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Электронный компонент: MT8980D-1

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2-3
Features
Mitel ST-BUS compatible
8-line x 32-channel inputs
8-line x 32-channel outputs
256 ports non-blocking switch
Single power supply (+5 V)
Low power consumption: 30 mW Typ.
Microprocessor-control interface
Three-state serial outputs
Description
This VLSI ISO-CMOS device is designed for
switching PCM-encoded voice or data, under
microprocessor control, in a modern digital
exchange, PBX or Central Office. It provides
simultaneous connections for up to 256 64 kbit/s
channels. Each of the eight serial inputs and outputs
consist of 32 64 kbit/s channels multiplexed to form a
2048 kbit/s ST-BUS stream. In addition, the MT8980
provides microprocessor read and write access to
individual ST-BUS channels.
Figure 1 - Functional Block Diagram
STo0
STo1
STo2
STo3
STo4
STo5
STo6
STo7
Serial
to
Parallel
Converter
Data
Memory
Frame
Counter
Control Register
Control Interface
Output
MUX
Connection
Memory
Parallel
to
Serial
Converter
CS R/W A5/
A0
DTA D7/
D0
CSTo
C4i
F0i
V
DD
V
SS
ODE
STi0
STi1
STi2
STi3
STi4
STi5
STi6
STi7
DS
ISSUE8
March 1997
MT8980D
Digital Switch
ISO-CMOS ST-BUS
TM
FAMILY
Ordering Information
MT8980DE
40 Pin Plastic DIP
MT8980DP
44 Pin PLCC
-40
C to +85
C
MT8980D
2-4
Figure 2 - Pin Connections
Pin Description
Pin #
Name
Description
40
DIP
44
PLCC
1
2
DTA
Data Acknowledgement (Open Drain Output). This is the data acknowledgement on the
microprocessor interface. This pin is pulled low to signal that the chip has processed the
data. A 909
, 1/4W, resistor is recommended to be used as a pullup.
2-4
3-5
STi0-
STi2
ST-BUS Input 0 to 2 (Inputs). These are the inputs for the 2048 kbit/s ST-BUS input
streams.
5-9
7-11
STi3-
STi7
ST-BUS Input 3 to 7 (Inputs). These are the inputs for the 2048 kbit/s ST-BUS input
streams.
10
12
V
DD
Power Input. Positive Supply.
11
13
F0i
Framing 0-Type (Input). This is the input for the frame synchronization pulse for the
2048 kbit/s ST-BUS streams. A low on this input causes the internal counter to reset on
the next negative transition of C4i.
12
14
C4i
4.096 MHz Clock (Input). ST-BUS bit cell boundaries lie on the alternate falling edges of this
clock.
13-
15
15-
17
A0-A2 Address 0 to 2 (Inputs). These are the inputs for the address lines on the microprocessor
interface.
16-
18
19-
21
A3-A5 Address 3 to 5 (Inputs). These are the inputs for the address lines on the microprocessor
interface.
19
22
DS
Data Strobe (Input). This is the input for the active high data strobe on the microprocessor
interface.
20
23
R/W
Read or Write (Input). This is the input for the read/write signal on the microprocessor
interface - high for read, low for write.
21
24
CS
Chip Select (Input). This is the input for the active low chip select on the microprocessor
interface
1
6
5
4
3
2
44
43
42
41
40
7
8
9
10
11
12
13
14
15
16
39
38
37
36
35
34
33
32
31
30
23
18
19
20
21
22
24
25
26
27
28
17
29
STi3
STi4
STi5
STi6
STi7
VDD
F0i
C4i
A0
A1
A2
STo3
STo4
STo5
STo6
STo7
VSS
D0
D1
D2
D3
D4
NC
STi1
DTA
ODE
STo1
NC
NC
A4
DS
CS
D6
NC
A3
A5
R/
W
D7
D5
44 PIN PLCC
DTA
STi0
STi1
STi2
STi3
STi4
STi5
STi6
STi7
VDD
F0i
C4i
A0
A1
A2
A3
A4
A5
DS
CSTo
ODE
STo0
STo1
STo2
STo3
STo4
STo5
STo6
STo7
VSS
D0
D1
D2
D3
D4
D5
D6
D7
CS
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
1
R/W
40
39
38
37
36
35
34
33
32
31
30
29
28
27
26
25
24
23
22
21
40 PIN PLASTIC DIP
STi2
STi0
CSTo
STo0
STo2
MT8980D
2-5
22-
24
25-
27
D7-D5 Data 7 to 5 (Three-state I/O Pins). These are the bidirectional data pins on the
microprocessor interface.
25-
29
29-
33
D4-D0 Data 4 to 0 (Three-state I/O Pins). These are the bidirectional data pins on the
microprocessor interface.
