another dramatic size shrink down to a “sixteenth-
brick” width (0.90 inches) while still retaining a
high power output and full 2250 Volt DC isolation.
The PC-board mount converter family accepts
18 to 75 Volts DC inputs and delivers fixed outputs
regulated to within ±0.125%. The UWS converters
are ideal for datacom and telecom applications,
cell phone towers, data centers, server farms and
network repeaters.
UWS outputs may be trimmed while delivering
fast settling to current step loads and no adverse
effects from higher capacitive loads. Excellent ripple
and noise specifications assure compatibility to cir-
cuits using CPU’s, ASIC’s, programmable logic and
FPGA’s. No
i i
load is
FPGA’ N
minimum
l d i
required. For systems
i
requiring controlled startup/shutdown, an external
remote On/Off control may use a switch, transistor
or digital logic.
Many self-protection features on the UWS series
avoid both converter and external circuit hazards.
These include input undervoltage lockout and
overtemperature shutdown. The output of these
DC-DC converters have current limit using the
“hiccup” autorestart technique and the outputs may
be short-circuited indefinitely. Additional features
include output overvoltage and reverse conduction
elimination.
The synchronous flyback topology yields high
efficiency for minimal heat buildup and “no fan”
operation.
F1
+Vin (1)
Barrier
+Vout (8)
External
DC
Power
Source
On/Off
Control
(2)
Controller
and Power
Open = On
Reference and
Error Amplifier
Trim (6)
-Vin (3)
-Vout (4)
Figure 1. Connection Diagram
Typical topology is shown. Murata Power
Solutions recommends an external fuse.
*Sense is included on the UWS-3.3/15-Q48
and UWS-5/10-Q48.
For full details go to
www.murata-ps.com/rohs
www.murata-ps.com/support
MDC_UWS Series.D04
Page 1 of 25
UWS Series
Sixteenth-brick DOSA-Compatible,
Wide Input Isolated DC-DC Converters
PERFORMANCE SPECIFICATIONS SUMMARY AND ORDERING GUIDE
Output
Root Model
➀
UWS-3.3/15-Q48
UWS-5/10-Q48
UWS-12/4.5-Q48
I
OUT
Power
V
OUT
(V) (A, max.) (W)
3.3
5
12
15
➃
10
➄
4.5
➅
49.5
50
54
R/N (mV pk-pk)
Typ.
90
90
115
Max.
125
130
150
Regulation (max.)
➂
Line
±0.15%
±0.125%
±0.125%
Load
±0.3%
±0.125%
±0.125%
V
IN
Nom.
(V)
48
48
48
Range
(V)
18-75
18-75
18-75
Input
I
IN
, no load
(mA)
25
30
25
I
IN
, full
load (A)
1.16
1.14
1.24
Efficiency
Min.
87.5%
88%
89%
Typ.
89%
91%
91%
C76
Package
Case (inches)
1.30 x 0.90 x 0.36
1.30 x 0.90 x 0.36
1.30 x 0.90 x 0.36
➀
Please refer to the Part Number Structure when ordering.
➁
All specifications are at nominal line voltage and full load, +25°C unless otherwise
noted. See detailed specifications. Output capacitors are 1 μF ceramic multilayer in
parallel with 10 μF.
I/O caps are necessary for our test equipment and may not be needed for your
application.
➂
Regulation specifications describe output voltage deviations from a nominal/midpoint
value to either extreme (50% load step).
➃
Iout = 13A max. if Vin < 36V.
➄
Iout=8A max. if Vin <36V.
➅
Iout = 3.5A max. if Vin < 36V.
PART NUMBER STRUCTURE
UWS
-
12
/
4.5
-
Q48 N M H Lx
-
C
RoHS Hazardous Substance Compliance
(does not claim EU RoHS exemption 7b–lead in solder)
C = RoHS-6
Sixteenth Brick Series
Pin Length Option (Thru-hole only)
Blank = Standard pin length 0.180˝ (4.6mm)
L1 = 0.110˝ (2.79mm)
➀
L2 = 0.145˝ (3.68mm)
➀
Conformal Coating Option
Blank = No coating, standard
H = Coating added, optional*
(Built to order; contact Murata Power Solutions for MOQ and lead times.
(not available on SMT models)
SMT Version (MSL Rating 2)
Blank = Thru-hole
M = SMT version
➁
On/Off Control Logic:
N = Negative
P = Positive
Nominal Output Voltage:
Maximum Rated Output Current
Current in Amps
Input Voltage Range:
Q48 = 18–75 Volts (48V nominal)
➀
Special quantity order is required; samples available with standard pin length only.
➁
SMT (M) versions not available in sample quantities.
