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AN2450 bảng dữ liệu(PDF) 13 Page - STMicroelectronics

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Giải thích chi tiết về linh kiện  LLC resonant half-bridge converter design guideline
PDF  35 Pages
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AN2450 bảng dữ liệu(HTML) 13 Page - STMicroelectronics

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AN2450
Voltage gain and input impedance
35
Figure 5. Normalized input impedance magnitude
The ac analysis can also help to estimate converter's efficiency
and predict how this
changes with the load. Considering the generic model similar to the one in Figure 2 on
page 7, where the resonant tank includes also the dissipative elements (i.e. series resistors
for magnetic components winding losses and capacitor's ESR, and parallel resistors for
magnetic losses of inductors and transformer), we can compute the transfer function
HLOSS(j) and the input impedance Zin.LOSS(j). By calculating input and output power in
terms of HLOSS and Zin.LOSS, we get:
Equation 29
where Yin.LOSS is the admittance (reciprocal of Zin.LOSS) and the input and output power are
expressed as:
Equation 30
Equation 31
The region on the left-hand side of the diagram in Figure 5, i.e. for a normalized frequency
lower than fno, is the capacitive region, where the tank current leads the half-bridge square
voltage; at normalized frequency higher than the resonance frequency fnr (= 1), on the right-
hand side region, the input impedance is inductive, and the resonant tank current lags the
input voltage. In the region between the two resonance frequencies the impedance can be
either capacitive or inductive, depending on the value of the impedance phase angle.
Pout
Pin
-----------
HLOSS j

2
RoacRe YinLOSS j


-----------------------------------------------------------
=
=
.
.
Pin
ViFHAIrt
cos
ViFHA
2Re
1
ZinLOSS j

--------------------------------
=
=
.
.
.
.
Pout
VoFHA
Irect
V
2
oFHA
Roac
-----------------------
V
2
iFHA
Roac
------------------
 H
LOSS j

2
=
=
=
.



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