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MCP4441 数据表(PDF) 91 Page - Microchip Technology |
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MCP4441 数据表(HTML) 91 Page - Microchip Technology |
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91 / 100 page ![]() © 2010 Microchip Technology Inc. DS22265A-page 91 MCP444X/446X APPENDIX B: CHARACTERIZATION DATA ANALYSIS Some designers may want to understand the device operational characteristics outside of the specified operating conditions of the device. Applications where the knowledge of the resistor network characteristics could be useful include battery powered devices and applications that experience brown-out conditions. In battery applications, the application voltage decays over time until new batteries are installed. As the voltage decays, the system will continue to operate. At some voltage level, the application will be below its specified operating voltage range. This is dependent on the individual components used in the design. It is still useful to understand the device characteristics to expect when this low-voltage range is encountered. Unlike a microcontroller, which can use an external supervisor device to force the controller into the Reset state, a digital potentiometer’s resistance characteristic is not specified. But understanding the operational characteristics can be important in the design of the applications circuit for this low-voltage condition. Other application system scenarios where understanding the low-voltage characteristics of the resistor network could be important is for system brown out conditions. For the MCP444X/446X devices, the analog operation is specified at a minimum of 2.7V. Device testing has Terminal A connected to the device VDD (for the potentiometer configuration only) and Terminal B connected to VSS. B.1 Low-Voltage Operation This appendix gives an overview of CMOS semiconductor characteristics at lower voltages. This is important so that the 1.8V resistor network characterization graphs of the MCP444X/446X devices can be better understood. For this discussion, we will use the 5 k Ω device data. This data was chosen since the variations of wiper resistance have much greater implications for devices with smaller RAB resistances. Figure B-1 shows the worst case RBW error from the average RBW as a percentage, while Figure B-2 shows the RBW resistance versus the wiper code graph. Non-linear behavior occurs at approximately wiper code 160. This is better shown in Figure B-2, where the RBW resistance changes from a linear slope. This change is due to the change in the wiper resistance. FIGURE B-1: 1.8V Worst Case RBW Error from Average RBW (RBW0-RBW3) vs. Wiper Code and Temperature (VDD = 1.8V, IW = 190 µA). FIGURE B-2: RBW vs. Wiper Code And Temperature (VDD = 1.8V, IW = 190 µA). -7.00% -6.00% -5.00% -4.00% -3.00% -2.00% -1.00% 0.00% 1.00% 2.00% 0 32 64 96 128 160 192 224 256 Wiper Code -40C +25C +85C +125C 0 1000 2000 3000 4000 5000 6000 7000 0 32 64 96 128 160 192 224 256 Wiper Code -40C +25C +85C +125C |
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