➂
Some model number combinations may not be available. See website or contact your local Murata sales representative.
www.murata-ps.com/support
MDC_UWS Series.D04
Page 2 of 25
UWS Series
Sixteenth-brick DOSA-Compatible,
Wide Input Isolated DC-DC Converters
FUNCTIONAL SPECIFICATIONS, UWS-3.3/15-Q48
ABSOLUTE MAXIMUM RATINGS
Input Voltage, Continuous
Input Voltage, Transient
Conditions
➀
Full temperature range
Operating or non-operating, 100 mS max.
duration
Input to output tested
None, install external fuse
Power on or off, referred to -Vin
Minimum
0
0
Typical/Nominal
Maximum
80
100
Units
Vdc
Vdc
Isolation Voltage
2250
Vdc
Input Reverse Polarity
None
Vdc
On/Off Remote Control
0
15
Vdc
Output Power
0
50
W
Output Current
Current-limited, no damage, short-circuit protected
0
15
A
Storage Temperature Range
Vin = Zero (no power)
-55
125
°C
Absolute maximums are stress ratings. Exposure of devices to greater than any of these conditions may adversely affect long-term reliability. Proper operation under conditions other than those
listed in the Performance/Functional Specifications Table is not implied or recommended.
INPUT
Operating voltage range
18
48
75
Vdc
Recommended External Fuse
Fast blow
6
A
Start-up threshold
Rising input voltage
16.5
17
17.9
Vdc
Undervoltage lockout
Falling input voltage
15
16.25
17.50
Vdc
Overvoltage shutdown
Rising input voltage
None
Vdc
Reverse Polarity Protection
None, install external fuse
None
Vdc
Internal Filter Type
LC
Input current
Full Load Conditions
Vin = nominal
1.16
1.19
A
Low Line
Vin = minimum, 13A load
2.63
2.72
A
Inrush Transient
0.4
A2-Sec.
Output in Short Circuit
100
200
mA
No Load Input current
Iout = minimum, unit=ON
25
60
mA
Shut-Down mode Input Current (Off, UV, OT)
5
10
mA
Measured at input with specified filter
15
30
mA, pk-pk
Reflected (back) ripple current
➁
Pre-biased startup
External output voltage < Vset
Monotonic
GENERAL and SAFETY
Vin=48V, full load
87.5
89
%
Efficiency
Vin=24V, full load
88.5
90.5
%
Isolation
Isolation Voltage, Input to Output
2250
Vdc
Insulation Safety Rating
basic
Isolation Resistance
100
MΩ
Isolation Capacitance
1300
pF
Certified to UL-60950-1, IEC/EN60950-1,
Safety
Yes
2nd Edition
Per Telcordia SR332, issue 1, class 3, ground
Calculated MTBF
3.0
Hours x 10
6
fixed, Tambient=+25°C
DYNAMIC CHARACTERISTICS
Fixed Switching Frequency
250
280
310
KHz
Power Up Startup Time
Power On to Vout regulated
30
mS
On/Off Startup Time
Remote ON to Vout regulated
30
mS
50-75-50% load step, settling time to within
Dynamic Load Response
100
200
μSec
±1% of Vout
Dynamic Load Peak Deviation
Same as above,
±180
±240
mV
FEATURES and OPTIONS
Remote On/Off Control
➅
"N" suffix
Negative Logic, ON state
ON=Pin grounded or external voltage
-0.1
0.8
Vdc
Negative Logic, OFF state
OFF=Pin open or external voltage
2.5
15
Vdc
Control Current
Open collector/drain, sourcing
1
2
mA
"P" suffix
Positive Logic, ON state
ON=Pin open or external voltage
10
15
Vdc
Positive Logic, OFF state
OFF=Ground pin or external voltage
0
0.7
Vdc
Control Current
Open collector/drain
1
2
mA
www.murata-ps.com/support
MDC_UWS Series.D04
Page 3 of 25
UWS Series
Sixteenth-brick DOSA-Compatible,
Wide Input Isolated DC-DC Converters
FUNCTIONAL SPECIFICATIONS, UWS-3.3/15-Q48 (CONT.)
OUTPUT
Total Output Power
Voltage
Nominal Output Voltage
Setting Accuracy
Output Voltage Range
Overvoltage Protection
Current
Output Current Range
Output Current Range
Minimum Load
Current Limit Inception
Short Circuit
Short Circuit Current
Short Circuit Duration (remove short for
recovery)
Short circuit protection method
Regulation
➆
Line Regulation
Load Regulation
Ripple and Noise
Temperature Coefficient
Remote Sense Compensation
18
Maximum Capacitive Load
MECHANICAL
Outline Dimensions
(Please refer to outline drawing)
Weight
Through Hole Pin Diameter
Through Hole Pin Material
TH Pin Plating Metal and Thickness
Conditions
➀
See Derating
No trim
At 50% load
User-adjustable
Via magnetic feedback
Vin=18V-36V
Vin=36V-75V
98% of Vnom., after warmup
Hiccup technique, autorecovery within ±1.25%
of Vout
Output shorted to ground, no damage
Current limiting
Vin=min. to max., Vout=nom., full load
Iout=min. to max., Vin=48V
With a 1uF || 10uF output caps
With a 1uF || 100uF output caps
At all outputs
Sense connected at load
Constant resistance mode , low ESR
Cxx case
LxWxH
±0.15
±0.3
125
%
%
mV pk-pk
mV pk-pk
% of Vnom./°C
% of Vout
μF
Inches
mm
Ounces
Grams
Inches
mm
μ-inches
μ-inches
None
See derating, full power, natural convection
No derating, full power, natural convection
Vin = Zero (no power)
Measured in center
External filter is required
-40
-40
-55
115
85
105
125
130
°C
°C
°C
°C
Class
Minimum
0.0
3.267
-10
4
0.0
0.0
18.4
No minimum load
21.9
0.6
Continuous
Typical/Nominal
49.5
3.3
±1
4.3
Maximum
50
3.333
10
4.9
13.0
15.0
25.4
Units
W
Vdc
% of Vnom.
