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Standing waves
         With a mismatched line there are
two EM waves travelling in opposite directions
at the same time (travelling waves). The two
waves set up an interference pattern known
as standing waves.
Standing waves
Standing Waves on an open line
Characteristics of transmission line
            terminated in open
• Voltage incident wave is reflected back just as
  if it were to continue
• Current incident wave is reflected back 180o
  from how it would have continued
• The sum of incident and reflected current
  waveform is minimum at the open.
• The sum of incident and reflected voltage
  waveform is maximum at the open
Incident and Reflected waves on a transmission line
           terminated in an open circuit
Incident and Reflected waves on a transmission
       line terminated in an open circuit
Incident and Reflected waves on a transmission
       line terminated in an open circuit
Incident and Reflected waves on a transmission
       line terminated in an open circuit
Standing Waves on an open line
• Voltage and current standing Wave repeats every
  one-half wavelength.
• Impedance at open end
  Z= Vmax / Imin
   and is maximum
• Impedance at one-quarter wavelength from open
  end
  Z= Vmin / Imax
   and is minimum
Standing Waves on an shorted line
Characteristics of transmission line
         terminated in short
• Voltage incident wave is reflected back 180o
  from how it would have continued
• Current incident wave is reflected in same
  manner as if it had continued.
• The sum of incident and reflected current
  waveform is maximum at the short.
• The sum of incident and reflected voltage
  waveform is minimum at the short.
Standing Waves on an short line
• Voltage and current standing Wave repeats every
  one-half wavelength.
• Impedance at short end
  Z= Vmin / Imax
   and is minimum
• Impedance at one-quarter wavelength from short
  end
  Z= Vmax / Imin
   and is maximum
Transmission line terminated in either
  open or short circuit,
• reflection coefficient is 1
• SWR is infinity

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SWR

  • 1. Standing waves With a mismatched line there are two EM waves travelling in opposite directions at the same time (travelling waves). The two waves set up an interference pattern known as standing waves.
  • 3. Standing Waves on an open line
  • 4. Characteristics of transmission line terminated in open • Voltage incident wave is reflected back just as if it were to continue • Current incident wave is reflected back 180o from how it would have continued • The sum of incident and reflected current waveform is minimum at the open. • The sum of incident and reflected voltage waveform is maximum at the open
  • 5. Incident and Reflected waves on a transmission line terminated in an open circuit
  • 6. Incident and Reflected waves on a transmission line terminated in an open circuit
  • 7. Incident and Reflected waves on a transmission line terminated in an open circuit
  • 8. Incident and Reflected waves on a transmission line terminated in an open circuit
  • 9. Standing Waves on an open line • Voltage and current standing Wave repeats every one-half wavelength. • Impedance at open end Z= Vmax / Imin and is maximum • Impedance at one-quarter wavelength from open end Z= Vmin / Imax and is minimum
  • 10. Standing Waves on an shorted line
  • 11. Characteristics of transmission line terminated in short • Voltage incident wave is reflected back 180o from how it would have continued • Current incident wave is reflected in same manner as if it had continued. • The sum of incident and reflected current waveform is maximum at the short. • The sum of incident and reflected voltage waveform is minimum at the short.
  • 12. Standing Waves on an short line • Voltage and current standing Wave repeats every one-half wavelength. • Impedance at short end Z= Vmin / Imax and is minimum • Impedance at one-quarter wavelength from short end Z= Vmax / Imin and is maximum
  • 13. Transmission line terminated in either open or short circuit, • reflection coefficient is 1 • SWR is infinity