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MCP47CMB02 Datasheet(PDF) 90 Page - Microchip Technology |
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MCP47CMB02 Datasheet(HTML) 90 Page - Microchip Technology |
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90 / 124 page ![]() MCP47CXBXX DS20006089B-page 90 2018-2019 Microchip Technology Inc. 8.6 Designing a Double Precision DAC Figure 8-7 shows an example design of a single-supply voltage output capable of up to 24-bit resolution. This requires two 12-bit DACs. This design is simply a voltage divider with a buffered output. As an example, if a similar application to the one developed in Section 8.5.1 “Bipolar DAC Example” required a resolution of 1 µV instead of 1 mV, and a range of 0V to 4.1V, then 12-bit resolution would not be adequate. FIGURE 8-7: Simple Double Precision DAC Using MCP47CVBX2. EQUATION 8-8: VOUT CALCULATION 8.7 Building Programmable Current Source Figure 8-8 shows an example of building a programmable current source using a voltage follower. The current sensor resistor is used to convert the DAC voltage output into a digitally-selectable current source. The smaller RSENSE is, the less power is dissipated across it. However, this also reduces the resolution that the current can be controlled at. FIGURE 8-8: Digitally-Controlled Current Source. 8.8 Serial Interface Communication Times Table 7-1 shows the time/frequency of the supported operations of the I2C serial interface for the different serial interface operational frequencies. This, along with the VOUT output performance (such as slew rate), would be used to determine your application’s Volatile DAC register update rate. Step 1: Calculate the resolution needed: 4.1V/1 µV = 4.1 x 106 Since 222 = 4.2 x 106, a 22-bit resolution is desired. Since DNL = ±1.0 LSb, this design can be attempted with the 12-bit DAC. Step 2: Since DAC1’s VOUT1 has a resolution of 1 mV, its output only needs to be “pulled” 1/1000 to meet the 1 µV target. Dividing VOUT0 by 1000 would allow the application to compensate for DAC1’s DNL error. Step 3: If R2 is 100, then R1 needs to be 100 k. Step 4: The resulting transfer function is shown in Equation 8-8. R1 VCC+ VCC- VOUT I2C 2-Wire VREF Optional MCP47CVBX2 VDD I2C 2-Wire VREF Optional MCP47CVBX2 VDD R2 0.1 µF VOUT0 VOUT1 (DAC0) (DAC1) VOUT = Gx = Selected Op Amp Gain VOUT0 * R2 + VOUT1 * R1 R1 + R2 VOUT0 = (VREF Gx DAC0 Register Value)/4096 VOUT1 = (VREF Gx DAC1 Register Value)/4096 Where: RSENSE Ib Load IL VCC+ VCC- VOUT IL VOUT Rsense --------------- 1 + ------------- = Ib IL ---- = Common Emitter Current Gain Where: VDD I2C 2-Wire VREF Optional MCP47CVBXX VDD (or VREF) |
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