30
34
V
SS
Power Input. Negative Supply (Ground).
31-
35
35-
39
STo7-
STo3
ST-BUS Output 7 to 3 (Three-state Outputs). These are the pins for the eight 2048
kbit/s ST-BUS output streams.
36-
38
41-
43
STo2-
STo0
ST-BUS Output 2 to 0 (Three-state Outputs). These are the pins for the eight 2048
kbit/s ST-BUS output streams.
39
44
ODE Output Drive Enable (Input). If this input is held high, the STo0-STo7 output drivers function
normally. If this input is low, the STo0-STo7 output drivers go into their high impedance state.
NB: Even when ODE is high, channels on the STo0-STo7 outputs can go high impedance
under software control.
40
1
CSTo Control ST-BUS Output (Complementary Output). Each frame of 256 bits on this ST-BUS
output contains the values of bit 1 in the 256 locations of the Connection Memory High.
6, 18,
28,
40
NC
No Connection.
Pin Description (continued)
Pin #
Name
Description
40
DIP
44
PLCC
MT8980D
2-6
Functional Description
In recent years, there has been a trend in telephony
towards digital switching, particularly in association
with software control. Simultaneously, there has
been a trend in system architectures towards
distributed processing or multi-processor systems.
In accordance with these trends, MITEL has devised
the ST-BUS (Serial Telecom Bus). This bus
architecture can be used both in software-controlled
digital voice and data switching, and for
interprocessor communications. The uses in
switching and in interprocessor communications are
completely integrated to allow for a simple general
purpose architecture appropriate for the systems of
the future.
The serial streams of the ST-BUS operate
continuously at 2048 kbit/s and are arranged in 125
s wide frames which contain 32 8-bit channels.
MITEL manufactures a number of devices which
interface to the ST-BUS; a key device being the
MT8980 chip.
The MT8980 can switch data from channels on ST-
BUS inputs to channels on ST-BUS outputs, and
simultaneously allows its controlling microprocessor
to read channels on ST-BUS inputs or write to
channels on ST-BUS outputs (Message Mode). To
the microprocessor, the MT8980 looks like a memory
peripheral. The microprocessor can write to the
MT8980 to establish switched connections between
input ST-BUS channels and output ST-BUS
channels, or to transmit messages on output ST-BUS
channels. By reading from the MT8980, the
microprocessor can receive messages from ST-BUS
input channels or check which switched connections
have already been established.
By integrating both switching and interprocessor
communications, the MT8980 allows systems to use
distributed processing and to switch voice or data in
an ST-BUS architecture.
Hardware Description
Serial data at 2048 kbit/s is received at the eight ST-
BUS inputs (STi0 to STi7), and serial data is
transmitted at the eight ST-BUS outputs (STo0 to
STo7). Each serial input accepts 32 channels of
digital data, each channel containing an 8-bit word
which may represent a PCM-encoded analog/voice
sample as provided by a codec (e.g., MITEL's
MT8964).
This serial input word is converted into parallel data
and stored in the 256 X 8 Data Memory. Locations in
the Data Memory are associated with particular
channels on particular ST-BUS input streams. These
locations can be read by the microprocessor which
controls the chip.
Locations in the Connection Memory, which is split
into high and low parts, are associated with
particular ST-BUS output streams. When a channel
is due to be transmitted on an ST-BUS output, the
data for the channel can either be switched from an
ST-BUS input or it can originate from the
microprocessor. If the data is switched from an
input, then the contents of the Connection Memory
Low location associated with the output channel is
used to address the Data Memory. This Data
Memory address corresponds to the channel on the
input ST-BUS stream on which the data for switching
arrived. If the data for the output channel originates
from the microprocessor (Message Mode), then the
contents of the Connection Memory Low location
associated with the output channel are output
directly, and this data is output repetitively on the
channel once every frame until the microprocessor
intervenes.
The Connection Memory data is received, via the
Control Interface, at D7 to D0. The Control Interface
also receives address information at A5 to A0 and
handles the microprocessor control signals CS,
DTA, R/W and DS. There are two parts to any
address in the Data Memory or Connection Memory.
Figure 3- Address Memory Map
A5
A4
A3
A2
A1
A0
HEX ADDRESS
LOCATION
0
1
1


1
X
0
0


1
X
0
0


1
X
0
0


1
X
0
0


1
X
0
1


1
00 - 1F
20
21


3F
Control Register *
Channel 0
Channel 1


Channel 31
* Writing to the Control Register is the only fast transaction.
Memory and stream are specified by the contents of the Control Register.
MT8980D
2-7
The higher order bits come from the Control
Register, which may be written to or read from via
the Control Interface. The lower order bits come
from the address lines directly.
