поискавой системы для электроныых деталей
  Russian  ▼
ALLDATASHEETRU.COM

X  

ADP1870ARMZ-1.0-R7 датащи(PDF) 29 Page - Analog Devices

номер детали ADP1870ARMZ-1.0-R7
подробное описание детали  Synchronous Buck Controller with Constant On-Time and Valley Current Mode
PDF  44 Pages
Scroll/Zoom Zoom In 100%  Zoom Out
производитель  AD [Analog Devices]
домашняя страница  http://www.analog.com
Logo AD - Analog Devices

ADP1870ARMZ-1.0-R7 датащи(HTML) 29 Page - Analog Devices

Back Button ADP1870ARMZ-1.0-R7 Datasheet HTML 25Page - Analog Devices ADP1870ARMZ-1.0-R7 Datasheet HTML 26Page - Analog Devices ADP1870ARMZ-1.0-R7 Datasheet HTML 27Page - Analog Devices ADP1870ARMZ-1.0-R7 Datasheet HTML 28Page - Analog Devices ADP1870ARMZ-1.0-R7 Datasheet HTML 29Page - Analog Devices ADP1870ARMZ-1.0-R7 Datasheet HTML 30Page - Analog Devices ADP1870ARMZ-1.0-R7 Datasheet HTML 31Page - Analog Devices ADP1870ARMZ-1.0-R7 Datasheet HTML 32Page - Analog Devices ADP1870ARMZ-1.0-R7 Datasheet HTML 33Page - Analog Devices Next Button
Zoom Inzoom in Zoom Outzoom out
 29 / 44 page
background image
ADP1870/ADP1871
Rev. 0 | Page 29 of 44
For example, if the external MOSFET characteristics are θJA
(10-lead MSOP) = 171.2°C/W, fSW = 300 kHz, IBIAS = 2 mA,
CupperFET = 3.3 nF, ClowerFET = 3.3 nF, VDR = 4.62 V, and VREG = 5.0 V,
then the power loss is
(
)
[
]
()
[]
))
002
.
0
0
.
5
10
3
.
3
10
300
(
0
.
5
(
))
002
.
0
62
.
4
10
3
.
3
10
300
(
62
.
4
(
9
3
9
3
)
(
+
×
×
×
×
×
+
+
×
×
×
×
×
=
+
×
+
+
×
=
BIAS
REG
lowerFET
SW
REG
BIAS
DR
upperFET
SW
DR
LOSS
DR
I
V
C
f
V
I
V
C
f
V
P
= 57.12 mW
)
002
.
0
5
10
3
.
3
10
300
(
)
V
5
V
13
(
)
(
)
(
9
3
)
(
+
×
×
×
×
×
=
+
×
×
×
=
BIAS
REG
total
SW
REG
IN
LDO
DISS
I
V
C
f
V
V
P
= 55.6 mW
mW
6
.
55
mW
13
.
77
)
(
)
(
)
(
+
=
+
=
LOSS
DR
LDO
DISS
TOTAL
DISS
P
P
P
= 132.73 mW
The rise in package temperature (for 10-lead MSOP) is
mW
05
.
132
°C
2
.
171
)
(
×
=
×
θ
=
LOSS
DR
JA
R
P
T
= 22.7°C
Assuming a maximum ambient temperature environment of 85°C,
°C
72
.
107
°C
85
°C
7
.
22
=
+
=
×
=
A
R
J
T
T
T
which is below the maximum junction temperature of 125°C.
DESIGN EXAMPLE
The ADP1870/ADP1871 are easy to use, requiring only a few
design criteria. For example, the example outlined in this section
uses only four design criteria: VOUT = 1.8 V, ILOAD = 15 A (pulsing),
VIN = 12 V (typical), and fSW = 300 kHz.
Input Capacitor
The maximum input voltage ripple is usually 1% of the
minimum input voltage (11.8 V × 0.01 = 120 mV).
VRIPP = 120 mV
VMAX,RIPPLE = VRIPP − (ILOAD,MAX × ESR)
= 120 mV − (15 A × 0.001) = 45 mV
mV
105
10
300
4
A
15
4
3
,
,
×
×
×
=
=
RIPPLE
MAX
SW
MAX
LOAD
IN,min
V
f
I
C
= 120 μF
Choose five 22 μF ceramic capacitors. The overall ESR of five
