Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded...

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Chapter 7 Series-Parallel Circuits

Transcript of Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded...

Page 1: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Chapter 7

Series-Parallel Circuits

Page 2: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Objectives

Analyze series-parallel circuitsAnalyze loaded voltage dividersAnalyze ladder networks Analyze a Wheatstone bridge

Page 3: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Basic Idea

Given a circuit; steps to analyze a circuit:Find the total resistance

Determine all parallel resistors and series resistors

Simplify the given circuit Use KCL and Ohm’s law to find all currentsUse Ohm’s law to find all voltages

Page 4: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Find the total resistance

R1 + R2 || R3 + R4 || R5

Page 5: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Find the total resistance

R1 + R6 || (R5 + (R4 || (R2 + R3)))

R1 || (R2 + R3 || (R5 || R4))

Page 6: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Find RT, IT, I2, and I4; Vs=50V

Page 7: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Find RT, I(RL1), I3

Page 8: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Find RT, IT, I2

Page 9: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Find RT, IT and V(AB) VS=10V

Page 10: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Loaded Voltage Dividers

When a load resistor RL is connected from the output to ground, the output voltage is reduced by an amount that depends on the value of RL.

Page 11: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Loading Effect of a Voltmeter

Multimeter

L

LloadR

RRRR

2

2

What happens if RL >> R2?

So, what is the internal resistance of a DMM?

Page 12: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Analysis of a Ladder Network A resistive ladder network

is a special type of series-parallel circuit.

One form of ladder network is commonly used to scale down voltages to certain weighted values for digital-to-analog conversion Called R/2R Ladder

Network To find total resistance of a

ladder network, start at the point farthest from the source and reduce the resistance in steps.

Page 13: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

The R/R2 Ladder Network

Only Input 4 is HIGH

Only Input 3 is HIGH

Used for Digital-to-analog converter!

Page 14: Chapter 7 Series-Parallel Circuits. Objectives Analyze series-parallel circuits Analyze loaded voltage dividers Analyze ladder networks Analyze a Wheatstone.

Examining Digital-to-Analog Conversion

For Extra credit: Change the circuit to generate this output: