EEWORLDEEWORLDEEWORLD

Part Number

Search

C0504X5R250-472KG6D

Description
Ceramic Capacitor, Multilayer, Ceramic, 25V, 10% +Tol, 10% -Tol, X5R, -/+15ppm/Cel TC, 0.0047uF, 0504,
CategoryPassive components    capacitor   
File Size1022KB,14 Pages
ManufacturerVENKEL LTD
Environmental Compliance
Download Datasheet Parametric View All

C0504X5R250-472KG6D Overview

Ceramic Capacitor, Multilayer, Ceramic, 25V, 10% +Tol, 10% -Tol, X5R, -/+15ppm/Cel TC, 0.0047uF, 0504,

C0504X5R250-472KG6D Parametric

Parameter NameAttribute value
Is it Rohs certified?conform to
Objectid911497860
package instruction, 0504
Reach Compliance Codecompliant
ECCN codeEAR99
capacitance0.0047 µF
Capacitor typeCERAMIC CAPACITOR
dielectric materialsCERAMIC
high1.016 mm
JESD-609 codee4
length1.346 mm
multi-layerYes
negative tolerance10%
Number of terminals2
Maximum operating temperature85 °C
Minimum operating temperature-55 °C
Package formSMT
method of packingTR, Paper, 10 Inch
positive tolerance10%
Rated (DC) voltage (URdc)25 V
seriesC
size code0504
Temperature characteristic codeX5R
Temperature Coefficient15% ppm/°C
Terminal surfaceGold (Au) - with Nickel (Ni) barrier
width1.016 mm
Ceramic Chip Capacitors
Multilayer chip capacitors have a low residual inductance, an excellent frequency
response and minimal stray capacitance since there are no leads. These characteristics
enable design to be very close to the theoretical values of the capacitors.
NP0/C0g:
15%
10%
5%
0%
-5%
-10%
-15%
-55°C
-25°C
0°C
SPECIFICATIONS:
Typical Capacitance Change vs. Temperature
OPERATING TEMPERATURE RANGE:
TEMPERATURE COEFFICIENT:
TEMPERATURE VOLTAGE COEFFICIENT:
DISSIPATION FACTOR:
INSULATION RESISTANCE:
AGEING:
WITHSTANDING VOLTAGE:
TEST PARAMETERS:
25°C
50°C
75°C
100°C
125°C
CAPACITANCE TOLERANCE:
OPERATING TEMPERATURE RANGE:
TEMPERATURE COEFFICIENT:
TEMPERATURE VOLTAGE COEFFICIENT:
DISSIPATION FACTOR:
-55°C to +125°C
0 ±30PPM/°C
0 ±30PPM/°C
0.1% MAX.
>1000 ohms F or 100 G ohms, whichever is less at 25°C, VDCW.
(The IR at 125°C is 10% of the value at 25°C)
None
>2.5 times VDCW
1MHz ± 100KHz at 1.0 ± 0.2 Vrms
100 pF, 25°C
1KHz ± 100Hz at 1.0 ± 0.2 Vrms > 100 pF, 25°C
B,C,D,F,G,J,K
-55°C to +125°C
0 ±15%∆°C MAX.
X7R not applicable
For 50 volts and 100 volts: 2.5% MAX.;
For 25 Volts 3.5 %( 0201, 0402, 0603, sizes
If 7% Max, for Values
0.33uF) for 16 Volts: 3.5% Max (except 0402
0.33uF & 0603
0.15uF DF is 5% Max)
For 10 Volts: 5% Max
For 6.3 Volts: 10% Max
For Values
10uF For all voltage offerings, the DF is 10% Max
>1000 ohms F or 100 G ohms, whichever is less at 25°C, VDCW.
(The IR at 125°C is 10% of the value at 25°C)
2.5% per decade hour, typical
>2.5 times VDCW
1KHz ± 100Hz at 1.0 ± 0.2 Vrms > 100 pF, 25°C
J,K,M
-55°C to +85°C
0 ±15%∆°C MAX.
X5R not applicable
For 50 Volts and 100 Volts 2.5% Max
For 25 Volts: 3.5% Max (0201, 0402, 0603,
0.33uF DF is 7% Max)
For 16 Volts: 3.5% Max (except 0402
0.33uF & 0603
0.15uF DF is
5% Max)
For 10 Volts 5.0% Max; For 4.0 Volts and 6.3Volts: 10% Max
For values
10uF the D.F. is 10% Max.
>1000 ohms F or 100 G ohms, whichever is less
at 25°C, VDCW. (10,000 ohms at 125°C)
2.5% per decade hour, typical
>2.5 times VDCW
1KHZ ± 100Hz at 1.0 ± 0.2 Vrms > 100 pF, 25°C
K,M
+10°C to +85°C
+22% - 56%∆°C MAX.
4.0% MAX.
>100 ohms F or 10 G ohms, whichever is less at 25°C, VDCW.
5% per decade hour, typical
>2.5 times VDCW
1KHz ± 100Hz at 0.5 ± 0.1 Vrms, 25°C
M,Z
-30°C to +85°C
+22% - 82%∆°C MAX.
For 25 volts and 50 volts: 5% MAX.;
For 16 volts: 7% MAX.; For 10 volts: 9% MAX.;
For 6.3 volts: 11% MAX.
For higher Cap values > 10µF, the D.F. is 20% MAX.
