An opamp circuit schematics

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Exercise 8.10 An opamp circuit schematics

a): An answer:
A
b): An answer:
Using a differential input signal: $v_{A} = V_{X} + v_{in} ∕ 2$ and $v_{B} = V_{X} - v_{in} ∕ 2$ , then with the current and voltage conventions in the schematic:
$\begin{array}{l} g_{diffpair} & = \frac{i_{x} - i_{y}}{v_{in}} \\ i_{x} = g_{m} \cdot (v_{e} + v_{in} ∕ 2) \\ i_{y} = g_{m} \cdot (v_{e} - v_{in} ∕ 2) = - i_{x} \\ \to \\ v_{e} = 0 \\ i_{x} - i_{y} = g_{m} \cdot v_{in} \\ g_{diffpair} & = g_{m} \end{array}$
c): An answer:
$\begin{array}{l} r_{in} & = \frac{v_{in}}{i_{in}} \\ i_{in} = \frac{g_{m}}{βfe} \cdot (v_{e} + v_{in} ∕ 2) \\ v_{e} = 0 (e.g. from symmetry or from previous question) \\ r_{in} & = 2 \cdot \frac{βfe}{g_{m}} \end{array}$
d): An answer:

$\begin{array}{l} H_{x} & = \frac{i_{z}}{i_{x}} \\ H_{y} & = \frac{i_{z}}{i_{y}} \\ i_{z, x} = i_{x} \cdot βfe \cdot \frac{βfe}{βfe + 2} \\ i_{z, y} = i_{y} \cdot βfe \\ H_{x} & = βfe \cdot \frac{βfe}{βfe + 2} \\ H_{y} & = βfe \end{array}$
e): An answer:
$\begin{array}{l} H & = \frac{i_{z}}{i_{x} - i_{y}} \\ i_{z} = i_{x} \cdot βfe \cdot \frac{βfe}{βfe + 2} - i_{y} \cdot βfe \\ i_{y} = - i_{x} \\ i_{z} = i_{x} \cdot (βfe \cdot \frac{βfe}{βfe + 2} + βfe) \\ H & = \frac{i_{z}}{i_{x} - i_{y}} = βfe \frac{βfe + 1}{βfe + 2} ≅βfe \end{array}$
f): An answer:
$r_{in} = R_{L} (1 + βfe) + \frac{βfe}{g_{m}}$
g): An answer:
$r_{in} \to \infty$
h): An answer:
$\frac{v_{out}}{v_{base 3}} = \frac{R_{L} (1 + βfe)}{\frac{βfe}{g_{m}} + R_{L} (1 + βfe)}$
i): An answer:
$r_{out} \to \infty$ .
j): An answer:

$\begin{array}{l} g_{m} = 20 mS \\ \frac{v_{out}}{v_{in}} = g_{m} \cdot βfe \frac{βfe + 1}{βfe + 2} \cdot (1 + βfe) R_{L} \approx g_{m} β {fe}^{2} R_{L} = \dots \end{array}$

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