The Control Register also allows the chip to
broadcast messages on all ST-BUS outputs (i.e., to
put every channel into Message Mode), or to split the
memory so that reads are from the Data Memory
and writes are to the Connection Memory Low. The
Connection Memory High determines whether
individual output channels are in Message Mode,
and allows individual output channels to go into a
high-impedance state, which enables arrays of
MT8980s to be constructed. It also controls the
CSTo pin.
All ST-BUS timing is derived from the two
signals C4i and F0i.
Software Control
The address lines on the Control Interface give
access to the Control Register directly or, depending
on the contents of the Control Register, to the High
or Low sections of the Connection Memory or to the
Data Memory.
If address line A5 is low, then the Control Register is
addressed regardless of the other address lines (see
Fig. 3). If A5 is high, then the address lines A4-A0
select the memory location corresponding to channel
0-31 for the memory and stream selected in the
Control Register.
The data in the Control Register consists of mode
control bits, memory select bits, and stream address
bits (see Fig. 4). The memory select bits allow the
Connection Memory High or Low or the Data
Memory to be chosen, and the stream address bits
define one of the ST-BUS input or output streams.
Bit 7 of the Control Register allows split memory
operation - reads are from the Data Memory and
writes are to the Connection Memory Low.
The other mode control bit, bit 6, puts every output
channel on every output stream into active Message
Mode; i.e., the contents of the Connection Memory
Low are output on the ST-BUS output streams once
every frame unless the ODE pin is low. In this mode
the chip behaves as if bits 2 and 0 of every
Connection Memory High location were 1,
regardless of the actual values.
Figure 4 - Control Register Bits
BIT
NAME
DESCRIPTION
7
Split
Memory
When 1, all subsequent reads are from the Data Memory and writes are to the Connection
Memory Low, except when the Control Register is accessed again. When 0, the Memory
Select bits specify the memory for subsequent operations. In either case, the Stream
Address Bits select the subsection of the memory which is made available.
6
Message
Mode
When 1, the contents of the Connection Memory Low are output on the Serial Output
streams except when the ODE pin is low. When 0, the Connection Memory bits for each
channel determine what is output.
5
(unused)
4-3
Memory
Select Bits
0-0 - Not to be used
0-1 - Data Memory (read only from the microprocessor port)
1-0 - Connection Memory Low
1-1 - Connection Memory High
2-0
Stream
Address
Bits
The number expressed in binary notation on these bits refers to the input or output ST-BUS
stream which corresponds to the subsection of memory made accessible for subsequent
operations.
7
6
5
4
3
2
1
0
Mode
Control
Bits
(unused)
Memory
Select
Bits
Stream
Address
Bits
MT8980D
2-8
Figure 5 - Connection Memory High Bits
Figure 6 - Connection Memory Low Bits
BIT
NAME
DESCRIPTION
2
Message
Channel
When 1, the contents of the corresponding location in Connection Memory Low are
output on the location's channel and stream. When 0, the contents of the corresponding
location in Connection Memory Low act as an address for the Data Memory and so
determine the source of the connection to the location's channel and stream.
1
CSTo Bit
This bit is output on the CSTo pin one channel early. The CSTo bit for stream 0 is output
first.
0
Output
Enable
If the ODE pin is high and bit 6 of the Control Register is 0, then this bit enables the
output driver for the location's channel and stream. This allows individual channels on
individual streams to be made high-impedance, allowing switching matrices to be
constructed. A 1 enables the driver and a 0 disables it.
BIT
NAME
DESCRIPTION
7-5*
Stream
Address
Bits*
The number expressed in binary notation on these 3 bits is the number of the ST-BUS
stream for the source of the connection. Bit 7 is the most significant bit. e.g., if bit 7 is 1,
bit 6 is 0 and bit 5 is 0, then the source of the connection is a channel on STi4.
4-0*
Channel
Address
Bits*
The number expressed in binary notation on these 5 bits is the number of the channel
which is the source of the connection (The ST-BUS stream where the channel lies is
defined by bits 7, 6 and 5.). Bit 4 is the most significant bit. e.g., if bit 4 is 1, bit 3 is 0, bit 2
is 0, bit 1 is 1 and bit 0 is 1, then the source of the connection is channel 19.
*If bit 2 of the corresponding Connection High location is 1 or if bit 6 of the Control Register is 1, then these entire
8 bits are output on the channel and stream associated with this location. Otherwise, the bits are used as indicated
to define the source of the connection which is output on the channel and stream associated with this location.
7
6
5
4
3
2
1
0
No Corresponding Memory
- These bits give 0s if read.
Per Channel
Control Bits
7
6
5
4
3
2
1
0
Stream
Address
Bits
Channel
Address
Bits
MT8980D
2-9
If bit 6 of the Control Register is 0, then bits 2 and 0
of each Connection Memory High location function
normally (see Fig. 5). If bit 2 is 1, the associated ST-
BUS output channel is in Message Mode; i.e., the
byte in the corresponding Connection Memory Low
location is transmitted on the stream at that channel.
