EEWORLDEEWORLDEEWORLD

Part Number

Search

3186BE393U025MRS1

Description
Aluminum Electrolytic Capacitor, Polarized, Aluminum, 25V, 75% +Tol, 10% -Tol, 39000uF,
CategoryPassive components    capacitor   
File Size189KB,8 Pages
ManufacturerCDE [ CORNELL DUBILIER ELECTRONICS ]
Environmental Compliance
Download Datasheet Parametric View All

3186BE393U025MRS1 Overview

Aluminum Electrolytic Capacitor, Polarized, Aluminum, 25V, 75% +Tol, 10% -Tol, 39000uF,

3186BE393U025MRS1 Parametric

Parameter NameAttribute value
Is it Rohs certified?conform to
Objectid843985615
package instruction,
Reach Compliance Codeunknown
ECCN codeEAR99
capacitance39000 µF
Capacitor typeALUMINUM ELECTROLYTIC CAPACITOR
diameter35.41 mm
dielectric materialsALUMINUM
ESR14 mΩ
length105.61 mm
negative tolerance10%
Number of terminals2
Maximum operating temperature85 °C
Minimum operating temperature-40 °C
Package formScrew Ends
polarityPOLARIZED
positive tolerance75%
Rated (DC) voltage (URdc)25 V
ripple current9000 mA
series3186
Terminal pitch12.7 mm
click here to see hardware and mounting options
Type 3186 85 °C Aluminum Electrolytic, Screw Terminal
Best Value 85 °C High Capacitance Screw Terminal Type
While Type 3186’s standard encasement is by compression with the
capacitor element captured on an aluminum peg in the can bottom
and a phenolic peg in the top, rilled construction is available.  With
rilled construction the element is secured by rills, spoon shaped
dimples in the side of the can.  Rilled construction offers the
industry’s highest vibration and shock withstanding and excellent
heat transfer.  Besides increasing ripple current handling, the rilled
construction extends the great value of the Type 3186 into military
and transportation applications that require rugged mechanical
capability.
Highlights
Specifications
Temperature Range
Rated Voltage Range
Capacitance Range
Capacitance Tolerance
Leakage Current
Ripple Current Multipliers
- Rilled cans withstand high shock and vibration
- High ripple current capability
- High capacitance per can
–40 ºC to +85 ºC
16 Vdc to 500 Vdc
220 uF to 1.0 F
–10% +75% ≤ 160 Vdc
–10% +50% ≥ 200 Vdc
≤6√CV µA (6 mA max.) at 5 minutes
Ambient Temperature
45 °C
2.24
Frequency
60 Hz 120 Hz
16 – 100 V
0.90
1.00
1.00
200 – 500 V
0.90
300 Hz
1.15
1.25
1000 Hz
1.25
1.40
≥10
kHz
1.30
1.50
55 °C
2.00
65 °C
1.73
75 °C
1.41
85 °C
1.00
Low Temperature Characteristics
Impedance ratio: Z
–20 ⁰C
∕ Z
+25 ⁰C
≤ 8 (16–50 Vdc)
≤ 4 (63–100 Vdc)
≤ 3 (150–500 Vdc)
1,500 h @ full load at 85 °C
∆Capacitance ±10%
ESR 200% of limit
DCL 100% of limit
500 h @ 85 °C
∆Capacitance ±10%
ESR 175% of limit
DCL 100% of limit
10 to 500 Hz, 0.75 mm or 10 g* if less,
3 directions, 2 h ea
Δ Capacitance: ±5%
no visible damage or leakage
*15 g if rilled construction
RoHS Compliant
Endurance Life Test
Shelf Life Test
Vibration
CDM Cornell Dubilier • 140 Technology Place • Liberty, SC 29657 • Phone: (864)843-2277 • Fax: (864)843-3800
The problem of self-reduction
if(Bianxing[0]>0) Bianxing[0]--; There are two sentences in the program. The array Bianxing[6] is long int. When debugging, I found that if Bianxing[0]=1, it will become 0XBF80000 after decrementing. ...
chenbingjy stm32/stm8
Share a 24L01+ driver, debug it yourself
The sending end package is Device_TX, the receiving end is Device_RX, the test program has been tested on the STC15 series microcontroller, using the serial port debugging method, soft imitation SPI s...
灯塔 Electronics Design Contest
MOS tube reverse peak and RCD absorption circuit in switching power supply design
[p=30, null, left][color=#333333]For a switching power supply engineer, it is common to make choices in front of one or more pairs of mutually opposing conditions. The topic we are discussing today is...
tosharp.cn Power technology
Have you ever done mutilplexer?
If modern works in mutilplexer mode, if there are several virtual channels, if the data is automatically received by modern, which virtual channel will it be transmitted to? Thank you, I have been thi...
m200200 Embedded System
80C51 Read Pin and Read Port
Please explain the difference between the two and how to operate them to achieve the corresponding functions. It would be best if you can provide examples. Thank you...
redfox29 Embedded System
Power supply decoupling capacitors
There is a question I have always wanted to ask. In a circuit board, if I have already filtered the wave at the power supply and processed it, can I add a few less capacitors at the MCU? For example, ...
轩辕默殇 Power technology

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

Robot
development
community

Index Files: 75  2033  333  1241  995  2  41  7  25  21 
Datasheet   0 1 2 3 4 5 6 7 8 9 A B C D E F G H I J K L M N O P Q R S T U V W X Y Z
Room 1530, 15th Floor, Building B, No. 18 Zhongguancun Street, Haidian District, Beijing Telephone: (010) 82350740 Postal Code: 100190
Copyright © 2005-2026 EEWORLD.com.cn, Inc. All rights reserved 京ICP证060456号 京ICP备10001474号-1 电信业务审批[2006]字第258号函 京公网安备 11010802033920号