首页 > 器件类别 > 电源/电源管理 > 电源电路

AME8501AEFTCA21Z

Power Management Circuit

器件类别:电源/电源管理    电源电路   

厂商名称:安茂微电子(AME)

下载文档
器件参数
参数名称
属性值
包装说明
,
Reach Compliance Code
compliant
Base Number Matches
1
文档预览
AME, Inc.
AME8500 / 8501
µProcessor
Supervisory
n
General Description
The AME8500 family allows the user to customize the
CPU reset function without any external components.
The user has a large choice of reset voltage thresholds,
reset time intervals, and output driver configurations, all
of which are preset at the factory. Each wafer is trimmed
to the customer's specifications.
These circuits monitor the power supply voltage of
µP
based systems. When the power supply voltage drops
below the voltage threshold a reset is asserted immedi-
ately (within an interval T
D1
). The reset remains asserted
after the supply voltage rises above the voltage threshold
for a time interval, T
D2
. The reset output may be either
active high (RESET) or active low (RESETB). The reset
output may be configured as either push/pull or open drain.
The state of the reset output is guaranteed to be correct
for supply voltages greater than 1V.
The AME8501 includes all the above functionality plus
an overtemperature shutdown function. When the ambi-
ent temperature exceeds 80
o
C a reset is asserted and
remains asserted until the temperature falls below 60
o
C.
Space saving SOT23 packages and micropower quies-
cent current (<3.0µA) make this family a natural for por-
table battery powered equipment.
n
Typical Operating Circuit
2
V
CC
*
V
CC
AME8500
RESET / RESET
GND
Processor
RESET
Input
GND
3
Note: * External pull-up resistor is required if open-
drain output is used. 10 kΩ is recommended.
n
Block Diagram
AME8500 with Push-Pull RESET
V
D D
R1
I1
P1
Delay
n
Features
l
Small packages: SOT-23, SOT-89
l
11 voltage threshold options
l
Tight voltage threshold tolerance ---±1.50%
l
5 reset interval options
l
4 output configuration options
l
Wide temperature range -------- -40
o
C to 85
o
C
l
Low temperature coefficient --- 100ppm/
o
C
(max)
l
Low quiescent current < 3.0µA
l
Thermal shutdown option (AME8501)
V
D D
RESET
N1
R2
GND
V
REF
AME8500 with Push-Pull RESET
n
Applications
l
Portable electronics
l
Power supplies
l
Computer peripherals
l
Data acquisition systems
l
Applications using CPUs
l
Consumer electronics
GND
R1
I1
P1
Delay
RESET
N1
R2
V
REF
1
AME, Inc.
AME8500 / 8501
µProcessor
Supervisory
n
Block Diagram (contd.)
AME8500 with Open-Drain RESET
V
D D
R1
I1
V
D D
R1
Delay
AME8500 with Open-Drain RESET
I1
RESET
N1
GND
R2
V
REF
Delay
RESET
N1
R2
GND
V
REF
n
Pin Configuration
SOT-23
Top View
3
SOT-23
Top View
AME8500AEET
AME8501AEET
1. GND
3
AME8500BEET
