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Diferença entre motor síncrono e motor de indução

Diferença entre motor síncrono e motor de indução

Diferença entre motor síncrono e motor de indução: Fórmulas & Seleção (2026 Guia)

Resposta rápida

UMA motor síncrono runs at exactly the supply’s synchronous speed (Né = 120f/P) com zero slip, while an motor de indução always turns slightly slower than Né—that slip s = (Né−Nr)/Né is what induces rotor current and creates torque. The decisive practical differences are starting and power factor: induction motors are self-starting, rugged, and always draw lagging reactive current; synchronous motors need a starting aid (damper winding or VFD) but can be over-excited to a leading power factor and even supply reactive power like a capacitor.

Efficiency is comparable—IE3/IE4 induction reaches ~89–96%, PMSM synchronous ~93–98%—but synchronous machines cost 30–50% more and are specified only where constant speed or power-factor correction justifies them. Both are built to IEC 60034 e NÃO MG 1; choose induction for general-purpose variable-load drives and synchronous for precision, constant-speed, or reactive-compensation duties.

What Are Synchronous and Induction Motors?

Both are three-phase motores CA that use a stator-generated rotating magnetic field (RMF). They diverge in how the rotor interacts with that field—and that single difference drives every comparison below.

Motor Síncrono (Definição)

A synchronous motor is a doubly-excited machine: the stator gets three-phase AC, and the rotor gets a separate DC excitation (via slip rings, a brushless exciter, or permanent magnets). The rotor field locks magnetically to the stator RMF and turns at exactly synchronous speed, Né = 120f/P, regardless of load. Speed is fixed by supply frequency and pole count; load only changes the torque (carregar) angle, not the rpm. Key sub-types: PMSM (permanent-magnet), wound-field (salient/cylindrical rotor), reluctance, and hysteresis motors.

Motor de indução (Definição)

An induction motor is a singly-excited machine: only the stator receives AC. The rotor current is induced by electromagnetic induction from the slip between rotor speed and the RMF. Because torque needs relative motion, the rotor must run slower than Né—this speed gap is escorregar. Sub-types: squirrel-cage (≥80% of industrial units, simplest) and wound-rotor (slip-ring, for high starting torque or speed control).

AspectSíncronoIndução
ExcitationDoubly excited (AC stator + DC rotor)Singly excited (AC stator only)
Rotor speed= Né (zero slip)< Né (slip 2–5%)
Torque sourceMagnetic lockingInduced rotor current from slip
Self-startingNãoSim

How Do Synchronous and Induction Motors Work?

The stator is identical in both: three-phase windings create a rotating magnetic field at Né. What happens at the rotor is the whole story.

Etapa 1 — The Rotating Magnetic Field

Applying balanced three-phase AC to the stator produces a field that sweeps around the bore at Né = 120f/P (por exemplo., 1,500 RPM for a 4-pole machine on 50 Hz; 1,800 RPM on 60 Hz).

Etapa 2 — Synchronous Motor: Travamento Magnético

The rotor carries its own DC or permanent-magnet field. Once pulled up to speed (by a damper winding, pony motor, or VFD ramp), its poles lock to the stator field and rotate in step—zero slip at all loads. If load exceeds the pull-out torque, the machine loses synchronism and stalls. Load changes shift the torque (carregar) angle but not the speed.

Etapa 3 — Induction Motor: Slip Creates Torque

The rotor is a shorted cage. The RMF cuts the stationary (or slower) rotor bars, inducing current (Faraday’s law). That current makes a rotor field which is dragged along by the stator field, produzindo torque. Torque exists because the rotor lags—no slip, no induced current, no torque. Under load, slip grows, induced current rises, and torque increases until it balances the load.

Etapa 4 — Power Factor Behavior

An induction motor always draws magnetizing current from the supply, so it runs at a lagging fator de potência (≈0.8–0.9 at full load, as poor as 0.3–0.4 at light load). A synchronous motor’s field current is adjustable: under-excited = lagging, normal = unity, over-excited = leading—it can then export VARs like a capacitor bank (uma “synchronous condenser”).

