HW/HC006/010/012 Series Power Modules; dc-dc Converters
18-36 Vdc & 36-75 Vdc Input; 1.2 Vdc to 5 Vdc Output; 6.6A to 12A
Features
RoHS Compliant
n
Compatible with RoHS EU Directive 200295/EC (-Z Ver-
sions)
Compatible in RoHS EU Directive 200295/EC with lead
solder exemption (non -Z versions)
Delivers up to 12A output current
High efficiency: 90% at 3.3V full load (VIN = 48V)
Small size and low profile:
47.2 mm x 29.5 mm x 8.50 mm
(1.86 in x 1.16 in x 0.335 in)
Low output ripple and noise
Exceptional thermal performance
High reliability: MTBF > 4.5M hours at 25 °C
Remote On/Off positive logic (primary referenced)
Constant switching frequency (285 KHz typical)
Output overvoltage and overcurrent protection
Overtemperature protection
Input undervoltage lockout
Adjustable output voltage (± 10%)
Surface mount or through-hole package
n
n
n
n
n
n
Applications
n
n
n
n
n
n
n
Distributed Power Architectures
n
Wireless Networks
n
Access and Optical Network Equipment
n
Enterprise Networks
n
Latest generation IC’s (DSP, FPGA, ASIC) and Micropro-
cessor-powered applications.
n
n
Options
n
n
n
n
Remote On/Off negative logic
Surface-mount package (–S Suffix)
Basic Insulation (–B Suffix)
Meets the voltage and current requirements for
ETSI 300-132-2 and complies with and is approved for
Basic Insulation rating per IEC60950 3
rd
(-B version only)
UL*
60950 Recognized,
CSA
†
C22.2 No. 60950-00 Certi-
fied, and VDE
‡
0805 (IEC60950, 3rd edition) Licensed
CE mark meets 73/23/EEC and 93/68/EEC directives
§
ISO** 9001 and ISO14001 certified manufacturing facili-
ties
n
n
n
Description
The HW/HC series power modules are isolated dc-dc converters that can deliver up to 12A of output current and provide a pre-
cisely regulated output voltage over a wide range of input voltages (VI = 18 to 36 Vdc for HC modules & 36 V to 75 Vdc for HW
modules). The modules achieve full load efficiency of 90% at 3.3 V output voltage. The open frame modules, available in both sur-
face-mount and through-hole packaging, enable designers to develop cost- and space-efficient solutions. Standard features
include remote On/Off, output voltage adjustment, overvoltage, overcurrent and overtemperature protection.
*
†
‡
§
**
UL
is a registered trademark of Underwriters Laboratories, Inc.
CSA
is a registered trademark of Canadian Standards Association.
VDE
is a trademark of Verband Deutscher Elektrotechniker e.V.
This product is intended for integration into end-use equipment. All the required procedures for CE marking of end-use equipment should be followed. (The CE mark is placed on selected products.)
ISO is a registered trademark of the Internation Organization of Standards
Document No: ADS02-006EPS ver.1.3
PDF Name: fds03-0031.pdf
Data Sheet
November 13, 2007
HW/HC006/010/012 Series Power Modules; dc-dc Converters
18-36 Vdc & 36-75 Vdc Input; 1.2 Vdc to 5 Vdc Output; 6.6A to 12A
Absolute Maximum Ratings
Stresses in excess of the absolute maximum ratings can cause permanent damage to the device. These are absolute stress
ratings only, functional operation of the device is not implied at these or any other conditions in excess of those given in the
operations sections of the data sheet. Exposure to absolute maximum ratings for extended periods can adversely affect the
device reliabiltiy.
Parameter
Input Voltage:Continuous
Transient (100ms)
Operating Ambient Temperature
(See Thermal Considerations section)
Storage Temperature
Device
HW
HC
HW
All
All
Symbol
VI
VI
VI, trans
TA
Tstg
Min
–0.3
–0.3
—
–40
–55
Max
80
50
100
85
125
Unit
Vdc
Vdc
Vdc
°C
°C
Electrical Specifications
Unless otherwise indicated, specifications apply over all operating input voltage, resistive load, and temperature conditions.