AME8501BEET
1. Reset/ResetB
AME8500
2. Reset/ResetB
3. V
DD
AME8500
2. GND
3. V
DD
1
2
1
2
SOT-23
Top View
3
SOT-23-L
Top View
AME8500CEET
AME8501CEET
1. Reset/ResetB
3
AME8500AEET
AME8501AEET
1. GND
AME8500
2. V
DD
3. GND
AME8500
2. Reset/ResetB
3. V
DD
1
2
1
2
2
AME, Inc.
AME8500 / 8501
µ
Processor Supervisory
n
Pin Configuration (contd.)
SOT-23-L
Top View
3
SOT-23-L
Top View
AME8500BEET
AME8501BEET
1. Reset/ResetB
2. GND
3. V
DD
3
AME8500CEET
AME8501CEET
1. Reset/ResetB
2. V
DD
3. GND
AME8500
AME8500
1
2
1
2
SOT-89
Top View
AME8500AEFT
AME8501AEFT
1. GND
2. V
DD
3. Reset/ResetB
SOT-89
Top View
AME8500BEFT
AME8501BEFT
1. Reset/ResetB
2. V
DD
3. GND
AME8500
AME8500
1
2
3
1
2
3
SOT-89
Top View
AME8500CEFT
AME8501CEFT
1. V
DD
2. GND
3. Reset/ResetB
5
SOT-25
Top View
4
AME8500
AME8500
1
2
3
1
2
3
AME8500BEEV
AME8501BEEV
1. Reset/ResetB
2. V
DD
3. GND
4. N/C
5. N/C
n
Pin Description
Pin Name
GND
RESETB/RESET
Ground
This pin can be ordered as RESET or RESETB. RESET is active high.
RESETB is active low. It is also available with an open drain or pushpull
output.
Positive power supply. A reset is asserted after this voltage drops below
a predetermined level. After V
DD
rises above that level the reset output
remains asserted until the end of the reset timeout period.
3
Pin Description
V
DD
AME, Inc.
AME8500 / 8501
µProcessor
Supervisory
n
Ordering Information
AME8500 x x x x x x x x
AME8501 x x x x x x x x
Special Feature
VDD Threshold Voltage (V
TH
)
Reset Time (T
D2NOM
)
Output Driver Option
Number of Pins
Package Type
Operating Temperature Range
Pin Configuration
Output Driver
Number
Option
Package
of
Characteristic
Type
Pins
of RESET or
RESETB pin
T: 3
V: 5
Pin
Configuration
Operating
Temperature
Range
Reset
Time
(T
D2NOM
)
VDD
Threshold
Voltage (V
TH
)
Special
Feature
A
(SOT-23)
1. GND
E -40
O
C to 85
O
C E SOT-2X
2. Reset/
F SOT-89
ResetB
3. VDD
1. Reset/
ResetB
2. GND
3. VDD
1. Reset/
ResetB
2. VDD
3. GND
1. GND
2. VDD
3. Reset/
ResetB
1. Reset/
ResetB
2. VDD
3. GND
1. VDD
2. GND
3. Reset/
ResetB
1. Reset/
ResetB
2. VDD
3. GND
4. N/C
5. N/C
A: RESETB /PP A: 1.5 ms
B: RESETB /OD D: 30 ms
C: RESET/ PP E: 150 ms
D: RESET/ OD F: 210 ms
(RESET = Active High)
(RESETB = Active Low)
(PP = Push pull out)
(OD = Open drain output
polarity)
B
(SOT-23)
C
(SOT-23)
A
(SOT-89)
15: VTH= 1.5V L: Low profile
16: VTH= 1.6V Y: Lead free &
18: VTH= 1.8V
Low profile
19: VTH= 1.9V Z: Lead free
20: VTH= 2.0V
21: VTH= 2.1V
22: VTH= 2.2V
23: VTH= 2.32V
24: VTH= 2.4V
26: VTH= 2.63V
27: VTH= 2.7V
28: VTH= 2.8V
29: VTH= 2.93V
31: VTH= 3.08V
40: VTH= 4.0V
42: VTH= 4.2V
44: VTH= 4.38V
46: VTH= 4.63V
B
(SOT-89)
C
(SOT-89)
B
(SOT-25)
4
AME, Inc.
