EEWORLDEEWORLDEEWORLD

Part Number

Search

EMCL12H2J-74.17582M

Description
CRYSTAL OSCILLATOR, CLOCK, 74.17582MHz, LVPECL OUTPUT, ROHS COMPLIANT, PLASTIC, SMD, 6 PIN
CategoryPassive components    oscillator   
File Size205KB,5 Pages
ManufacturerECLIPTEK
Websitehttp://www.ecliptek.com
Environmental Compliance  
Download Datasheet Parametric View All

EMCL12H2J-74.17582M Overview

CRYSTAL OSCILLATOR, CLOCK, 74.17582MHz, LVPECL OUTPUT, ROHS COMPLIANT, PLASTIC, SMD, 6 PIN

EMCL12H2J-74.17582M Parametric

Parameter NameAttribute value
Is it lead-free?Lead free
Is it Rohs certified?conform to
MakerECLIPTEK
Reach Compliance Codecompliant
Other featuresCOMPLEMENTARY OUTPUT; TAPE AND REEL
maximum descent time0.3 ns
Frequency Adjustment - MechanicalNO
frequency stability50%
JESD-609 codee4
Manufacturer's serial numberEMCL12
Installation featuresSURFACE MOUNT
Nominal operating frequency74.17582 MHz
Maximum operating temperature85 °C
Minimum operating temperature-40 °C
Oscillator typeLVPECL
Output load50 OHM
physical size7.0mm x 5.0mm x 0.85mm
longest rise time0.3 ns
Maximum supply voltage2.625 V
Minimum supply voltage2.375 V
Nominal supply voltage2.5 V
surface mountYES
maximum symmetry55/45 %
Terminal surfaceNickel/Palladium/Gold (Ni/Pd/Au)
Base Number Matches1
EMCL12H2J-74.17582M
Series
RoHS Compliant (Pb-free) 2.5V 6 Pad 5mm x 7mm
Plastic SMD LVPECL MEMS Oscillator
Frequency Tolerance/Stability
±50ppm Maximum over -40°C to +85°C
Duty Cycle
50 ±5(%)
RoHS
Pb
EMCL12 H 2 J -74.17582M
Nominal Frequency
74.17582MHz
Logic Control / Additional Output
Standby (ST) and Complementary Output
ELECTRICAL SPECIFICATIONS
Nominal Frequency
Frequency Tolerance/Stability
74.17582MHz
±50ppm Maximum over -40°C to +85°C (Inclusive of all conditions: Calibration Tolerance at 25°C,
Frequency Stability over the Operating Temperature Range, Supply Voltage Change, Output Load Change,
1st Year Aging at 25°C, Reflow, Shock, and Vibration)
±1ppm First Year Maximum
+2.5Vdc ±0.125Vdc
75mA Maximum (Excluding Load Termination Current)
1.55Vdc Typical, Vcc-1.025Vdc Minimum
0.80Vdc Typical, Vcc-1.62Vdc Maximum
150pSec Typical, 300pSec Maximum (Measured over 20% to 80% of waveform)
50 ±5(%) (Measured at 50% of waveform)
50 Ohms into Vcc-2.0Vdc
LVPECL
Standby (ST) and Complementary Output
Vih of 70% of Vcc Minimum or No Connect to Enable Output and Complementary Output, Vil of 30% of Vcc
Maximum to Disable Output and Complementary Output (High Impedance)
30µA Maximum (ST) Without Load
0.2pSec Typical
2.0pSec Typical
1.5pSec Typical, 3.0pSec Maximum
20pSec Typical, 25pSec Maximum
1.7pSec Typical
1.4pSec Typical
1.1pSec Typical
10mSec Maximum
-55°C to +125°C
Aging at 25°C
Supply Voltage
Input Current
Output Voltage Logic High (Voh)
Output Voltage Logic Low (Vol)
Rise/Fall Time
Duty Cycle
Load Drive Capability
Output Logic Type
Logic Control / Additional Output
Output Control Input Voltage
Standby Current
Period Jitter (Deterministic)
Period Jitter (Random)
Period Jitter (RMS)
Period Jitter (pk-pk)
RMS Phase Jitter (Fj = 637kHz to
10MHz; Random)
RMS Phase Jitter (Fj = 1MHz to
20MHz; Random)
RMS Phase Jitter (Fj = 1.875MHz to
20MHz; Random)
Start Up Time
Storage Temperature Range
ENVIRONMENTAL & MECHANICAL SPECIFICATIONS
ESD Susceptibility
Flammability
Mechanical Shock
Moisture Resistance
Moisture Sensitivity Level
Resistance to Soldering Heat
Resistance to Solvents
Solderability
Temperature Cycling
Thermal Shock
Vibration
MIL-STD-883, Method 3015, Class 2, HBM 2000V
UL94-V0
MIL-STD-883, Method 2002, Condition G, 30,000G
MIL-STD-883, Method 1004
J-STD-020, MSL 1
MIL-STD-202, Method 210, Condition K
MIL-STD-202, Method 215
MIL-STD-883, Method 2003 (Six I/O Pads on bottom of package only)
MIL-STD-883, Method 1010, Condition B
MIL-STD-883, Method 1011, Condition B
MIL-STD-883, Method 2007, Condition A, 20G
www.ecliptek.com | Specification Subject to Change Without Notice | Rev C 8/14/2010 | Page 1 of 5
Mingdeyang FPGA design skills--gVim template sharing 2
[table=98%] [tr][td][align=left]FPGA engineers know that most of the Verilog code is always statements, and the structure is basically the same. In order to reduce repetitive work and let engineers fo...
taiyangyu_2 FPGA/CPLD
PYB Nano I2C driving OLED display
In the previous post, the PYB Nano development board used the SPI method to drive the OLED for display. Today, I found that the OLED used by the Xiaoe development board in my hand is I2C, so I verifie...
hanyeguxingwo MicroPython Open Source section
Lessons learned from buying a development board
Lessons learned from buying a development board (forward) Let me talk about my own lessons learned first! The first ARM development board I bought was the 4510-R2 from ** company, which is a developme...
呱呱 Buy&Sell
O-RAN Testing Tool - Terminal Emulator UEE, Do You Know It?
According to statistics from the Global Mobile Suppliers Alliance (GSA), as of January 2020, 61 commercial 5G networks have been deployed in 34 countries around the world, and 348 operators in 119 cou...
eric_wang Analog electronics
DA14580 official SDK detailed explanation
1. Download the official SDK 2. SDK structure explanation 2.1 Root directory 2.2 binaries 2.3 dk_apps 2.4 host_apps 2.5 peripheral_examples 2.6 3.1 Startup Files folder 3.1.1 startup_CMSDK_CM0.s file ...
ranliu RF/Wirelessly
Automatic control of spring loader
[align=center][font=宋体][size=16.0pt]Automation control of spring feeder[/size][/font][/align][align=center][font=宋体][size=16.0pt] [/size][/font][/align][align=center][font=宋体][size=16.0pt] [/size][/fo...
yjtyjt MCU

EEWorld
subscription
account

EEWorld
service
account

Automotive
development
circle

Robot
development
community

Index Files: 1956  1320  1853  1378  2132  40  27  38  28  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