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LMX2471 датащи(PDF) 21 Page - National Semiconductor (TI) |
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LMX2471 датащи(HTML) 21 Page - National Semiconductor (TI) |
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21 / 36 page ![]() Functional Description (Continued) 1.6.1 Determining the Loop Gain Multiplier, K The loop bandwidth multiplier, K, is needed in order to de- termine the theoretical impact of fastlock/CSR on the loop bandwidth and also which resistor should be switched in parallel with the loop filter resistor R2. K = K_K · K_Fcomp where K is the loop gain multiplier K_K is the ratio of the Fastlock charge pump current to the steady state charge pump current. Note that this should always be greater than or equal to one. K_Fcomp is the ratio of the Fastlock com- parison frequency to the steady state comparison frequency. If this ratio is less than one, this implies that the CSR is being used. 1.6.2 Determining the Theoretical Lock Time Improvement and Fastlock Resistor, R2’ When using fastlock, it is necessary to switch in a resistor R2’, in parallel with R2 in order to keep the loop filter opti- mized and maintain the same phase margin. After the PLL has achieved a frequency that is sufficiently close to the desired frequency, the resistor R2’ is disengaged and the charge pump current is and comparison frequency are re- turned to normal. Of special concern is the glitch that is caused when the resistor R2’ is disengaged. This glitch can take up a significant portion of the lock time. The LMX2471 has enhanced switching circuitry to minimize this glitch and therefore improve the lock time. 20072140 The change in loop bandwidth is dependent upon the loop gain multiplier, K, as determined in section 4. The theoretical improvement in lock time is given below, but the actual improvement will be less than this due to the glitch that is caused by disengaging Fastlock. The theoretical improve- ment is given to show an upper bound on what improvement is possible with Fastlock. In the case that K < 1, this implies the CSR is being engaged and that the theoretical lock time will be degraded. However, since this mode reduces or eliminates cycle slipping, the actual lock time may be better in cases where the loop bandwidth is small relative to the comparison frequency. Realize that the theoretical lock time multiplier does not account for the fastlock/CSR disengage- ment glitch, which is most severe for larger values of K. Loop Gain Multiplier, K Loop Bandwidth Multiplier R2’ Value Lock Time Multiplier 1:8* 0.35 open x 2.828 1:4* 0.50 open x 2.000 1:2* 0.71 open x 1.414 4:1 2.00 R2/1.00 x 0.500 8:1 2.83 R2/1.83 x 0.354 16:1 4.00 R2/3.00 x 0.250 32:1 5.66 R2/4.65 x 0.177 * These modes of operation are generally not recommended 1.6.3 Using Fastlock and Cycle Slip Reduction (CSR) to Avoid Cycle Slipping In the case that the comparison frequency is very large ( i.e. 100X)ofthe loop bandwidth, cycle slipping may occur when an instantaneous phase error is presented to the phase detector. This can be reduced by increasing the loop band- width during frequency acquisition, decreasing the compari- son frequency during frequency acquisition, or some combi- nation of the these. If increasing the loop bandwidth during frequency acquisition is not sufficient to reduce cycle slip- ping, the LMX2471 also has a routine to decrease the com- parison frequency. www.national.com 21 |
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