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TDA8358J 参数 Datasheet PDF下载

TDA8358J图片预览
型号: TDA8358J
PDF下载: 下载PDF文件 查看货源
内容描述: 全桥与东西走向的放大器垂直偏转输出电路LVDMOS [Full bridge vertical deflection output circuit in LVDMOS with east-west amplifier]
分类和应用: 消费电路商用集成电路偏转集成电路放大器电视
文件页数/大小: 20 页 / 113 K
品牌: NXP [ NXP ]
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Philips Semiconductors  
Product specification  
Full bridge vertical deflection output circuit  
in LVDMOS with east-west amplifier  
TDA8358J  
Supply voltage calculation  
The flyback supply voltage calculated this way is about  
5% to 10% higher than required.  
For calculating the minimum required supply voltage,  
several specific application parameter values have to be  
known. These parameters are the required  
maximum (peak) deflection coil current Icoil(peak), the coil  
parameters Rcoil and Lcoil, and the measuring resistance  
of RM. The required maximum (peak) deflection coil  
current should also include the overscan.  
Calculation of the power dissipation of the vertical  
output stage  
The power dissipation of the vertical output stage is given  
by the formula:  
PV = Psup PL  
The deflection coil resistance has to be multiplied with 1.2  
in order to take account of hot conditions.  
The power to be supplied is given by the formula:  
I
Psup = V × coil(peak) + V × 0.015 [A] + 0.3 [W]  
Chapter “Characteristics” supplies values for the voltage  
losses of the vertical output stage. For the first part of the  
scan the voltage loss is given by Vloss(1). For the second  
-----------------------  
P
P
2
In this formula 0.3 [W] represents the average value of the  
losses in the flyback supply.  
part of the scan the voltage loss is given by Vloss(2)  
.
The voltage drop across the deflection coil during scan is  
determined by the coil impedance. For the first part of the  
scan the inductive contribution and the ohmic contribution  
to the total coil voltage drop are of opposite sign, while for  
the second part of the scan the inductive part and the  
ohmic part have the same sign.  
The average external load power dissipation in the  
deflection coil and the measuring resistor is given by the  
formula:  
2
(Icoil(peak)  
)
PL  
=
× (R coil + RM)  
-------------------------------  
3
For the vertical frequency the maximum frequency  
occurring must be applied to the calculations.  
Example  
Table 1 Application values  
SYMBOL VALUE  
Icoil(peak)  
The required power supply voltage VP for the first part of  
the scan is given by:  
UNIT  
VP(1) = Icoil(peak) × (Rcoil + RM)  
Lcoil × 2Icoil(peak) × fvert(max) + Vloss(1)  
1.2  
2.4  
5
A
Icoil(p-p)  
Lcoil  
Rcoil  
RM  
A
The required power supply voltage VP for the second part  
of the scan is given by:  
mH  
6
0.6  
50  
640  
VP(2) = Icoil(peak) × (Rcoil + RM)  
+ Lcoil × 2Icoil(peak) × fvert(max) + Vloss(2)  
fvert  
Hz  
µs  
tFB  
The minimum required supply voltage VP shall be the  
highest of the two values VP(1) and VP(2). Spread in supply  
voltage and component values also has to be taken into  
account.  
Table 2 Calculated values  
SYMBOL VALUE  
UNIT  
VP  
14  
V
s
Flyback supply voltage calculation  
RM + Rcoil (hot)  
7.8  
If the flyback time is known, the required flyback supply  
voltage can be calculated by the simplified formula:  
tvert  
x
0.02  
0.000641  
30  
R
1 et  
coil + RM  
VFB  
Psup  
PL  
V
VFB = Icoil(pp)  
×
--------------------------  
FB x  
8.91  
3.74  
5.17  
W
W
W
where:  
L coil  
PV  
x =  
--------------------------  
R
coil + RM  
1999 Dec 22  
12  
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