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Experimental Validation of a Three-Phase
Voltage-Source Inverter with SPWM Modulation
for Low-Voltage Microgrid-Oriented Applications
1,2,3
Electronic and Automation Program Student, Escuela Superior Politécnica de Chimborazo (ESPOCH), Riobamba,
Ecuador
4
GITEA Research Group, Escuela Superior Politécnica de Chimborazo (ESPOCH), Riobamba, Ecuador
RESUMEN
This work presents the design, implementation,
and experimental validation of an open-loop
three-phase inverter prototype. The experimental
campaign was carried out with a regulated 48
V DC bus, while the bus-monitoring circuit
was dimensioned for a wider voltage range.
Control was implemented on an STM32 using
digital SPWM, with a 120° phase shift and an
adjustable output frequency between 60 and 80
Hz. To reduce the risk of cross-conduction in the
MOSFETs, dead-time insertion was configured in
both hardware and firmware. Tests with resistive
loads verified three-phase operation in star and
delta configurations, with balanced line voltages
under laboratory conditions. The efficiency
close to 92% corresponds to the tested low-load
condition. Characterization at higher power
levels and harmonic-distortion measurements are
proposed as the next validation stage.
Keywords: Dead-time, Energy Efficiency,
MOSFET, SPWM Modulation, Three-phase
Inverter.
Validación experimental de un inversor trifásico
de fuente de voltaje con modulación SPWM para
aplicaciones de baja tensión orientadas a microrredes
ABSTRACT
Este trabajo presenta el diseño, la implementación
y la validación experimental de un prototipo de
inversor trifásico en lazo abierto. La campaña
experimental se realizó con un bus DC regulado
de 48 V, mientras que el circuito de monitoreo
del bus fue dimensionado para un rango mayor de
tensión. El control se implementó en un STM32
mediante modulación SPWM digital, con desfase
de 120° y frecuencia de salida ajustable entre 60
y 80 Hz. Para reducir el riesgo de conducción
cruzada en los MOSFETs, se configuró inserción
de tiempos muertos en hardware y firmware. Las
pruebas con cargas resistivas permitieron verificar
la operación trifásica en configuraciones estrella
y delta, con tensiones de línea balanceadas bajo
las condiciones de laboratorio. La eficiencia
cercana al 92% corresponde a la condición de
baja carga ensayada. La caracterización a mayor
potencia y la medición de distorsión armónica se
plantean como la siguiente etapa de validación.
Palabras Clave: Dead-time, Eficiencia
Energética, MOSFET, Modulación SPWM,
Inversor Trifásico.
Fecha de Recepción: 03 Julio 2026 · Fecha de Aceptación: 22 Julio 2026 · Fecha de Publicación: 30 Julio 2026
mario.fuela@espoch.edu.ec
carlos.jarat@espoch.edu.ec
kevin.barrionuevo@espoch.edu.ec
wilian.guaman@espoch.edu.ec
Mario Fuela-Uvidia
iD
Kevin Barrionuevo-Lara
iD
Carlos Jara-Toaza
iD
Wilian Guamán-Cuenca.
iD
REVISTA PERSPECTIVAS
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https://doi.org/10.47187/perspectivas.8.2.265
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I. Introducción
II. Metodología
The conversion of direct current (DC) energy
into three-phase alternating current (AC) is a
fundamental process in power electronics [1],
particularly for supplying loads from low-voltage
48 V DC buses [2]. During this conversion
process, one of the most critical challenges in
bridge inverter topologies is preventing cross-
conduction between switching devices. To
avoid this short circuit, it is essential to design
algorithms that inject precise dead-times,
considering that an incorrect configuration can
severely distort the output voltage [3].
Due to its ease of implementation, SPWM
modulation remains one of the main methods
for controlling three-phase inverters and
transforming switching signals into alternating
voltage using six transistors. As demonstrated
by previous work on MOSFET-based inverters
coupled to star-connected loads, the key to
obtaining an optimal output voltage lies in the
precise design of the switching patterns and
maintaining grid balance [4].
Recent works have shown the relevance of
studying the behavior of inverters under
real operating conditions and the possible
degradation of power devices. In [5], the effect
of variations in the on-state resistance of
MOSFETs on phase imbalance, total harmonic
distortion, and the stability of a three-phase
inverter is analyzed, using a validation strategy
based on MIL, SIL, and PIL on an STM32
platform. Likewise, [6] presents a hybrid DC/
AC conversion topology with modified SPWM
modulation, inherent protection against shoot-
through, and experimental validation in a low-
power prototype.
In this context, the present work focuses on the
design, implementation, and laboratory validation
of an open-loop SPWM three-phase inverter,
with dead-time insertion and tests on balanced
resistive loads in star and delta configurations.