Synchronous vs Induction Motor: Feature Comparison

This side-by-side is the decision table buyers actually paste into spec sheets. Every row reflects IEC 60034 / NÃO MG 1 behavior.

ParâmetroMotor SíncronoMotor de indução
Speed vs NéExactly NéBelow Né (slip 2–5%)
SlipZeroNon-zero (essential for torque)
ExcitationDoubly excited (CA + CC)Singly excited (AC only)
Self-startingNão (needs damper/VFD/pony)Sim
Power factorAjustável: lagging / unity / leadingAlways lagging (0.8–0.9 FL)
EficiênciaPMSM 93–98%; large up to 98%IE3 89–94%; IE4 91–96%
Speed stabilityConstante (load-independent)Varies slightly with load
Torque inicialNone inherent; needs aidModerate–high (DOL/star-delta)
Custo30–50% higherMais baixo
ManutençãoModerado (exciter/slip rings)Muito baixo (cage = rugged)
Controle de velocidadeVFD / field onlyVFD, pole-change, rotor resistance
HuntingPossible under load steps (damper reduces)Nenhum
Typical useConstant-speed, PF correction, >1 PMGeneral-purpose, variable load

Rule of thumb: for any self-starting, cost-sensitive, variable-load drive (bombas, fãs, transportadores) the induction motor wins. Reach for synchronous only when you need exact speed, leading power factor, or a large continuous load where the 30–50% premium pays back through efficiency and VAR support.

Dados de engenharia & Fórmulas

Use these equations to predict speed, escorregar, and torque without a datasheet.

Key Formulas

QuantidadeFórmulaMeaning
Synchronous speedNé = 120·f / Pf = supply Hz, P = poles. Same for both motor types.
Slip (fraction)s = (Né − Nr) / NéZero for synchronous; 0.02–0.05 for induction at full load.
Rotor speed (indução)Nr = Né·(1 − s)Induction motor actual speed.
Slip frequencyfescorregar = s·fRotor current frequency; sets induced EMF.
Pull-out torqueTmáx. ∝ V² (indução)Beyond this, induction stalls; synchronous loses synchronism.
Power factor (sync.)Adjust via If (field current)V-curve: min armature current = unity PF.

Worked Example — 4-Pole, 50 Hz

  • Synchronous speed: Né = 120·50 / 4 = 1,500 RPM.
  • Induction motor at 4% full-load slip: Nr = 1,500·(1 - 0.04) = 1,440 RPM.
  • Slip speed: Né − Nr = 60 RPM; slip frequency = 0.04·50 = 2 Hz.
  • A synchronous motor on the same supply holds 1,500 RPM from no-load to pull-out—useful where ±60 RPM drift (2%) is unacceptable.

Aulas de eficiência (IEC 60034-30-1)

IE classIndução (típico)Síncrono / PMSM (típico)
IE2Padrão-
IE389–94%-
IE491–96%93–97%
IE5Super-premium (rare cage)96–98% (axial-flux, PMSM)

Limites de temperatura de isolamento (IEC 60034-1)

AulaMax winding tempUse
B130 °CGeneral-purpose, lower duty
F155 °CMost industrial induction/synchronous
H180 °CTração, high-ambient, enclosed

For long life run Class F insulation at a Class B rise (≈40 °C margin) and de-rate above 40 °C ambient per IEC 60034-1. De acordo com o AIE, motor efficiency upgrades are among the most cost-effective industrial energy-saving measures, e CORÇA notes motor systems consume ~70% of industrial electricity.

