Data are valid at +25°C, unless otherwise specified.
Parameter
Input
Nominal input voltage
Permanent input
voltage range (Ui)
Extended permanent input
voltage range
Transient input voltage
Undervoltage lock-out
(UVLO)
Start up time
Reflected ripple current
Input current in short
circuit mode (Average)
No load input current
Output
Output voltage *
Full temperature range
Ui min. to max.
75% load
Ambient temperature : +25°c
Ui nominal, 75% load
Full temperature range
Ui min. to max.
Full temperature range
Ui min. to max.
Nominal
Nominal
Nominal
Nominal
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Typical
Typical
Typical
VDC
VDC
VDC
VDC
%
W
A
A
A
A
mVpp
mVpp
mVpp
%
%
%
3,3
5
12
15
+/- 2
10
2
2
0,80
0,65
40
50
60
+/- 1
+/- 2,5
3,3
5
12
15
+/- 2
10
2
2
0,80
0,65
40
50
60
+/- 1
+/- 2,5
See on page 6
Conditions
Limit or
typical
Nominal
Min. - Max.
Min. - Max.
Maximum
Minimum
Maximum
Maximum
Typical
Maximum
Maximum
Units
Hi-Rel
Grade
Single Output MGDS-10
10-C
5
4,5-5,5
/
/
4
4,3
30
50
50
50
10 - H
20
9-36
/
40/0,1
7
8,5
30
50
30
30
10 - J
28
16-40
16-45
50/0,1
12
15
30
30
30
30
Full temperature range
Full temperature range
Full temperature range
(Consult factory)
Full load (Consult factory)
turn-on/turn-off threshold
Ui nominal
Nominal output
Full load : resistive
Ui nominal, full load at
switching freq. BW = 20MHz
Ui nominal
Short-circuit
Ui nominal
No load
VDC
VDC
VDC
VDC/S
VDC
VDC
ms
mApp
mA
mA
3,3
5
12
15
+/- 2
10
2
2
0,80
0,65
40
50
60
+/- 1
+/- 2,5
4
Set Point accuracy
Output power
Output current **
3,3V output
5V output
12V output
15V outputt
Ripple output voltage ***
3,3V and 5V output
12V output
15V output
Line regulation
Load regulation ****
Efficiency
Maximum admissible
Capacitive load
3,3V and 5V output
12V and 15V output
Ui nominal
Full load
BW = 20MHz
Ui min. to max.
Full load
Ui nominal
25% to full load
Ui nominal
Full load
Ui nominal
Full load
Per output
Maximum
Maximum
µF
µF
1.000
330
1.000
330
1.000
330
Note * : For proper operation the MGDM-10 module requires to install a 22µF chemical or tantalum capacitance accross output terminals.
Note ** : For 9-36V input range, the current is derated at 80% at 9V and increases linearly to full current at 12V.
Note*** : The ripple output voltage is the periodic AC component imposed on the output voltage, an aperiodic and random component (noise) has also to be considered.
This noise can be reduced by adding an external capacitor (typically 10nF/rated voltage depending on isolation requirement) connected between the pin Gin and the
pin Gout of the converter. This capacitor should be layed-out as close as possible from the converter.
Note**** : For load regulation characteristics from 0% to full load, please see page 6.
Data are valid at +25°C, unless otherwise specified.
Parameter
Input
Nominal input voltage
Permanent input
voltage range (Ui)
Extended permanent input
voltage range
Transient input voltage
Undervoltage lock-out
(UVLO)
Start up time
Reflected ripple current
Input current in short
circuit mode (Average)
No load input current
Output
Output voltage *
Full temperature range
Ui min. to max.
75% load
Ambient temperature : +25°c
Ui nominal, 75% load
Full temperature range
Ui min. to max.
Full temperature range
Ui min. to max.
Nominal
Nominal
Nominal
Nominal
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Typical
Typical
Typical
Typical
VDC
VDC
VDC
VDC
%
W
A
A
A
A
mVpp
mVpp
mVpp
%
%
%
%
+/- 5
+/- 12
+/- 15
/
+/- 2
+/- 5
+/- 1
+/- 0,40
+/- 0,33
/
40
50
60
+/- 1
+/- 2,5
+/- 0,5
+/- 5
+/- 12
+/- 15
/
+/- 2
+/- 5
+/- 1
+/-0, 40
+/- 0,33
/
40
50
60
+/- 1
+/- 2,5
+/- 0,5
See on page 6
Conditions
Limit or
typical
Nominal
Min. - Max.