Otherwise, one of the bytes received on the serial
inputs is transmitted and the contents of the
Connection Memory Low define the ST-BUS input
stream and channel where the byte is to be found
(see Fig. 6).
If the ODE pin is low, then all serial outputs are high-
impedance. If it is high and bit 6 in the Control
Register is 1, then all outputs are active. If the ODE
pin is high and bit 6 in the Control Register is 0, then
the bit 0 in the Connection Memory High location
enables the output drivers for the corresponding
individual ST-BUS output stream and channel. Bit
0=1 enables the driver and bit 0=0 disables it (see
Fig. 5).
Bit 1 of each Connection Memory High location (see
Fig. 5) is output on the CSTo pin once every frame.
To allow for delay in any external control circuitry the
bit is output one channel before the corresponding
channel on the ST-BUS streams, and the bit for
stream 0 is output first in the channel; e.g., bit 1's for
channel 9 of streams 0-7 are output synchronously
with ST-BUS channel 8 bits 7-0.
Applications
Use in a Simple Digital Switching System
Figs. 7 and 8 show how MT8980s can be used with
MT8964s to form a simple digital switching system.
Fig. 7 shows the interface between the MT8980s and
the filter/codecs. Fig. 8 shows the position of these
components in an example architecture.
The MT8964 filter/codec in Fig. 7 receives and
transmits digitized voice signals on the ST-BUS input
D
R
, and ST-BUS output D
X
, respectively. These
signals are routed to the ST-BUS inputs and outputs
on the top MT8980, which is used as a digital speech
switch.
The MT8964 is controlled by the ST-BUS input D
C
originating from the bottom MT8980, which
generates the appropriate signals from an output
channel in Message Mode. This architecture
optimizes the messaging capability of the line circuit
by building signalling logic, e.g., for on-off hook
detection, which communicates on an ST-BUS
output. This signalling ST-BUS output is monitored
by a microprocessor (not shown) through an ST-BUS
input on the bottom MT8980.
Fig. 8 shows how a simple digital switching system
may be designed using the ST-BUS architecture.
This is a private telephone network with 256
extensions which uses a single MT8980 as a speech
switch and a second MT8980 for communication with
the line interface circuits.
A larger digital switching system may be designed by
cascading a number of MT8980s. Fig. 9 shows how
four MT8980s may be arranged in a non-blocking
configuration which can switch any channel on any of
the ST-BUS inputs to any channel on the ST-BUS
outputs.
Figure 7 - Example of Typical Interface between 8980s and 8964s for Simple Digital Switching System
8980 used
as
speech
switch
MT8980
STo0
STi0
STo0
STi0
MT8980
8980 used
in message
mode for
control and
signalling
D
X
D
R
D
C
MT8964
Filter/Codec
Signalling
Logic
Line Driver
and
2- to 4-
Wire
Converter
Line Interface Circuit with 8964 Filter/Codec
MT8980D
2-10
Figure 8 - Example Architecture of a Simple Digital Switching System
Controlling
Micro-
Processor
Speech
Switch
-
8980
Control &
Signalling
-
8980
STo0-7
STi0-7
STo0-7
Line Interface Circuit
with Codec (e.g. 8964)
Line 1
Line 256
Line Interface Circuit
with Codec (e.g.8964)
8
8
8
8


Repeated for Lines
2 to 255


Repeated for Lines
2 to 255
STi0-7
Application Circuit with 6802 Processor
Fig. 10 shows an example of a complete circuit
which may be used to evaluate the chip.
For convenience, a 4 MHz crystal oscillator has been
used rather than a 4.096 MHz clock, as both are
within the limits of the chip's specifications. The RC
delay used with the 393 counters ensures a
sufficient hold time for the FP signal, but the values
used may have to be changed if faster 393 counters
become available.
The chip is shown as memory mapped into the
MEK6802D3 system. Chip addresses 00-3F
correspond to processor addresses 2000-203F.
Delay through the address decoder requires the
VMA signal to be used twice to remove glitches. The
MEK6802D3 board uses a 10K
pullup on the MR
pin, which would have to be incorporated into the
circuit if the board was replaced by a processor.