Best Applications for Each Motor

InscriçãoRecommended typeWhy
bombas, fãs, sopradores, transportadoresIndução (IE4 cage)Self-starting, barato, rugged, VFD-ready
Domestic appliances, compressoresInduçãoBaixo custo, livre de manutenção
EV traction (Tesla-type)Induction or PMSMTorque elevado, simples, no exciter
Constant-speed mills, trituradores, >1 PMSíncronoExact speed, high efficiency at full load
Power-factor correction (plant VARs)Síncrono (over-excited)Leading PF, acts as condenser
CNC, robótica, textile/paper precisionPMSM (synchronous servo)Constant speed, high dynamic accuracy

Note the overlap in EVs: a Tesla Model S uses an indução rear unit, while most modern EVs use a permanent-magnet synchronous (PMSM) machine—each trades off cost, rare-earth reliance, e eficiência.

AC Motor Selection Guide (Passo a passo)

  1. Fix the speed requirement. If speed must be exactly Né (or locked to a VFD setpoint) and load-independent, plan for synchronous/PMSM; if ±2–5% drift is fine, induction is simpler.
  2. Check power factor needs. If the plant suffers lagging PF, an over-excited synchronous motor corrects it while driving the load—two jobs, one machine.
  3. Define duty. Continuous, constant load >1 MW favors synchronous efficiency; frequent start/stop or variable load favors induction.
  4. Compute synchronous speed. Né = 120f/P; pick poles for the needed base speed, then add a VFD for control.
  5. Size torque, not just power. Induction starting torque depends on rotor design (DOL vs star-delta vs rotor resistance); synchronous needs a damper winding or VFD ramp to reach Né.
  6. Confirm efficiency class. Specify IE4 (or IE5 PMSM) per IEC 60034-30-1; verify the premium pays back over run hours.
  7. Mechanical interface. Select IEC B5/B14 or NEMA C-face flange and confirm shaft/brake/encoder options.
  8. Verify standards. Quote to NÃO MG 1 e IEC 60034; test per IEEE 112.

Common AC Motor Mistakes

ErroConseqüênciaFix
Assuming a synchronous motor self-startsRotor never reaches Né; no net torqueAdd damper winding, pony motor, or VFD ramp
Forgetting induction needs slipBelieving it can hit Né; mis-sized couplingDesign for Nr = Né(1−s), not Né
Over-exciting synchronous without VAR budgetLeading PF trips protection / over-voltageSet field current at V-curve unity point
Sizing on nameplate power onlyThermal or starting-torque failureSize on duty-cycle torque + start method
Ignoring light-load PF on inductionPoor 0.3–0.4 PF, penalty chargesAdd caps or a synchronous condenser
Skipping VFD on constant-speed needWasted efficiency / surge currentsUse VFD for soft start + controle preciso

AC Motor Troubleshooting Table

ProblemaLikely causeSolução
Induction overheats, draws high currentSobrecarga, baixa tensão, high slipReduza a carga; check V; verify cooling; de-rate
Induction won’t start (hum, sem rotação)Single-phasing, open rotor barCheck supply balance; corpo megô; replace rotor
Synchronous won’t pull into stepNo start aid / field off at run-upUse damper winding or VFD ramp; energize field
Synchronous loses synchronism under loadCarregar > pull-out torqueUpsize machine or reduce load; check V
Synchronous hunting / oscillationSudden load step, weak damperStrengthen damper bars; soften load ramp
Poor power factor on inductionLight load, no compensationAdd caps or switch to synchronous (over-excited)
Excessive vibrationUnbalance, bearing wear, desalinhamentoBalance rotor; replace bearing; align coupling
Falha de isolamentoOver-temp, umidade, picos de tensãoVerify Class rating; dry/varnish; use dv/dt filter on VFD

Perguntas frequentes

What is the main difference between a synchronous and an induction motor?

A synchronous motor rotates at exactly the synchronous speed Né = 120f/P with zero slip, while an induction motor always runs slightly slower—its slip s = (Né−Nr)/Né induces the rotor current that produces torque. Synchronous machines are doubly excited (CA + DC rotor); induction machines are singly excited (AC only).

Why is a synchronous motor not self-starting?

