EVSPIN32F06Q2S1
Data brief
3-phase inverter based on STSPIN32F0602
Features
•
•
Input voltage from 35 VAC (50 VDC) to 280 VAC (400 VDC)
STD18N65M5 MOS power stage featuring:
–
V(DS) @ TJmax= 710 V
•
Overcurrent threshold set to 8.5 Apeak
•
Dual footprint for IGBT/MOSFET package:
–
DPAK
–
PowerFlat 8x8 HV
Single-shunt current sensing, suitable for:
–
Sensored or sensorless 6-step algorithm
–
Sensored or sensorless single-shunt vector (FOC) algorithm
Smart shutdown overcurrent protection
Digital Hall sensors and encoder input
Bus voltage sensing
15 V VCC and 3.3 V VDD supplies
Embedded ST-LINK/V2-1
Easy user interface with buttons and trimmer
RoHS compliant
–
•
•
•
•
•
•
•
•
Product status link
EVSPIN32F06Q2S1
RDS(on) max. = 0.220 Ω
Applications
•
•
•
•
•
•
Home and Industrial refrigerators compressors
Industrial drives, pumps, fans
Air conditioning compressors & fans
Corded power tools, garden tools
Home appliances
Industrial automation
Description
The EVSPIN32F06Q2S1 board is a 3-phase complete inverter based on the
STSPIN32F0602 controller, which embeds a 3‑phase 600 V gate driver and a
Cortex®-M0 STM32 MCU. The power stage features STD18N65M5 MOSFET, but
can be populated with any IGBT or Power MOSFET in DPAK or powerFLAT 8x8 HV
package.
The board has a single-shunt sensing topology, and both sensored and sensorless
FOC and 6-step control algorithms can be implemented. This allows driving
permanent magnet synchronous motors (PMSMs) and brushless DC (BLDC) motors.
The evaluation board is compatible with a wide range input voltage from 35 VAC
(50 VDC) to 280 VAC (400 VDC), and includes a power supply stage with the
VIPER06XS in flyback configuration to generate +15 V and +3.3 V supply voltage
required by the application.
DB4378 - Rev 1 - January 2021
For further information contact your local STMicroelectronics sales office.
www.st.com
EVSPIN32F06Q2S1
Debug and configuration of FW can be performed with standard STM32 tools through
the detachable ST-LINK‑debugger. SWD and UART TX‑RX connectors are also
available.
DB4378 - Rev 1
page 2/22
EVSPIN32F06Q2S1
Safety and operating instructions
1
Safety and operating instructions
1.1
General terms
Warning:
During assembly, testing, and operation, the evaluation board poses several inherent hazards,
including bare wires, moving or rotating parts and hot surfaces.
Danger:
There is danger of serious personal injury, property damage or death due to electrical shock and
burn hazards if the kit or components are improperly used or installed incorrectly.
The kit is not electrically isolated from the high-voltage supply AC/DC input. The evaluation board is
directly linked to the mains voltage. No insulation is ensured between the accessible parts and the high
voltage. All measuring equipment must be isolated from the mains before powering the board. When
using an oscilloscope with the demo, it must be isolated from the AC line. This prevents shock from
occurring as a result of touching any single point in the circuit, but does NOT prevent shock when
touching two or more points in the circuit.
All operations involving transportation, installation and use, and maintenance must be performed by skilled
technical personnel able to understand and implement national accident prevention regulations. For the purposes
of these basic safety instructions, “skilled technical personnel” are suitably qualified people who are familiar with
the installation, use and maintenance of power electronic systems.
1.2
Intended use of evaluation board
The evaluation board is designed for demonstration purposes only, and must not be used for electrical
installations or machinery. Technical data and information concerning the power supply conditions are detailed
in the documentation and should be strictly observed.
1.3
Installing the evaluation board
•
•
•
•
DB4378 - Rev 1
The installation and cooling of the evaluation board must be in accordance with the specifications and target
application.
The motor drive converters must be protected against excessive strain. In particular, components should not
be bent or isolating distances altered during transportation or handling.
No contact must be made with other electronic components and contacts.
The board contains electrostatically-sensitive components that are prone to damage if used incorrectly. Do
not mechanically damage or destroy the electrical components (potential health risks).
page 3/22
EVSPIN32F06Q2S1
Operating the evaluation board
1.4
Operating the evaluation board
To operate properly the board, follow these safety rules.
1.
Work Area Safety:
–
The work area must be clean and tidy.
–
Do not work alone when boards are energized.
–
Protect against inadvertent access to the area where the board is energized using suitable barriers and
signs.
–
A system architecture that supplies power to the evaluation board must be equipped with additional
control and protective devices in accordance with the applicable safety requirements (i.e., compliance
with technical equipment and accident prevention rules).
