in the frequency domain, ignoring C F for the mo- ment, results in an expression for the gain shown in Equation (1). (1) It can be inferred from the denominator of the transfer func- tion that it has two poles, whose expressions can be ob- tained by solving for the roots of the denominator and are shown in Equation (2) (2) Equation (2) shows that as the values of R 1 and R2 are increased, the magnitude of the poles, and hence the band- width of the amplifier, is reduced. This theory is verified by using different values of R 1 and R2 in the circuit shown in Figure 1 and by comparing their frequency responses. In Figure 3 the frequency responses for three different values of R 1 and R2 are shown. When both R1 and R2 are1k Ω, the response is flattest and widest; whereas, it narrows and peaks significantly when both their values are changed to 10 k Ω or 30 kΩ. So it is advisable to use lower values of R 1 and R 2 to obtain a wider and flatter response. Lower resistances also help in high sensitivity circuits since they add less noise. A way of reducing the gain peaking is by adding a feedback capacitance C F in parallel with R2. This introduces another pole in the system and prevents the formation of pairs of complex conjugate poles which cause the gain to peak. Figure 4 shows the effect of C F on the frequency response of the circuit. Adding a capacitance of 2 pF removes the peak, while a capacitance of 5 pF creates a much lower pole and reduces the bandwidth excessively. AUDIO PRE-AMPLIFIER WITH BANDPASS FILTERING With low input referred voltage noise, low supply voltage and low supply current, and a low harmonic distortion, the LMV791 is ideal for audio applications. Its wide unity gain bandwidth allows it to provide large gain for a wide range of frequencies and it can be used to design a pre-amplifier to drive a load of as low as 600 Ω with less than 0.01% distor- tion. Two amplifier circuits are shown in Figure 5 and Figure 6. Figure 5 is an inverting amplifier and provides a gain of −10, while Figure 6 is a non-inverting amplifier and provides a gain of 11. In either of these circuits, the coupling capacitor C C1 decides the lower frequency at which the circuit starts providing gain, while the feedback capacitor C F decides the 20116864 FIGURE 2. 20116859 FIGURE 3. 20116860 FIGURE 4. www.national.com 13 |
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