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MIC29150-12WT 参数 Datasheet PDF下载

MIC29150-12WT图片预览
型号: MIC29150-12WT
PDF下载: 下载PDF文件 查看货源
内容描述: 高电流低压差稳压器 [High-Current Low-Dropout Regulators]
分类和应用: 稳压器
文件页数/大小: 23 页 / 718 K
品牌: MICREL [ MICREL SEMICONDUCTOR ]
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Micrel, Inc.  
MIC29150/29300/29500/29750  
Output Current, IOUT  
Output Voltage, VOUT  
Input Voltage, VIN  
First, we calculate the power dissipation of the regulator  
from these numbers and the device parameters from this  
datasheet.  
Application Information  
The  
MIC29150/29300/29500/29750  
are  
high  
performance low-dropout voltage regulators suitable for  
all moderate to high-current voltage regulator  
applications. Their 350mV to 425mV typical dropout  
voltage at full load make them especially valuable in  
battery powered systems and as high efficiency noise  
filters in “post-regulator” applications. Unlike older NPN-  
pass transistor designs, where the minimum dropout  
voltage is limited by the base-emitter voltage drop and  
collector-emitter saturation voltage, dropout performance  
of the PNP output of these devices is limited merely by  
the low VCE saturation voltage.  
P = I  
(
1.01V V  
)
D
OUT  
IN  
OUT  
Where the ground current is approximated by 1% of IOUT  
Then the heat sink thermal resistance is determined with  
this formula:  
.
T
T  
A
JMAX  
θ
=
(
θ
+ θ  
CS  
)
SA  
JC  
P
D
A trade-off for the low-dropout voltage is a varying base  
driver requirement. But Micrel’s Super ßeta PNP®  
process reduces this drive requirement to merely 1% of  
the load current.  
Where TJMAX 125°C and θCS is between 0 and 2°C/W.  
The heat sink may be significantly reduced in  
applications where the minimum input voltage is known  
and is large compared with the dropout voltage. Use a  
series input resistor to drop excessive voltage and  
distribute the heat between this resistor and the  
regulator. The low-dropout properties of Micrel Super  
ßeta PNP® regulators allow very significant reductions in  
regulator power dissipation and the associated heat sink  
without compromising performance. When this technique  
is employed, a capacitor of at least 0.1µF is needed  
directly between the input and regulator ground.  
The MIC29150/29300/29500/29750 family of regulators  
are fully protected from damage due to fault conditions.  
Current limiting is provided. This limiting is linear; output  
current under overload conditions is constant. Thermal  
shutdown disables the device when the die temperature  
exceeds the 125°C maximum safe operating  
temperature. Line transient protection allows device (and  
load) survival even when the input voltage spikes  
between –20V and +60V. When the input voltage  
exceeds approximately 32V, the over voltage sensor  
disables the regulator. The output structure of these  
regulators allows voltages in excess of the desired  
output voltage to be applied without reverse current flow.  
MIC29xx1 and MIC29xx2 versions offer a logic level  
ON/OFF control: when disabled, the devices draw nearly  
zero current.  
Please refer to Application Note 9 and Application Hint  
17 for further details and examples on thermal design  
and heat sink specification.  
With no heat sink in the application, calculate the  
junction temperature to determine the maximum power  
dissipation that will be allowed before exceeding the  
maximum junction temperature of the MIC29152. The  
maximum power allowed can be calculated using the  
thermal resistance (θJA) of the D-Pak adhering to the  
following criteria for the PCB design: 2 oz. copper and  
100mm2 copper area for the MIC29152.  
An additional feature of this regulator family is a common  
pinout: a design’s current requirement may change up or  
down yet use the same board layout, as all of these  
regulators have identical pinouts.  
For example, given an expected maximum ambient  
temperature (TA) of 75°C with VIN = 3.3V, VOUT = 2.5V,  
and IOUT = 1.5A, first calculate the expected PD using  
Equation (1);  
MIC29XXX  
VOUT  
VIN  
OUT  
IN  
PD=(3.3V–2.5V)1.5A–(3.3V)(0.016A)=1.1472W  
Next, calcualte the junction temperature for the expected  
power dissipation.  
GND  
TJ=(θJA×PD)+TA=(56°C/W×1.1472W)+75°C=139.24°C  
Figure 3. Linear regulators require only two capacitors for  
operation.  
Now determine the maximum power dissipation allowed  
that would not exceed the IC’s maximum junction  
temperature (125°C) without the useof a heat sink by  
Thermal Design  
Linear regulators are simple to use. The most  
complicated design parameters to consider are thermal  
characteristics. Thermal design requires the following  
application-specific parameters:  
PD(MAX)=(TJ(MAX)–TA)/θJA=(125°C–75°C)/(56°C/W) =0.893W  
Maximum ambient temperature, TA  
M9999-013112-B  
January 2012  
17