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LT8580 датащи(PDF) 21 Page - Linear Technology

номер детали LT8580
подробное описание детали  Boost/SEPIC/Inverting DC/DC Converter with 1A, 65V Switch, Soft-Start and Synchronization
PDF  32 Pages
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производитель  LINER [Linear Technology]
домашняя страница  http://www.linear.com
Logo LINER - Linear Technology

LT8580 датащи(HTML) 21 Page - Linear Technology

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LT8580
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8580fa
For more information www.linear.com/LT8580
Figure 15. Boost Converter: The Component Values and Voltages
Given Are Typical Values for a 1.5MHz, 5V to 12V Boost
applicaTions inForMaTion
COUT
4.7µF
VOUT
12V
200mA
L1
15µH
D1
RFBX
130k
VIN
5V
VIN
SW
8580 F15
LT8580
10k
RC
6.04k
RT
56.2k
SHDN
GND
FBX
VC
SYNC
SS
RT
CC
3.3nF
CF
47pF
CSS
0.22µF
CIN
2.2µF
BOOST CONVERTER COMPONENT SELECTION
The LT8580 can be configured as a boost converter as in
Figure15.Thistopologyallowsforpositiveoutputvoltages
that are higher than the input voltage. A single feedback
resistorsetstheoutputvoltage.Foroutputvoltageshigher
than 60V, see the Charge Pump Aided Regulators section.
Table 4 is a step-by-step set of equations to calculate com-
ponent values for the LT8580 when operating as a boost
converter. Input parameters are input and output voltage,
andswitchingfrequency(VIN,VOUTandfOSCrespectively).
Refer to the Applications Information section for further
information on the design equations presented in Table 4.
Variable Definitions:
VIN = Input Voltage
VOUT = Output Voltage
DC = Power Switch Duty Cycle
fOSC = Switching Frequency
IOUT = Maximum Average Output Current
IRIPPLE = Inductor Ripple Current
Table 4. Boost Design Equations
PARAMETERS/EQUATIONS
Step 1:
Inputs
Pick VIN, VOUT, and fOSC to calculate equations below
Step 2:
DC
DCMAX =
VOUT – VIN(MIN) +0.5V
VOUT +0.5V– 0.4V
DCMIN =
VOUT – VIN(MAX) +0.5V
VOUT +0.5V– 0.4V
Step 3:
L1
L
TYP =
(VIN(MIN) – 0.4V)•DCMAX
f
OSC • 0.3A
(1)
L
MIN =
(VIN(MIN) – 0.4V)•(2 •DCMAX – 1)
1.25 •(DCMAX −300ns • fOSC)• fOSC •(1–DCMAX)
(2)
LMAX1 =
(VIN(MIN) – 0.4V)•DCMAX
fOSC • 0.08A
(3)
LMAX2 =
(VIN(MAX) – 0.4V)•DCMIN
fOSC • 0.08A
(4)
•Solve equations 1 to 4 for a range of L values
•The minimum of the L value range is the higher of LTYP and LMIN
•The maximum of the L value range is the lower of LMAX1 and LMAX2.
Step 4:
IRIPPLE IRIPPLE(MIN) =
(VIN(MIN) – 0.4V)•DCMAX
fOSC •L1
IRIPPLE(MAX) =
(VIN(MAX) – 0.4V)•DCMIN
fOSC •L1
Step 5:
IOUT
IOUT(MIN) = 1A −
IRIPPLE(MIN)
2
⎛
⎝
⎜
⎞
⎠
⎟ • (1−DCMAX )
IOUT(MAX) = 1A −
IRIPPLE(MAX)
2
⎛
⎝
⎜
⎞
⎠
⎟ • (1−DCMIN)
Step 6:
D1
VR > VOUT; IAVG > IOUT
Step 7:
COUT
COUT ≥
IOUT •DCMAX
fOSC • 0.005 • VOUT
Step 8:
CIN
CIN ≥ CVIN +CPWR ≥
1A •DCMAX
40 • fOSC • 0.005 • VIN(MIN)
+
IRIPPLE(MAX)
8 • fOSC • 0.005 • VIN(MAX)
•Refer to the Capacitor Selection Section for definition of CVIN and CPWR
Step 9:
RFBX
RFBX =
VOUT −1.204V
83.3µA
Step
10:
RT
RT =
85.5
f
OSC
–1; f
OSC in MHz and RT in kΩ
Note 1: This table uses 1A for the peak switch current. Refer to the
Electrical Characteristics Table and Typical Performance Characteristics
plots for the peak switch current at an operating duty cycle.
Note 2: The final values for COUT and CIN may deviate from the previous
equations in order to obtain desired load transient performance.



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