COLLEGE PHYSICS,V.2
COLLEGE PHYSICS,V.2
11th Edition
ISBN: 9781305965522
Author: SERWAY
Publisher: CENGAGE L
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Chapter 17, Problem 68AP

A man wishes to vacuum his car with a canister vacuum cleaner marked 535 W at 120. V. The car is parked far from the building, so he uses an extension cord 15.0 m long to plug the cleaner into a 120.-V source. Assume the cleaner has constant resistance. (a) If the resistance of each of the two conductors of the extension cord is 0.900 Ω, what is the actual power delivered to the cleaner? (b) If, instead, the power is to be at least 525 W, what must be the diameter of each of two identical copper conductors in the cord the young man buys? (c) Repeat part (b) if the power is to be at least 532 W. Suggestion: A symbolic solution can simplify the calculations.

(a)

Expert Solution
Check Mark
To determine
The actual power delivered to vacuum cleaner.

Answer to Problem 68AP

The actual power delivered to vacuum cleaner is 470W

Explanation of Solution

Given Info: A vacuum cleaner utilizes 535W power when connected to 120V supply. The extension cord from vacuum cleaner which used to clean the car consists of two conducting wires. The total length of extension cord is 15.0m . The resistance of each conductor is 0.900Ω .

Explanation:

Formula to calculate the total current in the circuit is,

I=ΔVRtotal (I)

  • I is the current in the circuit,
  • ΔV is the voltage of power supply,
  • Rtotal is the total resistance in the path of current,

Formula to calculate the total resistance in the path of current is,

Rtotal=Rvaccum+2Rc (II)

  • Rvaccum is the resistance offered by the vacuum cleaner,
  • Rc is the resistance offered by each conductor in the extension cord,

Formula to calculate the resistance offered by vacuum cleaner is,

Rvaccum=(ΔV)2P (III)

  • P is the rated power of vacuum cleaner,

Substitute equation (III) in equation (II) and rewrite equation (II).

Rtotal=(ΔV)2P+2Rc (IV)

Substitute equation (IV) in equation (I) and rewrite equation (I).

I=ΔV((ΔV)2P+2Rc)

Substitute 120V for ΔV , 535W for P and 0.900Ω for Rc in the above equation to find I .

I=120V(((120V)2535W)+2(0.900Ω))=4.18A

The total current in the circuit is 4.18A

Conclusion

Formula to calculate the actual power delivered to vacuum cleaner is,

Pdelivered=I2Rvaccum (V)

  • Pdelivered is the actual power delivered to vacuum cleaner

Formula to calculate the resistance offered by vacuum cleaner is,

Rvaccum=(ΔV)2P

Use (ΔV)2/P the above equation for Rvaccum in the above equation to rewrite P .

Pdelivered=I2(ΔV)2P

Substitute 4.18A for I , 120V for ΔV and 535W for P in the above equation to find P .

P=(4.18A)2((120V)2535W)=470.28W470W

Therefore, the actual power delivered to vacuum cleaner is 470W

(b)

Expert Solution
Check Mark
To determine
The diameter of each of identical copper wire in the extension cord when minimum power is 525W .

Answer to Problem 68AP

The diameter of each of identical copper wire in the extension cord is 1.59×103m

Explanation of Solution

Given Info: A vacuum cleaner utilizes 535W power when connected to 120V supply Vacuum cleaner utilizes at least 525W power. The extension cord from vacuum cleaner which used to clean the car consists of two conducting wires. The total length of extension cord is 15.0m .

Explanation:

Formula to calculate the actual minimum power delivered to vacuum cleaner is,

Pmin=I2Rvaccum

  • Pmin is the minimum acceptable power delivered to vacuum cleaner,

Use (ΔV/Rtotal) for I and ((ΔV)2/P) for Rvaccum to rewrite Pdelivered .

Pmin=(ΔVRtotal)2((ΔV)2P)

Rewrite the above equation in terms of Rtotal

Rtotal=(ΔV)2PminP (VI)

Equate (IV) and equation (VI)

(ΔV)2P+2Rc=(ΔV)2PminP

Use Rc,max for Rc in the above relation to rewrite it.

  • Rc,max is the maximum value of resistance of wire when power delivered to vacuum cleaner is minimum.

Rc,max=12[(ΔV)2PminP(ΔV)2P]Rc,max=(ΔV)22[1PminP1P]

Substitute 120V for ΔV , 525W for Pmin and 535W for P in the above equation to find Rc,max .

Rc,max=(120V)22[1(525W)(535W)1(535W)]=0.1276Ω0.128Ω

The maximum resistance of copper wire is 0.128Ω .

Conclusion:

Formula to calculate the diameter of copper wire is,

d=4ρLπRc,max

  • d is the diameter of copper wire,
  • L is the length of each copper wire,
  • ρ is the resistivity of copper,

Substitute 1.7×108Ω.m for ρ , 15.0m for L , 3.14 for π and 0.128Ω for Rc,max in the above equation to find d .

d=4(1.7×108Ω.m)(15.0m)(3.14)(0.128Ω)=1.59×103m=1.59mm

Therefore, the diameter of each of identical copper wire in the extension cord is 1.59mm

(c)

Expert Solution
Check Mark
To determine
The diameter of each of identical copper wire in the extension cord when minimum power is 532W .

Answer to Problem 68AP

The diameter of each of identical copper wire in the extension cord is 2.93mm .

Explanation of Solution

Formula to find the maximum resistance of copper wire is,

Rc,max=(ΔV)22[1PminP1P]

Substitute 120V for ΔV , 532W for Pmin and 535W for P in the above equation to find Rc,max .

Rc,max=(120V)22[1(532W)(535W)1(535W)]=0.03789Ω0.0379Ω

Formula to calculate the diameter of copper wire is,

d=4ρLπRc,max

Substitute 1.7×108Ω.m for ρ , 15.0m for L 3.14 for π and 0.0379Ω for Rc,max in the above equation to find d .

d=4(1.7×108Ω.m)(15.0m)(3.14)(0.0379Ω)=2.93×103m=2.93mm

Conclusion:

Therefore, the diameter of each of identical copper wire in the extension cord is 2.93mm .

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Chapter 17 Solutions

COLLEGE PHYSICS,V.2

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