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=s]This post was last edited by caozhaokun on 2016-2-3 13:35[/i] The text below is relatively rough, so I will paste a few pictures first. I will improve the post later to make it more fleshed out; ...
What a miserable day! It’s the 30th, a holiday, but we are still discussing whether to work overtime. I think, logically, we don’t have to celebrate this grand holiday?...
I have posted many posts since I started using the Renesas development environment. At first, they were introductions to the software. Now, looking back, I feel that the posts I posted at that time we...
I have studied microcontrollers for more than a year. In fact, I don't know much about hardware circuit design. It's annoying! Now I have just finished learning analog electronics, and I want to learn...
Environment: WINCE6.0+VS2005+PXA310 Problem description: After the GPS module wakes up from standby, the device power state is D2, and the AP calls GetDevicePower(L"GPS1:", POWER_NAME, &pDeviceState) ...
On August 24th, Tesla CEO Elon
Musk
revealed information about the upcoming FSD V14, claiming it will outperform human drivers. Tesla FSD lead Ashok stated last year that FSD version 12.5, ...[Details]
On August 24th, Jin Yuzhi, CEO of Huawei's Intelligent Automotive Solutions BU, announced the first automotive application of Huawei Qiankun's unique Limera technology. This technology eliminates t...[Details]
How do you know if a machine is operating properly? The answer: by leveraging deep learning to detect anomalies in routine vibration data from industrial machines. Anomaly detection has many uses, ...[Details]
introduction
Bluetooth technology is a short-range wireless communication technology designed to replace wired cables. It is a wireless communication technology standard developed by the SIG, ...[Details]
The jammer is a signal blocker, mainly composed of a chip and a radio transmitter. When the car owner presses the remote control lock button, the jammer interferes with the electronic lock receivin...[Details]
In the summer of 2025, BlueOval SK, a joint venture between Ford and SK On, officially started production at its first battery factory in Kentucky.
According to the original plan, this w...[Details]
Since the beginning of this year, price wars have intensified, new models have been launched one after another, used cars with zero kilometers have become a hot topic, and the industry's internal c...[Details]
introduction
Sonar imaging is of great significance in marine resource development and defense. Its long range, intuitive display of the observed area, and target identification make it widely...[Details]
While the current industry consensus is that autonomous vehicles are robots and that their systems are managed using robotics-developed thinking, there are also cases where autonomous driving is ac...[Details]
There are basically three causes of spontaneous combustion of electric vehicles: The first is that the battery components are punctured or suffer fatal damage due to a collision accident, and part ...[Details]
The practice of warming up a car originated with gasoline-powered vehicles. Warming up the engine allows it to enter a better working state and ensures good lubrication. This has become a habit for...[Details]
1. Ease of Use: The HMI module should be designed to be simple and clear, allowing users to easily operate and configure the energy storage device.
2. Ease of Maintenance: The HMI module should...[Details]
On August 22, according to CNBC's report today, the National Highway Traffic Safety Administration (NHTSA) is launching an investigation into Tesla, and the latter is questioned whether it has fail...[Details]
Over the past decade, the narrative surrounding fuel vehicles has been one of decline and replacement. Under the onslaught of new energy vehicles, traditional automakers have been forced to acceler...[Details]
Electric vehicles will revolutionize transportation, changing fuel consumption, carbon emissions, costs, maintenance, and driving habits. Currently, a major selling point for electric vehicles is t...[Details]