Electronics and Communication Engineering - Communication Systems - Discussion
Discussion Forum : Communication Systems - Section 2 (Q.No. 13)
13.
In a AM wave the carrier and one of the side bands is suppressed. If m = 0.5, the percentage saving in power is
Answer: Option
Explanation:
.
Discussion:
11 comments Page 1 of 2.
Mahi said:
4 years ago
@Dkpanda.
It's awesome. Thank you.
It's awesome. Thank you.
Dkpanda said:
7 years ago
Assume,
Pt(AM)=100W,
FOR AM, Pt(AM)=Pc(1+m^2/2),
Put the value of m and get Pc,
FOR SSBC,Pt(ssbc) =Pc(m^2/4),
Pt(AM) - Pt(ssbc) = 94.4%.
Pt(AM)=100W,
FOR AM, Pt(AM)=Pc(1+m^2/2),
Put the value of m and get Pc,
FOR SSBC,Pt(ssbc) =Pc(m^2/4),
Pt(AM) - Pt(ssbc) = 94.4%.
(1)
Rakesh said:
7 years ago
@Bharath.
Where have you subtracted carrier power?
Where have you subtracted carrier power?
Pihu said:
9 years ago
Can anyone have a simple solution for this?
(1)
Bharat & Kunal said:
9 years ago
When m = 0.5 total power is given by Pt(total power) = pc(power of carrier) * (1 + m^2/2).
= Pc(1 + (0.5)^2/2) = 1.125Pc.
One sideband power:
Psb = Pc.m^2/4.
= Pc(0.5)^2/4 = 0.0625Pc.
Savings In power:
(1.125 - 0.0625)/1.125.
= 94.4%
= Pc(1 + (0.5)^2/2) = 1.125Pc.
One sideband power:
Psb = Pc.m^2/4.
= Pc(0.5)^2/4 = 0.0625Pc.
Savings In power:
(1.125 - 0.0625)/1.125.
= 94.4%
(3)
Makih Sarmiento said:
9 years ago
You can use this formula.
P@carrier = Pc.
P@uppersideband = (Pc*m^2)/4.
P@lowersideband = (Pc*m^2)/4.
Then assign values and do the relationship and then compare it to a Double Sideband Full Carrier.
Like this:
Let: Pc = 10.
m = 0.5.
**We are gonna solve for the Power of DSBFC**
P@carrier = Pc = 10.
P@uppersideband = (Pc*m^2)/4 = .625.
P@lowersideband = (Pc*m^2)/4 = .625.
Total Power DSBFC = 10+.625+.625= 11.25.
**Now, let's solve the AM Wave given by the problem: Single Sideband Suppressed Carrier.
P@carrier = 0, because it is suppressed.
P@uppersideband = (Pc*m^2)/4 = .625.
P@lowersideband = 0, because it is suppressed.
Total Power SSBSC = .625.
Now to solve the total power % that was saved.
Total Power SSBSC/Total Power DSBFC.
.625/11.25 = .0555555555555556.
1-.0555555555555556 = .94444444444444.
.94444444444444x100 = 94.44%.
P@carrier = Pc.
P@uppersideband = (Pc*m^2)/4.
P@lowersideband = (Pc*m^2)/4.
Then assign values and do the relationship and then compare it to a Double Sideband Full Carrier.
Like this:
Let: Pc = 10.
m = 0.5.
**We are gonna solve for the Power of DSBFC**
P@carrier = Pc = 10.
P@uppersideband = (Pc*m^2)/4 = .625.
P@lowersideband = (Pc*m^2)/4 = .625.
Total Power DSBFC = 10+.625+.625= 11.25.
**Now, let's solve the AM Wave given by the problem: Single Sideband Suppressed Carrier.
P@carrier = 0, because it is suppressed.
P@uppersideband = (Pc*m^2)/4 = .625.
P@lowersideband = 0, because it is suppressed.
Total Power SSBSC = .625.
Now to solve the total power % that was saved.
Total Power SSBSC/Total Power DSBFC.
.625/11.25 = .0555555555555556.
1-.0555555555555556 = .94444444444444.
.94444444444444x100 = 94.44%.
Jyoti said:
10 years ago
This signal is ssb-sc. Because a carrier & one side band is absent.
Formula for power saving: p= 4+m^2/4+2m^2*100
Where m=modulation index.
Formula for power saving: p= 4+m^2/4+2m^2*100
Where m=modulation index.
Uddin said:
10 years ago
But Psb = pc(m2/2) not psb = pc m2/4 = pc (.5*.5)/4 = 0.0625 pc.
Karthika said:
1 decade ago
pt= pc(1+m2/2)= pc(1+(.5*.5)/2)= 1.125 pc.
psb =pc m2/4 = pc (.5*.5)/4 = 0.0625 pc.
% power saving = (1.125-0.0625)/1.125 = 94.44%.
psb =pc m2/4 = pc (.5*.5)/4 = 0.0625 pc.
% power saving = (1.125-0.0625)/1.125 = 94.44%.
Subashini said:
1 decade ago
Explain in details.
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