參數(shù)資料
型號(hào): L6713ATR
廠商: STMICROELECTRONICS
元件分類: 穩(wěn)壓器
英文描述: 2 A SWITCHING CONTROLLER, 225 kHz SWITCHING FREQ-MAX, PQFP64
封裝: 10 X 10 MM, TQFP-64
文件頁(yè)數(shù): 24/64頁(yè)
文件大?。?/td> 801K
代理商: L6713ATR
Power dissipation
L6713A
30/64
9
Power dissipation
L6713A embeds high current MOSFET drivers for both high side and low side MOSFETs: it
is then important to consider the power the device is going to dissipate in driving them in
order to avoid overcoming the maximum junction operative temperature. In addition, since
the device has an exposed pad to better dissipate the power, the thermal resistance
between junction and ambient consequent to the layout is also important: thermal pad
needs to be soldered to the PCB ground plane through several VIAs in order to facilitate the
heat dissipation.
Two main terms contribute in the device power dissipation: bias power and drivers' power.
The first one (PDC) depends on the static consumption of the device through the supply pins
and it is simply quantifiable as follow (assuming to supply HS and LS drivers with the same
VCC of the device):
where N is the number of phases.
Drivers' power is the power needed by the driver to continuously switch on and off the
external MOSFETs; it is a function of the switching frequency and total gate charge of the
selected MOSFETs. It can be quantified considering that the total power PSW dissipated to
switch the MOSFETs (easy calculable) is dissipated by three main factors: external gate
resistance (when present), intrinsic MOSFET resistance and intrinsic driver resistance. This
last term is the important one to be determined to calculate the device power dissipation.
The total power dissipated to switch the MOSFETs results:
External gate resistors helps the device to dissipate the switching power since the same
power PSW will be shared between the internal driver impedance and the external resistor
resulting in a general cooling of the device. When driving multiple MOSFETs in parallel, it is
suggested to use one gate resistor for each MOSFET.
P
DC
V
CC
I
CC
NI
CCDRx
NI
BOOTx
++
()
=
P
SW
NF
SW
Q
GHS
V
BOOT
Q
GLS
V
CCDRx
+
()
=
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