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BD9150MUV Datasheet(PDF) 10 Page - Rohm

Part # BD9150MUV
Description  Output 1.5A or Less High Efficiency Step-down Switching Regulator with Built-in Power MOSFET
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Manufacturer  ROHM [Rohm]
Direct Link  http://www.rohm.com
Logo ROHM - Rohm

BD9150MUV Datasheet(HTML) 10 Page - Rohm

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Technical Note
10/18
BD9150MUV
www.rohm.com
2009.05 - Rev.A
c
2009 ROHM Co., Ltd. All rights reserved.
Consideration on permissible dissipation and heat generation
As this IC functions with high efficiency without significant heat generation in most applications, no special consideration is
needed on permissible dissipation or heat generation. In case of extreme conditions, however, including lower input voltage,
higher output voltage, heavier load, and/or higher temperature, the permissible dissipation and/or heat generation must be
carefully considered.
For dissipation, only conduction losses due to DC resistance of inductor and ON resistance of FET are considered. Because
the conduction losses are considered to play the leading role among other dissipation mentioned above including gate
charge/discharge dissipation and switching dissipation.
P=IOUT
2×RON
RON=D×RONP+(1-D)RONN
D:ON duty (=VOUT/VCC)
RONH:ON resistance of Highside MOS FET
RONL:ON resistance of Lowside MOS FET
IOUT:Output current
If VCC=5V, VOUT1=3.3V, VOUT2=1.2V, RONH=170mΩ, RONL=130mΩ
IOUT=1.5A, for example,
D1=VOUT1/VCC=3.3/5=0.66
D2=VOUT2/VCC=1.2/5=0.24
RON1=0.66×0.170+(1-0.66)×0.130
=0.1122+0.0442
=0.1564[Ω]
RON2=0.24×0.170+(1-0.24)×0.130
=0.0408+0.0988
=0.1397[Ω]
P=1.5
2×0.1564+1.52×0.1397=0.666[W]
As RONH is greater than RONL in this IC, the dissipation increases as the ON duty becomes greater.
With the
consideration on the dissipation as above, thermal design must be carried out with sufficient margin allowed.
Fig.32 Thermal derating curve
(VQFN020V4040)
Ambient temperature:Ta [℃]
0
2.0
3.0
4.0
1.21W
3.56W
1.0
4.5
0.70W
0.34W
4 layers (copper foil area : 5505mm
2)
(copper foil in each layers)
θ
j-a=32.1℃/W
4 layers (copper foil area : 10.29mm
2)
(copper foil in each layers)
θ
j-a=82.6℃/W
1 layer (copper foil area : 0mm
2)
θ
j-a=160.1℃/W
IC only
θ
j-a=249.5℃/W
0
25
50
75
100
125
150
105


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