–
Use non-conductive and stable work surface.
–
Use adequately insulated clamps and wires to attach measurement probes and instruments.
2.
Electrical Safety:
–
Remove power supply from the board and electrical loads before performing any electrical
measurement.
–
Proceed with the arrangement of measurement setup, wiring or configuration paying attention to high
voltage sections.
–
Once the setup is complete, energize the board.
Danger:
Do not touch the evaluation board when it is energized or immediately after it has been
disconnected from the voltage supply as several parts and power terminals containing potentially
energized capacitors need time to discharge.
Do not touch the boards after disconnection from the voltage supply as several parts like heat
sinks and transformers may still be very hot.
The kit is not electrically isolated from the AC/DC input. The USB interface of the board does not
insulate host computer from high voltage. When the board is supplied at a voltage outside the ELV
range, a proper insulation method such as a USB isolator must be used to operate the board.
3.
DB4378 - Rev 1
Personal Safety
–
Always wear suitable personal protective equipment such as, for example, insulating gloves and safety
glasses.
–
Take adequate precautions and install the board in such a way to prevent accidental touch. Use
protective shields such as, for example, insulating box with interlocks if necessary.
page 4/22
EVSPIN32F06Q2S1
Schematic diagrams
2
Schematic diagrams
Figure 1. EVSPIN32F06Q2S1 schematic – Driver output stages
VDD
VDD
VDD
VCC
VDD
J9
C21
100nF/25V
R1
27R
HV
C3
1uF/50V
TP 3
LVG3
TP 1
4R7
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
P C14
P C15
X1
NRS T
VDD
C11
10pF/50V
P A0
P A1
P A2
Temp_fdbk
RES 6
P B8
VS S
VDD
P C13
P C14
P C15
P F0
P F1
NRS T
VS S A
VDDA
P A0
P A1
P A2
P A3
P A4
RES 7
VDD
S ENS E
BOOT3
HVG3
OUT3
BOOT2
HVG2
OUT2
S TS P IN32F0602Q
C7
Q3
N.M.
R14
100k
22R
BOOT1
HVG1
OUT1
D7
R16
4R7
47
46
45
TP 19
R18
LVG2
D9
R27
4R7
C13
Q4
N.M.
R19
100k
22R
C12
1uF/50V
40
39
38
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
1
TP 6
0R
PGND
LVG3
LVG2
LVG1
CURRENT_REF
C16
4.7nF/25V
TP 12
C67
47nF/25V
OD
R35
27R
D11
N.M.
R40
C18
47nF/25V
4R7
S ENS E_P
R41
R111
N.M.
-
C27
33pF/25V
R55
C26
1uF/50V
C69
100nF/25V
C24
4.7uF/10V
LVG1
VDD
N.M.
CIN
C30
100nF/25V
U3
TS 3021ILT
R58
0R
+
-
CURRENT_REF
R60
33k
R61
10M
C25
Q7
N.M.
R44
100k
D13
TP 22
C31
4.7uF/10V
V+
2 3 4
HV
CIN
Q9
C33
R57
100k
R38
1k
C9
N.M.
HV
33nF/630V
3
N.M.
3
Q7A
N.M.
GH1 1
TP 14
2 3 4
OUT1
OUT1
5
2
1
GL1
BAT54J
R33
63.4k
3k
C32
1
GH1
BAT54J
22R
VDD
TP 13
10k
GL2 1
TP 24
2
R56
Curr_fdbk
V-
R52
3
Q6A
N.M.
5
TP 21
22R
R49
4R7
V+
+
3k
S ENS E_N
C23
100nF/25V
U2
TS V911ILT
D12
R42
R113
33k
R39
N.M.
OUT2
5
HV
R32
47k
TP 11
VDD
OUT2
C8
VDD
VDD
2 3 4
S ENS E
VCC
VCC
VBUS _fdbk
0R
TP 7
GL1 1
Q9A
N.M.
2 3 4
TP 23
S ENS E
S ENS E_P
1
2
S ENS E_N
1
2
C22
1nF/25V
R36
0R1-2W-1%
R26
Q4A
N.M.
GH2 1
2
C17
Q6
N.M.
R31
100k
R34
0R1-2W-1%
R29
GND
R23
100k
TP 16
3
TP 8
2 3 4
5
1
GL2
BAT54J
22R
Q3A
N.M.
HV
3
TP 20
U1
Curr_fdbk
TP 10
TP 25
2
1
GH2
BAT54J
OUT3
5
GL3 1
HV
D6
N.M.
R30
SPEED
2
3
R15
27R
53
52
51
Q1A
N.M.
