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SSM4567ACBZ-R7 Datenblatt(PDF) 22 Page - Analog Devices

Teilenummer SSM4567ACBZ-R7
Bauteilbeschribung  Digital 2.5 W, 5.1 V, Boost Class-D Audio Amplifier with Output Sensing
PDF  52 Pages
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SSM4567
Data Sheet
Rev. 0| Page 22 of 52
Figure 44. Limiter Example (LIM_EN = 0b01, VBAT_TRACK = 0)
I2C CONTROL
The SSM4567 supports a 2-wire, serial, I2C-compatible
microprocessor bus driving multiple peripherals. Two pins,
serial data (SDA) and serial clock (SCL), carry information
between the SSM4567 and the system I2C master controller. The
SSM4567 is always a slave on the bus, meaning it cannot initiate
a data transfer. Each slave device is recognized by a unique
address. The address byte format is shown in Table 14. The
address resides in the first seven bits of the I2C write. The LSB
of this byte sets either a read or write operation. Logic Level 1
corresponds to a read operation, and Logic Level 0 corresponds
to a write operation.
Both SDA and SCL need 2.2 kΩ pull-up resistors for proper
operation. Only one set of pull-up resistors are required for the
entire I2C bus. The voltage on these signal lines must not be
more than 3.3 V.
Table 14. I2C Chip Address Byte Format
Bit 0
Bit 1
Bit 2
Bit 3
Bit 4
Bit 5
Bit 6
Bit 7
0
1
1
0
1
I2C Addr.
MSB
I2C Addr.
LSB
R/W
Table 15. I2C Device Address Selection
Device Address
(7-Bit Format)
Device Address
(8-Bit Format)
LR_SEL/ADDR Pin
Configuration
0x34
0x68
Tied to AGND
0x35
0x6A
Tied to IOVDD
0x36
0x6C
Open
Addressing
Initially, each device on the I2C bus is in an idle state, monitoring
the SDA and SCL lines for a start condition and the proper
address. The I2C master initiates a data transfer by establishing a
start condition, defined by a high-to-low transition on SDA while
SCL remains high. This indicates that an address/data stream
follows. All devices on the bus respond to the start condition
and shift the next eight bits (the 7-bit address plus the R/W bit)
MSB first. The device that recognizes the transmitted address
responds by pulling the data line low during the ninth clock
pulse. The device address of the SSM4567 is determined by the
state of the LR_SEL/ADDR pin. When the LR_SEL/ADDR pin
is pulled to ground, the device address is 0x34.
This ninth bit is known as an acknowledge bit. All other devices
withdraw from the bus at this point and return to the idle
condition. The R/W bit determines the direction of the data. A
Logic 0 on the LSB of the first byte means the master writes
information to the peripheral, whereas a Logic 1 means the
master reads information from the peripheral after writing the
subaddress and repeating the start address. A data transfer takes
place until a stop condition is encountered. A stop condition
occurs when SDA transitions from low to high while SCL is
held high. The timing for the I2C port is shown in Figure 45.
Stop and start conditions can be detected at any stage during the
data transfer. If these conditions are asserted out of sequence with
normal read and write operations, the SSM4567 immediately
jumps to the idle condition. During a given SCL high period,
the user must issue only one start condition, one stop condition, or
a single stop condition followed by a single start condition. If an
invalid subaddress is issued by the user, the SSM4567 does not
issue an acknowledge and returns to the idle condition. If the
user exceeds the highest subaddress while in auto-increment mode,
one of two actions is taken. In read mode, the SSM4567 outputs
the highest subaddress register contents until the master device
issues a no acknowledge, indicating the end of a read. A no
acknowledge condition is where the SDA line is not pulled low
on the ninth clock pulse on SCL. If the highest subaddress location
is reached while in write mode, the data for the invalid byte is
not loaded into any subaddress register, a no acknowledge is
issued by the SSM4567, and the device returns to the idle
condition.
I2C Read and Write Operations
Figure 46 shows the format of a single-word write operation.
Every ninth clock, the SSM4567 issues an acknowledge message
by pulling SDA low.
Figure 47 shows the format of a burst mode write sequence.
This figure shows an example where the target destination
registers are two bytes. The SSM4567 knows to increment its
subaddress register every byte because the requested subaddress
corresponds to a register or memory area with a byte word length.
The timing of a single-word read operation is shown in Figure 48.
Note that the first R/W bit is 0, indicating a write operation.
This is because the subaddress still must be written to set up the
internal address. After the SSM4567 acknowledges the receipt
of the subaddress, the master must issue a repeated start
command, followed by the chip address byte with the R/W set
to 1 (read). This causes the SSM4567 SDA to reverse and begin
driving data back to the master. The master then responds every
ninth pulse with an acknowledge pulse to the SSM4567.
VBAT
LIM_EN = 01
VBAT_TRACK = 0



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