22 μF ceramic capacitors is less than 1 mΩ.
IRMS = ILOAD/2 = 7.5 A
PCIN = (IRMS)2 × ESR = (7.5 A)2 × 1 mΩ = 56.25 mW
Inductor
Determine inductor ripple current amplitude as follows:
3
LOAD
L
I
I ≈
Δ
= 5 A
so calculating for the inductor value
V
2
.
13
V
8
.
1
10
300
V
5
)
V
8
.
1
V
2
.
13
(
)
(
3 ×
×
×
=
×
×
Δ
=
IN,MAX
OUT
SW
L
OUT
IN,MAX
V
V
f
I
V
V
L
= 1.03 μH
The inductor peak current is approximately
15 A + (5 A × 0.5) = 17.5 A
Therefore, an appropriate inductor selection is 1.0 μH with
DCR = 3.3 mΩ (Würth Elektronik 7443552100) from Table 8
with peak current handling of 20 A.
2
)
(
L
LOSS
DCR
I
DCR
P
×
=
= 0.003 × (15 A)2 = 675 mW
Current Limit Programming
The valley current is approximately
15 A − (5 A × 0.5) = 12.5 A
Assuming a lower-side MOSFET RON of 4.5 mΩ and 13 A as
the valley current limit from Table 7 and Figure 71 indicates, a
programming resistor (RES) of 100 kΩ corresponds to an ACS
of 24 V/V.
Choose a programmable resistor of RRES = 100 kΩ for a current-
sense gain of 24 V/V.
Output Capacitor
Assume that a load step of 15 A occurs at the output and no more
than 5% is allowed for the output to deviate from the steady state
operating point. In this case, the ADP1870’s advantage is that
because the frequency is pseudo-fixed, the converter is able to
respond quickly because of the immediate, though temporary,
increase in switching frequency.
ΔVDROOP = 0.05 × 1.8 V = 90 mV
Assuming that the overall ESR of the output capacitor ranges
from 5 mΩ to 10 mΩ,
)
mV
90
(
10
300
A
15
2
)
(
2
3
×
×
×
=
Δ
×
Δ
×
=
DROOP
SW
LOAD
OUT
V
f
I
C
= 1.11 mF
Therefore, an appropriate inductor selection is five 270 μF
polymer capacitors with a combined ESR of 3.5 mΩ.



Html Pages

1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44


датащи скачать

Go To PDF Page


ссылки URL



Вашему бизинису помогли Аллдатащит?  [ DONATE ] 

Что такое Аллдатащит   |   реклама   |   контакт   |   Конфиденциальность   |   Ссылка на техническое описание    |   обмен ссыками   |   поиск по производителю
All Rights Reserved©Alldatasheet.com


Mirror Sites
English : Alldatasheet.com  |   English : Alldatasheet.net  |   Chinese : Alldatasheetcn.com  |   German : Alldatasheetde.com  |   Japanese : Alldatasheet.jp
Russian : Alldatasheetru.com  |   Korean : Alldatasheet.co.kr  |   Spanish : Alldatasheet.es  |   French : Alldatasheet.fr  |   Italian : Alldatasheetit.com
Portuguese : Alldatasheetpt.com  |   Polish : Alldatasheet.pl  |   Vietnamese : Alldatasheet.vn
Indian : Alldatasheet.in  |   Mexican : Alldatasheet.com.mx  |   British : Alldatasheet.co.uk  |   New Zealand : Alldatasheet.co.nz
Family Site : ic2ic.com  |   icmetro.com