Min. - Max.
Maximum
Minimum
Maximum
Maximum
Typical
Maximum
Maximum
Units
Hi-Rel
Grade
Bi Output MGDB-10
10-C
5
4,5-5,5
/
/
4
4,3
30
50
50
50
10 - H
20
9-36
/
40/0,1
7
8,5
30
50
30
30
10 - J
28
16-40
16-45
50/0,1
12
15
30
30
30
30
Full temperature range
Full temperature range
Full temperature range
(Consult factory)
Full load (Consult factory)
Turn-on/turn-off threshold
Ui nominal
Nominal output
Full load : resistive
Ui nominal, full load at
switching freq. BW = 20MHz
Ui nominal
Short-circuit
Ui nominal
No load
VDC
VDC
VDC
VDC/S
VDC
VDC
ms
mApp
mA
mA
+/- 5
+/- 12
+/- 15
+/- 24
+/- 2
+/- 5
+/- 1
+/-0, 40
+/- 0,33
+/-0,20
40
50
60
+/- 1
+/- 2,5
+/- 0,5
Set Point accuracy
Output power
Output current **
5V output
12V output
15V output
24V output
Ripple output voltage ***
5V output
12V output
15V and 24 output
Line regulation
Load regulation ****
Cross load output
regulation
Efficiency
Maximum admissible
Capacitive load
5V output
12V, 15V and 24V output
4
Ui nominal
Full load
BW = 20MHz
Ui min. to max.
Full load
Ui nominal
25% to full load
Ui nominal
+ Vout nominal load
- Vout from 25% to full load
Ui nominal
Full load
Ui nominal
Full load
Per output
Maximum
Maximum
µF
µF
470
100
470
100
470
100
Note * : For proper operation the MGDM-10 module requires to install a 22µF chemical or tantalum capacitance accross output terminals.
Note ** : For 9-36V input range, the current is derated at 80% at 9V and increases linearly to full current at 12V.
Note*** : The ripple output voltage is the periodic AC component imposed on the output voltage, an aperiodic and random component (noise) has also to be considered.
This noise can be reduced by adding an external capacitor (typically 10nF/rated voltage depending on isolation requirement) connected between the pin Gin and the
pin Gout of the converter. This capacitor should be layed-out as close as possible from the converter.
Note**** : For load regulation characteristics from 0% to full load, please see page 6.
Data are valid at +25°C, unless otherwise specified.
Parameter
Input
Nominal input voltage
Permanent input
voltage range (Ui)
Extended permanent
input voltage range
Transient input voltage
Undervoltage lock-out
(UVLO)
Start up time
Reflected ripple current
Input current in short
circuit mode (Average)
No load input current
Output
Output voltage *
Set Point accuracy
Output power
Output current **
5 & +/- 12V output
5 & +/- 15V output
Ripple output voltage ***
5V output
12V output
15V output
Line regulation
Load regulation ****
Cross load output
regulation
Efficiency
Maximum admissible
Capacitive load
5V output
12V and 15V output
Full temperature range
Ui min. to max.
75% load
Ambient temperature : +25°c
Ui nominal, 75% load
Full temperature range
Ui min. to max.
Full temperature range
Ui min. to max.
Ui nominal
Full load
BW = 20MHz
Ui min. to max.
Full load
Ui nominal
25% to full load
Ui nominal
+ Vout nominal load
- Vout from 25% to full load
Ui nominal
Full load
Ui nominal
Full load
Per output
Nominal
Nominal
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Typical
Typical
Typical
Typical
VDC
VDC
%
W
A
A
mVpp
mVpp
mVpp
%
%
%
%
5 & +/- 12
5 & +/- 15
+/- 2
5 & +/- 2,5
1 & +/- 0,20
1 & +/- 0,15
40
50
60
+/- 1
+/- 2,5
+/- 0,5
82
Full temperature range
Full temperature range
Full temperature range
(Consult factory)
Full load
Turn-on/turn-off threshold
Ui nominal
Nominal output
Full load : resistive
Ui nominal, full load at
switching freq. BW = 20MHz
Ui nominal
Short-circuit
Ui nominal
No load
Nominal
Min. - Max.
Min. - Max.
