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Tipos de AGV utilizados en los almacenes modernos: Sistemas de accionamiento, Especificaciones del motor & Selección

Tipos de AGV utilizados en los almacenes modernos

Tipos de AGV utilizados en los almacenes modernos

Respuesta rápida

Modern warehouses deploy seven primary AGV types—tugger, unit-load, forklift/stacker, assembly-line, heavy-duty burden carrier, under-ride (turtle) and goods-to-person (GTP) robots. The right choice depends on load shape, lift height and route variability, but every type is defined by its drive system: diferencial, tricycle or omnidirectional wheels powered by BLDC or servo motors. Most AGV traction motors run on CEI 60034-1 duty class S3/S4 and reach IE3–IE4 efficiency según IEC 60034-30-1. Abajo, each type is mapped to its motor torque, duty cycle and selection criteria so you can spec the drivetrain before the vehicle.

What Is an AGV Type? (Classification by Load Handling)

An Automated Guided Vehicle (AGV) is a battery-powered, driverless robot that transports materials along predefined or dynamically planned paths. The family is broad: “AGV” is not one category but a set of load-handling architectures. The most useful classification groups vehicles by how they carry and transfer the load, because that single attribute dictates the drive topology and motor sizing.

The Seven Warehouse AGV Classes

ClaseLoad-Handling MethodTypical PayloadPrimary Drive TopologyMotor Duty (CEI 60034-1)
Tugger / TowPulls train of carts via hitch1,000–10,000 kg towedDifferential, 2× driven wheelsT3 (long loops)
Unit-LoadFlat/roller deck carries pallet or tote500–5,000 kgDifferential or tricycleT3 / T4
Forklift / StackerForks lift & rack pallets1,000–3.000 kilogramosDifferential + mast servoT4 (frequent start-stop)
Assembly-LineMoving production platform500–20,000 kgTricycle or omnidirectionalT1 / S6 (continuo)
Heavy-Duty BurdenCustom deck for oversized loads10,000–100,000+ kgMulti-wheel, 4+ driven axlesT4 / T5 (with braking)
Under-ride / TurtleSlides under cart, ascensores & moves it500–2.000 kilogramosDifferential, low-profileT3
Bienes a persona (GTP)Drives under pod, ascensores & carries shelf200–1,500 kgOmnidirectional (Mecanum)T3 (high cycle count)

Source synthesis from Dematic AGV application matrix, DNC Automation AGV type table and Phenikaa-X AGV vehicle classification.

AGV vs AMR — one clarification: Traditional AGVs follow fixed infrastructure (magnetic tape, cable, QR codes). Robots móviles autónomos (AMR) use SLAM with dynamic routing and obstacle bypass. Many vehicles marketed as “AGV” today run AMR-style navigation. For vehicle-type selection the practical filter is flexibility vs. costo, not a rigid label. Vea nuestro AGV vs AMR comparison for the full drive-system breakdown.

How Each AGV Type’s Drive System Works

Regardless of class, every AGV shares a drive chain: battery → motor controller → traction motor (+caja de cambios) → wheel → floor. The differences lie in wheel count, steering method and how torque is distributed. Three base topologies cover all seven classes:

1. Transmisión diferencial (two independently driven wheels)

Two opposed wheels are driven at different speeds to steer. Simple, low-cost, high maneuverability. Dominant in tugger, unit-load, under-ride and GTP vehicles. A 500 kg unit-load AGV typically uses two BLDC gear-motors of 11–24 N·m continuous wheel torque each.

2. Tricycle Drive (one steered driven wheel + two casters)

One powered, steerable wheel handles both propulsion and steering; two passive casters stabilize. Common in forklift and assembly AGVs where a single driven wheel simplifies the chassis. Requires a steering servo in addition to the traction motor.

3. Omnidirectional Drive (Mecanum / Swedish wheels)

Four 45°-roller wheels enable lateral and diagonal motion without turning. Used in GTP robots and tight-aisle assembly platforms where space is at a premium. Each wheel needs its own BLDC servo with independent current control.

Step-by-step: power flow in a unit-load AGV

  1. Battery bus (24/48 VCC) supplies the motor controller.
  2. Controller converts DC → 3-phase PWM for the BLDC traction motor(s).
  3. Planetary gearbox multiplies motor torque to wheel torque (typical ratio 15:1–50:1).
  4. Wheel transfers tractive force to the floor: F = T_wheel / r_wheel.
  5. Hall/encoder feedback closes the speed loop (bandwidth up to 3.1 kHz on servo drives).
  6. Fleet manager assigns tasks; safety LiDAR enforces stopping distance per ISO 3691-4.