Parameter
Operating Input Voltage
Maximum Input Current
(VI = 0 V to 75 V; IO = IO, max)
Inrush Transient
Input Reflected Ripple Current, peak-peak
(5 Hz to 20 MHz, 12 µH source impedance
See Test configuration section)
Input Ripple Rejection (120 Hz)
Device
HC
HW
HC
HW
All
All
Symbol
VIN
VIN
II, max
II, max
I
2
t
II
Min
18
36
Typ
24
48
Max
36
75
3.2
1.6
1
Unit
Vdc
Vdc
Adc
Adc
A
2
s
mAp-p
3
All
50
dB
CAUTION: This power module is not internally fused. An input line fuse must always be used.
This power module can be used in a wide variety of applications, ranging from simple stand-alone operation to an integrated
part of a sophisticated power architecture. To preserve maximum flexibility, internal fusing is not included however, to achieve
maximum safety and system protection, always use an input line fuse. The safety agencies require a time-delay fuse with a
maximum rating of 5 A (see Safety Considerations section). Based on the information provided in this data sheet on inrush
energy and maximum dc input current, the same type of fuse with a lower rating can be used. Refer to the fuse manufacturer’s
data sheet for further information.
Tyco Electronics Power Systems
2
Data Sheet
November 13, 2007
HW/HC006/010/012 Series Power Modules; dc-dc Converters
18-36 Vdc & 36-75 Vdc Input; 1.2 Vdc to 5 Vdc Output; 6.6A to 12A
Electrical Specifications
(continued)
Parameter
Output Voltage Set Point
(VI = 48 Vdc; IO = IO, min to IO, max, TA = 25 °C)
Device
HW012A0P1
HW012A0M1
HW012A0Y1
HW010A0G1
HW010A0F1
HW006A6A1
HW012A0P1
HW012A0M1
HW012A0Y1
HW010A0G1
HW010A0F1
HW006A6A1
All
All
All
Symbol
Vo, set
Vo, set
Vo, set
Vo, set
Vo, set
Vo, set
VO
VO
VO
VO
VO
VO
—
—
—
Min
1.17
1.46
1.75
2.46
3.25
4.92
1.15
1.44
1.73
2.42
3.2
4.85
—
—
—
Typ
1.2
1.5
1.8
2.5
3.3
5.0
—
—
—
—
—
—
—
—
0.2
Max
1.23
1.54
1.85
2.54
3.35
5.08
1.25
1.56
1.87
2.57
3.4
5.15
0.1
10
—
Unit
Vdc
Vdc
Vdc
Vdc
Vdc
Vdc
Vdc
Vdc
Vdc
Vdc
Vdc
Vdc
%, VO, set
mV
%, VO, set
Output Voltage
(Over all operating input voltage, resistive load, and
temperature conditions at steady state until end of life.)
Output Regulation:
Line (VI = VI, min to VI, max)
Load (IO = IO, min to IO, max)
Temperature (TA = TA, min to TA, max)
Output Ripple and Noise
Measured across 10µF Tantalum, 1µF
Ceramic, VI = VI, nom TA = 25 °C, IO = IO, max See test
Configuration section
RMS (5 Hz to 20 MHz bandwidth)
Peak-to-peak (5 Hz to 20 MHz bandwidth)
External Load Capacitance
Output Current
(At Io < Io,min, the output ripple may exceed the
maximum specifications. All modules shall operate at no
load without damage and without exceeding 110% of VO,
set.)