% of Vnom.
Vdc
A
A
A
A
90
60
±0.02
0
10,000
1.30x0.90x0.36
33.02x22.9x9.14
0.48
13.6
0.04 & 0.060
1.016 & 1.524
Copper alloy
50
5
10
Nickel subplate
Gold overplate
EMI/RFI Shielding
ENVIRONMENTAL
Operating Ambient Temperature Range
Operating Case Temperature Range
Storage Temperature
Thermal Protection/Shutdown
Electromagnetic Interference
Conducted, EN55022/CISPR22
RoHS rating
➃
125
B
RoHS-6
www.murata-ps.com/support
MDC_UWS Series.D04
Page 4 of 25
UWS Series
Sixteenth-brick DOSA-Compatible,
Wide Input Isolated DC-DC Converters
TYPICAL PERFORMANCE DATA, UWS-3.3/15-Q48
Efficiency vs. Line Voltage and Load Current @ 25°C
[i=s]This post was last edited by cruelfox on 2021-6-17 23:10[/i] The Perf-V development board documentation contains a ported project for the E203 SOC, but because the Vivado version used is higher ...
#include "systemInit.h"#include "sd.h"#include "myfun.h"#include "pin_define.h"#include "uart_init.h"
//Define the initialization variable flag unsigned char is_init; //Set this variable to 1 during i...
Output a voltage (about 3V) through stm32 to control the on and off of a switch. For example, when the output is 3V, the switch is closed, and when the output is 0V, the switch is open. At the same ti...
The mixed use of data types is very frustrating. For example: structure pointer, array pointer, pointer array, function pointer, pointer function. These vague concepts are very frustrating. Because of...
Hardware designers have begun to adopt FPGA technology in high-performance DSP designs because it can provide 10-100 times faster computing than PC-based or microcontroller-based solutions. Previou...[Details]
introduction
1 The significance of using RTOS on MSP430
It is understandable that it is meaningless to use RTOS on MSP430. Because the hardware resources of MSP430 are limited (for exampl...[Details]
1 Introduction
A wide variety of communication cables and control cables are widely used in various instruments and control equipment. Whether the cable is well-conducted and
whether
th...[Details]
0 Introduction
With the development of my country's economy, the number of motor vehicles continues to increase. The growth of existing roads and other hardware facilities can no longer meet t...[Details]
System design is a complex process. It is not enough to just use ICs. There are many details to consider. This article uses a high-fidelity music playback system as an example to introduce how to s...[Details]
Since the No. 4 blast furnace of Handan Iron and Steel was put into operation in 1993, its external equipment has been seriously aged, and the original PLC control system TDC3000 of the hot blast furn...[Details]
MediaTek (2454) announced the acquisition of F-MStar (3697) and attracted the attention of IC design industry. This morning, Gartner Semiconductor Industry Research Director Hong Cenwei analyzed ...[Details]
The automotive lighting and signal control system is responsible for controlling the vehicle's lighting, signal lights, electric horns, reversing and brake buzzers. Traditional automotive lighting...[Details]
The typical fault troubleshooting listed below is for reference of maintenance personnel.
When the computer is turned on, the indicator light is off and there is no screen display
Mainte...[Details]
System Overview
The system consists of a signal preprocessing circuit, a single-chip computer AT89C2051, a systematic LED display module, a serial port data storage circuit and system software...[Details]
Introduction
X1226 has the functions of clock and calendar. The clock relies on hour, minute and second registers to track, and the calendar relies on date, week, month and year registers to tr...[Details]
In the "digital pressure measurement" experimental device of applied physics, the subject technical knowledge of analog circuits, digital circuits, sensors and single-chip microcomputers is used. In o...[Details]
Key Points
1. Now, in addition to high-end smartphones and tablets, users also expect to use touch screens in other applications, and they are gradually appearing in cars and instruments.
...[Details]
1 Introduction to LED
With the development of science and technology, people have higher and higher requirements on automobile light sources. LED (Light Emitting Diode) has gradually attracted...[Details]
People who often surf the Internet until late at night, their families always complain that turning on the big lights in the living room affects their rest, but some people don't have keyboard ligh...[Details]