2 3 4
2
1
GL3
BAT54J
TP 4
OUT3
TP 18
R13
VCC
0R
72
71
70
69
68
67
66
65
64
63
62
61
60
59
58
EP AD
ZCR
BOOT0
P B7
P B6
P B5
P B4
P B3
P A15
P A14
P A13
P A12
RES 3
RES 2
RES 1
VCC
RES 5
TP 5
VDD
GP IO_BEMF
EXP
R109
JP1
3 CLOS ED 2-3
D4
R10
3
S TD18N65M5
VCC
C4
Q1
N.M.
R5
100k
22R
GH3 1
S TD18N65M5
4
3
2
1
UART1_TX
UART1_RX
2
8MHz
R3
S WD_IO
CP OUT
TP 2
C2
220nF/25V
C10
10pF/50V
J1
1
GH3
BAT54J
2
S TD18N65M5
VCC
1
C1
100nF/25V
SPI1_NSS/PROC
SPI1_MOSI/GPIO
SPI1_MISO/GPIO
SPI1_CLK/COMM
P A5
P A6
P A7
P B0
P B1
VDD
VS S
OD
CIN
GND
P GND
LVG1
LVG2
LVG3
RES 4
VCC
HV
5
TP 17
S TD18N65M5
4R7
S WD_CLK
Boot from:
CLOSED 2-3 Flash
VDD CLOSED 1-2 System/SRAM
D2
R2
S TD18N65M5
D1
N.M.
S TD18N65M5
C20
100nF/25V
1
2
3
4
C19
100nF/25V
CP OUT
V-
R59
0R
C35
100nF/25V
Figure 2. EVSPIN32F06Q2S1 schematic – Feedback network
DB4378 - Rev 1
page 5/22
EVSPIN32F06Q2S1
Schematic diagrams
VDD
HALL PWR
R63
10k
R68
B+/H2_C
R70
Z+/H3_C
R71
R64
10k
R65
10k
D16
D17
D18
BAT54J
BAT54J
BAT54J
VDD
P A1_Hall
1.8k
R8
0R
R74
N.M.
C37
10pF/10V
R75
N.M.
C38
10pF/10V
R76
N.M.
180k
0R
Q2
BC817-25 or Equivalent
1
180k
R9
C39
10pF/10V
R4
1M
R7
R6
P A2_Hall
1.8k
OUT3
R73
VDD
P A0_Hall
1.8k
3
A+/H1_C
VDD
1k
D3
R11
2.7k
S TTH1L06A
C5
C6
N.M.
4.7pF/50V
2
J3 1
A+/H1
2
B+/H2
3
Z+/H3
4
VDD
5
GND
JP2
OP EN
P A2_BEMF
R12
10k
D5
GP IO_BEMF
BAT54J
2
J P 11
VDD
VCC
1
VDD
C43
100nF/25V
3
VCC
+5V
5V
P A0_BEMF
39k
RESET
R21
P A0
2
R48
1
3
R22
OUT2
P A0_Hall
1
2
R54
C34
3.3NF/25V
P A1_BEMF
D8
1k
R25
2.7k
S TTH1L06A
C14
C15
N.M.
4.7pF/50V
P A1_BEMF
R28
10k
D10
P A1
2
100R
430483025816
Q5
BC817-25 or Equivalent
1
180k
R24
JP3
CLOS ED 1-2
NRS T
R20
180k
0R
BEMF1
S W1
3
4
R17
1M
2
VDD
VDD
3
4
VDD
GP IO_BEMF
1
3
P A1_Hall
BAT54J
BEMF2
JP4
CLOS ED 1-2
P A2
VDD
3
JP5
CLOS ED 1-2
VDD
R47
OUT1
180k
0R
3
4
1k
1
2
R66
D14
R51
2.7k
S TTH1L06A
P C15
C36
1nF/25V
N.M.
4.7pF/50V
P A0_BEMF
R53
10k
BAT54J
VDD
VDD
LD2
YELLOW
R78
6.49k
J P 10
OP EN
Q11
2 3S TF1640 3
R112
8k2
R72
N.M.
10k
C40
N.M.
Temp_fdbk
1
2
430483025816
R79
P C14
100R
C42
1nF/25V
JP6
CLOS ED
1
4.7uF/50V
120R
S W3
+5V
C68
2
R77
VCC
1
D19
BAT54J
VBUS _fdbk
DB4378 - Rev 1
C29
GP IO_BEMF
HV
100R
R69
470k
3
4
C28
D15
R67
470k
USER1
Q8
BC817-25 or Equivalent
1
180k
R50
S W2
430483025816
VDD
R43
1M
R46
R45
LD1
YELLOW
R62
120R
USER2
VDD
P A2_Hall
HALL
3
1
BEMF3
2
2
P A2_BEMF
R80
1k
R81
4.7k
D26
DDZ9690T
C41
100nF/25V
page 6/22
EVSPIN32F06Q2S1
Schematic diagrams
Figure 3. EVSPIN32F06Q2S1 schematic – Power Supply
HV
E3V3
1
F1A
N.M.