The development of the three-phase inverter
was structured based on an analytical and
modular design, dividing the system into control,
power, and validation stages. The prototype
was dimensioned to operate at low voltage. The
experimental validation was carried out using a
regulated DC bus close to 48 V, while the bus
measurement circuit was designed with sufficient
margin for nominal and overvoltage conditions.
Based on these specifications, the load capacity
and the protection elements against thermal and
voltage transients were dimensioned.
Table I. Design parameters and test conditions
Parameter Symbol Value used
Bus DC de
ensayo
(V
DC
) 48.87 V
DC bus sensing
range
0–50 V DC
PWM switching
frequency
(f
s
) 3 kHz
Dead-time
(t
d
) 1.5 (μs)
Output
frequency
(f
o
) 60-80 Hz
Modulation
technique
SPWM
Power devices
6 MOSFETs
IRFP460A
Gate drivers
IR2010
Load type
Resistive
Nominal load
resistance
(R
L
) (≈620 Ω)
Load
connection
Star / Delta
Measured
current per
branch
(I
r
)
33.65 mA
Input power
(P
in
) 6.793 W
Calculated
output power
(P
out
) 6.3156 W
Experimental
efficiency
(η) 92.97 %
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Fig. 1: Block diagram of the three-phase inverter architecture and
power flow.
To summarize the design parameters and the
conditions used during the experimental tests,
Table I presents the main operating variables of
the three-phase inverter. These values include
the DC bus, the switching frequency, the dead-
time, the load configuration, and the electrical
quantities recorded for the power and efficiency
calculations.
A. General System Architecture
The converter topology is based on a three-leg
inverter bridge architecture. Fig. 1 illustrates
the general block diagram of the implemented
system. For energy conversion, a classical
inverter bridge topology was implemented. The
component-level design is detailed in Fig. 2,
which shows the electrical schematic with the
half-bridge configuration for each of the three
phases.
The system is powered by a stabilized DC
power supply. The control stage calculates the
switching patterns and sends PWM logic signals
to the power stage. These signals are received by
IR2010 gate drivers, which act as high-side/low-
side drivers to condition the firing levels required
by the six MOSFETs in the inverter bridge.
Finally, the energy converted into three-phase
alternating current is applied to the resistive load
bank used for validation.
B. Firmware Development and Programming
Environment
For the synthesis of Sinusoidal Pulse Width
Modulation (SPWM) and the rigorous injection
of dead times, the digital control was centralized
in a 32-bit STM32 microcontroller with an ARM
Cortex-M4 core (NUCLEO-F401RE board) [7].
Firmware programming, compilation and
debugging was done in STM32CubeIDE.
The generation of the SPWM signals was
implemented using the advanced TIM1 timer,
configured to operate with a switching frequency
of 3 kHz and complementary outputs, avoiding
software delays. The use of complementary
channels allows the 1.5 μs dead-time timing to be
concentrated on the microcontroller peripheral
and reduces dependence on the firmware
execution time [7], [8].
In addition, due to the digital nature of the
modulation programmed in the STM32, the
fundamental output frequency (f
m
) is not limited
to 60 Hz. The system allows this frequency to
be dynamically adjusted simply by modifying the
timer parameters in the firmware. This flexibility
gives the prototype the ability to adapt to 50
Hz grids or to operate in variable-speed motor
applications, without requiring any modification
to the power hardware.
Fig. 2: Electrical schematic of the power stage of the three-phase
inverter.
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C. Nominal Power Capacity
To define the operating range of the system, the
energy transfer capacity was analyzed, assuming
an expected line-to-neutral RMS voltage of 120
V
rms
per phase and a continuous load current
I
L
=5 A. Under these boundary conditions, the
apparent power (S) supported by each phase of
the inverter is determined by (1):
For real application scenarios involving inductive
loads, a standard power factor of 0.8 is assumed.
Consequently, the nominal active power (P)
delivered by the power stage is calculated using
(2):
These values define the thermal and conduction
safety limits considered for selecting the
semiconductor devices.
D. Design of the Snubber RCD Network
The parasitic inductances of the printed circuit
board and wiring induce severe transient
overvoltages (dv/dt) during the fast turn-off
periods of the transistors. To absorb the reactive
energy and limit voltage peaks, an RCD snubber
network was designed and implemented in
parallel with each semiconductor device [9].
The analytical dimensioning was carried out
by extracting the dynamic parameters from the
IRFP460A MOSFET datasheet [10] A fall time
of t
f
= 39 ns and a maximum continuous current
of I
M
=20 A at 25 °C, were considered, operating
under a drain voltage of V
D
= 170V and the
nominal load current of I
L
= 5 A.
