Data are valid at +25°C, unless otherwise specified.
Parameter
Input
Nominal input voltage
Permanent input
voltage range (Ui)
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
Nomina
Nominall
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Typical
Typical
Typical
Maximum
Maximum
VDC
VDC
VDC
VDC
%
W
A
A
A
A
mVpp
mVpp
mVpp
%
%
%
µF
µF
2.000
680
3,3
5
12
15
+/- 2
20
4
4
1,6
1,3
40
50
60
+/- 1
+/- 2,5
3,3
5
12
15
+/- 2
20
4
4
1,6
1,3
40
50
60
+/- 1
+/- 2,5
See on page 6
2.000
680
Conditions
Limit or
typical
Nominal
Min. - Max.
Maximum
Minimum
Maximum
Maximum
Typical
Maximum
Maximum
Units
Hi-Rel
Grade
Single Output MGDS-20
20 - C
5
4,5-5,5
/
4
4,3
40
50
100
100
20 - H
20
9-36
40/0,1
7
8,5
40
50
60
60
20 - J
28
16-40
50/0,1
12
15
40
50
60
60
Full temperature range
Full temperature range
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/S
VDC
VDC
ms
mApp
mA
mA
3,3
5
12
15
+/- 2
20
4
4
1,6
1,3
40
50
60
+/- 1
+/- 2,5
Set Point accuracy
Output power
Output current **
3,3V output
5V output
12V output
15V output
Ripple output voltage ***
3,3V and 5V output
12V output
15V output
Line regulation
Load regulation ****
Efficiency
Maximum admissible
Capacity load
3,3V and 5V output
12V and 15V output
4
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
2.000
680
Note * : For proper operation the MGDM-20 module requires to install a 22µF chemical or tantalum capacitor accross output terminal.
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.
Limit or
typical
Nominal
Min. - Max.
Maximum
Minimum
Maximum
Parameter
Input
Nominal input voltage
Permanent input
voltage range (Ui)
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 **
+/- 5V output
+/- 12V output
+/- 15V output
Ripple output voltage ***
5V output
12V output
15V output
Line regulation
Load regulation ****
Cross load output regulation
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
Nominal
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Maximum
Typical
Typical
Typical
VDC
VDC
VDC
%
W
A
A
A
mVpp
mVpp
mVpp
%
%
%
+/- 5
+/- 12
+/- 15
+/- 2
+/- 10
+/- 2
+/- 0,80
+/- 0,65
40
50
60
+/- 1
+/- 2,5
+/- 0,5
Conditions
Units
Hi-Rel
Grade
Bi Output MGDB-20
20 - H
20
9-36
40/0,1
7
8,5
40
50
60
60
20 - J
28
16-40
50/0,1
12
15
40
50
60
60
Full temperature range
Full temperature range
Full load (Consult factory)
Turn-on/turn-off threshold
VDC
VDC
VDC/S
VDC
VDC
ms
mApp
mA
mA
Ui nominal
Maximum
Nominal output
Full load : resistive
Ui nominal, full load at switching
Typical
freq. BW = 20MHz
Ui nominal
Maximum
Short-circuit
Ui nominal
Maximum
No load
+/- 5
+/- 12
+/- 15
+/- 2
+/- 10
+/- 2
+/- 0,80
+/- 0,65
40
50
60
+/- 1
+/- 2,5
+/- 0,5
4
Efficiency
Maximum admissible
Capacity load
5V output
12V and 15V output
Typical
%
See on page 6
Maximum
Maximum
µF
µF
1.000
330
1.000
330
Note * : For proper operation the MGDM-20 module requires to install a 22µF chemical or tantalum capacitor accross output terminal.
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.
Limit or
typical
Nominal
Min. - Max.
