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LTC2301CDEXPBF 数据表(PDF) 16 Page - Linear Technology |
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LTC2301CDEXPBF 数据表(HTML) 16 Page - Linear Technology |
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16 / 24 page ![]() LTC2301/LTC2305 16 23015f APPLICATIONS INFORMATION Internal Conversion Clock The internal conversion clock is factory trimmed to achieve a typical conversion time (tCONV) of 1.3μs and a maximum conversion time of 1.6μs over the full operating temperature range. I2C Interface The LTC2301/LTC2305 communicate through an I2C in- terface. The I2C interface is a 2-wire open-drain interface supporting multiple devices and multiple masters on a single bus. The connected devices can only pull the serial data line (SDA) low and can never drive it high. SDA is required to be externally connected to the supply through a pull-up resistor. When the data line is not being driven low, it is high. Data on the I2C bus can be transferred at rates up to 100kbits/s in the standard mode and up to 400kbits/s in the fast mode. Each device on the I2C bus is recognized by a unique address stored in the device and can only operate either as a transmitter or receiver, depending on the function of the device. A device can also be considered as a master or a slave when performing data transfers. A master is the device which initiates a data transfer on the bus and generates the clock signals to permit the transfer. Devices addressed by the master are considered slaves. The LTC2301/LTC2305 can only be addressed as slaves. Once addressed, they can receive configuration bits (DIN word) or transmit the last conversion result. The serial clock line (SCL) is always an input to the LTC2301/LTC2305 and the serial data line (SDA) is bidirectional. These devices support the standard mode and the fast mode for data transfer speeds up to 400kbits/s (see Timing Diagram section for definition of the I2C timing). The Start and Stop Conditions Referring to Figure 6, a Start (S) condition is generated by transitioning SDA from high to low while SCL is high. The bus is considered to be busy after the Start condition. When the data transfer is finished, a Stop (P) condition is generated by transitioning SDA from low to high while SCL is high. The bus is free after a Stop condition is gen- erated. Start and Stop conditions are always generated by the master. When the bus is in use, it stays busy if a Repeated Start (Sr) is generated instead of a Stop condition. The Repeated Start timing is functionally identical to the Start and is used for writing and reading from the device before the initiation of a new conversion. Data Transferring After the Start condition, the I2C bus is busy and data transfer can begin between the master and the addressed slave. Data is transferred over the bus in groups of nine bits, one byte followed by one acknowledge (ACK) bit. The master releases the SDA line during the ninth SCL clock cycle. The slave device can issue an ACK by pulling SDA low or issue a Not Acknowledge (NAK) by leaving the SDA line high impedance (the external pull-up resistor will hold the line high). Change of data only occurs while the SCL line is low. Data Format After a Start condition, the master sends a 7-bit address followed by a read/write (R/W) bit. The R/W bit is 1 for a read request and 0 for a write request. If the 7-bit address matches one of the LTC2301/LTC2305’s 9 pin- selectable addresses (see Table 2), the ADC is selected. When the ADC is addressed during a conversion, it will not acknowledge R/W requests and will issue a NAK by leaving the SDA line high. If the conversion is complete, the LTC2301/LTC2305 issues an ACK by pulling the SDA line low. The LTC2301/LTC2305 has two registers. The 12-bit wide output register contains the last conversion result. The 6-bit wide input register configures the input MUX and the operating mode of the ADC. Figure 6. Timing Diagrams of Start and Stop Conditions S Start Condition Stop Condition P 23015 F06 SDA SCL SDA SCL |
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