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ADAR2001ACCZ-R7 Scheda tecnica(PDF) 22 Page - Analog Devices

Il numero della parte ADAR2001ACCZ-R7
Spiegazioni elettronici  10 GHz to 40 GHz, 1:4 Channel, 4횞 Frequency Multiplier/Filter
PDF  39 Pages
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Produttore elettronici  AD [Analog Devices]
Homepage  http://www.analog.com
Logo AD - Analog Devices

ADAR2001ACCZ-R7 Scheda tecnica(HTML) 22 Page - Analog Devices

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ADAR2001
Data Sheet
Rev. 0 | Page 22 of 39
MULTICHIP FREQUENCY AND CHANNEL SWEEP
Figure 34 shows an example of how the two state machines can
be used to perform a multichip frequency and channel sweep
from 10 GHz to 16 GHz (that is, sweep through all four
channels on a single chip while at a fixed frequency range,
move to the next chip to repeat the channel sweep, then move
to the next frequency to repeat the process). This example
assumes that the state machine control lines are connected in
parallel for up to 16 devices (64 channels, see Figure 33).
Initially, pulses on TxRST and MRST put both state machines
in State 0, which in this case, is a sleep mode.
Next, pulses on MADV and TxADV advance both state
machines to their first active state (transmitting on Channel 1
of ADAR2001 IC 1). Additional pulses on the TxADV line are
applied to successively switch through all the transmit channels
of the first ADAR2001.
After all four channels are swept on the first device, an
additional pulse on TxADV activates Channel 1 on ADAR2001
IC 2 while putting the Channel 4 PA on the first chip into a
ready mode to prevent disrupting the multiplier/filter signal
before the PA turns off. This sequence continues until all
64 channels on all 16 ADAR2001 ICs have transmitted at the
first frequency or range.
At that point, a pulse is applied to both MADV and TxADV to
advance the multiplier/filter sequencer to the next frequency
range of interest and set the Channel 1 PA on ADAR2001 IC 1
back into an active mode. Another series of TxADV pulses
follows until the last channel on ADAR2001 IC 16 is
transmitting the new frequency or range.
IC 16
10GHz TO 13GHz
IC 1
10GHz TO 13GHz
MULT_STATE_1
TX_STATE_3
MULT:
BPF:
PA:
LOW ACT
LOW
CH. 3 ACT
MULT_STATE_1
TX_STATE_63
MULT:
BPF:
PA:
LOW ACT
LOW
CH. 3 ACT
MULT_STATE_1
TX_STATE_4
MULT:
BPF:
PA:
LOW ACT
LOW
CH. 4 ACT
MULT_STATE_1
TX_STATE_64
MULT:
BPF:
PA:
LOW ACT
LOW
CH. 4 ACT
MULT_STATE_1
TX_STATE_2
MULT:
BPF:
PA:
LOW ACT
LOW
CH. 2 ACT
MULT_STATE_1
TX_STATE_62
MULT:
BPF:
PA:
LOW ACT
LOW
CH. 2 ACT
Tx
ADVANCE
MULT
ADV
Tx
ADVANCE
Tx
ADVANCE
MULT_STATE_1
TX_STATE_61
MULT:
BPF:
PA:
LOW ACT
LOW
CH. 1 ACT
MULT_STATE_1
TX_STATE_1
MULT:
BPF:
PA:
LOW ACT
LOW
CH. 1 ACT
IC 1
13GHz TO 16GHz
MULT_STATE_2
TX_STATE_1
MULT:
BPF:
PA:
LOW ACT
HIGH
CH. 1 ACT
MULT_STATE_2
TX_STATE_3
MULT:
BPF:
PA:
LOW ACT
HIGH
CH. 3 ACT
MULT_STATE_2
TX_STATE_4
MULT:
BPF:
PA:
LOW ACT
HIGH
CH. 4 ACT
MULT_STATE_2
TX_STATE_2
MULT:
BPF:
PA:
LOW ACT
HIGH
CH. 2 ACT
IC 16
13GHz TO 16GHz
MULT_STATE_2
TX_STATE_63
MULT:
BPF:
PA:
LOW ACT
HIGH
CH. 3 ACT
MULT_STATE_2
TX_STATE_64
MULT:
BPF:
PA:
LOW ACT
HIGH
CH. 4 ACT
MULT_STATE_2
TX_STATE_62
MULT:
BPF:
PA:
LOW ACT
HIGH
CH. 2 ACT
MULT_STATE_2
TX_STATE_61
MULT:
BPF:
PA:
LOW ACT
HIGH
CH. 1 ACT
......
......
MULTIPLIER
RESET
ANY
ADDITIONAL
MULTIPLIER
BANDS
MULT_STATE_0
TX_STATE_0
MULT: ALL SLEEP
BPF: N/A
PA: ALL SLEEP
SLEEP
Tx
RESET
MULTIPLIER
ADVANCE
TX
ADVANCE
Tx
ADVANCE
Tx
ADVANCE
Tx
ADVANCE
Tx
ADVANCE
Tx
ADVANCE
Tx
ADVANCE
Tx
ADVANCE
Tx
ADVANCE
Tx
ADVANCE
Tx
ADVANCE
Tx
ADVANCE
MULT
ADVANCE
Tx
ADVANCE
Tx
ADVANCE
Figure 34. State Machine Loop Example for a 16-Chip Frequency and Channel Sweep



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