Bundle: College Physics, Loose-Leaf Version, 11th + WebAssign Printed Access Card for Serway/Vuille's College Physics, 11th Edition, Single-Term
Bundle: College Physics, Loose-Leaf Version, 11th + WebAssign Printed Access Card for Serway/Vuille's College Physics, 11th Edition, Single-Term
11th Edition
ISBN: 9781337604888
Author: Raymond A. Serway, Chris Vuille
Publisher: Cengage Learning
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Chapter 17, Problem 48P

An office worker uses an immersion heater to warm 250 g of water in a light, covered, insulated cup from 20.°C to 100. °C in 4.00 minutes. The heater is a Nichrome resistance wire connected to a 120-V power supply. Assume the wire is at 100. °C throughout the 4.00-min time interval. (a) Calculate the average power required to warm the water to 100. °C in 4.00 min. (b) Calculate the required resistance in the heating element at 100. °C. (c) Calculate the resistance of the heating element at 20. °C. (d) Derive a relationship between the diameter of the wire, the resistivity at 20. °C, ρ0, the resistance at 20. °C, R0, and the length L. (e) If L = 3.00 m, what is the diameter of the wire?

(a)

Expert Solution
Check Mark
To determine
The average power required to warm the water.

Answer to Problem 48P

The average power required to warm the water is 348.83W .

Explanation of Solution

Given Info: 250.0g of water is heated from 20.0°C to 100.0°C in 4 minutes. The heater with nichrome resistor is connected to 120V supply, 250.0g of water is heated from 20.0°C to 100.0°C in 4 minutes. The heater with nichrome resistor is connected to 120V supply

Explanation:

Formula to calculate the energy required to warm the water is,

E=mc(T2T1)

    • E is the heat energy required to warm the water from temperature T1 to T2 ,
    • m is the mass of water,
    • c is the specific heat capacity of water,

Substitute 250.0g for m , 4186J(kg°C)1 for c , 100.0°C for T2 and 20.0°C for T1 in the above equation to find E

E=(250.0g)(1kg1000g)(4186J(kg°C)-1)(100.0°C20.0°C)=83720J(1kJ1000J)=83.72kJ

The heat energy required to warm the water from 20.0°C to 100.0°C in 4 minutes is 83.72kJ

Formula to calculate the average power required to warm the water is,

P=EΔt

    • P is the power required,
    • Δt is the time taken for warming the water,

Substitute 83.72kJ for E and 4 minutes for Δt in the above equation to find P ,

P=83.72kJ(103J1kJ)(4 minutes)(60s1minute)=348.83W

Conclusion: Therefore, the average power required to warm the water is 348.83W

(b)

Expert Solution
Check Mark
To determine
The resistance of nichrome at 100.0°C

Answer to Problem 48P

The resistance of nichrome at 100.0°C is 41.28Ω

Explanation of Solution

Given Info: 250.0g of water is heated from 20.0°C to 100.0°C in 4 minutes. The heater with nichrome resistor is connected to 120V supply

Explanation:

Formula to calculate the resistance is,

R=(ΔV)2P

    • R is the resistance of nichrome at 100.0°C
    • ΔV is the voltage of power supply,

Substitute 120V for ΔV and 348.83W for P in the above equation to find R ,

R=(120V)2348.83W=41.28Ω

Conclusion: Therefore, the resistance of nichrome at 100.0°C is 41.28Ω

(c)

Expert Solution
Check Mark
To determine
The resistance of nichrome at 20.0°C

Answer to Problem 48P

The resistance of nichrome at 20.0°C is 40Ω

Explanation of Solution

Given Info: 250.0g of water is heated from 20.0°C to 100.0°C in 4 minutes. The heater with nichrome resistor is connected to 120V supply.

Explanation:

Formula to calculate the resistance is,

R0=R1+α(TT0)

    • R0 is the resistance at T0 ,
    • α is the temperature coefficient of resistivity of nichrome,
    • T is the final temperature,

Substitute 41.28Ω for R , 0.4×103(°C)-1 for α , 100.0°C for T and 20.0°C for T0 in the above equation to find R

R0=41.28Ω(1+(0.4×103(°C)-1)(100.0°C20.0°C))=40Ω

Conclusion: Therefore, the resistance of nichrome at 20.0°C is 40Ω

(d)

Expert Solution
Check Mark
To determine
The relationship between resistivity at 20.0°C , diameter of wire, resistance at 20.0°C and length of wire.

Answer to Problem 48P

The equation which relates diameter resistance, resistivity and length of wire is d=2ρ0LπR0

Explanation of Solution

Given Info: 250.0g of water is heated from 20.0°C to 100.0°C in 4 minutes. The heater with nichrome resistor is connected to 120V supply.

Explanation:

Formula to calculate the resistance at 20.0°C is,

R0=ρ0LA

    • ρ0 is the resistivity of nichrome wire at 20.0°C ,
    • L is the length of nichrome wire,
    • A is the area of circular cross section of nichrome wire,

Equation to calculate the area of cross section is ,

A=πd24

    • d is the diameter of wire,

Substitute the above equation in the previous equation to rewrite R0

R0=4ρ0Lπd2

Rewrite the above equation in terms of d

d=2ρ0LπR0

Is the equation which relates diameter resistance, resistivity and length of wire,

Conclusion: The equation which relates diameter resistance, resistivity and length of wire is d=2ρ0LπR0

(e)

Expert Solution
Check Mark
To determine
The diameter of nichrome wire.

Answer to Problem 48P

The diameter of nichrome wire is 3.78×104m

Explanation of Solution

Given Info: 250.0g of water is heated from 20.0°C to 100.0°C in 4 minutes. The heater with nichrome resistor is connected to 120V supply. The length of nichrome wire is 3.00m

Explanation:

Formula to calculate the length of nichrome wire is,

d=2ρ0LπR0

Substitute 150×108Ωm for ρ0 , 3.00m for L , 3.14 for π and 40Ω for R0 in the above equation to find d

d=2(150×108Ωm)(3.00m)(3.14)(40Ω)=3.78×104m

Conclusion: Therefore, the diameter of wire is 3.78×104m

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Chapter 17 Solutions

Bundle: College Physics, Loose-Leaf Version, 11th + WebAssign Printed Access Card for Serway/Vuille's College Physics, 11th Edition, Single-Term

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