>100 ohms F or 10 G ohms, whichever is less at 25°C, VDCW.
7% per decade hour, typical
>2.5 times VDCW
1KHz ± 100Hz at 1.0 ± 0.2 Vrms, 25°C
M,Z
X7R:
15%
10%
5%
0%
-5%
-10%
-15%
-55°C
-25°C
0°C
SPECIFICATIONS:
Typical Capacitance Change vs. Temperature
INSULATION RESISTANCE:
25°C
50°C
75°C
100°C
125°C
AGEING:
WITHSTANDING VOLTAGE:
TEST PARAMETERS:
*
CAPACITANCE TOLERANCE:
OPERATING TEMPERATURE RANGE:
TEMPERATURE COEFFICIENT:
TEMPERATURE VOLTAGE COEFFICIENT:
DISSIPATION FACTOR:
X5R:
15%
10%
5%
0%
-5%
-10%
-15%
-55°C
-25°C
0°C
SPECIFICATIONS:
Typical Capacitance Change vs. Temperature
INSULATION RESISTANCE:
25°C
50°C
75°C
100°C
125°C
Z5U:
20%
0%
-20%
-40%
-60%
-80%
AGEING:
WITHSTANDING VOLTAGE:
TEST PARAMETERS:
*
CAPACITANCE TOLERANCE:
OPERATING TEMPERATURE RANGE:
TEMPERATURE COEFFICIENT:
DISSIPATION FACTOR:
INSULATION RESISTANCE:
AGEING:
WITHSTANDING VOLTAGE:
TEST PARAMETERS:
CAPACITANCE TOLERANCE:
OPERATING TEMPERATURE RANGE:
TEMPERATURE COEFFICIENT:
DISSIPATION FACTOR:
SPECIFICATIONS:
Typical Capacitance Change vs. Temperature
-55°C
-25°C
0°C
25°C
50°C
75°C
100°C
125°C
Y5V:
40%
20%
0%
-20%
-40%
-60%
-80%
-100%
-55°C
-25°C
0°C
SPECIFICATIONS:
Typical Capacitance Change vs. Temperature
25°C
50°C
75°C
100°C
125°C
INSULATION RESISTANCE:
AGEING:
WITHSTANDING VOLTAGE:
TEST PARAMETERS:
*
CAPACITANCE TOLERANCE:
5
1KHz ± 100Hz at 1.0 ± 0.2 Vrms
<
10uF (10 V min.)
1KHz ± 100Hz at 0.5 ± 0.1 Vrms
<
10uF (6.3V max.)
120Hz ± 24Hz at 0.5 ± 0.1 Vrms
10uF
All components in this section are RoHS compliant per the EU directives and definitions.
*
Test parameters for High Value Caps - X7R, X5R and Y5V:
Solution to the problem of automatic restart of the target board when debugging the UP-TECH2410 board with JLINK
The problem is this: About a month ago, I built a S3C2410 project on IAR6.1. I have two boards, one FS2410 board from Youlong and two UP-TECH2410 boards from Broadcom. There are two debuggers for that...
zsjalive Integrated technical exchanges
Help! FPGA 1.2V short circuit to ground
[color=#666666][font=arial, 宋体]I soldered a board myself. It was running fine, but suddenly the program configuration failed. I measured and found that the 1.2V would short-circuit as soon as it was p...
鹰翔寰宇不会变 FPGA/CPLD
Writing a program
I want to write a program with MSP430. How can I program the output to display the amplitude value of a known frequency?...
wxw6987 51mcu
Ask everyone a question about 4G wireless data transmission
I have a question for the masters. Thank you in advance! Now I want to make a 4G wireless data transmission solution, the purpose is to realize the data exchange between the mobile phone APP or PC and...
蓝先生 Industrial Control Electronics
Application of high power amplifier in inverse system control of hyperbolic function model, Xi'an Antai Electronics
Experiment name: Preisach type hysteresis nonlinear modeling and inverse control based on hyperbolic function Experimental content:Drivers made of smart materials such as piezoelectric ceramics and ma...
aigtek01 Switching Power Supply Study Group
Wi-Fi&BLE SoC NANO main control board (WBRU) development board XANWE has not been evaluated yet 02--Understand the product features
First, let’s talk about the pros and cons of platform-based mechanisms. advantage: Disadvantages:The key point is here: considering such high fees, and the annual payment, let’s analyze it logically. ...
xanwe RF/Wirelessly

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

Robot
development
community

Index Files: 2614  1725  1877  703  2106  53  35  38  15  43 
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