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VIDEO AMPLIFIER. HMC613LC4B Datasheet |
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![]() v11.0514
Typical Applications
The HMC613LC4B is ideal for:
• EW, ELINT & IFM Receivers
• DF Radar Systems
• ECM Systems
• Broadband Test & Measurement
• Power Measurement & Control Circuits
• Military & Space Applications
Functional Diagram
HMC613LC4B
SUCCESSIVE DETECTION LOG VIDEO
AMPLIFIER (SDLVA), 0.1 - 20 GHz
Features
Wide Input Bandwidth; 0.1 to 20 GHz
High Logging Range: 59 dB (-54 to +5) @ 18 GHz
Output Frequency Flatness: ±1.5 dB
Log Linearity: ±1 dB
Fast Rise/Fall Times: 4/18 ns
Recovery Time: 26 ns
Single Positive Supply: +3.3V
Space Level Packaging Available
24 Lead 4x4mm SMT Package: 16mm2
General Description
The HMC613LC4B is a Successive Detection Log
Video Amplifier (SDLVA) which operates from 0.1 to
20 GHz. The HMC613LC4B provides a logging range
of 59 dB. This device offers typical fast rise/fall times
of 4/18 ns and a superior delay time of 14 ns. The
HMC613LC4B log video output slope is typically 14
mV/dB. Maximum recovery times are less than 30 ns.
The HMC613LC4B is available in a highly compact 4x4
mm SMT ceramic package and is ideal for high speed
channelized receiver applications.
Electrical Specifications, TA = +25 °C Vcc1 = Vcc2 = +3.3V
Parameter
Conditions
Typ. Units
Input Frequency Range [1][2]
0.1 to 20
GHz
Frequency Flatness
Pin = -25 dBm
±1.5 dB
Log Linearity
Pin = -50 dBm to +3 dBm
±1
dBm
Log Linearity over Temperature
Pin = -25dBm
±1 dB
Minimum Logging Range
to ±3 dB error
-54 @ 18 GHz
dBm
Maximum Logging Range
to ±3 dB error
5 @ 18 GHz
dBm
Input Return Loss
8 dB
Log Video Minimum Output Voltage
1V
Log Video Maximum Output Voltage
1.8 V
Log Video Output Rise Time
10% to 90%
4 ns
Log Video Output Fall Time
90% to 10%
18 ns
Log Video Recovery Time
26 ns
Log Video Output Slope
14 mV/dB
Log Video Output Slope Variation over Temperature
@ 10 GHz
5 µV/dB°C
Log Video Propagation Delay
14 ns
Supply Current (Icc1)
80 mA
Supply Current (Icc2)
@ Pin = -30 dBm
8 mA
[1] Electrical specs and performance plots are given for single-ended operation
[2] Video output load should be 1K Ohm or higher.
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Last Content Update: 02/23/2017
COMPARABLE PARTS
View a parametric search of comparable parts.
EVALUATION KITS
• HMC613LC4B Evaluation Board
DOCUMENTATION
Data Sheet
• HMC613 Data Sheet
TOOLS AND SIMULATIONS
• HMC613 S-Parameter
REFERENCE MATERIALS
Quality Documentation
• Package/Assembly Qualification Test Report: LC4, LC4B
(QTR: 2014-00380 REV: 01)
Technical Articles
• Tiny SDLVAs Tackle 20-GHz Bandwidth
DESIGN RESOURCES
• HMC613 Material Declaration
• PCN-PDN Information
• Quality And Reliability
• Symbols and Footprints
DISCUSSIONS
View all HMC613 EngineerZone Discussions.
SAMPLE AND BUY
Visit the product page to see pricing options.
TECHNICAL SUPPORT
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number.
DOCUMENT FEEDBACK
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![]() v11.0514
HMC613LC4B
SUCCESSIVE DETECTION LOG VIDEO
AMPLIFIER (SDLVA), 0.1 - 20 GHz
Error Flatness vs.
Input Power Over Frequency [1][2]
4
3
0.1GHz
2.0GHz
6.0GHz
2
10.0GHz
14.0GHz
18.0GHz
1 20.0Ghz
0
-1
-2
-3
-4
-60 -50 -40 -30 -20 -10
INPUT POWER (dBm)
0
VIDEO OUT & Error
vs. Input Power, Fin = 2 GHz [1]
2
Ideal
Logout (+25C)
Logout (+85C)
Logout (-40C)
1.5
1
ERR (+25C)
ERR (+85C)
ERR (-40C)
0.5
-60 -50 -40 -30 -20 -10
0
INPUT POWER (dBm)
3
2
1
0
-1
-2
-3
10
VIDEO OUT & Error
vs. Input Power, Fin = 10 GHz [1]
2
Ideal
Logout +25C
1.5
Logout +85C
Logout -40C
1
ERR +25C
ERR +85C
ERR -40C
0.5
-60 -50 -40 -30 -20 -10
INPUT POWER (dBm)
0
3
2
1
0
-1
-2
-3
10
VIDEO OUT & Error
vs. Input Power, Fin = 100 MHz [1]
2
Ideal
Logout (+25C)
Logout (+85C)
Logout (-40C)
1.5
1
ERR (+25C)
ERR (+85C)
ERR (-40C)
0.5
-60 -50 -40 -30 -20 -10
0
INPUT POWER (dBm)
3
2
1
0
-1
-2
-3
10
VIDEO OUT & Error
vs. Input Power, Fin = 6 GHz [1]
2
Ideal
Logout (+25C)
Logout (+85C)
Logout (-40C)
1.5
1
ERR (+25C)
ERR (+85C)
ERR (-40C)
0.5
-60 -50 -40 -30 -20 -10
0
INPUT POWER (dBm)
3
2
1
0
-1
-2
-3
10
VIDEO OUT & Error
vs. Input Power, Fin = 14 GHz [1]
2
Ideal
Logout +25C
Logout +85C
Logout -40C
1.5
1
ERR +25C
ERR +85C
ERR -40C
0.5
-60 -50 -40 -30 -20 -10
INPUT POWER (dBm)
0
3
2
1
0
-1
-2
-3
10
[1] Electrical Specs and performance plots are given at single-ended operation
[2] An average ideal line is used to calculate error curves.
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