电子工程世界电子工程世界电子工程世界

关键词

搜索

型号

搜索
 

VL-821-HAW-SAAN-24M4921900

器件型号:VL-821-HAW-SAAN-24M4921900
器件类别:无源元件    振荡器   
文件大小:673KB,共8页
厂商名称:Microsemi
厂商官网:https://www.microsemi.com
标准:
下载文档

器件描述

CMOS Output Clock Oscillator, 24.49219MHz Nom, ROHS COMPLIANT, HERMETIC SEALED, CERAMIC PACKAGE-4

参数
参数名称属性值
是否Rohs认证符合
Objectid4005128126
包装说明ROHS COMPLIANT, HERMETIC SEALED, CERAMIC PACKAGE-4
Reach Compliance Codecompliant
其他特性TRI STATE; ENABLE/DISABLE FUNCTION
最长下降时间3 ns
频率调整-机械NO
频率稳定性100%
JESD-609代码e4
安装特点SURFACE MOUNT
端子数量4
标称工作频率24.49219 MHz
最高工作温度70 °C
最低工作温度-10 °C
振荡器类型CMOS
输出负载15 pF
封装主体材料CERAMIC
封装等效代码SOLCC4,.1,83
物理尺寸3.2mm x 2.5mm x 1.2mm
认证状态Not Qualified
最长上升时间3 ns
最大压摆率8 mA
最大供电电压2.75 V
最小供电电压2.25 V
标称供电电压2.5 V
表面贴装YES
最大对称度55/45 %
端子面层Gold (Au) - with Nickel (Ni) barrier