Figure 9 - Four 8980s Arranged in a Non-Blocking 16 x 16 Configuration
IN 0/7
IN 8/15
8980
#1
STi0/7 STo0/7
8980
#2
STi0/7 STo0/7
8980
#3
STi0/7 STo0/7
8980
#4
STi0/7 STo0/7
OUT 0/7
OUT 8/15
MT8980D
2-11
Figure 10 - Application Circuit with 6802
MEK6802D3
System
D7-D0
A15-A0
R/W
MR
VMA
E
A15
A14
A13
0V
0V
VMA
0V
5V
5V
5V
A12
A11
A10
0V
0V
0V
0V
0V
A9
A8
A7
0V
0V
A6
VMA
0V
0V
0V
1
2
3
4
5
6
7
8
16
15
14
13
12
11
10
9
1
2
3
4
5
6
7
8
16
15
14
13
12
11
10
9
1
2
3
4
5
6
7
8
16
15
14
13
12
11
10
9
1
2
3
4
5
6
7
8
16
15
14
13
12
11
10
9
5V
1
2
3
4
5
6
7
8
20
19
18
17
16
15
14
13
9
10
12
11
MD
74
HCT
138
MD
74
HCT
138
MD
74
HCT
138
MD
74
HCT
138
MD
74
HCT
240
DTA
CS
0V
C4i
0V
F0i
0V
0V
5V
0V
MR
4 MHz
2M
1
2
3
4
5
6
7
14
13
12
11
10
9
8
5V
5V
0V
C4i
0V
0V
0V
0V
SN
74
HCT
393
SN
74
HCT
393
909
,
1/4W
MT
8980
DTA
STi0
STi1
STi2
STi3
STi4
STi5
STi6
STi7
VDD
F0i
C4i
A0
A1
A2
A3
A4
A5
DS
R/W
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
40
CSTo
ODE
STo0
STo1
STo2
STo3
STo4
STo5
STo6
STo7
VSS
D0
D1
D2
D3
D4
D5
D6
D7
CS
39
38
37
36
35
34
33
32
31
30
29
28
27
26
25
24
23
22
21
5V
0V
5V
5V
510
100pF
5V
1
2
3
4
5
6
7
14
13
12
11
10
9
8
MT8980D
2-12
* Exceeding these values may cause permanent damage. Functional operation under these conditions is not implied.
.
Typical figures are at 25
C and are for design aid only: not guaranteed and not subject to production testing.
Typical figures are at 25
C and are for design aid only: not guaranteed and not subject to production testing.
Figure 11 - Output Test Load
Absolute Maximum Ratings*
Parameter
Symbol
Min
Max
Units
1
V
DD
- V
SS
-0.3
7
V
2
Voltage on Digital Inputs
V
I
V
SS
-0.3
V
DD
+0.3
V
3
Voltage on Digital Outputs
V
O
V
SS
-0.3
V
DD
+0.3
V
4
Current at Digital Outputs
I
O
40
mA
5
Storage Temperature
T
S
-65
+150
C
6
Package Power Dissipation
P
D
2
W
Recommended Operating Conditions
- Voltages are with respect to ground (V
SS
) unless otherwise stated.
Characteristics
Sym
Min
Typ
Max
Units
Test Conditions
1
Operating Temperature
T
OP
-40
+85
C
2
Positive Supply
V
DD
4.75
5.25
V
3
Input Voltage
V
I
0
V
DD
V
DC Electrical Characteristics
- Voltages are with respect to ground (V
SS
) unless otherwise stated.
Characteristics
Sym
Min
Typ
1
I
N
P
U
T
S
Supply Current
I
DD
6
10
mA
Outputs unloaded
2
Input High Voltage
V
IH
2.0
V
3
Input Low Voltage
V
IL
0.8
V
4
Input Leakage
I
IL
5
A
V
I
between V
SS
and V
DD
5
Input Pin Capacitance
C
I
8
pF
6
O
U
T
P
U
T
S
Output High Voltage
V
OH
2.4
V
I
OH
= 10 mA
7
Output High Current
I
OH
10
15
mA
Sourcing. V
OH
=2.4V
8
Output Low Voltage
V
OL
0.4
V
I
OL
= 5 mA
9
Output Low Current
I
OL
5
10
mA
Sinking. V
OL
= 0.4V
10
High Impedance Leakage
I
OZ
5
A
V
O
between V
SS
and V
DD
11
Output Pin Capacitance
C
O
8
pF
Output
Pin
Test Point
C
L
V
SS
S1
R
L
V
DD
S2
V
SS
S1 is open circuit except
when testing output levels
or high impedance states.
S2 is switched to V
DD
or
V
SS
when testing output
levels or high impedance
states.
MT8980D
2-13
Timing is over recommended temperature & power supply voltages.
Typical figures are at 25
C and are for design aid only: not guaranteed and not subject to production testing.
* Contents of Connection Memory are not lost if the clock stops, however, ST-BUS outputs go into the high impedance state.
NB: Frame Pulse is repeated every 512 cycles of C4i.
