EEWORLDEEWORLDEEWORLD

Part Number

Search

VM57K33-20.000-1.5/-20+70

Description
Oscillator
CategoryPassive components    oscillator   
File Size127KB,3 Pages
ManufacturerMercury
Websitehttp://www.mercuryunited.com
Download Datasheet Parametric View All

VM57K33-20.000-1.5/-20+70 Overview

Oscillator

VM57K33-20.000-1.5/-20+70 Parametric

Parameter NameAttribute value
Objectid109546756
Reach Compliance Codecompliant
V C T C X O – Ultra Low Current
Logic: HCMOS
“VM57K” SERIES 5x7 mm
Wave Form: Square Wave
With VM57K design engineers enjoy the benefits of HCMOS output,
VCTCXO stability, ultra low current and miniaturized 5x7 packaging.
VM57K consumes less than 4 mA at 26 MHz +3.3 V with low phase
noise of -130 dBc / Hz at 1 KHz offset.
General Specifications
T
A
=+25°C, V
DD
at specified voltage, load
15 pF
Frequency Range
Output Wave From
Initial Calibration Tolerance
Standard Frequencies
Frequency Stability
vs Temperature
vs Aging
vs Supply Voltage Change
vs Load Change
vs reflow (SMD models)
Typical Operating Temperature
Range (examples)
Input Voltage Range (V
DD
)
Logic High “1”
Logic Low “0”
12.8 MHz
13.0 MHz
14.4 MHz
Current
16.384 MHz
Consumption
19.200 MHz
mA, typical
19.440 MHz
20.000 MHz
26.000 MHz
Rise Time and Fall Time
Duty Cycle (Symmetry)
Start-up Time
Slope Polarity
Linearity
Output Load
Fanout (Drive Capability)
SSB Phase Noise Offset
at +25°C
VM57K3-13.000
RMS Period Jitter
Packaging
Pad 1
Function
MERCURY
Since 1973
Output Voltage
Levels
12.8 MHz ~ 26.0 MHz
CMOS Square
wave.
PRELIMINARY
±2 ppm at +25°C±2°C
12.8, 13.0, 14.4, 15.36, 16.0, 16.384, 16.8, 19.2, 19.44, 19.68, 20.0 and
26.0 MHz (partial list)
±1 ppm , ±1.5 ppm, ±2.0 ppm, ±2.5 ppm, ±3 ppm, ±5 ppm or±10 ppm over
specified operating temperature range
±1.0 ppm max. first year at +25°C
±1.0 ppm max. for a ±10% input voltage change
±0.3 ppm max. for a ±10% loading condition change
±1 ppm max. 1 reflow and measured 24 hours afterwards
0°C to +60°C
0°C to +70°C
-10°C to +60°C
-20 °C to +70°C
-30°C to +60°C
-30°C to +75°C or custom
±5 ppm stability for -40°C to +85°C is also available
+2.8 V
+3.0 V
+3.3 V
(voltage code is “28”)
(voltage code is “3”)
(voltage code is “33”)
1.9 V min.; 2.3 V typical
2.1 V min.; 2.6 V typical
2.4 V min.; 2.9 V typical
0.27 V typical; 0.34V max. 0.29 V typical; 0.36V max. 0.32 V typical; 0.4 V max.
2.3 mA typical
2.4 mA typical
2.6 mA typical
2.5 mA typical
2.6 mA typical
2.8 mA typical
2.6 mA typical
2.8 mA typical
3.1 mA typical
2.8 mA typical
3.0 mA typical
3.2 mA typical
3.2 mA typical
3.3 mA typical
3.6 mA typical
3.2 mA typical
3.4 mA typical
3.7 mA typical
3.2 mA typical
3.4 mA typical
3.7 mA typical
3.6 mA typical
3.8 mA typical
4.1 mA typical
4 n sec. typical. 0.3 V
3.0 V with 15 pF load
50%±5% measured at 1.4 V
10 m. sec. max.
±5~±12 ppm for +1.5 V±1.5V
±5~±12 ppm for +1.5 V±1.5V
Positive:
Increasing control voltage increases output frequency.
10 % max.
15 pF
12 mA typical 17 mA max. (at TTL level)
100 Hz
1 KHz
10 kHz
100 kHz
1 MHz
-80 dBc/Hz
-110 dBc/Hz -130 dBc/Hz
-135 dBc/Hz -142 dBc/Hz
3 ps max. (1 sigma, 1000 samples; with capacitive coupling between V
DD
and gnd)
16 mm tape; 8 mm pitch; 1000 pcs per reel.
Electrical Frequency Tuning
Taiwan: TEL (886)-2-2406-2779, FAX (886)-2-2496-0769, e-mail: sales-tw@mercury-crystal.com
U.S.A.: TEL (1)-909-466-0427, FAX (1)-909-466-0762, e-mail:
sales-us@mercury-crystal.com
MERCURY
Page 1 of 3
Date: Jan. 23, 2005
Rev. 0
MERCURY
www.mercury-crystal.com
The problem of open circuit at the input end of the same-phase amplifier circuit and output oscillation
[i=s]This post was last edited by CQU_ZMY on 2022-10-20 00:27[/i]Hey guys, I recently made a single-power-supply common-phase amplifier circuit, the circuit diagram is as follows. When the power suppl...
CQU_ZMY Analog electronics
Dear hardware engineers, can you solve differential equations?
Hardware engineers, do you know how to solve differential equations? When I just graduated and was looking for a job, I was interviewed by a company as a hardware engineer. Among the interview questio...
lingking Integrated technical exchanges
High-pass filter, low-pass filter, band-pass filter, band-stop filter, detector and frequency selection
High-pass filter, low-pass filter, band-pass filter, band-stop filter, detector and frequency selection1. These filters require op amp + capacitor to be implemented. Are there any integrated filter ch...
QWE4562009 Discrete Device
Zero-based temperature and humidity monitoring host computer
[i=s]This post was last edited by Fillmore on 2020-7-31 18:29[/i]PrefaceMany netizens asked me what language is good for writing a host computer. C#, C++, Python, etc. can all be used, but you must le...
Fillmore Real-time operating system RTOS
[Analog Electronics Course Selection Test] Choose, Study, and Score
Use the analog electronics course selection test function to select a course for study. The basic operations are: 1. Select learning goals, learning levels (or details) 2. Get recommended class schedu...
tobot TI Technology Forum
ARM CORTEX-M3 core architecture understanding summary
[size=4][color=#252525]The Cotex-M3 core mainly includes: Nested Vectored Interrupt Controller (NVIC), value fetching unit, instruction decoder, arithmetic logic unit (ALU), register group, memory map...
灞波儿奔 Microcontroller MCU

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