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How long does it take electrons to get from a car battery to the starting motor? Assume the current is 300 Aand the electrons travel through a copper wire with cross-sectional area0.21cm2and length 0.85 m. The number of charge carriers per unit volume is8.49×1028m-3.

Short Answer

Expert verified

The time required by the electrons to get from a car battery to the starting motor is8.1×102s .

Step by step solution

01

The given data

a) Current, i = 300A

b) Cross-sectional area of copper wire,A=0.21cm2or0.21×10-4m2

c) Length of copper wire,L=0.85m

d) Concentration of charge carriers,n=8.49×1028m-3

02

Understanding the concept of the current density

The current density is the current across the unit area at a given point in the conductor. We have to use the relation between drift velocity and current density to find the required time.

Formulae:

The current density relation to the drift velocity,J=nevd ...(i)

Where, v is the speed of protons and n is the concentration of protons and e is the charge value.

The current density for the current flowing through an area,J=iA ...(ii)

Where, i is current flowing through the motor, A is the cross sectional area

The speed of a body in motion,vd=Lt ...(iii)

Where, L is the length of copper wire and t is the time taken by the electrons to get the motor started

03

Calculation of the required time by the electrons

Substituting the given data and the values of speed and current density from equations (iii) and (ii) in equation (i), we can get the value of the required time taken by the electrons to get the motor started as follows:

t=neALi=8.49×1028m-31.6×10-19C0.21×10-4m20.85m300A=242474.4300s=808.248s=8.082×102sec≈8.1×102sec

Hence, the value of the required time is 8.1×102sec.

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Most popular questions from this chapter

Figure-ashows a rod of resistive material. The resistance per unit length of the rod increases in the positive direction of the xaxis. At any position xalong the rod, the resistancedRof a narrow (differential) section of width dxis given by dR = 5.00 xdx, whereis in ohms and xis in meters. Figure-bshows such a narrow section. You are to slice off a length of the rod between x = 0 and some positionx = Land then connect that length to a battery with potential difference V = 5.0V(Figure-c). You want the current in the length to transfer energy to thermal energy at the rate of 200 W. At what position x = Lshould you cut the rod?

A certain wire has a resistance R. What is the resistance of a second wire, made of the same material, that is half as long and has half the diameter?

A small but measurable current of1.2×10-10Aexists in a copper wire whose diameter is 2.5 mm.The number of charge carriers per unit volume is8.49×1028m-3. Assuming the current is uniform, calculate the (a) current density and (b) electron drift speed.

Figure 26-16 shows cross sections through three wires of identical length and material; the sides are given in millimeters. Rank the wires according to their resistance (measured end to end along each wire’s length), greatest first.

Figure 26-15 shows cross sections through three long conductors of the same length and material, with square cross sections of edge lengths as shown. Conductor Bfits snugly within conductor A, and conductor Cfits snugly within conductor B. Rank the following according to their end-to-end resistances, greatest first: the individual conductors and the combinations of A+B(Binside A),B+C(Cinside B), and A+B+C(Binside Ainside C).

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