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Ch. 25 - Electric Current and Resistance
Giancoli Douglas - Physics for Scientists and Engineers 5th edition
Giancoli Douglas5th editionPhysics for Scientists and EngineersISBN: 9780137488179Non è quello che usi tu?Cambia libro di testo
Capitolo 24, Problema 97

Estimate how far can an average electron move along one of the connecting wires of a 750-W toaster during an alternating current cycle? The power cord has copper wires of diameter 1.7 mm and is plugged into a 60-Hz 120-V ac outlet. [Hint: For sinusoidal motion, Chapter 14, we saw that the maximum distance traveled from equilibrium (amplitude A) is proportional to the maximum (drift) speed (Eq. 14–9a). This maximum drift speed is related to the maximum current (Section 25–8), which is calculated as the first step here; see Chapter 14.]

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Calculate the maximum current (I_max) using the formula I_max = P / V, where P is the power of the toaster (750 W) and V is the RMS voltage of the AC source (120 V).
Determine the cross-sectional area (A) of the copper wire using the formula A = \(\pi\) (d/2)^2, where d is the diameter of the wire (1.7 mm).
Calculate the maximum drift speed (v_d_max) using the formula v_d_max = I_max / (n e A), where n is the number density of electrons in copper (approximately 8.5 x 10^28 electrons/m^3), e is the elementary charge (approximately 1.6 x 10^-19 coulombs), and A is the cross-sectional area calculated in step 2.
Since the motion of electrons in AC is sinusoidal, use the relationship that the amplitude of the sinusoidal motion (A) is equal to the maximum drift speed (v_d_max) divided by the angular frequency (\(\omega\)) of the AC. Calculate \(\omega\) using the formula \(\omega\) = 2\(\pi\) f, where f is the frequency of the AC (60 Hz).
Finally, estimate the maximum distance an electron can move from its equilibrium position, which is the amplitude (A) calculated in step 4.

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Drift Velocity

Drift velocity refers to the average velocity that a charge carrier, such as an electron, attains due to an electric field. In a conductor, electrons move randomly, but when an electric field is applied, they gain a net velocity in the direction of the field. This drift velocity is crucial for understanding how far electrons can travel in a given time, especially in alternating current (AC) circuits where the direction of current changes periodically.
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Alternating Current (AC)

Alternating current (AC) is an electric current that reverses direction periodically, typically in a sinusoidal manner. In the context of the question, the AC frequency of 60 Hz indicates that the current changes direction 60 times per second. This periodic change affects how far electrons can drift in one cycle, as their motion is not continuous but oscillatory, impacting the average distance traveled during each cycle.
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Ohm's Law and Power Calculation

Ohm's Law states that the current (I) through a conductor between two points is directly proportional to the voltage (V) across the two points and inversely proportional to the resistance (R) of the conductor (I = V/R). In this scenario, the power (P) of the toaster is given as 750 W, which can be used to calculate the current flowing through the wires. Understanding this relationship is essential for determining the maximum current and subsequently the maximum drift speed of the electrons in the wire.
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