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Appendix
Appendix 2 Time Domain Measurement
349
Fig. 2.20 Low-pass Step Measurement Results of Different Cables
2) Left measurement: refer to the capacitive breaking point of the response of the coiled cable.
3) Right measurement: refer to the inductive breaking point of the response of the worn cable.
2.5.6 Transmission Measurement of Low-pass Mode
2.5.6.1 Data on Horizontal Axis
1) Average time through the device within one frequency range.
2) Electrical delay of one device over time.
2.5.6.2 Data on Vertical Axis
1) Refer to the real unit (such as the voltage) in the REAL mode.
2) Refer to the transmission loss or gain (dB) in the LOGMAG mode (only for the pulse).
The following figure shows the low-pass step response of the amplifier.
1) The average group delay within the whole measurement frequency range varies with the time for the step
response and amplifier response.
2) The stepping time of frequency range sweep refers to the balanced time to reach to the highest frequency point.
The higher the frequency is, the shortest the rising time is.
3) One suppression signal appears in the rise of the amplifier response.
Fig. 2.21 Low-pass Step Measurement Result of Amplifier
Prompt
Application scope of vertical axis format:
The REAL (radiation coefficient) mode is the most usable for the low-pass step response. It can be applied for the
pulse response. In order to obtain the best dynamic range of the large or small breaking point which can be
Summary of Contents for AV3672 Series
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Page 4: ...AV3672 Series Vector Network Analyzer Contents...
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Page 124: ...5 Menu 5 1 Menu structure 120 5 1 2 Track Fig 5 2 Track Menu...
Page 125: ...5 Menu 5 1 Menu structure 121 5 1 3 Channel Fig 5 3 Channel Menu...
Page 126: ...5 Menu 5 1 Menu structure 122 5 1 4 Excitation Fig 5 4 Excitation Menu I...
Page 127: ...5 Menu 5 1 Menu structure 123 Fig 5 5 Excitation Menu II...
Page 128: ...5 Menu 5 1 Menu structure 124 Fig 5 6 Excitation Menu III...
Page 129: ...5 Menu 5 1 Menu structure 125 5 1 5 Response Fig 5 7 Response Menu I...
Page 130: ...5 Menu 5 1 Menu structure 126 Fig 5 8 Repsonse Menu II...
Page 131: ...5 Menu 5 1 Menu structure 127 Fig 5 9 Response Menu III...
Page 132: ...5 Menu 5 1 Menu structure 128 Fig 5 10 Response Menu V Fig 5 11 Response IV...
Page 133: ...5 Menu 5 1 Menu structure 129 5 1 6 Calibration Fig 5 12 Calibration Menu...
Page 134: ...5 Menu 5 1 Menu structure 130 5 1 7 Marker Fig 5 13 Cursor Menu I...
Page 135: ...5 Menu 5 1 Menu structure 131 Fig 5 13 Cursor Menu II...
Page 136: ...5 Menu 5 1 Menu structure 132 Fig 5 15Marker Menu III...
Page 137: ...5 Menu 5 1 Menu structure 133 5 1 8 Analysis Fig 5 16 Analysis Menu I...
Page 138: ...5 Menu 5 1 Menu structure 134 Fig 5 17 Analysis Menu II...
Page 139: ...5 Menu 5 1 Menu structure 135 Fig 5 18 Analysis Menu III...
Page 140: ...5 Menu 5 1 Menu structure 136 5 1 9 System Fig 5 19 System Menu I...
Page 141: ...5 Menu 5 1 Menu structure 137 Fig 5 20 System Menu I...
Page 254: ...8 Basis of Network Measurement 8 3 Amplifier Parameter Specifications 250...
Page 257: ...8 Basis of Network Measurement 8 4 Complex Impedance 253...
Page 373: ...Appendix Appendix 4 Pulse Measurement 369 Fig 4 9 Receiver gain configuration Dialog Box...