+
1
F1
10A/277V s low
2
C44
2
RV1
N.M.
2R2
150uF/420V
C44A
VDD
R82
330R
JP7
CLOS ED 1-2
N.M.
3V3_S TLINK
VDD
1
2
3
E3V3
VDD
3V3_STLINK
D21
3V3 N.M.
LD3
RED
4
2
3
-
AC MAINS ~
NTC1
1
J4
D20
GBU805
Vcc_F
Vcc_F
VCC
J2
OUT1
OUT2
OUT3
3
OUT1
2
OUT2
1
OUT3
GND
T1
R83
0R
1
4
1
3
+
C46
470uF/10V
C47
100nF/25V
C51
820pF/25V
7
Vin
Vout
GND
1
2
E3V3
C48
10uF/10V
Vcc_F
2
D23
1
+
C49
47uF/25V
R84
36k
6
8
9
10
R87
22k
DRAIN
DRAIN
GND
1
DRAIN
FB
4
DRAIN
5
COMP
DRAIN
S TP S 0560Z
S TP S 1150A
2
LIM
C45
22uF/25V
U4
LD1117S 33CTR
1
5
2
3
D22
3
D25
S TTH1L06A
R86
22k
2
8
C66
220pF/630V
U5
VIP ER06XS
+
JP8
CLOS ED 1-2
HV
R110
220K 1/3W
VCC
1
2
3
VDD
R85
2
+
10R
C50
10uF/35V
D24
LD4
GREEN
BAT54J
R88
1.5k
1/4W
R89
10k
C52
680nF/10V
DB4378 - Rev 1
page 7/22
EVSPIN32F06Q2S1
Schematic diagrams
Figure 4. EVSPIN32F06Q2S1 schematic – STLINK debugger
VUS B
VUS B
C53
100nF/25V
J5
R90
10k
65100516121
S HELL
S HELL
S HELL
S HELL
US B_VCC
US BDM
US BDP
ID
US B_GND
DD+
U6
1
2
3
US BLC6-2S C6
I/O1#1
I/O1#6
GND
VBUS
I/O2#3
I/O2#4
3
1
2
3
4
5
6
US B_DM
5
4
R91
1
Q10
BC847B
1
100R
3
R93
36k
US B_DP
1.5k
R92
U7
LD3985M33R
VUS B
US B_RENUM
2
6
7
8
9
3V3_S TLINK
C54
1uF/10V
C55
100nF/25V
4
OUT
VIN
3V3_S TLINK
5
C58
C56
100nF/25V
INHIBIT
BYP AS S GND
2
TP 15
1uF/10V
C57
10nF/25V
VDD
VDD
R94
4.7k
S WD_IO
T_J TCK
R97
R98
4.7k
0R
RX
3V3_S TLINK
T_J TMS
R101
UART1_RX
UART1_TX
0R
1
2
S WD_CLK
U8
0R
R99
0R
1
2
3
4
T_J TCK
LED_S TLINK
FM_S WCLK
US B_DM
US B_DP
FM_S WDIO
US B_RENUM
S TRIP 1x4
STLINK FW LOAD
1
2
T_NRS T
C59
R106
100k
8MHz
10pF/50V
44
R105
100k
C60
7
10pF/50V
1
2
3V3_S TLINK
C61
100R
R108
100R
LED_S TLINK
K2
A2
A1
K1
JP9
OP EN
100nF/50V
1
3V3_S TLINK
R107
C62
29
30
31
32
33
34
37
38
5
6
X2
3V3_S TLINK
NRS T
S TLINK_TX
S TLINK_RX
TX
J6
S TRIP 1x2
J7
J8
CLOS ED
R95
10
11
12
13
14
15
16
17
C63
C64
C65
24
36
48
9
P A0-WKUP
P A1
P A2
P A3
P A4
P A5
P A6
P A7
P A8
P A9
P A10
P A11
P A12
P A13
P A14
P A15
OS CIN/P D0
OS COUT/P D1
S TM32F103CBT6
P B0
P B1
P B2/BOOT1
P B3/J TDO
P B4/J NTRS T
P B5
P B6
P B7
P B8
P B9
P B10
P B11
P B12
P B13
P B14
P B15
P C13-TAMP ER-RTC
P C14-OS C32_IN
P C15-OS C32_OUT
18
19
20
39
40
41
42
43
45
46
21
22
25
26
27
28
2
3
4
R96
2.7k
T_NRS T
R100
4.7k
T_J TMS
T_J TCK
S WDIO
R102
100R
R103
10k
R104
N.M.
