数据搜索系统,热门电子元器件搜索
  Chinese  ▼
ALLDATASHEETCN.COM

X  

ADP166ACBZ-2.2-R7 数据表(PDF) 15 Page - Analog Devices

部件名 ADP166ACBZ-2.2-R7
功能描述  Very Low Quiescent Current, 150 mA, LDO Regulator
PDF  23 Pages
Scroll/Zoom Zoom In 100%  Zoom Out
制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADP166ACBZ-2.2-R7 数据表(HTML) 15 Page - Analog Devices

Back Button ADP166ACBZ-2.2-R7 Datasheet HTML 11Page - Analog Devices ADP166ACBZ-2.2-R7 Datasheet HTML 12Page - Analog Devices ADP166ACBZ-2.2-R7 Datasheet HTML 13Page - Analog Devices ADP166ACBZ-2.2-R7 Datasheet HTML 14Page - Analog Devices ADP166ACBZ-2.2-R7 Datasheet HTML 15Page - Analog Devices ADP166ACBZ-2.2-R7 Datasheet HTML 16Page - Analog Devices ADP166ACBZ-2.2-R7 Datasheet HTML 17Page - Analog Devices ADP166ACBZ-2.2-R7 Datasheet HTML 18Page - Analog Devices ADP166ACBZ-2.2-R7 Datasheet HTML 19Page - Analog Devices Next Button
Zoom Inzoom in Zoom Outzoom out
 15 / 23 page
background image
Data Sheet
ADP165/ADP166
APPLICATIONS INFORMATION
CAPACITOR SELECTION
Output Capacitor, COUT
The ADP165/ADP166 are designed for operation with small,
space-saving ceramic capacitors, but function with most
commonly used capacitors as long as care is taken with regard
to the ESR value. The ESR of the output capacitor affects
stability of the LDO control loop. A minimum of 1 µF
capacitance with an ESR of 1 Ω or less is recommended to
ensure stability of the ADP165/ADP166. Transient response to
changes in load current is also affected by output capacitance.
Using a larger value of output capacitance improves the transient
response of the ADP165/ADP166 to large changes in load
current. Figure 36 and Figure 37 show the transient responses
for output capacitance values of 1 µF and 10 µF, respectively.
CH1 100mA Ω CH2 200mV
M200µs
A CH1
62mA
T 10.40%
1
2
T
LOAD CURRENT
VOUT
Figure 36. Output Transient Response, COUT = 1 µF,
CH1 = Load Current, CH2 = VOUT
CH1 100mA Ω CH2 200mV
M200µs
A CH1
74mA
T 10.00%
1
2
T
LOAD CURRENT
VOUT
Figure 37. Output Transient Response, COUT = 10 µF,
CH1 = Load Current, CH2 = VOUT
Input Bypass Capacitor, CIN
Connecting a 1 µF capacitor from VIN to GND reduces the
circuit sensitivity to the PCB layout, especially when long input
traces or high source impedance are encountered. If an output
capacitance of greater than 1 µF is required, increase the input
capacitor to match it.
Input and Output Capacitor Properties
Any good quality ceramic capacitors can be used with the
ADP165/ADP166, as long as they meet the minimum
capacitance and maximum ESR requirements. Ceramic
capacitors are manufactured with a variety of dielectrics, each
with different behavior over temperature and applied voltage.
Capacitors must have a dielectric adequate to ensure the minimum
capacitance over the necessary temperature range and dc bias
conditions. X5R or X7R dielectrics with a voltage rating of 6.3 V
or 10 V are recommended. Y5V and Z5U dielectrics are not
recommended due to their poor temperature and dc bias
characteristics.
Figure 38 depicts the capacitance vs. voltage bias characteristic
of a 0402, 1 µF, 10 V, X5R capacitor. The voltage stability of a
capacitor is strongly influenced by the capacitor size and voltage
rating. In general, a capacitor in a larger package or higher voltage
rating exhibits better stability. The temperature variation of the X5R
dielectric is about ±15% over the −40°C to +85°C temperature
range and is not a function of package or voltage rating.
1.2
1.0
0.8
0.6
0.4
0.2
0
0
2
4
6
8
10
VOLTAGE
Figure 38. Capacitance vs. Voltage Bias Characteristic
Use Equation 1 to determine the worst-case capacitance accounting
for capacitor variation over temperature, component tolerance,
and voltage.
CEFF = CBIAS × (1 − TEMPCO) × (1 − TOL)
(1)
where:
CBIAS is the effective capacitance at the operating voltage.
TEMPCO is the worst-case capacitor temperature coefficient.
TOL is the worst-case component tolerance.
In this example, the worst-case temperature coefficient (TEMPCO)
over the −40°C to +85°C range is 15% for an X5R dielectric. The
tolerance of the capacitor (TOL) is 10%, and CBIAS is 0.94 µF at
1.8 V, as shown in Figure 38.
Substituting these values in Equation 1 yields
CEFF = 0.94 µF × (1 − 0.15) × (1 − 0.1) = 0.719 µF
Rev. A | Page 15 of 23



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


数据表 下载

Go To PDF Page


链接网址



ALLDATASHEET是否为您带来帮助?  [ DONATE ] 

关于 Alldatasheet   |   广告服务   |   联系我们   |   隐私政策   |   数据表链接    |   链接交换   |   制造商名单
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