The minimum value of the snubber capacitance
(C
s
) must guarantee a safe voltage level until the
device current decreases to zero, and is calculated
using (3):
The network resistance (R
s
) serves a dual
purpose: limiting the peak discharge current of
the capacitor through the transistor during turn-
on and allowing its complete discharge during
the active duty-cycle. The minimum resistive
value is obtained using (4):
In turn, the maximum resistance limit is
restricted by the minimum turn-on time T
ON(min)
.
At a switching frequency of 10" kHz" (period of
100 μ"s" ) and assuming a minimum duty cycle
of 1%, T
ON(min)
is equivalent to 1 μ"s" . Assuming
a commercial snubber capacitance of 1" nF" , the
upper limit is defined by (5):
Based on the calculated envelope (11.33 Ω≤R_
s<333.3 Ω), commercial resistors from 47 Ω to
100 Ω were selected, since the residual power in
the resistor per cycle, analytically evaluated, was
0.083" W" .
E. Signal Conditioning and DC Bus
Measurement
For real-time monitoring and system protection,
a signal conditioning circuit was implemented,
allowing the microcontroller to read the physical
voltage of the DC bus while logically isolating
voltage peaks. A resistive voltage divider was
designed to scale the high-voltage levels, (170"
V" nominal and 220" V" under overvoltage
conditions) to the logical operating range of
the microcontroller analog-to-digital converter
(ADC) which has a maximum reference of 3.3 V
and a 12-bit resolution.
To standardize the design and withstand power
dissipation, the upper branch ( R
top
) was built
using a series arrangement of three 332" k" Ω
axial resistors rated at 3/4" W" , while the lower
branch (R
bot
), connected to physical ground, was
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III. Results
To safely validate the SPWM control logic, the
phase shift between phases, and the behavior
of the designed inverter bridge, a reduced-scale
experimental test bench was implemented in the
laboratory. The nominal bus was supplied by a
regulated source stabilized at 48.87" V DC" and
the inverter was operated in open loop coupled
to a bank of resistive loads (incandescent lamps)
configured in Star and Delta to evaluate the
balance of the generated network. The physical
assembly of this system, integrating the digital
control stage and the power bridge, is illustrated
in Fig. 3.
set to 10 kΩ. The scaled voltage (V
out
) entering
the PA1 pin of the microcontroller is governed
by (6):
This configuration provides a constant scaling
ratio of 0.00994. The conversion to the continuous
digital domain by the 12-bit ADC (whose values
range from 0 to 4095) is analytically defined in
Table II, establishing the logical thresholds for
calibration, safe low-voltage operation, and the
nominal tolerance limit.
Table II. Voltage behavior and adc mapping
Voltage
(DC Bus)
Scaled
Voltage
(Vout)
Digital Value
Read (ADC)
Operating
Scenario
0" V"
(Off)
0.000" V" 0 Zero
calibration
48" V"
(Tests)
0.477" V" ≈592
Low-
voltage
validation
170" V"
(Nominal)
1.690" V"
≈2097 Nominal
operation
220" V"
(Overvoltage)
2.186" V" ≈2713 Safety limit
A. SPWM Algorithm and Phase Shift
Validation
The primary evaluation consisted of verifying
the switching signals generated by the STM32
microcontroller before their injection into
the power stage. Using an oscilloscope, it
was confirmed that the developed algorithm
successfully synthesized three sinusoidal
envelopes with a phase shift of 120^ electrical
degrees.
In Fig. 4 shows the three SPWM phase signals
recorded during the experimental validation. A
vertical offset was applied only for visualization
Fig. 3: Physical prototype of the three-phase inverter
Fig. 4: Experimental three-phase SPWM signals showing the (120^)
electrical phase shift.
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purposes, allowing the phase relationship between
the signals to be observed more clearly. The
waveforms confirm the (120^) electrical phase
shift between phases A, B, and C, validating the
synchronization of the digital SPWM algorithm.
The fundamental output frequency remained
stable (period of 16.66ms). In addition, the
action of the dead-time safety band was visually
verified, showing that the complementary signals
did not overlap at any time. This confirmed the
absence of signal overlaps and prevented the
shoot-through phenomenon under the established
test conditions. Under the Star (Y) load
configuration, the differential voltage measured
at the neutral point remained close to zero, and
the line-to-line voltage waveforms were recorded
at the output terminals, confirming the symmetry
of the three-phase bridge.
As observed in Fig. 5, the measured signal
corresponds to an unfiltered line-to-line PWM
voltage. The envelope associated with SPWM
modulation is identified from the variation in
pulse width, while the final voltage waveform
across the load depends on the harmonic content
and the impedance seen by the inverter. The
figure verifies the modulation logic and the phase
shift between phases under the test conditions.