Output Current-limit Inception
(VO = 90% of VO, set)
All
All
HW006A6A1
All others
HW012A0P1
HW012A0M1
HW012A0Y1
HW010A0G1
HW010A0F1
HW006A6A1
HW012A0P1
HW012A0M1
HW012A0Y1
HW010A0G1
HW010A0F1
HW006A6A1
HW012A0P1
HW012A0M1
HW012A0Y1
HW010A0G1
HW010A0F1
HW006A6A1
HW012A0P1
HW012A0M1
HW012A0Y1
HW010A0G1
HW010A0F1
HW006A6A1
All
HW012A0P1
HW012A0M1
HW012A0Y1
HW010A0G1
HW010A0F1
HW006A6A1
CO, max
CO, max
IO
IO
IO
IO
IO
IO
IO, lim
IO, lim
IO, lim
IO, lim
IO, lim
IO, lim
IO, s/c
IO, s/c
IO, s/c
IO, s/c
IO, s/c
IO, s/c
h
h
h
h
h
h
fSW
h
h
h
h
h
h
—
—
0
0
0.15
0.15
0.15
0.05
0.05
0.05
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
8
40
—
—
—
—
—
—
—
—
18
18
18
12
12
8
20
20
20
17
17
13
82
83
85
89
90
91
285
82
83
85
89
90
91
20
75
470
1000
12
12
12
10
10
6.6
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
—
mVrms
mVp-p
µF
µF
Adc
Adc
Adc
Adc
Adc
Adc
Adc
Adc
Adc
Adc
Adc
Adc
Adc
Adc
Adc
Adc
Adc
Adc
%
%
%
%
%
%
kHz
%
%
%
%
%
%
Output Short-circuit Current (Average)
VO = 0.25 V
Efficiency
(VI = VIN, nom; IO = IO, max), TA = 25 °C
Switching Frequency
Efficiency
(VI = VIN, nom; IO = IO, max), TA = 25 °C
Tyco Electronics Power Systems
3
Data Sheet
November 13, 2007
HW/HC006/010/012 Series Power Modules; dc-dc Converters
18-36 Vdc & 36-75 Vdc Input; 1.2 Vdc to 5 Vdc Output; 6.6A to 12A
Electrical Specifications
(continued)
Parameter
Dynamic Load Response
(di/dt = 0.1 A/ µs, VI = VI, nom, TA = 25 °C)
Load change from IO = 50% to 75% of IO, max,
Peak Deviation
Settling Time (VO < 10% of peak deviation)
Load Change from IO = 50% to 25% of IO, max,
Peak Deviation
Setting Time (VO < 10% peak deviation)
Device
Symbol
Min
Typ
Max
Unit
All
All
All
All
—
—
—
—
—
—
—
—
200
0.2
200
0.2
—
—
—
—
mV
msec
mV
msec
Isolation Specifications
Parameter
Isolation Capacitance
Isolation Resistance
Isolation Voltage
Symbol
Ciso
Riso
Viso
Min
—
10
—
Typ
1000
—
—
Max
—
—
1500
Unit
PF
MΩ
Vdc
General Specifications
Parameter
Calculated MTBF (IO = 80% of IO, max TA = 25 °C)
Tyco RIN (Reliability Infomation Notebook) Method
Weight
—
Min
Typ
4,537,000
13 (0.46)
—
Max
Unit
Hours
g (oz.)
Tyco Electronics Power Systems
4
Data Sheet
November 13, 2007
Feature Specifications
HW/HC006/010/012 Series Power Modules; dc-dc Converters
18-36 Vdc & 36-75 Vdc Input; 1.2 Vdc to 5 Vdc Output; 6.6A to 12A
Unless otherwise indicated, specifications apply over all operating input voltage, resistive load, and temperature conditions. See
Feature Descriptions for additional information
.
