EEWORLDEEWORLDEEWORLD

Part Number

Search

HC49USMD-4M200-1C25A18

Description
Parallel - Fundamental Quartz Crystal, 4.2MHz Nom, ROHS COMPLIANT, RESISTANCE WELDED, HC49/U, SMD, 2 PIN
CategoryPassive components    Crystal/resonator   
File Size358KB,1 Pages
ManufacturerFortiming Corporation
Environmental Compliance  
Download Datasheet Parametric View All

HC49USMD-4M200-1C25A18 Overview

Parallel - Fundamental Quartz Crystal, 4.2MHz Nom, ROHS COMPLIANT, RESISTANCE WELDED, HC49/U, SMD, 2 PIN

HC49USMD-4M200-1C25A18 Parametric

Parameter NameAttribute value
Is it lead-free?Lead free
Is it Rohs certified?conform to
MakerFortiming Corporation
package instructionROHS COMPLIANT, RESISTANCE WELDED, HC49/U, SMD, 2 PIN
Reach Compliance Codeunknow
Other featuresAT CUT; TAPE AND REEL
Ageing5 PPM/YEAR
Crystal/Resonator TypePARALLEL - FUNDAMENTAL
Drive level100 µW
frequency stability0.0025%
frequency tolerance20 ppm
load capacitance18 pF
Manufacturer's serial numberHC49USMD
Installation featuresSURFACE MOUNT
Nominal operating frequency4.2 MHz
Maximum operating temperature70 °C
Minimum operating temperature
physical sizeL13.46XB11.05XH5.99 (mm)/L0.53XB0.435XH0.236 (inch)
Series resistance70 Ω
surface mountYES
Quartz Crystal Resonators
STANDARD RESISTANCE WELD HC49/U SMD PACKAGE - HC49USMD Series
FEATURES
RoHS Compliant (Pb-Free), Wide Frequency Range Available
AT-cut Crystal, Excellent Aging, Extended Temperature Range
Industry Standard Package, Low Cost, Poplular Microprocessor Crystals
Formed Leads SMT with Tape & Reel Packing
SPECIFICATIONS
Frequency Range
Resonance Mode
Calibration Tolerance @25°C
Frequency Stability Ref @25°C
Temperature Range
Crystal Aging
Storage Temperature
Load Capacitance (CL)
Shunt Capacitance
Drive Level
Pullability (option)
Creating a Part Number
Product Series
Frequency
Resonance Mode: 1 = Fundamental
3 = 3rd Overtone
5 = 5th Overtone
1.8432 MHz to 200.000 MHz
1 = Fundamental (1 to 40 MHz); 3 = 3rd Overtone (20 to 100 MHz)
5 = 5th Overtone (80 to 150 MHz); 7 = 7th Overtone (110 to 200 MHz)
A = ±50 ppm; B = ±30 ppm; C = ±20 ppm; D = ±15 ppm; E = ±10 ppm
100 = ±100 ppm; 50 = ±50 ppm; 25 = ±25 ppm; 10 = ±10 ppm
A = 0°C to 70°C; B = -40°C to 85°C; C = -10°C to 60°C; D = -20°C to 70°C
±5 ppm / year Maximum
-55°C to 125°C
CL = 18 pF (Standard), 16 pF, 20 pF, others, or S = Series resonant
7 pF Maximum
0.1 mW Typical, 1 mW Maximum
May be specified in terms of frequency shift over a certain range of CL
HC49USMD-10M000-1 A 50 D 18
-options
Load Capacitance: 18, 16, 20, S = Series resonant
Operating Temperature Range: A = 0 to 70°C
Frequency Stability:
Tolerance at 25°C:
A = ±50 ppm
B = ±30 ppm
C = ±20 ppm
100 = ±100 ppm
50 = ±50 ppm
30 = ±30 ppm
B = -40 to 85°C
D = -20 to 70°C
Equivalent Series Resistance
Frequency (MHz)
1.800 - 1.999
2.000 - 2.399
2.400 - 2.999
3.000 - 3.199
3.200 - 3.699
3.700 - 4.199
4.200 - 5.999
OUTLINE DRAWING
Mode
Fund
Fund
Fund
Fund
Fund
Fund
Fund
Max ESR (Ohms)
750
500
250
150
120
100
70
Frequency (MHz)
6.000 - 7.999
8.000 - 12.499
12.500 - 15.999
16.000 - 40.000
23.000 - 100.00
80.000 - 150.00
110.00 - 200.00
Mode
Fund
Fund
Fund
Fund
3rd O/T
5th O/T
7th O/T
Max ESR (Ohms)
40
35
25
20
40
80
120
Recommended Solder Pad Layout
1.27
11.05 MAX
5.99 MAX
1.29
13.46 MAX
0.99
4.65 MAX
3.61
4.88
±
0.2
2.79
2.54
13.46
17.04 MAX
0.43
(x2)
All dimensions are typical unless otherwise specified
Dimensions in Millimeters
www.4timing.com
c
2001-2009 Fortiming Corp. USA
1.27
(x3)
How to perform software simulation
Following the tutorial of a forum friend, the process is exactly the same. Why is it that when the software is simulated in the end, the software simulation graphical interface does not pop up after d...
wobushisb Renesas Electronics MCUs
Can anyone provide an electronic version of the ARM Cortex-M0+ microcontroller principle and application - based on the Atmel SAM D20 series
Who has the electronic file? f$1h@4Shd5XBA@GFiQfa@5ILdgVkgbCM@fVE@mg28dEd4M14gE75Qcdz1gVe@9yP8iqMuv@8A7MrehMqE1o6BgVs53fhnGdpkBtH u8shDTF7xUutrbkUgOYmy09$omJ7wKJ14tcXm7BnqMHFQga7fHPL7n2AqDnn0ztpNuC78E...
bityhzj Microchip MCU
Calculation of the collector resistance of a transistor in a TTL inverter circuit
How should I look at and calculate the collector resistance of T1? Because most of the previous circuits have a collector resistor RC connected to the power supply, but this diagram is different, beca...
tianyang1234 Analog electronics
How to get the code about cc2650 in ccs
[size=3]I need help from someone who knows ccs and cc2650, thank you very much, I am stuck at this code now :Cry:[/size]...
jun747093801 Wireless Connectivity
Troublesome DSP and codec device communication
[color=#444444][font=宋体][size=12pt][hr] [size=5]Preface: [/size] I got a few aic3256s and made a minimum system according to the schematic diagram of TI. I wanted to use F2812 to drive it, but it alwa...
火星意识 TI Technology Forum
The result of arctan calculation by IP core is not converted
The result of arctan calculation by IP core is not converted, but displayed in radians. If you input x=0.395 y=0.395, the result should be 45°, but the displayed radians are 0001100100100010. Why is i...
WBOY FPGA/CPLD

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

Robot
development
community

Index Files: 1577  1860  822  2575  987  32  38  17  52  20 
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