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MRF49XA-I/T データシート(PDF) 48 Page - Microchip Technology |
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MRF49XA-I/T データシート(HTML) 48 Page - Microchip Technology |
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48 / 102 page ![]() MRF49XA DS70590C-page 48 Preliminary © 2009-2011 Microchip Technology Inc. 3.4.2 AUTO CRYSTAL OSCILLATOR When an interrupt occurs, irrespective of the OSCEN bit setting, the crystal oscillator automatically turns on to supply a clock signal to the microcontroller. After clearing all interrupts and reading the STSREG, the crystal oscillator is automatically turned off. The clock tail feature provides enough clock pulses for the microcontroller to enter the Low-Power mode. Due to this automatic feature, it is not possible to turn off the crystal by clearing the OSCEN bit if any interrupt is active. For example, after power-on, the POR interrupt must be cleared by reading STSREG and then writing ‘0’ to the OSCEN bit puts the part in Sleep mode. It is necessary to clear all interrupts before turning the OSCEN bit off as the extra current required for running the crystal oscillator can shorten the battery life significantly. On disabling the clock output (CLKOEN = 1), both the clock tail and auto crystal oscillator usage features are turned off. Only the OSCEN bit controls the crystal oscillator (considering that both RXCEN and TXCEN bits are cleared); the interrupts have no effect on it. The registers associated with the crystal oscillator and clock are: •STSREG (see Register 2-1) • AFCCREG (see Register 2-3) • PMCREG (see Register 2-13) • BCSREG (see Register 2-16) • PLLCREG (see Register 2-17) 3.5 Phase-Locked Loop The synthesizer consists of a PLL, oscillator and VCO for controlling the channel frequency. The synthesizer must be enabled when either the transmitter or the receiver is enabled. For faster RX/TX switching, the synthesizer block must be kept on. Enabling the transmitter using the TXCEN bit (PMCREG<5>) will turn on the PA, and since the synthesizer is already up and running, the PA immediately produces the TX signal at the output. The oscillator must also be enabled to provide the reference frequency for the PLL. On power-up, the synthesizer performs the calibration automatically. The synthesizer also has an internal start-up calibration procedure. If there are significant changes in voltage or temperature, recalibration should be performed by simply disabling the synthesizer and re-enabling it. When set, the SYNEN bit (PMCREG<4>) enables the synthesizer. The PLL circuit automatically performs the fine adjustment of carrier frequency. This way, the receiver can minimize the offset between a transmit and receive frequency. The frequency control function can be enabled or disabled through AFCCREG. The range of offset can be programmed and the offset value is calculated and added to the frequency control word within the PLL to incrementally change the carrier frequency. The MRF49XA can be programmed to automatically change and control the carrier frequency. The carrier frequency can also be manually activated by a strobe signal. The oscillator provides the reference signal to the RF synthesizer to set up the transmit or receive frequency. The crystal oscillator also provides a reference signal to the RF, baseband circuits and microcontroller interface. The PLL Configuration register configures the following: • Output clock buffer slew rate • Crystal start-up time • Phase detector delay • PLL dithering • PLL bandwidth The dithering reduces the noise error when calculating the fractional-N synthesizer code. When the PLLDD bit (PLLCREG<2>) is cleared, dithering is enabled and the settling time is slightly increased. The PLL bandwidth can accommodate higher data rates above 90 kbps. The reduced PLL bandwidth allows faster settling time and reduced phase noise, and thus, results in a better RX performance. See Register 2-17 for details on PLL setting and configuration. The registers associated with the PLL are: •STSREG (see Register 2-1) • AFCCREG (see Register 2-3) • PMCREG (see Register 2-13) • BCSREG (see Register 2-16) • PLLCREG (see Register 2-17) |
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