Maximum
Minimum
Maximum
Maximum
Typical
Maximum
Maximum
Parameter
Input
Nominal input voltage
Permanent input
voltage range (Ui)
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
Maximum
Maximum
VDC
VDC
VDC
VDC
%
W
A
A
A
A
mVpp
mVpp
mVpp
%
%
%
%
µF
µF
3,3 & +/- 12
3,3 & +/- 15
5 & +/- 12
5 & +/- 15
+/- 2
10 & +/- 5
2 & +/- 0,4
2 & +/- 0,3
2 & +/- 0,4
2 & +/- 0,3
40
50
60
+/- 1
+/- 2,5
+/- 0,5
see on page 6
2.000
330
Conditions
Units
Hi-Rel
Grade
Tri Output MGDT-20
20 - H
20
9-36
40/0,1
7
8,5
40
50
60
60
20 - J
28
16-40
50/0,1
12
15
40
50
60
60
Full temperature range
Full temperature range
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
VDC
VDC
VDC/S
VDC
VDC
ms
mApp
mA
mA
3,3 & +/- 12
3,3 & +/- 15
5 & +/- 12
5 & +/- 15
+/- 2
10 & +/- 5
2 & +/- 0,4
2 & +/- 0,3
2 & +/- 0,4
2 & +/- 0,3
40
50
60
+/- 1
+/- 2,5
+/- 0,5
see on page 6
2.000
330
Set Point accuracy
Output power
Output current **
3,3V & +/- 12V output
3,3V & +/- 15V output
5V & +/- 12V output
5V & +/- 15V output
Ripple output voltage ***
3,3V and 5V output
12V output
15V output
Line regulation
Load regulation ****
Cross load output
regulation
Efficiency
Maximum admissible
Capacity load
3,3V and 5V output
12V and 15V 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
Note * : For proper operation the MGDM-20 module requires to install a 22µF chemical or tantalum capacitor accross output terminal.
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.
In many current RFID applications, equipment manufacturers cannot necessarily decide what transceivers, especially transceiver chips, are used by customers. Therefore, in order to maximize their chanc...
I have a question and I would like to ask you for help: 1. The SAM-L10-L11 series MCU has 3 OPs, but the datasheet (SAM-L10-L11-Family-Data-Sheet-DS60001513C.pdf) P20, P21 does not show that OP 1 (OA1...
With the development of speech recognition technology, development boards with speech recognition processing functions have gradually become more abundant. Currently, the development boards available ...
The C2000 Delfino MCU LaunchPad Development Kit is an affordable evaluation platform that provides designers with a low-cost development kit for high-performance digital control applications. This too...
In this post https://en.eeworld.com/bbs/thread-1212378-1-1.html , the overall refresh frame rate is limited to about 20fps due to the SD card reading speed limit. After updating the 0.13 sdk version r...
Industry: Energy/Electricity
Products: cRIO-9014, Real-Time Modules, FPGA Modules, NI 9239, LabVIEW
Challenge: Develop a communications-flexible portable measurement device that can record high-f...[Details]
Research firm Wave7 has just conducted a survey of US carrier sales staff and found that the sales of the Pixel 6 series smartphones of Google, headquartered in Mountain View, are significantl...[Details]
Whether it is the electrification of automobiles or generative artificial intelligence, power technology is indispensable. Daryl Ellis, general manager of Tektronix's global mid-range and basic osc...[Details]
This is similar to the digital stopwatch in the previous article, except that it has four seven-segment displays, and the entire display is divided into three parts: hours, minutes, and seconds. When ...[Details]
******************************************************************************* 006.asm reads the keys on the independent keyboard and lights up the corresponding LED. If no key is pressed for a peri...[Details]
How to improve and maintain the placement rate of SMT equipment is an urgent problem that managers need to solve after years of use. This article takes the rotary head placement machine as an exampl...[Details]
Yesterday, workers were producing zinc-bromine flow batteries in the workshop of Jiangsu Hengan Energy Storage Technology Co., Ltd. in Jiangning Development Zone. The company has built an automated pr...[Details]
What does high voltage and high power operational amplifier mean?
Definition of high-voltage and high-power operational amplifiers The output voltage of the operational amplifier is mainly limited ...[Details]
By using a photoelectric device to detect the movement of the moiré fringes, the movement of the indicator grating can be measured. There are two problems that must be solved here: one is how to ide...[Details]
In today's TWS headset market, the white-label market is accelerating the "reproduction" of the development process of copycat mobile phones. In addition to first-tier terminal brands such as Apple a...[Details]
1 Introduction According to the exercise heart rate, the exercise intensity level can be accurately divided. Through the intelligent judgment of the monitored heart rate according to the divided le...[Details]
C Code //GPIOA8 is LED0 //GPIOA13 is KEY0 only contains startup code STM32F10x.s #define GPIOA_CRL (*(volatile unsigned long *)(0x40000000+0x10000+0x0800+0x00)) #define GPIOA_CRH (*...[Details]
The MAX44009 ambient light sensor features an I²C digital output, making it ideal for portable applications such as smartphones, laptops, and industrial sensors. Operating at less than 1μA, it is the...[Details]
Circuit to drive 5 to 8 3W LED lamps in series using 12V DC/12V AC power supply
QR111, PAR30 and PAR38
Introduction:
• This circuit uses 12V DC/12V AC power supply to dr...[Details]
Have you ever encountered such a situation? When you just pass by a place or talk about something, you will receive related content pushed by various software after opening your mobile phone, which m...[Details]