AME8500 / 8501
µProcessor
Supervisory
n
Ordering Information (contd.)
Part Number
AME8500AEETAA21
AME8500AEETAA21L
AME8500AEETAA21Z
AME8500AEETAA21Y
AME8500AEETAD20
AME8500AEETAD20L
AME8500AEETAD20Z
AME8500AEETAD20Y
AME8500AEETAD26
AME8500AEETAD26L
AME8500AEETAD26Z
AME8500AEETAD26Y
AME8500AEETAD29
AME8500AEETAD29L
AME8500AEETAD29Z
AME8500AEETAD29Y
AME8500AEETAE20
AME8500AEETAE20L
AME8500AEETAE20Z
AME8500AEETAE20Y
AME8500AEETAE21
AME8500AEETAE21L
AME8500AEETAE21Z
AME8500AEETAE21Y
Marking
ASVww
ASVww
ASVww
ASVww
ALXww
ALXww
ALXww
ALXww
AGWww
AGWww
AGWww
AGWww
ARYww
ARYww
ARYww
ARYww
AUAww
AUAww
AUAww
AUAww
AVGww
AVGww
AVGww
AVGww
V
TH
Voltage
2.10V
2.10V
2.10V
2.10V
2.00V
2.00V
2.00V
2.00V
2.63V
2.63V
2.63V
2.63V
2.93V
2.93V
2.93V
2.93V
2.00V
2.00V
2.00V
2.00V
2.10V
2.10V
2.10V
2.10V
Package
SOT-23
TSOT-23
SOT-23
TSOT-23
SOT-23
TSOT-23
SOT-23
TSOT-23
SOT-23
TSOT-23
SOT-23
TSOT-23
SOT-23
TSOT-23
SOT-23
TSOT-23
SOT-23
TSOT-23
SOT-23
TSOT-23
SOT-23
TSOT-23
SOT-23
TSOT-23
Operating Temp. Range
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
- 40
o
C to + 85
o
C
Note: ww represents the date code
* A line on top of the first letter represents lead free plating such as A SV
Pls consult AME sales office or authorized Rep./Distributor for the availability of output voltage or package type.
5
查看更多>
帮忙分析下这个电路,将将其原理
帮忙分析下这个电路,将将其原理看看,学习学习...
tonytong 电源技术
Vicor 可最大限度提高AI、HPC和数据计算性能的电源解决方案
供电现已成为限制因素供电和电源效率已成为大规模计算系统最大的问题。随着处理复杂AlI功能的ASIC和GPU的出现,行业经历了处理器功耗的急剧增加。随着Al功能在大规模学习及推断应用部署中的采用,机架电源也随之增加。在大多数情况下,供电现在是限制计算性能的因素,因为新型CPU消耗的电流看起来一直在不断提升。供电不仅需要配电,同时还需要效率、尺寸、成本和热性能。Vicor与你分享更多电源解决方案前端解决方案实现HVDC配电母线转换器模块(BC...
EEWORLD社区 电源技术
IGBT是啥?本文带你了解它的前世今生
引言电的发现是人类历史的革命,由它产生的动能每天都在源源不断的释放,人对电的需求不亚于人类世界的氧气,如果没有电,人类的文明还会在黑暗中探索。然而在电力电子里面,最重要的一个元件就是IGBT。没有IGBT就不会有高铁的便捷生活。一说起IGBT,半导体制造的人都以为不就是一个分立器件(PowerDisceret)嘛,都很瞧不上眼。然而他和28nm/16nm集成电路制造一样,是国家“02专项”的重点扶持项目,这玩意是现在目前功率电子器件里技术最先进的产品,已经全面取代了传统的Power...
木犯001号 电源技术
给蓄电池充电的BUCK电路为什么输出没变化?
给蓄电池充电的BUCK电路为什么输出没变化?PWM周期10K占空比30%给蓄电池充电的BUCK电路为什么输出没变化?猜测你的Buck电路中电流不连续。仿真使用了示波器,示波器显示的波形显然不是矩形波,和矩形波相去甚远。这已经是相当严重的问题。如果不是仿真而是实际电路,恐怕管子已经烧毁。电路参数计算过吗? 请问要如何解决谢谢 L1中电流不连续,是因为L1电感量在10kHz开关频率和200欧负载下太小。示波器显示波形很差,是因为R3R4电阻太大。本来,10...
stm32f103vct6 电源技术
【转帖】运放使用中为啥不稳定?这几个原因是罪魁祸首!
在集成运放的应用中,经过相位补偿的集成运放在大多数应用场合是能满足要求的。但在应用时,有时还会出现自激,这一般是由于下述原因所致。1、没有按集成运放使用说明中推荐的相位校正电路和参数值进行校正说明书中推荐的补偿方法和参数是通过产品设计和大量实验得出的,对大多数应用是有效的,它考虑了温度、电源电压变化等因素引起的频响特性的变化,并保证具有一定的稳定裕度。2、电源退耦不好当电源退耦不好时,各放大级的信号电流内阻上的电压降将产生互耦作用,若耦合信号与某级输入信号是同...
皇华Ameya360 电源技术
求教各位大佬,LT1763这个芯片旁路电容取值的问题
LT1763官方电路里有一个103的旁路电容,想请教大家这个电容容值可以变化吗?因为手头只有体积比较大的103薄膜电容,能用0.1u的贴片陶瓷来代替吗?求教各位大佬,LT1763这个芯片旁路电容取值的问题容量有点大,一致还可以勉强代替,效果不一定好 明白了,谢谢版主回复,我还是去买一些103贴片来。...
wangf9876 电源技术