Figure 12 - Frame Alignment
Figure 13 - Clock Timing
AC Electrical Characteristics
- Clock Timing (Figures 12 and 13)
Characteristics
Sym
Min
Typ
Max
Units
Test Conditions
1
I
N
P
U
T
S
Clock Period*
t
CLK
220
244
300
ns
2
Clock Width High
t
CH
95
122
150
ns
3
Clock Width Low
t
CL
110
122
150
ns
4
Clock Transition Time
t
CTT
20
ns
5
Frame Pulse SetupTime
t
FPS
20
200
ns
6
Frame Pulse Hold Time
t
FPH
0.020
50
s
7
Frame Pulse Width
t
FPW
244
ns
C4i
F0i
BIT
CELLS
Channel 31
Bit o
Channel 0
Bit 7
t
CLK
t
CTT
t
CH
t
CHL
t
CTT
t
FPH
t
FPS
t
FPH
t
FPS
t
FPW
t
CL
C4i
F0i
2.0V
0.8V
2.0V
0.8V
MT8980D
2-14
Timing is over recommended temperature & power supply voltages.
Typical figures are at 25
C and are for design aid only: not guaranteed and not subject to production testing.
* High Impedance is measured by pulling to the appropriate rail with R
L
, with timing corrected to cancel time taken to discharge C
L
.
AC Electrical Characteristics
- Serial Streams (Figures 11, 14, 15 and 16)
Characteristics
Sym
Min
Typ
Max
Units
Test Conditions
1
O
U
T
P
U
T
S
STo0/7 Delay - Active to High Z
t
SAZ
20
50
80
ns
R
L
=1 K
*
, C
L
=150 pF
2
STo0/7 Delay - High Z to Active
t
SZA
25
60
125
ns
C
L
=150 pF
3
STo0/7 Delay - Active to Active
t
SAA
30
65
125
ns
C
L
=150 pF
4
STo0/7 Hold Time
t
SOH
25
45
ns
C
L
=150 pF
5
Output Driver Enable Delay
t
OED
45
125
ns
R
L
=1 K
*
, C
L
=150 pF
6
External Control Hold Time
t
XCH
0
50
ns
C
L
=150 pF
7
External Control Delay
t
XCD
75
110
ns
C
L
=150 pF
8
I
N
Serial Input Setup Time
t
SIS
-40
-20
ns
9
Serial Input Hold Time
t
SIH
90
ns
Figure 14 - Serial Outputs and External Control
Figure 15 - Output Driver Enable
Figure 16 - Serial Inputs
C4i
2.0V
0.8V
STo0
to
STo7
2.4V
0.4V
STo0
to
STo7
2.4V
0.4V
STo0
to
2.4V
0.4V
CSTo
2.4V
0.4V
Bit Cell Boundary
STo7
t
SOH
t
SAZ
t
SZA
t
SOH
t
SAA
t
XCH
t
XCD
*
*
ODE
2.0V
0.8V
STo0
to
STo7
2.4V
0.4V
*
t
OED
t
OED
*
Bit Cell Boundaries
C4i
2.0V
0.8V
STi0
to
STi7
2.0V
0.8V
t
SIS
t
SIH
MT8980D
2-15
Timing is over recommended temperature & power supply voltages.
Typical figures are at 25
C and are for design aid only: not guaranteed and not subject to production testing.
* High Impedance is measured by pulling to the appropriate rail with R
L
, with timing corrected to cancel time taken to discharge C
L
.
Processor accesses are dependent on the C4i clock, and so some timings are expressed as multiples of the C4i clock period.