Maximum
Minimum
Maximum
Maximum
Typical
Maximum
Maximum
VDC
VDC
VDC
VDC/S
VDC
VDC
ms
mApp
mA
mA
20
9-36
/
40/0,1
7
8,5
30
50
30
30
Conditions
Limit or
typical
Units
Hi-Rel
Grade
Tri Output MGDT-10
10 - H
10 - J
28
16-40
16-45
50/0,1
12
15
30
30
30
30
5 & +/- 12
5 & +/- 15
+/- 2
5 & +/- 2,5
1 & +/- 0,20
1 & +/- 0,15
40
50
60
+/- 1
+/- 2,5
+/- 0,5
82
4
Maximum
Maximum
µF
µF
470
100
470
100
Note * : For proper operation the MGDM-10 module requires to install a 22µF chemical or tantalum capacitance accross output terminals.
Note ** : For 9-36V input range, the current is derated at 80% at 9V and increases linearly to full current at 12V.
Note*** : The ripple output voltage is the periodic AC component imposed on the output voltage, an aperiodic and random component (noise) has also to be considered.
This noise can be reduced by adding an external capacitor (typically 10nF/rated voltage depending on isolation requirement) connected between the pin Gin and the
pin Gout of the converter. This capacitor should be layed-out as close as possible from the converter.
Note**** : For load regulation characteristics from 0% to full load, please see page 6.
I just got in touch with STM32. I use the official firmware library and the SRAM boot method to debug the program. Currently, there is no problem downloading and running general codes. The problem is ...
Whether it is an unconscious insult in the office, or dissatisfaction and complaints that pop up from time to time in life; whether it is blurted out or buried deep in the heart, negative emotions com...
The blue box on the left of the picture below is a complete DC boost circuit, so what is the function of adding the red box circuit on the right? Please help me answer this question. Thank you!
LT317:...
I am using the D647 voice card from Dongjin. However, soon after starting CCS7 Route Sever, it prompts "The instruction Ox00462a76 referenced memory Ox00000004. The memory could not be written". What'...
1. Design Overview
1. Design Intent
The rapid development of medical imaging technology continues to promote the progress of modern medicine. CT, MRI, and PET are widely ...[Details]
The U.S. Food and Drug Administration (FDA) points out that home health care is the fastest growing area in the medical device industry. Driven by the increase in average life expectancy, the increasi...[Details]
Medicines are special commodities. If patients are given the wrong medicine, fake medicine, inferior medicine or expired medicine, it will pose a threat to people's health and lives.
In recent...[Details]
The latest C language tools allow you to quickly complete the design of algorithm-intensive applications even if you are not proficient in hardware development.
Hardware designers have b...[Details]
Ultrasound systems are among the most sophisticated and complex signal processing instruments in widespread use today. Like any complex instrument, there are many trade-offs to be made in implement...[Details]
How can we get the highest performance from an A/D converter? The obvious answer is to use good design and board layout, but there are other techniques that can be used to improve performance. We can ...[Details]
Ultrasonic tooth cleaning machines have been widely used in the medical field. Most ultrasonic tooth cleaning machines used at home and abroad now use analog oscillation circuits. There are the follow...[Details]
Conventional ECG recorders are one of the main means for doctors to diagnose heart diseases, but they can only record short heartbeats. In many cases, it is difficult to record ECG changes during a...[Details]
This article introduces a miniature home electrocardiograph. The instrument has powerful functions: display monitoring, storage, playback, printing, record management, power alarm, telephone or Intern...[Details]
Many medical applications require portable, self-powered devices that do not require external power and data cables. The most obvious example is a portable data logger that patients carry with them to...[Details]
In response to a series of problems caused by the backwardness of traditional water meters, the Ministry of Construction of China has proposed the requirement of "three meters per household" for ur...[Details]
Lithium-ion battery is a widely used rechargeable battery. It has the advantages of high single-cell operating voltage, small size, light weight, high energy density, long cycle life, rapid full ch...[Details]
With the development of the automobile industry, the complexity and information density of automobile information systems are increasing. Displays are no longer just basic centralized instrument di...[Details]
The hardware circuit principle is shown in Figure 1. In the specific design, each part should consider the anti-interference problem to minimize the impact of interference on the performance of the...[Details]
WiMax technology needs to demonstrate its advantages in specific application scenarios in order to gain market recognition, which requires application testing to measure system performance para...[Details]