AAT2506
1MHz的降压转换器/ LDO稳压器
输入电容
输入纹波V
PP
= 25mV的
C
IN
=
1
V
PP
- ESR
·
4
·
F
S
I
OBUCK
=
1
= 4.75F
25mV
- 5m
·
4
·
1MHz
0.4A
I
RMS
=
I
OBUCK
= 0.2Arms
2
P = ESR
·
I
RMS2
= 5m
·
(0.2A)
2
= 0.2MW
AAT2506损失
I
OBUCK2
· (R
DSON ( HS )
· V
OBUCK
+ R
DSON ( LS)的
· [V
IN
- V
OBUCK
])
V
IN
P
总
=
+ (t
sw
·女·我
OBUCK
+ I
QBUCK
+ I
QLDO
) · V
IN
+ (V
IN
- V
LDO
) · I
LDO
=
0.4
2
· (0.725
·
1.8V + 0.7
·
[4.2V - 1.8V])
4.2V
+ (为5ns · 1.0MHz的· 0.4A + 50μA + 125μA ) · + 4.2V ( 4.2V - 3.3V ) · 0.3A = 392mW
T
J(下最大)
= T
AMB
+
Θ
JA
· P
损失
= 85°C + ( 50 ° C / W ) 392mW = 105℃
2506.2005.12.1.0
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