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ADAR2004 数据表(PDF) 21 Page - Analog Devices

部件名 ADAR2004
功能描述  10 GHz to 40 GHz, 4-Channel Rx Mixer with 4횞 LO Multiplier/Filter
PDF  37 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADAR2004 数据表(HTML) 21 Page - Analog Devices

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Data Sheet
ADAR2004
Rev. 0 | Page 21 of 37
RECEIVER
RESET
MULTIPLIER
RESET
MULT_STATE_0
RX_STATE_0
SLEEP
MULT: ALL SLEEP
BPF:
N/A
Rx:
ALL CHANNELS
RECEIVER
ADVANCE
MULTIPLIER
ADVANCE
RECEIVER
ADVANCE
MULTIPLIER
ADVANCE
RECEIVER
ADVANCE
MULTIPLIER
ADVANCE
MULTIPLIER
ADVANCE
MULTIPLIER
ADVANCE
MULT_STATE_1
RX_STATE_1
CHANNEL 1
READY
MULT: MID READY
BPF:
N/A
Rx:
ALL CHANNELS
MULT_STATE_2
RX_STATE_2
CHANNEL 1
20GHz TO 25GHz
MULT: MID ACTIVE
BPF:
HIGH
Rx:
ALL CHANNELS
MULT_STATE_3
RX_STATE_2
CHANNEL 1
25GHz TO 30GHz
MULT: HIGH ACTIVE
BPF:
LOW
Rx:
ALL CHANNELS
MULT_STATE_4
RX_STATE_2
CHANNEL 1
30GHz TO 40GHz
MULT: HIGH ACTIVE
BPF:
HIGH
Rx:
ALL CHANNELS
Figure 43. Multiplier State Machine Operating Example for a Frequency Sweep of All Receiver Channels Simultaneously From 20 GHz to 40 GHz (N/A Means Not Applicable)
SEQUENCER SLEEP HOLD
By default, when one of the sequencers is forced asleep using one
of the sleep control bits (MULT_SLP_CTRL or RX_SLP_CTRL),
the counter for the sequencer being controlled can still be
advanced. Because of this behavior, it is possible for a state
machine to be put to sleep in one condition and brought out of
sleep in another, depending on whether the sequencer advance
or reset signals were exercised while the sequencer was sleeping.
If this behavior is undesired, the sleep hold bits
(MULT_SLP_HOLD and RX_SLP_HOLD) can be asserted to
force the associated state machine counter to ignore any inputs
on the sequencer advance line. The counter also ignores advance
signals coming from the SPI.
Note that the counter always responds to a reset signal, even
when the sleep hold bit is high.
When sleep hold is used, take care when bringing the state
machines out of sleep mode to ensure that the desired modes
are reached. If the advance pins for both sequencers are pulsed
too closely together under this condition, it is possible for the
sequencer being controlled to not move into the expected state.
To prevent this issue, stagger the advance pulses so that the
rising edges are separated by a minimum of 3 ns with the pulse
of the controlled sequencer coming second. See Figure 44 for an
example of how to pulse the sequencers under this condition.
≥3ns
MADV
RxADV
RX_SLP_HOLD REGISTER 0x018, BIT 5 = 1
RX_SLP_CTRL REGISTER 0x018, BIT 6 = 1
MULT_SLP_HOLD REGISTER 0x019, BIT 5 = 0
MULT_SLP_CTRL REGISTER 0x019, BIT 6 = 0
Figure 44. Example of How to Pulse the Sequencer Advance Pins to Ensure
Advancement With Receiver State Machine Sleep Hold Enabled
SEQUENCER CONTROL LATCH BYPASS
Typically, when a sequencer control line is pulsed, the upcoming
state is loaded on the rising edge of the control pulse and
latched to the various signal blocks on the falling edge of the
same pulse. The latching helps to line up all the internal control
signals so that the changes take place simultaneously.
It is possible to bypass the latching of the internal control signals by
setting the bypass bits (RX_CTL_LATCH_BYP and
MULT_CTL_LATCH_BYP) in the sequencer setup registers
(Register 0x018, Bit 4 and Register 0x019, Bit 4).
Bypassing the latch results in the new state taking effect as soon
as possible after the rising edge. Because the internal control
signals are not aligned, it is possible that the overall switching
time between states increases when compared to using the latch.
Also, glitches are more likely to occur in the internal control
signals, resulting in undesired transients in the RF blocks.
Note that this latch is the last check before any new data is sent
to the various individual blocks. Therefore, when using the
ADAR2004 in manual or SPI mode (sequencers disabled), the
latching must be bypassed. If the latching is not bypassed, the
blocks do not receive the new instructions unless the external
sequencer pins are pulsed. However, this issue is uncommon
because the sequencers are disabled in this mode of operation.



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