Parameter
Remote On/Off Signal interface
(VI = VI, min to VI, max; Open collector or compatible, signal
referenced to VI (-) terminal
Negative Logic: Device code with suffix "1"
Logic Low—Module On / Logic High—Module Off
Positive Logic: If device code suffix "1" is not specified
Logic Low—Module Off / Logic High—Module On
Module Specifications:
On/Off Current—Logic Low
On/Off Voltage:
Logic Low
Logic High
Open Collector Specifications:
Leakage Current during Logic High
(Von/off = 15 V)
Output Low Voltage during Logic Low
(Ion/Off – 1 mA)
Turn-On Delay and Rise Times
(IO = 80% of IO, max, VIN = 48 Vdc, TA = 25 °C)
Case 1: On/Off input is set to Logic high and then input power
is applied (delay from instant at which VI = VI, min until VO =
10% of VO, set)
Case 2: Input power is applied for at least one second and
then the On/Off input is set to logic high (delay from instant at
which Von/off = 0.9 V until VO = 10% of VO, set)
Output voltage Rise time (time for VO to rise from 10% of VO,
set to 90% of VO, set)
Output voltage overshoot
(IO = 80% of IO, max, VI = 48 Vdc TA = 25 °C)
Output voltage adjustment (see Feature Description section)
Why do all my boards fail to install drivers (two WIN7s)? It says the driver file has been found but cannot be recognized. Why can other WIN7s install it but mine doesn't? Why can't I install it on al...
I used ADI's BF609 chip in the previous section, and the development environment was CCES. Overall, I feel that BF609 is very powerful and integrates many hardware algorithm modules to further improve...
The process from chip design to implementation can be roughly divided into front-end (logic design) and back-end (physical design). The front-end starts with the design architecture and ends with a ne...
I started learning 51 single chip microcomputer a few days ago. I was completely confused when I learned the chapter on AD and DA. Because I have a development board from Defeilai, ADDA uses a chip, P...
China's photovoltaic power generation installed capacity achieved rapid growth in 2017, and distributed photovoltaics achieved explosive growth. In 2017, the country's photovoltaic installed capaci...[Details]
China Energy Storage Network News:
On April 24, State Grid Corporation of China (hereinafter referred to as "SGCC") and China Southern Power Grid Co., Ltd. (hereinafter referred to as "CSGC")...[Details]
In the
AI
boom, the most talked about is
neural network
. However,
AI
is much more than that. Let's learn about the relevant content with the network communication editor.
...[Details]
When
artificial intelligence
can help humans take on some work, we always divide the responsibilities of both parties very clearly. When humans work, we rarely see
artificial intelligen...[Details]
1. Principle 1. Infrared emission protocol There are many infrared communication protocols. This experiment uses the NEC protocol. This protocol uses PWM modulation and uses pulse width to represen...[Details]
1. Placement suspension void NVIC_Configuration(void) { NVIC_InitTypeDef NVIC_InitStructure; /* Set the Vector Table base location at 0x08004000 NVIC_SetVectorTable(NVIC_VectTab_FLASH, 0x4000)...[Details]
1. Function prototype In the function library officially provided by STM32, you can find functions like HAL_Delay(). This function uses a timer to achieve a more accurate time delay and provides it...[Details]
The update interrupt initialization configuration of the stm32 advanced timer TIM1 is not much different from that of the ordinary timer. What needs to be paid attention to is the configuration of TI...[Details]
Today, under the guidance of a low-level expert, I learned how to configure the PWM module! Woof! First open the file configured last time, as follows: Then, we need to use TIM1 to set PWM: Then,...[Details]
background After the hardware engineer completed the PCB and schematic design, the routine was modified according to the tutorial of Zhengdian Atom to verify the correctness of the hardware. STM32F...[Details]
The goal of this article is to build a TCP client based on the previous project that can ping the PC, and can actively send data to the PC, and can also send and receive data with the PC, and display...[Details]
Since the second half of 2017,
the market share of
quantum dot
displays has dropped significantly, with global sales falling from 3.42 million in 2016 to 2 million in 2017, a 42% decrease; d...[Details]
ZTE was punished, and Hou Weigui, who had already retired, had to come out of retirement again and run around to mediate. Let's follow the embedded editor to learn about the relevant content.
...[Details]
Recently, the "Smart Photovoltaic Industry Development Action Plan (2018-2020)" jointly issued by six departments has put this concept on the forefront. Photovoltaic smart solutions will become the ne...[Details]
In most countries, the military is a fairly large group, and the health of soldiers is particularly important to the combat effectiveness of the army. The US Department of Defense's Advanced Resear...[Details]