參數(shù)資料
型號: NWK933
廠商: Mitel Networks Corporation
英文描述: 3.3V 10/100 Fast Ethernet Transceiver to MII
中文描述: 3.3 10/100快速以太網(wǎng)收發(fā)器,以信息產(chǎn)業(yè)部
文件頁數(shù): 5/18頁
文件大?。?/td> 141K
代理商: NWK933
5
NWK933
100Mb/s Receive Errors
When there is no data on the cable, the receiver will
see only the idle code of scrambled 1’s. If a non idle
symbol is detected, the receiver looks for the SSD so
that it can align the incoming message for decoding.
If any 2 non consecutive zeros are detected within 10
bits, but are not the SSD symbols a false carrier
indication is signalled to the MII by asserting RX_ER
and setting RXD[3:0] to 1110 whilst keeping RX_DV
inactive. The remainder of the message is ignored
until 10 bits of 1’s are detected.
If any data is decoded after a SSD which is neither a
valid data code nor an ESD, then an error is flagged
by setting RX_ER active whilst the RX_DV signal is
active. This also happens if 2 idle codes are detected
before a valid ESD has been received or descramble
synchronisation is lost during packet reception. The
states of RX_DV and RX_ER are summarised in
Figure 4. RX_ER is clocked on the falling edge of
RX_CLK, and will remain active for at least 1 period
of RX_CLK.
RX_DV RX_ER
RXD [3:0]
Indication
0
0
0000 through 1111
Normal inter frame
0
1
1110
False carrier indication
1
0
0000 through 1111
Normal data reception
1
1
0101 or 0110
Data reception with errors
Figure 4. 100Mb/s receive error states
CONTROLS
Initialization, mode selection and other options are
governed by the control inputs and register as
described in the following paragraphs.
TX_EN TX_ER
TXD [3:0]
Indication
0
X
ignored
Normal inter frame data
1
0
0000 through 1111
Normal data transmission
1
1
0000 through 1111
Transmit error propagation
Figure 3. 100Mb/s Transmit Error States
Initialization (RESET_N)
The NWK933 incorporates a power-on-reset circuit
for self-initialization on power-up. During initialization
the open-drain RESET_N pin is driven low and all
data outputs are disabled to prevent spurious outputs
to the twisted-pair and to the MII interface. RESET_N
will remain low until the power supply has been stable
for at least 400ns. The NWK933 will then release
RESET_N allowing the external pull-up to pull the pin
high. Device initialisation will not commence until
RESET_N is high. This allows the user to extend the
inactive period by externally holding RESET_N low.
It will not normally be necessary for the user to reset
the NWK933 because it is designed to automatically
recover from fault conditions. However, if required,
the user may initialize the device by doing a hardware
or software reset.
Reset Mode
There are two types of reset in the NWK933 - hardware
and software. The hardware reset is activated by
setting the RESET_N pin to logic 0, and holding it low
for at least 100ns. This mode causes an over-all reset
in the NWK933 - both analog and digital circuitry are
reset. Whilst RESET_N is low, the SPDST and FDST
pins are inputs, and are used to determine the speed
and duplex capability which will be advertised during
auto-neg. A low on SPDST advertises 100M capability.
A high on FDST advertises full duplex capability.
The software reset is activated by setting bit 15 in
register 0 high. This bit is a self clear bit and causes
a partial reset of the device.
Figure 5 summarises the different blocks to be reset
and which reset will affect them:
Block
HW Reset
SW reset
management register
yes
yes
PCS state machine (RCV,
yes
yes
XMT, ANEG)
XMT scrambler
yes
yes
RCV scramble
yes
yes
control state machine
yes
No
analog
yes
No
Figure 5. Effects of Reset
Note:
Holding RESET_N low will hold the device in a static,
low power state.
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