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RT8008-15PB 参数 Datasheet PDF下载

RT8008-15PB图片预览
型号: RT8008-15PB
PDF下载: 下载PDF文件 查看货源
内容描述: 1.5MHz的, 600毫安,高效率PWM降压型DC / DC转换器 [1.5MHz, 600mA, High Efficiency PWM Step-Down DC/DC Converter]
分类和应用: 转换器
文件页数/大小: 14 页 / 210 K
品牌: RICHTEK [ RICHTEK TECHNOLOGY CORPORATION ]
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RT8008  
polymer, aluminum electrolytic and ceramic capacitors are  
all available in surface mount packages. Special polymer  
capacitors offer very low ESR but have lower capacitance  
density than other types. Tantalum capacitors have the  
highest capacitance density but it is important to only  
use types that have been surge tested for use in switching  
power supplies. Aluminum electrolytic capacitors have  
significantly higher ESR but can be used in cost-sensitive  
applications provided that consideration is given to ripple  
current ratings and long term reliability. Ceramic capacitors  
have excellent low ESR characteristics but can have a  
high voltage coefficient and audible piezoelectric effects.  
The high Q of ceramic capacitors with trace inductance  
can also lead to significant ringing.  
Efficiency Considerations  
The efficiency of a switching regulator is equal to the output  
power divided by the input power times 100%. It is often  
useful to analyze individual losses to determine what is  
limiting the efficiency and which change would produce  
the most improvement. Efficiency can be expressed as :  
Efficiency = 100% - (L1+ L2+ L3+ ...)  
where L1, L2, etc. are the individual losses as a percentage  
of input power. Although all dissipative elements in the  
circuit produce losses, two main sources usually account  
for most of the losses : VIN quiescent current and I2R  
losses. The VIN quiescent current loss dominates the  
efficiency loss at very low load currents whereas the I2R  
loss dominates the efficiency loss at medium to high load  
currents. In a typical efficiency plot, the efficiency curve  
at very low load currents can be misleading since the  
actual power lost is of no consequence.  
Using Ceramic Input and Output Capacitors  
Higher values, lower cost ceramic capacitors are now  
becoming available in smaller case sizes. Their high ripple  
current, high voltage rating and low ESR make them ideal  
for switching regulator applications. However, care must  
be taken when these capacitors are used at the input and  
output. When a ceramic capacitor is used at the input  
and the power is supplied by a wall adapter through long  
wires, a load step at the output can induce ringing at the  
input, VIN. At best, this ringing can couple to the output  
and be mistaken as loop instability. At worst, a sudden  
inrush of current through the long wires can potentially  
cause a voltage spike at VIN large enough to damage the  
part.  
1. The VIN quiescent current is due to two components :  
theDC bias current as given in the electrical characteristics  
and the internal main switch and synchronous switch gate  
charge currents. The gate charge current results from  
switching the gate capacitance of the internal power  
MOSFET switches. Each time the gate is switched from  
high to low to high again, a packet of charge DQ moves  
from VIN to ground.  
The resulting DQ/Dt is the current out of VIN that is typically  
larger than theDC bias current. In continuous mode,  
IGATECHG = f(QT+QB)  
Output Voltage Programming  
where QT and QB are the gate charges of the internal top  
and bottom switches. Both the DC bias and gate charge  
losses are proportional to VIN and thus their effects will  
be more pronounced at higher supply voltages.  
The resistive divider allows theVFB pin to sense a fraction  
of the output voltage as shown in Figure 4.  
VOUT  
2. I2R losses are calculated from the resistances of the  
internal switches, RSW and external inductor RL. In  
continuous mode the average output current flowing  
through inductor L is choppedbetween the main switch  
and the synchronous switch. Thus, the series resistance  
looking into the LX pin is a function of both top and bottom  
MOSFET RDS(ON) and the duty cycle (DC) as follows :  
R1  
FB  
R2  
RT8008  
GND  
Figure 4. Setting the Output Voltage  
For adjustable about voltage mode, the output voltage is  
setby anexternal resistive divider accordingto the following  
RSW = RDS(ON)TOP x DC + RDS(ON)BOT x (1- DC)  
The RDS(ON) for both the top and bottom MOSFETs can be  
obtained from the Typical Performance Characteristics  
equation :  
R1  
R2  
V
OUT  
= V  
(1+  
)
REF  
where VREF is the internal reference voltage (0.6V typ.)  
www.richtek.com  
10  
DS8008-04 March 2007