Single-Time-Constant Circuits

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Single-Time-Constant Circuits. 1. Figure D.1 The reduction of the circuit in (a) to the STC circuit in (c) through the repeated application of Thévenin’s theorem. Figure D.2 Circuit for Example D.2. - PowerPoint PPT Presentation

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Single-Time-Constant Circuits

Microelectronic Circuits - Fifth Edition Sedra/Smith 2Copyright 2004 by Oxford University Press, Inc.

Figure D.1 The reduction of the circuit in (a) to the STC circuit in (c) through the repeated application of Thévenin’s theorem.

Microelectronic Circuits - Fifth Edition Sedra/Smith 3Copyright 2004 by Oxford University Press, Inc.

Figure D.2 Circuit for Example D.2.

Microelectronic Circuits - Fifth Edition Sedra/Smith 4Copyright 2004 by Oxford University Press, Inc.

Figure D.3 The response of the circuit in (a) can be found by superposition, that is, by summing the responses of the circuits in (d) and (e).

Microelectronic Circuits - Fifth Edition Sedra/Smith 5Copyright 2004 by Oxford University Press, Inc.

Figure D.3 (Continued)

Microelectronic Circuits - Fifth Edition Sedra/Smith 6Copyright 2004 by Oxford University Press, Inc.

Figure D.4 STC circuits of the low-pass type.

Microelectronic Circuits - Fifth Edition Sedra/Smith 7Copyright 2004 by Oxford University Press, Inc.

Figure D.5 STC circuits of the high-pass type.

Microelectronic Circuits - Fifth Edition Sedra/Smith 8Copyright 2004 by Oxford University Press, Inc.

Figure ED.1

Microelectronic Circuits - Fifth Edition Sedra/Smith 9Copyright 2004 by Oxford University Press, Inc.

Figure D.6 (a) Magnitude and (b) phase response of STC circuits of the low-pass type.

Microelectronic Circuits - Fifth Edition Sedra/Smith 10Copyright 2004 by Oxford University Press, Inc.

Figure D.7 (a) An amplifier circuit and (b) a sketch of the magnitude of its transfer function.

Microelectronic Circuits - Fifth Edition Sedra/Smith 11Copyright 2004 by Oxford University Press, Inc.

Figure D.8 (a) Magnitude and (b) phase response of STC circuits of the high-pass type.

Microelectronic Circuits - Fifth Edition Sedra/Smith 12Copyright 2004 by Oxford University Press, Inc.

Figure ED.3

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Figure ED.6

Microelectronic Circuits - Fifth Edition Sedra/Smith 14Copyright 2004 by Oxford University Press, Inc.

Figure D.9 A step-function signal of height S.

Microelectronic Circuits - Fifth Edition Sedra/Smith 15Copyright 2004 by Oxford University Press, Inc.

Figure D.10 The output y(t) of a low-pass STC circuit excited by a step of height S.

Microelectronic Circuits - Fifth Edition Sedra/Smith 16Copyright 2004 by Oxford University Press, Inc.

Figure D.11 The output y(t) of a high-pass STC circuit excited by a step of height S.

Microelectronic Circuits - Fifth Edition Sedra/Smith 17Copyright 2004 by Oxford University Press, Inc.

Figure D.12 A pulse signal with height P and width T.

Microelectronic Circuits - Fifth Edition Sedra/Smith 18Copyright 2004 by Oxford University Press, Inc.

Figure D.13 Pulse responses of three STC low-pass circuits.

Microelectronic Circuits - Fifth Edition Sedra/Smith 19Copyright 2004 by Oxford University Press, Inc.

Figure D.14 Pulse responses of three STC high-pass circuits.

Microelectronic Circuits - Fifth Edition Sedra/Smith 20Copyright 2004 by Oxford University Press, Inc.

Figure PD.6