Figure 17 - Processor Bus
AC Electrical Characteristics
- Processor Bus (Figures 11 and 17)
Characteristics
Sym
Min
Typ
Max
Units
Test Conditions
1
Chip Select Setup Time
t
CSS
20
0
ns
2
Read/Write Setup Time
t
RWS
25
5
ns
3
Address Setup Time
t
ADS
25
5
ns
4
Acknowledgement Delay Fast
Slow
t
AKD
40
100
ns
C
L
=150 pF
t
AKD
2.7
7.2
cycles
C4i cycles
5
Fast Write Data Setup Time
t
FWS
20
ns
6
Slow Write Data Delay
t
SWD
2.0
1.7
cycles
C4i cycles
7
Read Data Setup Time
t
RDS
0.5
cycles
C4i cycles
, C
L
= 150 pF
8
Data Hold Time
Read
Write
t
DHT
20
ns
R
L
=1 K
, C
L
=150 pF
t
DHT
20
10
ns
9
Read Data To High Impedance
t
RDZ
50
90
ns
R
L
=1 K
, C
L
=150 pF
10
Chip Select Hold Time
t
CSH
0
ns
11
Read/Write Hold Time
t
RWH
0
ns
12
Address Hold Time
t
ADH
0
ns
13
Acknowledgement Hold Time
t
AKH
10
60
80
ns
R
L
=1 K
, C
L
=150 pF
DS
2.0V
0.8V
2.0V
0.8V
2.0V
0.8V
2.0V
0.8V
2.4V
0.4V
2.4V (Read) 2.0V (Write)
0.8V (Read 0.8V (Write)
CS
R/W
A5
to
A0
DTA
D7
to
D0
t
CSS
t
RWS
t
ADS
t
AKD
t
RDS
t
SWD
t
FWS
t
CSH
t
RWH
t
ADH
t
AKH
t
DHT
*
*
*
*
t
RDZ
MT8980D
2-16
Notes:
Package Outlines
Plastic J-Lead Chip Carrier - P-Suffix
F
D
1
D
H
E
1
I
A
1
A
G
D
2
E
E
2
Dim
20-Pin
28-Pin
44-Pin
68-Pin
84-Pin
Min
Max
Min
Max
Min
Max
Min
Max
Min
Max
A
0.165
(4.20)
0.180
(4.57)
0.165
(4.20)
0.180
(4.57)
0.165
(4.20)
0.180
(4.57)
0.165
(4.20)
0.200
(5.08)
0.165
(4.20)
0.200
(5.08)
A
1
0.090
(2.29)
0.120
(3.04)
0.090
(2.29)
0.120
(3.04)
0.090
(2.29)
0.120
(3.04)
0.090
(2.29)
0.130
(3.30)
0.090
(2.29)
0.130
(3.30)
D/E
0.385
(9.78)
0.395
(10.03)
0.485
(12.32)
0.495
(12.57)
0.685
(17.40)
0.695
(17.65)
0.985
(25.02)
0.995
(25.27)
1.185
(30.10)
1.195
(30.35)
D
1
/E
1
0.350
(8.890)
0.356
(9.042)
0.450
(11.430)
0.456
(11.582)
0.650
(16.510)
0.656
(16.662)
0.950
(24.130)
0.958
(24.333)
1.150
(29.210)
1.158
(29.413)
D
2
/E
2
0.290
(7.37)
0.330
(8.38)
0.390
(9.91)
0.430
(10.92)
0.590
(14.99)
0.630
(16.00)
0.890
(22.61)
0.930
(23.62)
1.090
(27.69)
1.130
(28.70)
e
0
0.004
0
0.004
0
0.004
0
0.004
0
0.004
F
0.026
(0.661)
0.032
(0.812)
0.026
(0.661)
0.032
(0.812)
0.026
(0.661)
0.032
(0.812)
0.026
(0.661)
0.032
(0.812)
0.026
(0.661)
0.032
(0.812)
G
0.013
(0.331)
0.021
(0.533)
0.013
(0.331)
0.021
(0.533)
0.013
(0.331)
0.021
(0.533)
0.013
(0.331)
0.021
(0.533)
0.013
(0.331)
0.021
(0.533)
H
0.050 BSC
(1.27 BSC)
0.050 BSC
(1.27 BSC)
0.050 BSC
(1.27 BSC)
0.050 BSC
(1.27 BSC)
0.050 BSC
(1.27 BSC)
I
0.020
(0.51)
0.020
(0.51)
0.020
(0.51)
0.020
(0.51)
0.020
(0.51)
Notes:
1) Not to scale
2) Dimensions in inches
3) (Dimensions in millimeters)
4) For D & E add for allowable Mold Protrusion 0.010"
e: (lead coplanarity)
General-10
Package Outlines
Plastic Dual-In-Line Packages (PDIP) - E Suffix
NOTE: Controlling dimensions in parenthesis ( ) are in millimeters.
