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ADRF6750ACPZ-R7 数据表(PDF) 22 Page - Analog Devices |
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ADRF6750ACPZ-R7 数据表(HTML) 22 Page - Analog Devices |
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22 / 40 page ![]() ADRF6750 Rev. A | Page 22 of 40 clock (SCL) inputs carry information between any devices that are connected to the bus. Each slave device is recognized by a unique address. The ADRF6750 has two possible 7-bit slave addresses for both read and write operations. The MSB of the 7-bit slave address is set to 1. Bit 5 of the slave address is set by the CS pin (Pin 27). Bits[4:0] of the slave address are set to all 0s. The slave address consists of the seven MSBs of an 8-bit word. The LSB of the word sets either a read or a write oper- ation (see Figure 63). Logic 1 corresponds to a read operation, whereas Logic 0 corresponds to a write operation. To control the device on the bus, the following protocol must be followed. The 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 peripherals respond to the start condition and shift the next eight bits (the 7-bit address and the R/W bit). The bits are transferred from MSB to LSB. The peripheral that recognizes the transmitted address responds by pulling the data line low during the ninth clock pulse. This is known as an acknowledge bit. All other devices then withdraw from the bus and maintain an idle condition. During the idle condition, the device monitors the SDA and SCL lines waiting for the start condition and the correct transmitted address. The R/W bit determines the direction of the data. Logic 0 on the LSB of the first byte indicates that the master writes information to the peripheral. Logic 1 on the LSB of the first byte indicates that the master reads information from the peripheral. The ADRF6750 acts as a standard slave device on the bus. The data on the SDA pin (Pin 29) is eight bits long, supporting the 7-bit addresses plus the R/W bit. The ADRF6750 has 34 subad- dresses to enable the user-accessible internal registers. Therefore, it interprets the first byte as the device address and the second byte as the starting subaddress. Autoincrement mode is supported, which allows data to be read from or written to the starting sub- address and each subsequent address without manually addressing the subsequent subaddress. A data transfer is always terminated by a stop condition. The user can also access any unique subaddress register on a one-by-one basis without updating all registers. Stop and start conditions can be detected at any stage of the data transfer. If these conditions are asserted out of sequence with normal read and write operations, they cause an immediate jump to the idle condition. If an invalid subaddress is issued by the user, the ADRF6750 does not issue an acknowledge and returns to the idle condition. In a no acknowledge condition, the SDA line is not pulled low on the ninth pulse. See Figure 64 and Figure 65 for sample write and read data transfers, Figure 66 for the timing protocol, and Figure 2 for a more detailed timing diagram. 1 A5 0 00 00 X MSB = 1 SET BY PIN 27 (CS) 0 = WR 1 = RD SLAVE ADDRESS[6:0] R/W CTRL Figure 63. Slave Address Configuration S SLAVE ADDR, LSB = 0 (WR) A(S) A(S) A(S) DATA SUBADDR A(S) P DATA S = START BIT P = STOP BIT A(S) = ACKNOWLEDGE BY SLAVE Figure 64. I2C Write Data Transfer S S = START BIT P = STOP BIT A(S) = ACKNOWLEDGE BY SLAVE A(M) = ACKNOWLEDGE BY MASTER A(M) = NO ACKNOWLEDGE BY MASTER S SLAVE ADDR, LSB = 0 (WR) SLAVE ADDR, LSB = 1 (RD) A(S) A(S) SUBADDR A(S) DATA A(M) DATA P A(M) Figure 65. I2C Read Data Transfer START BIT S STOP BIT P ACK ACK WR ACK D0 D7 A0 A7 A5 A6 SLAVE ADDR[4:0] SLAVE ADDRESS SUBADDRESS DATA SUBADDR[6:1] DATA[6:1] SCL SDA Figure 66. I2C Data Transfer Timing |
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