BOOT0
NRS T
VBAT
VDD_1
VDD_2
VDD_3
VS S _1
VS S _2
VS S _3
VDDA
VS S A
23
35
47
8
100nF/25V 100nF/25V 100nF/25V 100nF/25V
LD5
RED-GREEN
DB4378 - Rev 1
page 8/22
EVSPIN32F06Q2S1
Bill of materials
3
Bill of materials
Table 1. EVSPIN32F06Q2S1 Bill of Materials
Components common to all device variants
Reference
Part Value
C1, C19, C20,
C21, C23, C30,
C35, C41, C43,
C47, C53, C55,
C56, C62, C63,
C64, C65, C69
100nF/25V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012206071
C2
220nF/25V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012206073
1uF/50V
SMT Ceramic Capacitor
Size 0805
WURTH
ELEKTRONIK
885012207103
N.M.
SMT Ceramic Capacitor
Size 0603
4.7pF/50V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012006049
C3, C12, C26
C4, C5, C7, C13,
C14, C17, C25,
C28, C32, C33,
C40
C6, C15, C29
Description
Film, Metallized Polypropylene
Package
4x13 mm,
Pitch 10 mm
Manufacturer
C8
N.M.
C9
33nF/630V
SMT Ceramic Capacitor
Size 1210
WURTH
ELEKTRONIK
885342209004
C10, C11, C59,
C60
10pF/50V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012006051
C16
4.7nF/25V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012206063
C18, C67
47nF/25V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012206069
C22, C36, C42
1nF/25V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012206059
C24, C31
4.7uF/10V
SMT Ceramic Capacitor
Size 0805
WURTH
ELEKTRONIK
885012207025
C27
33pF/25V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012006035
C34
3.3NF/25V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012206062
C37, C38, C39
10pF/10V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012006002
N.M.
THT Electrolytic Capacitor, Radial
p7.5 d18h25
Radial p7.5
d18h25 mm
C44
150uF/420V
THT Electrolytic Capacitor, Radial
p10 d22h27 105C
Radial p10
d22h27.5 mm
C45
22uF/25V
SMD Aluminum Elect. Capacitor
5x5.4 mm
C46
470uF/10V
SMD Aluminum Elect. Capacitor
6.3x7.7 mm
C48
10uF/10V
SMT Ceramic Capacitor
C49
47uF/25V
SMD Aluminum Elect. Capacitor
C44A
DB4378 - Rev 1
KEMET
Part Number
Rubycon
United Chemi-Con
WURTH
ELEKTRONIK
Panasonic
R71MF31004030K
450BXW68MEFC18X25
EKMZ421VSN151MP25S
865090442004
EEEFTA471XAP
Size 1206
WURTH
ELEKTRONIK
885012208018
6.3x5.8 mm
WURTH
ELEKTRONIK
865060443004
page 9/22
EVSPIN32F06Q2S1
Bill of materials
Reference
Part Value
Description
Package
Manufacturer
Part Number
WURTH
ELEKTRONIK
865230542002
Size 0603
WURTH
ELEKTRONIK
885012206025
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012206026
10nF/25V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012206065
C61
100nF/50V
SMT Ceramic Capacitor
Size 0603
WURTH
ELEKTRONIK
885012206095
C66
220pF/630V
SMT Ceramic Capacitor
Size 1206
Multicomp
C68
4.7uF/50V
SMT Ceramic Capacitor
Size 1206
WURTH
ELEKTRONIK
C50
10uF/35V
SMD Aluminum Elect. Capacitor
5x5.4 mm
C51
820pF/25V
SMT Ceramic Capacitor
Size 0603
C52
680nF/10V
SMT Ceramic Capacitor
C54, C58
1uF/10V
C57
D1, D6, D11
D2, D4, D5, D7,
D9, D10, D12,
D13, D15, D16,
D17, D18, D19,
D24
D3, D8, D14, D25
N.M.
BAT54J
STTH1L06A
D20
GBU805
D21
N.M.
D22
Turbo 2 Ultrafast High-Voltage
Rectifier
MC1206N221J631CT
885012208094
SMA
STMicroelectronics
STTH1L06A
SOD-323
STMicroelectronics
BAT54JFILM
Turbo 2 Ultrafast High-Voltage
Rectifier
SMA
STMicroelectronics
STTH1L06A
8A Glass Passivated SinglePhase Bridge Rectifier
GBU
Taiwan
Semiconductor or
Diodes Incorporated
GBU805 or GBU806
40V, 300mA Small signal
Schottky SMT Diode
ZENER 3V3
SOD-123
STPS0560Z
60V, 0.5A Schottky rectifier
SOD-123
STMicroelectronics
STPS0560Z
D23
STPS1150A
150V, 1A Power Schottky rectifier
SMA
STMicroelectronics
STPS1150A
D26
DDZ9690T
SURFACE MOUNT ZENER
DIODE
DIODES Incorporated
DDZ9690T-7
F1A
N.M.