DIM
8-Pin
16-Pin
18-Pin
20-Pin
Plastic
Plastic
Plastic
Plastic
Min
Max
Min
Max
Min
Max
Min
Max
A
0.210 (5.33)
0.210 (5.33)
0.210 (5.33)
0.210 (5.33)
A
2
0.115 (2.92)
0.195 (4.95)
0.115 (2.92)
0.195 (4.95)
0.115 (2.92)
0.195 (4.95)
0.115 (2.92)
0.195 (4.95)
b
0.014 (0.356)
0.022 (0.558)
0.014 (0.356)
0.022 (0.558)
0.014 (0.356)
0.022 (0.558)
0.014 (0.356)
0.022 (0.558)
b
2
0.045 (1.14)
0.070 (1.77)
0.045 (1.14)
0.070 (1.77)
0.045 (1.14)
0.070 (1.77)
0.045 (1.14)
0.070 (1.77)
C
0.008
(0.203)
0.014 (0.356)
0.008 (0.203)
0.014(0.356)
0.008 (0.203)
0.014 (0.356)
0.008 (0.203)
0.014 (0.356)
D
0.355 (9.02)
0.400 (10.16)
0.780 (19.81)
0.800 (20.32)
0.880 (22.35)
0.920 (23.37)
0.980 (24.89)
1.060 (26.9)
D
1
0.005 (0.13)
0.005 (0.13)
0.005 (0.13)
0.005 (0.13)
E
0.300 (7.62)
0.325 (8.26)
0.300 (7.62)
0.325 (8.26)
0.300 (7.62)
0.325 (8.26)
0.300 (7.62)
0.325 (8.26)
E
1
0.240 (6.10)
0.280 (7.11)
0.240 (6.10)
0.280 (7.11)
0.240 (6.10)
0.280 (7.11)
0.240 (6.10)
0.280 (7.11)
e
0.100 BSC (2.54)
0.100 BSC (2.54)
0.100 BSC (2.54)
0.100 BSC (2.54)
e
A
0.300 BSC (7.62)
0.300 BSC (7.62)
0.300 BSC (7.62)
0.300 BSC (7.62)
L
0.115 (2.92)
0.150 (3.81)
0.115 (2.92)
0.150 (3.81)
0.115 (2.92)
0.150 (3.81)
0.115 (2.92)
0.150 (3.81)
e
B
0.430 (10.92)
0.430 (10.92)
0.430 (10.92)
0.430 (10.92)
e
C
0
0.060 (1.52)
0
0.060 (1.52)
0
0.060 (1.52)
0
0.060 (1.52)
E
1
3
2
1
E
n-2 n-1 n
L
D
D
1
b
2
A
2
e
b
C
e
A
Notes:
1) Not to scale
2) Dimensions in inches
3) (Dimensions in millimeters)
A
e
B
e
C
General-8
Package Outlines
Plastic Dual-In-Line Packages (PDIP) - E Suffix
DIM
22-Pin
24-Pin
28-Pin
40-Pin
Plastic
Plastic
Plastic
Plastic
Min
Max
Min
Max
Min
Max
Min
Max
A
0.210 (5.33)
0.250 (6.35)
0.250 (6.35)
0.250 (6.35)
A
2
0.125 (3.18)
0.195 (4.95)
0.125 (3.18)
0.195 (4.95)
0.125 (3.18)
0.195 (4.95)
0.125 (3.18)
0.195 (4.95)
b
0.014 (0.356)
0.022 (0.558)
0.014 (0.356)
0.022 (0.558)
0.014 (0.356)
0.022 (0.558)
0.014 (0.356)
0.022 (0.558)
b
2
0.045 (1.15)
0.070 (1.77)
0.030 (0.77)
0.070 (1.77)
0.030 (0.77)
0.070 (1.77)
0.030 (0.77)
0.070 (1.77)
C
0.008 (0.204)
0.015 (0.381)
0.008 (0.204)
0.015 (0.381)
0.008 (0.204)
0.015 (0.381)
0.008 (0.204)
0.015 (0.381)
D
1.050 (26.67)
1.120 (28.44)
1.150 (29.3)
1.290 (32.7)
1.380 (35.1)
1.565 (39.7)
1.980 (50.3)
2.095 (53.2)
D
1
0.005 (0.13)
0.005 (0.13)
0.005 (0.13)
0.005 (0.13)
E
0.390 (9.91)
0.430 (10.92)
0.600 (15.24)
0.670 (17.02)
0.600 (15.24)
0.670 (17.02)
0.600 (15.24)
0.670 (17.02)
E
0.290 (7.37)
.330 (8.38)
E
1
0.330 (8.39)
0.380 (9.65)
0.485 (12.32)
0.580 (14.73)
0.485 (12.32)
0.580 (14.73)
0.485 (12.32)
0.580 (14.73)
E
1
0.246 (6.25)
0.254 (6.45)
e
0.100 BSC (2.54)
0.100 BSC (2.54)
0.100 BSC (2.54)
0.100 BSC (2.54)
e
A
0.400 BSC (10.16)
0.600 BSC (15.24)
0.600 BSC (15.24)
0.600 BSC (15.24)
e
A
0.300 BSC (7.62)
e
B
0.430 (10.92)
L
0.115 (2.93)
0.160 (4.06)
0.115 (2.93)
0.200 (5.08)
0.115 (2.93)
0.200 (5.08)
0.115 (2.93)
0.200 (5.08)
15
15
15
15
E
1
3
2
1
E
n-2 n-1 n
L
D
D
1
b
2
A
2
e
b
C
e
A
Notes:
1) Not to scale
2) Dimensions in inches
3) (Dimensions in millimeters)
A
e
B
Shaded areas for 300 Mil Body Width 24 PDIP only
M Mitel (design) and ST-BUS are registered trademarks of MITEL Corporation
Mitel Semiconductor is an ISO 9001 Registered Company
Copyright 1999 MITEL Corporation
All Rights Reserved
Printed in CANADA
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