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LM3524D bảng dữ liệu(PDF) 13 Page - National Semiconductor (TI)

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Typical Applications (Continued)
BASIC SWITCHING REGULATOR THEORY
AND APPLICATIONS
The basic circuit of a step-down switching regulator circuit is
shown in Figure 12, along with a practical circuit design
using the LM3524D in Figure 15.
The circuit works as follows: Q1 is used as a switch, which
has ON and OFF times controlled by the pulse width modu-
lator. When Q1 is ON, power is drawn from V
IN and supplied
to the load through L1; V
A is at approximately VIN,D1is
reverse biased, and C
o is charging. When Q1 turns OFF the
inductor L1 will force V
A negative to keep the current flowing
in it, D1 will start conducting and the load current will flow
through D1 and L1. The voltage at V
Ais smoothed by the L1,
C
o
filter giving a clean DC output. The current flowing
through L1 is equal to the nominal DC load current plus
some
∆I
L which is due to the changing voltage across it. A
good rule of thumb is to set
∆I
LP-P . 40%xIo.
Neglecting V
SAT,VD, and settling
∆I
L
+ =
∆I
L
−;
whereT=Total Period
The above shows the relation between V
IN,Vo and duty
cycle.
as Q1 only conducts during t
ON.
The efficiency,
η, of the circuit is:
ηMAX will be further decreased due to switching losses in
Q1. For this reason Q1 should be selected to have the
maximum possible f
T, which implies very fast rise and fall
times.
CALCULATING INDUCTOR L1
Since
∆I
L+=
∆I
L
− = 0.4I
o
Solving the above for L1
00865016
FIGURE 12. Basic Step-Down Switching Regulator
00865017
FIGURE 13. Relation of Switch Timing to Inductor Current in Step-Down Regulator
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