At standstill the rotor cannot instantly follow the fast-rotating stator field, so no steady torque develops. It needs a damper (squirrel-cage) winding for asynchronous run-up, a pony motor, or a VFD that ramps frequency from zero up to Né.

Which motor has better efficiency?

Comparable at the top end: IE3/IE4 induction reaches ~89–96%, while PMSM synchronous reaches ~93–98% and large synchronous machines up to 98%. The synchronous premium (30–50% cost) only pays back on continuous high-power or constant-speed duties.

Can an induction motor improve power factor?

Não. An induction motor always draws lagging magnetizing current (0.8–0.9 at full load, as low as 0.3–0.4 light). Only a synchronous motor—when over-excited—can run at a leading power factor and supply VARs like a capacitor bank.

Can an induction motor ever reach synchronous speed?

Não. Without slip there is no relative motion, no induced rotor EMF, and no torque. It asymptotically approaches Né only at zero load and zero losses—never in practice.

Which motor is used more in industry?

Induction motors dominate (sobre 90% of installed AC machines) because they are self-starting, rugged, and cheap. Synchronous motors are reserved for constant-speed, power-factor-correction, or large (>>1 PM) continuous loads.

Why Choose Greensky for AC & Precision Motor Solutions?

Greensky is a China-based B2B motor manufacturer supplying IE3/IE4 high-efficiency three-phase induction motors, permanent-magnet synchronous (PMSM) machines, and integrated BLDC servo & gear-motor units to OEMs worldwide. Every unit is built to IEC 60034 e NÃO MG 1 dimensions, classes de eficiência, and insulation limits (Class F/B rise).

  • Full AC portfolio—squirrel-cage induction (0.18–315 kW) and PMSM synchronous, with VFD-ready designs for soft start and precise speed control.
  • Efficiency compliance—IE4 as standard, IE5 PMSM options, full test data per IEEE 112 on request.
  • Suporte de engenharia—we run the Né = 120f/P, escorregar, and power-factor checks above so your unit is sized on duty cycle and start method, not just nameplate power.
  • Flexible MOQ & costumização—IEC B5/B14 or NEMA C-face flanges, freios, codificadores, and matched gear-motors for constant-speed or precision loads.

Whether you need a cost-optimized induction drive or a constant-speed PMSM with leading power factor, our team delivers prototypes in weeks and production at scale. Request a quote with your speed, torque, and power-factor requirements.

Related Reading

Referências

  1. IEC 60034-1: Máquinas elétricas rotativas — Classificação e desempenho (velocidade, insulation, ambiente). https://webstore.iec.ch/publication/56936
  2. IEC 60034-30-1: Efficiency classes (IE1–IE5) for low-voltage motors. https://webstore.iec.ch/publication/63493
  3. NÃO MG 1: Motors and Generators — dimensions, desempenho, escorregar & testando. https://www.nema.org/standards/view/mg-1
  4. IEEE Std 112: Standard Test Procedure for Polyphase Induction & Motores síncronos. https://standards.ieee.org/ieee/112/590/
  5. NÓS. CORÇA: Improving Motor and Drive System Performance (motor systems ≈70% of industrial electricity). https://www.energy.gov/eere/amo/improving-motor-and-drive-system-performance
  6. Agência Internacional de Energia (AIE): Motor efficiency as a top industrial energy-saving measure. https://www.iea.org/
  7. Siemens: Low-voltage motor portfolio & synchronous/induction selection notes. https://www.siemens.com/global/en/products/drives/motors.html
  8. ABB: Electric motor and drive efficiency guides (IEC/NEMA). https://new.abb.com/motors-generators
  9. SKF: Bearing selection & L10 life for motor shafts. https://www.skf.com/group/products/bearings-units-housings
  10. Maxão / Faulhaber technical library: síncrono (BLDC/PMSM) vs induction fundamentals. https://www.maxongroup.com/maxon/view/content/design-in

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