文档预览

VL-821
CMOS Crystal Oscillator
Previous Vectron Model VCS3
VL-821
Description
Vectron’s VL-821 Crystal Oscillator (XO) is a quartz stabilized square wave generator with a CMOS output, operating off either a
1.8, 2.5, or 3.3 volt supply. The VL-821 utilizes a high performance, low frequency quartz resonator followed by a custom ASIC to
synthesize the output frequency.
Features
Applications
SONET/SDH/DWDM
Ethernet, GE, SynchE
Storage Area Networking
Digital Video
Broadband Access
Microprocessors/DSP/FPGA
Quick delivery
CMOS Output
3.2mm x 2.5mm x 1.2mm
Output frequencies to 200.00 MHz
Tri-state output for the board test and debug
-10/70°C or -40/85°C operating temperature
Gold over nickel contact pads
Hermetically Sealed SMD Package
Product is compliant to RoHS directive
and fully compatible with lead free assembly
Block Diagram
V
DD
Crystal
Output
Osc
PLL
E/D
Gnd
Page1
Performance Specifications
Table 1. Electrical Performance, 3.3V Option
Parameter
Operating Supply Voltage
1
Absolute Maximum Operating Voltage
Supply Current, Output Enabled
<30 MHz
30.01 to 75 MHz
75.01 to 133 MHz
133.01 to 200 MHz
Supply Current, Output Disabled
Frequency
Stability
4
, (Ordering Option)
Outputs
Output Logic Levels
Output Logic High
2
Output Logic Low
2
Output Logic High Drive
Output Logic Low Drive
Output Rise /Fall Time
2
, fo≤10MHz
fo>10MHz
Duty Cycle
3
Output Enable/Disable
5
Output Enable
Output Disable
Internal Pull-Up Resistor
Start-Up Time
Operating Temp, (Ordering Option)
1]
2]
3]
4]
5]
Symbol
V
DD
I
DD
Min
Supply
2.97
-0.05
Typical
3.3
Maximum
3.63
5.0
10
15
20
25
Units
V
V
mA
mA
mA
mA
uA
MHz
ppm
I
DD
Frequency
f
O
1.000
±25, ±50, ±100
15
200.00
V
OH
V
OL
I
OH
I
OL
t
R
/t
F
SYM
0.9*V
DD
0.1*V
DD
8
8
3
2
45
Enable/Disable
50
55
V
V
mA
mA
ns
ns
%
V
IH
V
IL
t
SU
T
OP
0.7*V
DD
0.3V*
DD
100
2
-10/70 or -40/85
V
V
ms
°C
A 0.01 uF and a 0.1uF capacitor should be located as close to the supply as possible (to ground). V
DD
supply ramp should be <100 msec
.
Figure 2 defines these parameters. Figure 1 illustrates the operating conditions under which these parameters are tested and specified.
Symmetry is measured defined as On Time/Period.
Includes calibration tolerance, operating temperature, supply voltage variations, aging and shock and vibration (not under operation).
Output will be enabled if the Enable/Disable is left open. E/D should be powered up after V
DD
.
t
R
I
DD
+
V
DD
4
.1µF
.01µF
1
+
Period
Fig 1: Test Circuit
Fig 2: Waveform
t
F
V
OH
3
2
15pF
50%
V
OL
On Time
Page2
Performance Specifications
Table 2. Electrical Performance, 2.5V Option
Parameter
Operating Supply Voltage
1
Absolute Maximum Opertaing Voltage
Supply Current, Output Enabled
<30 MHz
30.01 to 75 MHz
75.01 to 166 MHz
Supply Current, Output Disabled
Frequency
Stability
4
,
(Ordering
Option)
Outputs
Output Logic Levels
Output Logic High
2
Output Logic Low
2
Output Logic High Drive
Output Logic Low Drive
Output Rise /Fall Time
2
, fo≤10MHz
fo>10MHz
Duty Cycle
3
Output Enable/Disable
5
Output Enable
Output Disable
Internal Pull-Up Resistor
Start-Up Time
Operating Temp, (Ordering Option)
1]
2]
3]
4]
5]
Symbol
V
DD
I
DD
Min
Supply
2.25
-0.5
Typical
2.5
Maximum
2.75
5
8.0
10.0
15.0
Units
V
V
mA
mA
mA
uA
MHz
ppm
I
DD
Frequency
f
O
1.000
±25, ±50, ±100
15
166.000
V
OH
V
OL
I
OH
I
OL
t
R
/t
F
SYM
0.9*V
DD
0.1*V
DD
8
8
4
3
45
Enable/Disable
50
55
V
V
mA
mA
ns
ns
%
V
V
IH
V
IL
t
SU
T
OP
0.7*V
DD
0.3*V
DD
100
2
-10/70 or -40/85
ms
°C
A 0.01 uF and a 0.1uF capacitor should be located as close to the supply as possible (to ground). V
DD
supply ramp should be <100 msec
.
Figure 2 defines these parameters. Figure 1 illustrates the operating conditions under which these parameters are tested and specified.
Symmetry is measured defined as On Time/Period.
Includes calibration tolerance, operating temperature, supply voltage variations, aging and shock and vibration (not under operation).
Output will be enabled if the Enable/Disable is left open. E/D should be powered up after V
DD
.
t
R
I
DD
+
4
.1µF
.01µF
I
C
V
C
Fig 1: Test Circuit
t
F
V
OH
3
2
15pF
1
+
50%
V
OL
On Time
Period
Fig 2: Waveform
V
DD
Page3
Performance Specifications
Table 3. Electrical Performance, 1.8V Option
Parameter
Operating Supply Voltage
1
Absolute Maximum Voltage
Supply Current, Output Enabled
<30 MHz
30.01 to 75 MHz
75.01 to 133 MHz
Supply Current, Output Disabled
Frequency
Stability
4
, (Ordering Option)
Outputs
Output Logic Levels
Output Logic High
2
Output Logic Low
2
Output Logic High Drive
Output Logic Low Drive
Output Rise /Fall Time
