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MCP3910 Datenblatt(PDF) 28 Page - Microchip Technology |
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MCP3910 Datenblatt(HTML) 28 Page - Microchip Technology |
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28 / 90 page ![]() MCP3910 DS20005116D-page 28 2012-2020 Microchip Technology Inc. 4.15 Dithering In order to suppress or attenuate the Idle tones present in any Delta-Sigma ADCs, dithering can be applied to the ADC. Dithering is the process of adding an error to the ADC feedback loop in order to “decorrelate” the outputs and “break” the Idle tone’s behavior. Usually a random or pseudorandom generator adds an analog or digital error to the feedback loop of the Delta-Sigma ADC in order to ensure that no tonal behavior can happen at its outputs. This error is filtered by the feed- back loop and typically has a zero average value, so that the converter’s static transfer function is not dis- turbed by the dithering process. However, the dithering process slightly increases the noise floor (it adds noise to the part) while reducing its tonal behavior, and thus, improving SFDR and THD. The dithering process scrambles the Idle tones into baseband white noise and ensures that dynamic specs (SNR, SINAD, THD, SFDR) are less signal-dependent. The MCP3910 incorporates a proprietary dithering algorithm on all ADCs in order to remove Idle tones and improve THD, which is crucial for power metering applications. 4.16 Crosstalk Crosstalk is defined as the perturbation caused by one ADC channel on the other ADC channel. It is a measurement of the isolation between the two ADCs present in the chip. This measurement is a two-step procedure: 1. Measure one ADC input with no perturbation on the other ADC (ADC inputs shorted). 2. Measure the same ADC input with a perturbation sine wave signal on all the other ADCs at a certain predefined frequency. Crosstalk is the ratio between the output power of the ADC when perturbation is and is not present, divided by the power of the perturbation signal. A lower cross- talk value implies more independence and isolation between the two channels. The measurement of this signal is performed under the default conditions of MCLK = 4 MHz: •GAIN = 1 • PRESCALE = 1 • OSR = 256 • MCLK = 4 MHz Step 1 for CH0 Crosstalk Measurement: • CH0+ = CH0- = AGND • CH1+ = CH1- = AGND Step 2 for CH0 Crosstalk Measurement: • CH0+ = CH0- = AGND • CH1+ – CH1- = 1.2 VP-P @ 50/60 Hz (full-scale sine wave) The crosstalk is then calculated with the formula in Equation 4-10. EQUATION 4-10: The crosstalk slightly depends on the position of the channels in the MCP3910 device. 4.17 PSRR This is the ratio between a change in the power supply voltage and the ADC output codes. It measures the influence of the power supply voltage on the ADC outputs. The PSRR specification can be DC (the power supply takes multiple DC values) or AC (the power supply is a sine wave at a certain frequency with a certain Common-mode). In AC, the amplitude of the sine wave represents the change in the power supply; it is defined in Equation 4-11. EQUATION 4-11: Where VOUT is the equivalent input voltage that the output code translates to, with the ADC transfer function. In the MCP3910 specification, AVDD varies from 2.7V to 3.6V and for AC PSRR, a 50/60 Hz sine wave is chosen, centered around 3.0V, with a maximum 300 mV amplitude. The PSRR specification is measured with AVDD = DVDD. 4.18 CMRR CMRR is the ratio between a change in the Common-mode input voltage and the ADC output codes. It measures the influence of the Common-mode input voltage on the ADC outputs. The CMRR specification can be DC (the Common-mode input voltage takes multiple DC values) or AC (the Common-mode input voltage is a sine wave at a certain frequency with a certain Common-mode). In AC, the amplitude of the sine wave represents the change in the power supply; it is defined in Equation 4-12. EQUATION 4-12: Where VCM = (CHn+ + CHn-)/2 is the Common-mode input voltage and VOUT is the equivalent input voltage that the output code translates to, with the ADC transfer function. In the MCP3910 specification, VCM varies from -1V to +1V. CTalk dB 10 CH0Power CH1Power --------------------------------- log = PSRR dB 20 V OUT AV DD ------------------- log = CMRR dB 20 V OUT V CM ----------------- log = |
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