Although the total harmonic distortion (THD)
was not experimentally measured in this
stage, the selected switching frequency allows
a preliminary theoretical estimation of the
harmonic distribution. Considering a switching
frequency of (f
s=3,kHz
) and a fundamental output
frequency of (f
o=60,Hz
), the frequency modulation
Fig. 5: Line-to-line output voltage waveform V_AB, under SPWM
modulation.
ratio is given by (m
f
=f
s
/f
o
=3000/60=50). This
indicates that the dominant harmonic components
associated with the SPWM switching process are
expected to be concentrated around the carrier
frequency and its sidebands. Therefore, since the
output voltage was measured without a filtering
stage, future work should include experimental
THD measurements and the design of an LC
or LCL output filter to attenuate switching
harmonics and improve the power quality of the
inverter output, considering harmonic control
criteria such as those established in IEEE 519-
2022 [11].
B. Power and Energy Efficiency
Analysis
To evaluate the electrical and energy performance
of the physical prototype, the input and output
powers were measured during continuous
operation with resistive loads. The power factor
assumed for the incandescent lamps used in the
test was unity.
In the direct current stage, the instrumentation
recorded the bus voltage and the input current
under steady-state conditions. Based on these
data, the total input power consumed by the
system was determined using (7):
In the alternating current stage, the line-to-line
voltages (V
LL
) were measured across the resistive
loads, and the current associated with the test
was recorded. Using the average voltage value
and the measured current, the three-phase active
output power was calculated using (8):
Finally, the overall efficiency of the converter
under these experimental conditions was
estimated from the power ratio indicated in (9):
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C. Discussion of Efficiency and Fixed Losses
The experimental efficiency obtained by the
prototype was 92.97% under low-voltage and low-
load laboratory conditions. This value should not
be interpreted as the maximum rated efficiency
of the inverter, since the system was evaluated in
open-loop operation, with purely resistive loads,
without an output filter, and operating below its
rated power capacity.
The result obtained is consistent with
otherstudies on low-power three-phase inverters.
For instance, Lujara reported experimental
efficiencies that did not fall below 92%, with
values ranging approximately from 92.1% to
94.9%, depending on the load condition [12].
In comparison, more optimized topologies,
such as multilevel or transformerless inverters,
typically exhibit efficiencies exceeding 96%
under different operating, power, and control
conditions [1]. Therefore, the performance
difference is primarily associated with the power
level, the employed topology, the presence of
filtering stages, and the control strategy. In this
context, the 92.97% efficiency achieved during
the tests confirms the adequate performance of
the prototype under the evaluated experimental
conditions, considering that the hardware-based
dead-time insertion prevented cross-conduction
between complementary signals and ensured the
safe operation of the power stage. Nevertheless,
elements such as the control board, gate drivers,
cooling system, and the switching process
represent inherent power consumptions and
losses associated with the system's operation. For
this reason, additional tests at higher load levels
are required to determine the efficiency trend of
the inverter under conditions closer to its rated
operating point.
III. Conclusiones
The obtained results made it possible to verify
the generation of three modulated signals with
a 120° electrical phase shift, confirming the
functionality of the developed firmware to
produce a balanced three-phase system at low
voltage. The dead-time insertion prevented
overlap between complementary signals and
protected the semiconductors during switching
operations. The prototype operated stably during
the tests with resistive loads in star and delta
configurations. The measurements showed line
voltages with close values and balanced behavior
under the considered laboratory conditions.
During the low-load tests, the prototype achieved
an efficiency close to 92%. This result is
influenced by the system’s internal consumption
when the transferred power is reduced. The energy
characterization must be completed with tests at
higher load levels and with an explicit definition
of the voltage and current magnitudes used in the
calculation. As future work, the inverter should
be validated at higher load levels, total harmonic
distortion (THD) measurements should be
incorporated, its performance with inductive
loads or three-phase motors should be evaluated,
and filtering, interconnection, and power quality
criteria should be analyzed if the prototype is
oriented toward microgrid applications.
IV. Referencias
[1] M. K. Hossain, P. Chowdhury, I.
Nowshin, M. R. Islam, A. Al-Hysam, y O. Farrok,
«Grid-connected inverter for photovoltaic energy
harvesting: Advances in topologies and control
techniques», 1 de enero de 2026, Elsevier Ltd.
doi: 10.1016/j.ecmx.2025.101422.
[2] D. Kumar, F. Zare, y A. Ghosh, «DC
Microgrid Technology: System Architectures,
AC Grid Interfaces, Grounding Schemes, Power
Quality, Communication Networks, Applications,
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ACCESS.2017.2705914.
[3] D. Chatterjee, C. Chakraborty, y S.
Dalapati, «An Overview on Dead-Time Distortion
and Its Correction in PWM Inverters», 2025,
Institute of Electrical and Electronics Engineers
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THREE PHASE INVERTER DESIGN AND
EXPERIMENTED ON UNBALANCED
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F401RE: STM32 Nucleo-64 development
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[8] «STMicroelectronics, AN4776:
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