Time Lag radial lead Micro Fuse,
250Vac
F1
10A/277V slow
Suface Mount Fuse, Time-Lag T,
250Vac125Vdc
JP1
CLOSED 2-3
SMT Jumper
Soldering pad
OPEN
SMT Jumper
Soldering pad
CLOSED 1-2
SMT Jumper
Soldering pad
CLOSED
SMT Jumper
Soldering pad
JP2, JP10
JP3, JP4, JP5
JP6
JP7, JP8
CLOSED 1-2
Strip connector 3 pos, 2.54 mm
SOD523
RST-BELFUSE belfuse
UMT250SHURTER
Schurter
3403.0176.24
WURTH
ELEKTRONIK
61300311121
1x4 pins
WURTH
ELEKTRONIK
61300411121
3 poles, Pitch
5.08
WURTH
ELEKTRONIK
691213510003
1x5 pins
WURTH
ELEKTRONIK
61300511121
1x3 pins
JP9
OPEN
SMT Jumper
Soldering pad
JP11
CLOSED 2-4
SMT Jumper
Soldering pad
J1, J7, J9
J2
J3
DB4378 - Rev 1
STRIP 1x4
Strip connector 4 pos, 2.54 mm
MORSV-508-3 Connector terminal block T.H. 3
P_screw
positions 5.08 mm
STRIP 1x5
Strip connector 5 pos, 2.54 mm
0697-xx
page 10/22
EVSPIN32F06Q2S1
Bill of materials
Reference
Part Value
Description
J4
MORSV-508-2 Connector terminal block T.H. 2
P_screw
positions 5.08 mm
J5
65100516121
J6
STRIP 1x2
J8
LD1, LD2
Package
Manufacturer
Part Number
2 poles, Pitch
5.08
WURTH
ELEKTRONIK
691213510002
USB MINI B
WURTH
ELEKTRONIK
65100516121
Strip connector 2 pos, 2.54 mm
1x2 pins
WURTH
ELEKTRONIK
61300211121
CLOSED
Strip connector 2 pos, 2.54 mm
1x2 pins
WURTH
ELEKTRONIK
61300211121
YELLOW
Yellow LED
Size 0603
WURTH
ELEKTRONIK
150060YS75000
Red LED
Size 0603
WURTH
ELEKTRONIK
150060RS75000
Green Led
Size 0805
WURTH
ELEKTRONIK
150080GS75000
LD3
RED
LD4
GREEN
LD5
RED-GREEN
NTC1
2R2
Net1, Net2
N.M.
MINI USB 2.0 TYPE B SMD
LED indicators, PLCC-4 Red /
Yellow Green
PLCC 4
NTC Thermistor for Inrush current
limiting
AVAGO
HSMF-A201-A00J1
TDK
B57236S0229M000
Q1, Q3, Q4, Q6,
Q7, Q9
STD18N65M5
N-channel 650 V, 0.198 O typ.,
15 A, MDmesh™ M5 Power
MOSFETs
DPAK
STMicroelectronics
STD18N65M5
Q1A, Q3A, Q4A,
Q6A, Q7A, Q9A
N.M.
N-channel 600 V, 0.195 Ohm
typ., 15 A MDmesh DM2 Power
MOSFET
PowerFLAT
8x8
STMicroelectronics
STL24N60DM2
Q2, Q5, Q8
BC817-25
45V NPN SMALL SIGNAL
TRANSISTOR
SOT23
GENERAL
PURPOSE_45V_100mA_225mW
SOT23
ON
SEMICONDUCTOR
BC847BL
Low voltage high performance
NPN power transistor
SOT-89
STMicroelectronics
3STF1640
Q10
BC847B
Q11
3STF1640
RV1
N.M.
Varistor
R1, R15, R35
27R
SMT resistor
Size 0805
R2, R10, R16,
R27, R40, R49
4R7
SMT Resistor
Size 0805
R3, R13, R18,
R30, R42, R56
22R
SMT Resistor
Size 0805
R4, R17, R43
1M
SMT Resistor
Size 0603
R5, R14, R19,
R31, R44, R57,
R105, R106
100k
SMT Resistor
Size 0603
R6, R7, R20, R21,
R45, R46
180k
SMT Resistor
Size 1206
R8, R22, R47
0R
SMT Resistor
Size 0805
R9, R24, R50,
R80
1k
SMT Resistor
Size 0805
R11, R25, R51,
R96
2.7k
SMT Resistor
Size 0603
DB4378 - Rev 1
BC817-25
Pitch 2.3x7.5
mm
page 11/22
EVSPIN32F06Q2S1
Bill of materials
Reference
Part Value
Description
R12, R28, R52,
R53, R63, R64,
R65, R89, R90,
R103
10k
SMT Resistor
R23
100k
Square trimpot trimming
potentiometer
Package
3386P
0R
SMT Resistor
Size 0603
R32
47k
SMT Resistor
Size 0603
R33
63.4k
SMT Resistor
Size 0603
0R1-2W-1%
SMT Resistor
Size 2512
1k
SMT Resistor
Size 0603
N.M.
