EEWORLDEEWORLDEEWORLD

Part Number

Search

M39014/05-2865

Description
Ceramic Capacitor, Ceramic, 50V, 20% +Tol, 20% -Tol, BX, 15% TC, 0.015uF, Through Hole Mount, AXIAL LEADED
CategoryPassive components    capacitor   
File Size1MB,15 Pages
ManufacturerKEMET
Websitehttp://www.kemet.com
Download Datasheet Parametric View All

M39014/05-2865 Overview

Ceramic Capacitor, Ceramic, 50V, 20% +Tol, 20% -Tol, BX, 15% TC, 0.015uF, Through Hole Mount, AXIAL LEADED

M39014/05-2865 Parametric

Parameter NameAttribute value
Is it Rohs certified?incompatible
Objectid2040273619
package instruction,
Reach Compliance Codenot_compliant
ECCN codeEAR99
YTEOL6.25
capacitance0.015 µF
Capacitor typeCERAMIC CAPACITOR
diameter2.29 mm
dielectric materialsCERAMIC
JESD-609 codee0
length6.35 mm
Manufacturer's serial numberM39014
Installation featuresTHROUGH HOLE MOUNT
multi-layerNo
negative tolerance20%
Number of terminals2
Maximum operating temperature125 °C
Minimum operating temperature-55 °C
Package shapeTUBULAR PACKAGE
Package formAxial
positive tolerance20%
Rated (DC) voltage (URdc)50 V
GuidelineMIL-PRF-39014/05
seriesC(SIZE)T
surface mountNO
Temperature characteristic codeBX
Temperature Coefficient15% ppm/°C
Terminal shapeWIRE
MULTILAYER CERAMIC CAPACITORS/AXIAL
& RADIAL LEADED
Multilayer ceramic capacitors are available in a
variety of physical sizes and configurations, including
leaded devices and surface mounted chips. Leaded
styles include molded and conformally coated parts
with axial and radial leads. However, the basic
capacitor element is similar for all styles. It is called a
chip and consists of formulated dielectric materials
which have been cast into thin layers, interspersed
with metal electrodes alternately exposed on opposite
edges of the laminated structure. The entire structure is
fired at high temperature to produce a monolithic
block which provides high capacitance values in a
small physical volume. After firing, conductive
terminations are applied to opposite ends of the chip to
make contact with the exposed electrodes.
Termination materials and methods vary depending on
the intended use.
TEMPERATURE CHARACTERISTICS
Ceramic dielectric materials can be formulated with
Class III:
General purpose capacitors, suitable
a wide range of characteristics. The EIA standard for
for by-pass coupling or other applications in which
ceramic dielectric capacitors (RS-198) divides ceramic
dielectric losses, high insulation resistance and
dielectrics into the following classes:
stability of capacitance characteristics are of little or
no importance. Class III capacitors are similar to Class
Class I:
Temperature compensating capacitors,
II capacitors except for temperature characteristics,
suitable for resonant circuit application or other appli-
which are greater than ± 15%. Class III capacitors
cations where high Q and stability of capacitance char-
have the highest volumetric efficiency and poorest
acteristics are required. Class I capacitors have
stability of any type.
predictable temperature coefficients and are not
affected by voltage, frequency or time. They are made
KEMET leaded ceramic capacitors are offered in
from materials which are not ferro-electric, yielding
the three most popular temperature characteristics:
superior stability but low volumetric efficiency. Class I
C0G:
Class I, with a temperature coefficient of 0 ±
capacitors are the most stable type available, but have
30 ppm per degree C over an operating
the lowest volumetric efficiency.
temperature range of - 55°C to + 125°C (Also
known as “NP0”).
Class II:
Stable capacitors, suitable for bypass
X7R:
Class II, with a maximum capacitance
or coupling applications or frequency discriminating
change of ± 15% over an operating temperature
circuits where Q and stability of capacitance char-
range of - 55°C to + 125°C.
acteristics are not of major importance. Class II
Z5U:
Class III, with a maximum capacitance
capacitors have temperature characteristics of ± 15%
change of + 22% - 56% over an operating tem-
or less. They are made from materials which are
perature range of + 10°C to + 85°C.
ferro-electric, yielding higher volumetric efficiency but
less stability. Class II capacitors are affected by
Specified electrical limits for these three temperature
temperature, voltage, frequency and time.
characteristics are shown in Table 1.
SPECIFIED ELECTRICAL LIMITS
Parameter
Dissipation Factor: Measured at following conditions.
C0G – 1 kHz and 1 vrms if capacitance >1000pF
1 MHz and 1 vrms if capacitance 1000 pF
X7R – 1 kHz and 1 vrms* or if extended cap range 0.5 vrms
Z5U – 1 kHz and 0.5 vrms
Dielectric Stength: 2.5 times rated DC voltage.
Insulation Resistance (IR): At rated DC voltage,
whichever of the two is smaller
Temperature Characteristics: Range, °C
Capacitance Change without
DC voltage
* MHz and 1 vrms if capacitance
100 pF on military product.
Temperature Characteristics
C0G
X7R
2.5%
(3.5% @ 25V)
Z5U
0.10%
4.0%
Pass Subsequent IR Test
1,000 M
F
or 100 G
-55 to +125
0 ± 30 ppm/°C
1,000 M
F
or 100 G
-55 to +125
± 15%
1,000 M
or 10 G
F
+ 10 to +85
+22%,-56%
Table I
4
© KEMET Electronics Corporation, P.O. Box 5928, Greenville, S.C. 29606, (864) 963-6300
Taking the BOOST circuit as an example, there are two algorithms to calculate the maximum average input current, that is, the inductor current.
Taking the BOOST circuit as an example, there are two algorithms to calculate the maximum average input current, that is, the inductor current. The first is to calculate the output power, such as 30w ...
小太阳yy Switching Power Supply Study Group
Looking for a current/voltage limiting IC
Now there are two outputs 12V / 5V. Because of power limitation, the output current must be limited. When the output current is too large, the current limiting IC must have an output (such as an exter...
fangfang120 DIY/Open Source Hardware
Arteli AT32 USART IAP (with host computer and firmware source code)
For most flash-based systems, an important requirement is the ability to update the firmware while it is installed in the final product. This feature is called In-Application Programming (IAP). The pu...
火辣西米秀 Domestic Chip Exchange
Load switch controls battery voltage output more reliably and simply than MOS
Load switch controls battery voltage output more reliably and simply than MOS.Load switch should be different from analog switch, right? However, the control logic is the same, and the circuit structu...
QWE4562009 Discrete Device
EEWORLD University Hall----Why is the embedded microprocessor architecture design so complicated?
Why is embedded microprocessor architecture design so complicated : https://training.eeworld.com.cn/course/6146Why is embedded microprocessor architecture design so complicated?...
抛砖引玉 MCU
CC2640R2f Watchdog
In TI's official routines, there is a usage of watchdog, for example: C:\ti\simplelink_cc2640r2_sdk_2_40_00_32\examplestos\CC2640R2_LAUNCHXL\drivers\watchdog This is the watchdog project in my SDK dir...
Jacktang Wireless Connectivity

Technical ResourceMore

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

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 © 2005-2024 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