2,
, fo ≤10MHz
fo>10MHz
Duty Cycle
3
Output Enable/Disable
5
Output Enable
Output Disable
Internal Pull-Up Resistor
Start-Up Time
Operating Temp, (Ordering Option)
1]
2]
3]
4]
5]
Symbol
V
DD
I
DD
Min
Supply
1.62
-0.5
Typical
1.8
Maximum
1.98
3.6
6
8
12
Units
V
V
mA
I
DD
Frequency
f
O
1.000
±25, ±50, ±100
15
133.00
uA
MHz
ppm
V
OH
V
OL
I
OH
I
OL
t
R
/t
F
SYM
0.9*V
DD
0.1*V
DD
8
8
5
4
45
Enable/Disable
50
55
V
V
mA
mA
ns
ns
%
V
IH
V
IL
t
SU
T
OP
0.7*V
DD
0.3*V
DD
100
2
-10/70 or -40/85
V
V
ms
°C
A 0.01 uF and a 0.1uF capacitor should be located as close to the supply as possible (to ground). V
DD
supply ramp should be <100 msec
.
Figure 2 defines these parameters. Figure 1 illustrates the operating conditions under which these parameters are tested and specified.
Symmetry is measured defined as On Time/Period.
Includes calibration tolerance, operating temperature, supply voltage variations, aging and shock and vibration (not under operation).
Output will be enabled if the Enable/Disable is left open. E/D should be powered up after V
DD
.
t
R
I
DD
+
V
DD
4
.1µF
.01µF
I
C
V
C
Fig 1: Test Circuit
t
F
V
OH
3
2
15pF
50%
V
OL
On Time
Period
Fig 2: Waveform
1
+
Page4
Outline Drawing & Pad Layout
FFMFFF
YWW T
Table 4. Pin Out
Pin
1
2
3
4
Symbol
E/D
GND
f
O
Function
Enable Disable
Case and Electrical Ground
Output Frequency
Power Supply Voltage
V
DD
Reliability
VI qualification includes aging at various extreme temperatures, shock and vibration, temperature cycling, and IR reflow
simulation. The VL-821 family is capable of meeting the following qualification tests:
Table 5. Environmental Compliance
Parameter
Mechanical Shock
Mechanical Vibration
Temperature Cycle
Solderability
Gross and Fine Leak
Resistance to Solvents
Moisture Sensitivity Level
Conditions
MIL-STD-883, Method 2002
MIL-STD-883, Method 2007
MIL-STD-883, Method 1010
MIL-STD-883, Method 2003
MIL-STD-883, Method 1014
MIL-STD-883, Method 2015
MSL 1
Contact Pads
Gold over Nickel
Typical Characteristics - Phase Noise and Gain Curve
Although ESD protection circuitry has been designed into the VL-821 proper precautions should be taken when handling
and mounting. VI employs a human body model (HBM) and a charged device model (CDM) for ESD susceptibility testing
and design protection evaluation.
Table 6. ESD Ratings
Model
Human Body Model
Charged Device Model
Minimum
1500V
1000V
Conditions
MIL-STD-883, Method 3115
JESD 22-C101
Stresses in excess of the absolute maximum ratings can permanently damage the device. Functional operation is not
implied at these or any other conditions in excess of conditions represented in the operational sections of this datasheet.
Exposure to absolute maximum ratings for extended periods may adversely affect device reliability. Permanent damage is
also possible if E/D is applied before V
DD
.
Table 7. Absolute Maximum Ratings
Parameter
Storage Temperature
Soldering Temp/Time
Symbol
TS
T
LS
Ratings
-55 to 125
260 / 20
Unit
°C
°C / sec
Page5
LM317输入一直显示短路
如图所示的一个简单的可调电源芯片,我在第一个板子上按照上面的焊接测试,输出是正常的在第二个板子上同样进行焊接时,给24V电,总是短路,都是同一批板子,用万用表测试了几个电容也没被击穿短路,不知道是什么原因,检查了好多遍没有虚焊,就是给电就短路,求各位大神帮帮忙,可能是什么原因引起的(我换了两个芯片了,结果都是一样的,会是板子原因吗,都是同一批打版回来的)...
戒骄戒躁 模拟电子
【得捷电子Follow me第1期】+ 熟悉micropython的基本语法
[i=s] 本帖最后由 lingxin_yuhe 于 2023-5-30 13:43 编辑 [/i]视频1:blink_picow.uf2固件效果视频2:micropython-firmware-pico-w-290622.uf2固件及如下代码效果。# 在这里写上你的代码 :-)blink ledfrom machine import Pin, Timerl...
lingxin_yuhe Digi-Key得捷电子技术专区
【得捷电子Follow me第1期】任务2:驱动led和蜂鸣器
本任务主要包括三块,驱动led灯,蜂鸣器和oled显示屏,但是oled驱动有点问题,所以暂时放下,后续再整理。1.驱动LEDPICO W板子上载有一颗LED灯,具体可以参考下面电路图,其位于usb接口左边。LED是通过GPIO口控制,我们需要用machine模块中的Pin包来进行控制。使用Pin创建一个lED对象,然后通过管脚的电平高低来进行控制。管脚电平有...
swzswz Digi-Key得捷电子技术专区
什么是物联网模块?
物体或产品接入互联网,有哪些方式?01有线方式以太网接口,也就是我们常用的网线的方式。But!这种方式在人力、物力等方面投入较大,并且在现实生活中很多场合不太适用。比方说:我们的共享单车。毕竟,我们在骑行时还拉根网线到处跑过于沙雕。为解决这样的问题呢,就出现了物联网模块。02无线方式即物联网模块,WIFI,4G/5G,RoLA,NB-IOT等。什么是物联网模...
huaqingyuanjian 综合技术交流
E金币闪电兑换
1、参加活动有机会就把奖品兑换E金币,攒了不少今天就兑换一个平板电脑。2、上午选好了,下午就到了打开看看。京东果然快,eeworld赞一下。必须的...
北方 聊聊、笑笑、闹闹
为什么韩国呼吁吁中方推迟对韩产锂电池执行CCC认证呢
前几天看到一个新闻,大家都来说说怎么回事韩方呼吁中方推迟对韩产锂电池执行CCC认证  据韩国产业通商资源部下属国家技术标准院21日消息,日前请求中方推迟对韩国锂离子电池等产品适用定于8月起实施的强制性产品认证(CCC)管理。  第七届韩中自由贸易协定(FTA)贸易技术壁垒(TBT)委员会会议18日在北京举行。韩方在会上表示,为了让相关韩企顺利根据中方政策变化...
qwqwqw2088 聊聊、笑笑、闹闹

About Us 关于我们 客户服务 联系方式 器件索引 网站地图 最新更新 手机版

站点相关: 大学堂 TI培训 Datasheet 电子工程

器件索引   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

北京市海淀区中关村大街18号B座15层1530室 电话:(010)82350740 邮编:100190

电子工程世界版权所有 京B2-20211791 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 Copyright © 2005-2023 EEWORLD.com.cn, Inc. All rights reserved