SMT Resistor
Size 0603
R41, R55
3k
SMT Resistor
Size 0603
R48
39k
SMT Resistor
Size 0603
100R
SMT Resistor
Size 0603
R60, R113
33k
SMT Resistor
Size 0603
R61
10M
SMT Resistor
Size 0603
R62, R77
120R
SMT Resistor
Size 0603
R67, R69
470k
SMT Resistor
Size 1206
R68, R70, R71
1.8k
SMT Resistor
Size 0603
R72
N.M.
NTC Resistor
Hole 0.8 mm
R81, R94, R98,
R100
4.7k
SMT Resistor
Size 0603
R78
6.49k
SMT Resistor
Size 0805
R82
330R
SMT Resistor
Size 0603
R83
0R
SMT Resistor
Size 1206
R84, R93
36k
SMT Resistor
Size 0603
R85
10R
SMT Resistor
Size 0603
R86, R87
22k
SMT Resistor
Size 0603
R88
1.5k
SMT Resistor
Size 1206
R92
1.5k
SMT Resistor
Size 0603
R109
0R
SMT Resistor
Size 0603
R110
220K 1/3W
SMT Resistor
Size 0805
R112
8k2
SMT resistor
Size 0603
R38
R39, R74, R75,
R76, R104, R111
R54, R66, R79,
R91, R102, R107,
R108
Part Number
Size 0603
R26, R29, R58,
R59, R73, R95,
R97, R99, R101
R34, R36
Manufacturer
BOURNS
TE Connectivity
CRGH0805J220K
SW1, SW2, SW3
430483025816
CMS TACTILE SWITCHES - 6x6
J-bend
TP1
N.M. (TPHIN1)
Test Point - PCB 1mm
DIAMETER
Copper Pad
TPSMD-1mm
TP2
N.M. (TPHIN2)
Test Point - PCB 1mm
DIAMETER
Copper Pad
TPSMD-1mm
DB4378 - Rev 1
WURTH
ELECTRONIK
3386P-1-104-LF
430483025816
page 12/22
EVSPIN32F06Q2S1
Bill of materials
Reference
TP3
TP4, TP6, TP7,
TP11, TP14,
TP17, TP18,
TP19, TP20,
TP21, TP22,
TP23, TP24, TP25
TP5
Part Value
N.M. (TPHIN3)
N.M.
N.M. (ZCR)
Description
Package
Test Point - PCB 1mm
DIAMETER
Copper Pad
TP for Probe
Diam. 1.27,
Hole 0.8mm
Test Point - PCB 1mm
DIAMETER
Copper Pad
Manufacturer
Part Number
TPSMD-1mm
TPSMD-1mm
TP8, TP12
TPTHTHT Ring Test Point
ANELLO-1mm
TP10
N.M. (SPEED)
Test Point - PCB 1mm
DIAMETER
Copper Pad
TPSMD-1mm
N.M. (CIN,
PGND)
Test Point - PCB 1mm
DIAMETER
Copper Pad
TPSMD-1mm
Copper Pad
NEEDLE-PAD-1.7mm
TP13, TP16
TP15
NEEDLEPAD-1.7mm
Test Point - PCB 1.7mm
DIAMETER
T1
750318434
Switch mode Transformer 2.3W
60kHz 3.15mH 7-15V
U1
STSPIN32F06 600V three-phase controller with
02Q
ARM Cortex MCU
Keystone
WURTH
ELECTRONIK
QFN72-10X10 STMicroelectronics
5003
750318434
STSPIN32F0602Q/TR
U2
TSV911ILT
Single Rail-to-Rail input/output 8
MHz operational amplifiers
SOT23-5
STMicroelectronics
TSV911ILT
U3
TS3021ILT
Rail-to-rail 1.8 V high-speed
comparator
SOT23-5
STMicroelectronics
TS3021ILT
SOT-223
STMicroelectronics
LD1117S33CTR
SSO10
STMicroelectronics
VIPER06XS
U4
800mA, 3.3V Adjustable and
LD1117S33CT
Fixed low drop positive voltage
R
regulator
U5
VIPER06XS
U6
USBLC6-2SC6
Very low capacitance ESD
protection
SOT23-6L
STMicroelectronics
USBLC6-2SC6
U7
LD3985M33R
3.3V_150mA_ULTRA LOW
DROP VOLTAGE REGULATOR
SOT23-5L
STMicroelectronics
LD3985M33R
U8
STM32F103C
BT6
64/182KB
FLASH_USB_72MHz_3.6V
LQFP48 - 7x7
mm
STMicroelectronics
STM32F103CBT6
X1, X2
J8, JP7, JP8
8MHz
Fixed-frequency VIPer plus family
CRYSTAL 8.0000MHZ 8PF SMD
NDK
Rubber feet
Hammond
Female Jumper Isolated, pitch
2.54mm
ASSMANN WSW
P.C.B. EVSPIN32F06Q2S1
Rev.1.0
DB4378 - Rev 1
2.5x3.2 mm
Dim. 75, 2 x
141.6 mm
NX3225GD-8MHZ-STDCRA-3
1421T6CL
AKSCT/Z BLACK
STMicroelectronics
page 13/22
EVSPIN32F06Q2S1
Layout and component placements
4
Layout and component placements
Figure 5. EVSPIN32F06Q2S1 - functional blocks
Warning
The kit is not electrically isolated from the AC/DC input. The USB interface of the board does not insulate
host computer from high voltage. When the board is supplied at a voltage outside the ELV range, a proper
insulation method such as a USB isolator must be used to operate the board.
