background image

Step 2.

Download the firmware (.bin or .hex) onto the 

STM32 Nucleo

 development board microcontroller

through 

STM32 ST-LINK utility

STM32CubeProgrammer

 and according to your IDE environment as

detailed in the table below.

Table 1. 

NUCLEO-F401RE development board supported IDEs - bin files

NUCLEO-F401RE

IAR

Keil

STM32CubeIDE

EWARM-OUT03_04-
STM32F4xx_Nucleo.bin

MDK-ARM-OUT03_04-
STM32F4xx_Nucleo.bin

STM32CubeIDE-OUT03_04-
STM32F4xx_Nucleo.bin

Table 2. 

NUCLEO-G431RB development board supported IDEs - bin files

NUCLEO-G431RB

IAR

Keil

STM32CubeIDE

EWARM-OUT03_04-
STM32G4xx_Nucleo.bin

MDK-ARM-OUT03_04-
STM32G4xx_Nucleo.bin

STM32CubeIDE-OUT03_04-
STM32G4xx_Nucleo.bin

Note:

The binary files listed in the tables above are included in the X-CUBE-IPS software package. The

STEVAL-IFP043V1

 is fully compatible with the 

X-NUCLEO-OUT03A1

.

Step 3.

Connect the 

IPS2050HQ

 device supply voltage via CN1 (see 

Section 1.1.2  Power section

).

Step 4.

Provide the digital supply voltage (see 

Section 1.1.1  Digital section

).

Step 5.

Connect the load on the output connector (see 

Section 1.1.2  Power section

).

Step 6.

Reset the example sequence by pushing the black button on the 

STM32 Nucleo

 board.

Step 7.

Push the blue button on 

STM32 Nucleo

 board to choose among the examples provided in the default

firmware package.

1.5

Multiple board configuration

It is also possible to evaluate an eight channel digital output module by stacking four 

STEVAL-IFP043V1

 with

shared or independent supply rail and independent loads.
In this case, the four expansion boards (board 0, 1, 2, 3 as shown in the table below) must be properly configured:
for board 1, 2 and 3, it is necessary to unsolder four resistors for each board from the default position and solder
them back in the alternate positions according to the following table.

Table 3. 

Configuration of a stack of four expansion boards

Board no.

IN1

IN2

FLT1

FLT2

Board 0

R101

R102

R103

R104

Board 1

R131

R132

R133

R134

Board 2

R111

R112

R113

R114

Board 3

R121

R122

R123

R124

Important:

When using Board 2 and Board 3, two jumpers must close the morpho connectors pins in the 

STM32 Nucleo

board:

CN7.35-36 closed

CN10.25-26 closed

UM3049

Multiple board configuration

UM3049

 - 

Rev 1

page 6/17

Summary of Contents for STEVAL-IFP043V1

Page 1: ...uration and ST morpho optional not mounted connectors The expansion board can be connected to either a NUCLEO F401RE or NUCLEO G431RB development board It is also possible to evaluate a system compose...

Page 2: ...dual high side switch which features Operating range up to 60 V 2 5 A Low power dissipation RON MAX 50 m Fast decay for inductive loads Smart driving of capacitive load Under voltage lock out Per cha...

Page 3: ...e expansion board by a 3v3 or 5v0 generated by the USB You can select the preferred voltage on the expansion board via SW3 3v3 closing pins 1 2 5v0 closing pins 2 3 Alternatively it is possible to sup...

Page 4: ...l 2 green LED 5 IPS2050HQ 6 Output and power supply connector 6 4 3 5 2 1 For EMC The SM15T39CA transient voltage suppressor TR1 enabled by closing JP3 is placed between VCC and GND tracks to protect...

Page 5: ...boards with the STEVAL IFP043V1 expansion board you need a Windows PC laptop Windows 7 or above a type A to mini B USB cable to connect the STM32 Nucleo board to the PC when using a NUCLEO F401RE deve...

Page 6: ...p 5 Connect the load on the output connector see Section 1 1 2 Power section Step 6 Reset the example sequence by pushing the black button on the STM32 Nucleo board Step 7 Push the blue button on STM3...

Page 7: ...R N M CN9 1 2 3 4 5 6 7 8 R134 100R N M CN5 1 2 3 4 5 6 7 8 9 10 TR1 SM15T39CA C2 CN10 4 7nF 3kV N M CON38 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34...

Page 8: ...C5 100nF 100V R11 0R R9 10k R3 22k J7 1 2 R12 0R 1 ISO4 6 3 4 SW3 TP4 C12 470nF J6 1 2 J13 1 2 R2 27k SW2 DG2 GREEN LED C11 47nF R18 2 2k J1 1 2 R6 390 R8 22k C10 0 47nF C9 DG1 GREEN LED 470nF R7 22k...

Page 9: ...SO2 ISO3 ISO4 TLP383 11 4P1A VCE 80V VISO 5k V Optocoupler TOSHIBA WURTH TLP383 140100146000 14 2 R1 R2 27k 0603 0 1 W Resistors MULTICOMP MCMR06X2702FTL 15 2 R3 R4 22k 0603 0 1 W Resistors VISHAY CRC...

Page 10: ...r ST ESDA15P60 1U1M 30 1 CN5 TH 2 54mm 10 ways 1 row SAMTEC 4UCON ESQ 110 14 T S 17896 31 2 CN6 CN9 TH 2 54mm 8 ways 1row SAMTEC 4UCON ESQ 108 14 T S 15782 32 1 CN8 TH 2 54mm 6 ways 1 row SAMTEC 4UCON...

Page 11: ...c diagrams Bill of materials STEVAL IFP043V1A 1 STEVAL IFP043V1A schematic diagrams STEVAL IFP043V1A bill of materials 1 This code identifies the STEVAL IFP043V1 evaluation board first version It is p...

Page 12: ...rity of an FCC license holder or must secure an experimental authorization under part 5 of this chapter 3 1 2 Notice for Innovation Science and Economic Development Canada ISED For evaluation purposes...

Page 13: ...Revision history Table 5 Document revision history Date Revision Changes 29 Aug 2022 1 Initial release UM3049 UM3049 Rev 1 page 13 17...

Page 14: ...are requirements 5 1 3 System requirements 5 1 4 Board setup 5 1 5 Multiple board configuration 6 2 Schematic diagrams 7 3 Bill of materials 9 4 Board versions 11 5 Regulatory compliance information 1...

Page 15: ...IDEs bin files 6 Table 2 NUCLEO G431RB development board supported IDEs bin files 6 Table 3 Configuration of a stack of four expansion boards 6 Table 4 STEVAL IFP043V1 versions 11 Table 5 Document re...

Page 16: ...digital interface components 3 Figure 3 STEVAL IFP043V1 expansion board power stage components 4 Figure 4 STEVAL IFP043V1 and STM32 Nucleo stack 5 Figure 5 STEVAL IFP043V1 circuit schematic 1 of 2 7...

Page 17: ...s and ST assumes no liability for application assistance or the design of purchasers products No license express or implied to any intellectual property right is granted by ST herein Resale of ST prod...

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