Chapter 4

Chapter 4 AC Networks

4.1 Introduction • Alternating Waveforms • Sinusoidal AC Voltage • Square Wave • Triangular Waveform • Function Generators are devices that can create all of these waveforms. • These devices will be used in lab. • Sketch the waveforms and circuit symbols for the waveforms above.

4.2 Sinusoidal AC Waveform • AC Generators (a.k.a. alternators) are fueled by: • water power • oil • gas • nuclear fusion • wind • solar power

Power to a shaft turns a rotor inside of a stator. • Rotor - rotating magnetic • Stator - stationary coil of wire

Simple Harmonic Motion (SHM) • Position versus time for simple harmonic motion is shown as sine or a cosine

Uniform Circular Motion Video

90°, p/2 radians y 180°, p radians q 0°, 0 radians x 270°, 3p/2 radians

Wave Description • Amplitude (Vpeak) - maximum displacement from the zero line • Period (T) - the time required for one cycle • Frequency (f) - the number of cycles that appear in a time span • 1 cycle per second = 1 Hertz • T=1/f

Example Problems • Sketch the following waveform: v=Vpeaksinq • Example 4.2: • Determine the period and frequency of the waveform in Figure 4.7. • (5 cycles in 4ms for v versus t) • Example 4.3: • How long will it take a sine wave with a frequency of 0.2 kHz to complete 10 cycles?

Example Problems • Example 4.4: • For v=20sinq, at what angle will the voltage rise to 5 Volts?

Angular Velocity (w) - rotation rate of a vector (or generator shaft) • w is measure in radians per second. • New Waveform Equation: v=Vpsinwt

Sinusoidal Voltage Relationships • v = Vpeaksin q • v = Vpeaksin wt • v = Vpeaksin 2pt/T • v = Vpeaksin 2pft • Which form you use depends on what you know

Example Problems • Example 4.5: • Given i=2010-3 sin 400t, find the time at which i rises to 10 mA.

Phase Relationship • f = phase angle • For initial intersections before 0 v=Vpsin(wt+f) • For initial intersections after 0 v=Vpsin(wt-f)

Resistive Circuit • Only for a resistive circuit can current and voltage be in phase. • If the current and voltage go through zero at different times, they are said to be out of phase

Current and Voltage out of Phase • View as two vectors rotating around the circle • Must mean they have the same w V w f I

Sinusoidal Plot

Example Problems • Example 4.6: • (a) Write the sinusoidal expression for each waveform appearing in Fig. 4.12. • (Current Amplitude = 5mA, f i = +60°, w = 400 rad/sec) • (Voltage Amplitude = 100 V, fv = -30°, w = 400 rad/sec) • (b) What is the phase relationship between the two waveforms?

Example Problems • Example 4.7: • Determine the phase relationship between the following two waveforms: v=8.6 sin(300t+80°) i=0.12 sin(300t+10°)

Graphs of Ex. 4.7

4.4 Effective (RMS) Value • These mean the same thing for AC circuits: • “equivalent DC voltage” • “effective voltage” • “rms voltage” • RMS = root mean square • Draw the “relating effective values” plots.

4.5 Average Value • For a sine wave, the average value is zero. • For other waves….

Example Problems • Example 4.9: • Write the sinusoidal expression for a voltage having an rms value of 40 mV, a frequency of 500 Hz and and initial phase shift of +40. • Vp = 1.414(Vrms) = 1.414(40 mV) = 56.56 mV • w = 2pf = (2p)(0.5 kHz) = 3.142 X 103 rad/s • v = 56.56 mV sin(3142t + 40°)

Example Problems • Example 4.10: Calculate the average value of the waveform below over one full cycle.