DB4378 - Rev 1
page 14/22
EVSPIN32F06Q2S1
Layout and component placements
Figure 6. EVSPIN32F06Q2S1 – Layout (component placement top view)
DB4378 - Rev 1
page 15/22
EVSPIN32F06Q2S1
Layout and component placements
Figure 7. EVSPIN32F06Q2S1 – Layout (top layer)
DB4378 - Rev 1
page 16/22
EVSPIN32F06Q2S1
Layout and component placements
Figure 8. EVSPIN32F06Q2S1 – Layout (bottom layer)
DB4378 - Rev 1
page 17/22
EVSPIN32F06Q2S1
Revision history
Table 2. Document revision history
DB4378 - Rev 1
Date
Version
21-Jan-2021
1
Changes
Initial release.
page 18/22
EVSPIN32F06Q2S1
Contents
Contents
1
Safety and operating instructions . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 3
1.1
General terms . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 3
1.2
Intended use of evaluation board . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 3
1.3
Installing the evaluation board . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 3
1.4
Operating the evaluation board . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 4
2
Schematic diagrams . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .5
3
Bill of materials . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .9
4
Layout and component placements . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .14
Revision history . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .18
Contents . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .19
List of tables . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .20
List of figures. . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . .21
DB4378 - Rev 1
page 19/22
EVSPIN32F06Q2S1
List of tables
List of tables
Table 1.
Table 2.
EVSPIN32F06Q2S1 Bill of Materials . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 9
Document revision history . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 18
DB4378 - Rev 1
page 20/22
EVSPIN32F06Q2S1
List of figures
List of figures
Figure 1.
Figure 2.
Figure 3.
Figure 4.
Figure 5.
Figure 6.
Figure 7.
Figure 8.
DB4378 - Rev 1
EVSPIN32F06Q2S1 schematic – Driver output stages. . . . . . .
EVSPIN32F06Q2S1 schematic – Feedback network . . . . . . . .
EVSPIN32F06Q2S1 schematic – Power Supply . . . . . . . . . . .
EVSPIN32F06Q2S1 schematic – STLINK debugger . . . . . . . .
EVSPIN32F06Q2S1 - functional blocks . . . . . . . . . . . . . . . . .
EVSPIN32F06Q2S1 – Layout (component placement top view)
EVSPIN32F06Q2S1 – Layout (top layer) . . . . . . . . . . . . . . . .
EVSPIN32F06Q2S1 – Layout (bottom layer) . . . . . . . . . . . . .
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14
15
16
17
page 21/22
EVSPIN32F06Q2S1
IMPORTANT NOTICE – PLEASE READ CAREFULLY
STMicroelectronics NV and its subsidiaries (“ST”) reserve the right to make changes, corrections, enhancements, modifications, and improvements to ST
products and/or to this document at any time without notice. Purchasers should obtain the latest relevant information on ST products before placing orders. ST
products are sold pursuant to ST’s terms and conditions of sale in place at the time of order acknowledgement.
Purchasers are solely responsible for the choice, selection, and use of ST products 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 products with provisions different from the information set forth herein shall void any warranty granted by ST for such product.
ST and the ST logo are trademarks of ST. For additional information about ST trademarks, please refer to www.st.com/trademarks. All other product or service
names are the property of their respective owners.
Information in this document supersedes and replaces information previously supplied in any prior versions of this document.
© 2021 STMicroelectronics – All rights reserved
DB4378 - Rev 1
page 22/22