參數(shù)資料
型號: LMX2364TM
廠商: NATIONAL SEMICONDUCTOR CORP
元件分類: XO, clock
英文描述: 2.6 GHz PLLatinum Fractional RF Frequency Synthesizer with 850 MHz Integer IF Frequency Synthesizer
中文描述: PLL FREQUENCY SYNTHESIZER, 2600 MHz, PDSO24
封裝: TSSOP-24
文件頁數(shù): 30/39頁
文件大小: 694K
代理商: LMX2364TM
Programming Description
(Continued)
2.7 R4 REGISTER
This register is used to setup the N divider for the RF Synthesizer.Asingle word write to this register is all that is required to power
up and tune the RF synthesizer to the desired frequency.
Reg
23
22
21
20
19
18
17
16
15
14
13
12
11
10
9
8
7
6
5
4
3
2
1
0
DATA[20:0]
C2
C1
C0
R4
RF_
PD
RF_N[12:0]
RF_FN[6:0]
1
0
0
2.7.1 RF_FN — Fractional Numerator, RF Synthesizer
In the case that the PLL is operating in fractional mode (RF_OM=1), RF_FN[6:0] specifies the fractional numerator of the
complete N counter value of the RF PLL. In the case that the PLL is operating in integer mode (RF_OM=0), RF_FN adds to the
total value of the N counter.
Operating Mode
Fractional Mode (RF_OM=1)
Integer Mode (RF_OM=0)
RF N Divider Value Calculation
RF_N +RF_FN/RF_FD
RF_N x RF_FD + RF_FN
2.7.2 RF_N[12:0] — N Divider Ratio, RF Synthesizer
RF_N[12:0] specifies an integer value that is used in calculating the N divider ratio for the RF synthesizer. In the case the part is
operating in fractional mode, it value is the N divider ratio. In the case the part is operating in integer mode, this number is used
in conjunction with the RF_FD and RF_FN values to calculate the N divider value. The range of values supported is dependant
on the selected prescaler. When the 8/9/12/13 prescaler is selected, RF_N value can range from 40 to 4095. When the
16/17/20/21 prescaler is selected, the RF_N value can range from 80 to 8191. The following tables describe how to program a
specific value of RF_N for a given prescaler.
The RF_N value is actually created using a prescaler, C counter, B counter, and an A counter. If RF_P = 16, then the RF_N[12:0]
word is just the binary representation of the desired value. If RF_P = 8, then the case is similiar, except that the third LSB is
disregarded in all calculations. The relationship between RF_N, RF_P, RF_A, RF_B, and RF_C is shown below.
RF_N = RF_PxRF_C +4xRF_B + RF_A
RF_N[12:0] Programming with RF_P = 16
RF_N[12:0]
12
11
10
9
8
7
6
5
4
3
2
1
0
RF_C[8:0]
RF_B [1:0]
RF_A[1:0]
0–47
Values from 0–47 are not allowed.
Some of these N values are allowed, others are illegal divide ratios and not allowed.
48–79
Legal Divide Ratios in Fractional Mode:
48–49, 52–53, 64–66, 68–70, 72–74, 76–78
Legal Divide Ratios in Integer Mode:
All these values are legal in integer mode.
80
0
0
0
0
0
0
1
0
1
0
0
0
0
81
0
0
0
0
0
0
1
0
1
0
0
0
1
8191
1
1
1
1
1
1
1
1
1
1
1
1
1
RF_N[12:0] Programming with RF_P = 8
RF_N[12:0]
12
11
10
9
8
7
6
5
4
3
2
1
0
RF_C[8:0]
RF_B[1:0]
RF_A[1:0]
0–23
Values from 0–23 are not allowed.
Some of these N values are allowed, others are illegal divide ratios and not allowed.
24–39
Legal Divide Ratios in Fractional Mode:
24–25, 28–29, 32–34, 36–38
Legal Divide Ratios in Integer Mode:
All these values are legal in integer mode.
40
0
0
0
0
0
0
0
1
1
X
0
0
0
41
0
0
0
0
0
0
0
1
1
X
0
0
1
4095
1
1
1
1
1
1
1
1
1
X
1
1
1
L
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