What are the following for a wall outlet? • f = 60 Hz • Veff = Vrms = 120 V • Vpeak = Vrms = 170 V • Vave = 0 V • Ieff = Irms = limited by breaker • Ipeak = Irms • Iave = 0 A • f • Veff = Vrms • Vpeak • Vave • Ieff = Irms • Ipeak • Iave

Effective Values • Average values for I or V are zero • If we use IV to measure power with a dc meter, we will get zero • Yet the resistor gets hot – power is dissipated • I and V are not always zero – you can get shocked from ac just like dc • We need a new definition for power

Use Effective (rms) Values • PR = VRIR = IR2R = VR2/R • Look just like the dc forms of power • But we use rms values instead

4.7 The R, L, and C Elements • Ohm’s Law for Peak Values Resistors: Vpeak=IpeakR Capacitors: Vpeak=IpeakXC Inductors: Vpeak=IpeakXL

Inductive Reactance • Recall the form of inductance • Since I for ac is constantly changing, there is a constant opposition to the flow of current • Inductive Reactance XL = wL = 2pfL • Measured in ohms • Energy is stored in the coil, not dissipated like in the resistor.

Example • An inductor of 400 mH is connected across a 120 V, 60 Hz ac source. Find XL and the current through the coil • XL = 2pfL = 2p(60 Hz)(0.4 H) XL = 151 W • I = V/XL = 120 v/151 W I = 0.8 A

XL vs. f graph for ideal inductor • XL = 2pfL • Should give a straight line graph of slope 2pL • Higher the L the greater the slope XL f

Current Highest positive v Zero here Most negative here V and I for an Inductor • From we see that voltage is greatest when the change of current is greatest.

Current Voltage Voltage and Current (Coil) Voltage leads current by 90°

Example Problems • Example 4.13: • The current iL through a 10-mH inductor is 5 sin(200t +30). Find the voltage vL across the inductor.

Capacitive Reactance • The effect of a capacitor is to prevent changes in voltage • Keep the potential difference from building up in the circuit • Since the build up of potential is minimized, the flow of current is reduced. • Capacitors act like a resistance in an ac circuit.

Current Voltage Capacitive Reactance • V is changing in ac circuits • But Q = VC, so the charge changes also • Since , current is greatest when change in voltage is greatest. I leads V by 90°

CIVIL • CIVIL is a memory aid. • For a capacitor C, current I leads the voltage V by 90 degrees. • For an inductor L, voltage V leads the current I by 90 degrees.

Capacitive Reactance Xc also measured in ohms What is the capacitive reactance of a 50 mf capacitor when an alternating current of 60 Hz is applied?

Form of Reactance (Fig. 4.28) C=1mF C=2mF

Example Problems • Example 4.14: • The voltage across a 2-mF capacitor is 4mV (rms) at a phase angle of -60. If the applied frequency is 100kHz, find the sinusoidal expression for the current iC.

3.6 Phasors and Complex Numbers • A vector is a quantity has both magnitude and direction. • A scalar quantity has only a magnitude. • Examples: • Scalar: 50mph • Vector: 50mph North

A phasor is a complex number used to represent a sine wave’s amplitude and phase. • A complex number can be written as C = A + Bj where C is a complex number, A and B are real numbers and

Imaginary C=A+Bj q Real What is the magnitude of C? What is the direction of C?

XL R XC Phasor Diagrams • We make the real axis the resistance • The imaginary axis is reactance • Inductive reactance is plotted on the +y axis • Capacitive reactance is plotted on the –y axis • The vector addition of R and X is Z X = XL - XC

XL X R R XC X Z R Phasors • Form Reactance First X = XL – Xc • Form Impedance • Calculate phase angle  

Example Series R-L Circuit • A coil has a resistance of 2.4 W and a inductance of 5.8 mH. If it is connected to a 120-V, 60 Hz ac source, find the reactance and the current

XL X R R Z f Solution XL = 2pfL = 2p(60 Hz)(5.8 X 10-3 H) XL = 2.19 W

Solution (cont’d) • I = V/Z • I = 120 V/3.25 W = 36.9 A ================================ • Notice that if f = 120 Hz, then • XL = 2p(120 Hz)(0.0058 H) = 4.37 W • Z = 4.99 Wf = 61.2° • I = 24 A

Example Series R-C Circuit • What is the current flow through a circuit with 120 V, 60 Hz source, an 80 mf capacitor, and a 24 W resistor?

Chapter 4

Chapter 4

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Chapter 4-4

Chapter 4 - 4

Chapter 4

Chapter 4

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