Engineering Electromagnetics
Engineering Electromagnetics
9th Edition
ISBN: 9780078028151
Author: Hayt, William H. (william Hart), Jr, BUCK, John A.
Publisher: Mcgraw-hill Education,
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Chapter 14, Problem 14.1P

A short dipole-carrying current I0 cos ω t in the az direction is located at the origin in free space, (a) If k = 1 rad/m, r = 2 m, θ = 45 ° , ϕ = 0 ° , and t = 0, give a unit vector in rectangular components that shows the instantaneous direction of E. (b) What fraction of the total average power is radiated in the belt, 80 ° < θ < 100 ° ?

Expert Solution
Check Mark
To determine

(a)

A unit vector of electric field that shows the instantaneous direction of E for a short dipole.

Answer to Problem 14.1P

A unit vector of electric field that shows the instantaneous direction of E for a short dipole is EN=0.284ax0.959az.

Explanation of Solution

Given:

k =1 rad/m

r = 2 m

   θ=45°ϕ=0t=0

Concept Used:

In spherical co-ordinate component of electric field is given by,

   Eθs=I0kdη4πrsinθejkr( jkr+1 r 2 +1 jk r 3 )Ers=I0kdη2πrcosθejkr(1 r 2 +1 jk r 3 )

Calculation:

   ER=ejkr(1 r 2 +1 jk r 3 )Eθ=ejkr12( jkr+1 r 2 +1 jk r 3 )

Plugging r =2 in above equations

   ER=ej2(141 j8)ER=14(1.12)ej26.6°ej2Eθ=ejkr(j14+181 j16)Eθ=14(0.90)ej56.3°ej2

Therefore,

Vector EN=ERaR+Eθaθ

Normalize above vector by dividing their magnitude.

   EN=ERaR+EθaθEN=0.780ej141.2°aR+0.627ej58.3°aθ

Converting above equation in real instantaneous form.

   EN(t)=Re(EN(t)ejωt)=0.780cos(ωt141.2°)aR+0.627cos(ωt58.3°)aθ

Hence,

   eN(0)=( 0.608 a R +0.330 a θ ) 0.608 2 + 0.330 2 eN(0)=(0.879aR+0.477aθ)eN(x)=eN(0)ax=(0.879sinθcosϕ+0.477cosθcosϕ)eN(x)=12(0.879+0.477)eN(x)=0.284eN(y)=eN(0)ay=(0.879sinθsinϕ+0.477cosθcosϕ)eN(y)=0eN(z)=eN(0)az=(0.879cosθ0.477sinθ)eN(z)=0.959

at t =0

   eN(0) in rectangular form is,

   eN(0)=0.284ax0.959az

Conclusion:

Therefore, the unit vector of electric field that shows the instantaneous direction of E for a short dipole is 0.284ax0.959az.

Expert Solution
Check Mark
To determine

(b)

The fraction of total average power is radiated in the belt 80°θ100°.

Answer to Problem 14.1P

The fraction of total average power is radiated in the given belt is 0.258.

Explanation of Solution

Given:

   k=2πλ80°θ100°

Concept Used:

   Pavg=I02d2η8λ2r2sin2θW/m2

Calculation:

   Pavg=I02d2η8λ2r2sin2θW/m2

Integrate above equation over the belt.

   Pbelt=02π 80° 100° I 0 2 d 2 η 8 λ 2 r 2 sin 2 θ r 2 sinθdθdϕPbelt=πI02d2η4λ280°100°sin3dθ

Evaluating above integral.

   Pbelt=0.344πI02d2η4λ2

While total power is found by performing the same integral over 0°θ360°.

   Ptotal=1.333πI02d2η4λ2

Therefore, the fraction of the total power is,

   f=0.3441.333f=0.258

Conclusion:

Hence, the fraction of total power radiated to the given belt is 0.258.

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