For the complete torque model behind these steps, ver nuestro AGV motor torque calculation guide y AGV motor speed & RPM selection guide.

AGV Type Comparison Table

ParámetroTuggerUnit-LoadForkliftAssemblyHeavy-DutyUnder-rideGTP
Payload range1–10 t (towed)0.5–5 t1–3 t0.5–20 t10–100+ t0.5–2 t0.2–1.5 t
Lo mejor paraLong loops, kitsFlat palletsVertical rackingLine feedingCoils, diesCarts/F&BE-commerce pick
Drive topologyDifferentialDifferentialDifferential+servoTricycle/OMNIMulti-axleDifferentialOmnidirectional
Tipo de motorBLDC GBBLDC GBBLDC+servo mastServo/ BLDCAC servo ×NBLDC GBBLDC servo ×4
Typical wheel torque11–24 N·m12–42 N·m20–60 N·m40–200 N·m200–600 N·m6–15 N·m5–12 N·m
IEC dutyT3S3/S4T4S1/S6S4/S5T3T3
NavigationTape/wire/SLAMLaser/SLAMLaser SLAMWire/magneticLaser/wireQR/magneticSLAM
Lift requiredNoBajo (deck)Sí (mast)NoBajoSí (elevar)Sí (elevar)
Relative cost$30–70k$40–80k$50–100k$60–120k$150k+$20–50k$25–60k

Cost ranges synthesized from Phenikaa-X, HELI and FreightAmigo 2025 AGV market data.

Datos de ingeniería: Ciclos de trabajo, Eficiencia & Esfuerzo de torsión

CEI 60034-1 Duty Cycle per AGV Type

CEI 60034-1:2022 defines ten duty classes (T1-T10). For AGVs, five are relevant—the duty class sets how much continuous torque the motor may sustain versus its peak rating.

Clase IECDescripciónThermal BehaviorAGV Type MatchTorque Derating
T1Continuous runningReaches steady-state tempConveyor-style AGV, 24/7 líneaNone — rated = continuous
T3periódica intermitenteNo cooling between cyclesUnit-load, GTP, tugger loopsBy duty factor % (ed = on-time / total)
T4Intermittent w/ startingStart current heats windingForklift, assembly feederDerâte 10–20% vs S1
T5Intermittent w/ brakingBraking adds heatHeavy-duty w/ regen brakingBraking energy must dissipate/recover
S6Continuous periodicNever stops, load variesAssembly line (no idle)By load/unload ratio

Most AGVs run S3 or S4. A forklift AGV with a 10 s move / 20 s load cycle never fully cools, so the motor’s RMS torque over the full cycle—not its peak—must stay under the S1 continuous rating. The RMS formula:

T_rms = √[(T₁²·t₁ + T₂²·t₂ + … + Tₙ²·tₙ) / (t₁ + t₂ + … + tₙ)]

Clases de eficiencia (CEI 60034-30-1 vs NEMA MG 1)

CEI 60034-30-1SIN MG 1 EquivalentLoss BandAGV Traction Use
IE1EstándarBaseNot recommended
IE2Alta eficiencia−20% vs IE1Legacy only
IE3SIN prima−40% vs IE1Minimum for new AGVs
IE4Súper Premium (pending)−50% vs IE1Preferred for 24/7 fleets
IE5−60% vs IE1Emerging (sync-rel.)

SIN MG 1 §12.58 states the full-load efficiency shall not fall below the minimum associated with nominal efficiency (≈20% higher losses than nominal). For EU-bound AGVs, Commission Regulation (EC) 2019/1781 mandates IE3 from 0.75 kilovatios; the US DOE 2027 rule pushes mid-range motors to IE4 (DOE projects $8.8 B savings / 92 M tons CO₂ over 30 años).

Core Torque & Speed Formulas

CantidadFórmulaNotas
Wheel tractive forceF = T_w / r_wT_w = wheel torque, r_w = wheel radius
Motor torque from wheelT_m = T_w / (i · η_g)i = relación de transmisión, η_g = gearbox efficiency (~0.9)
Required wheel speedn_w = v / (2π · r_w) · 60v = vehicle speed (EM)
RMS torque (S3/S4)T_rms = √[Σ(T₂·t)/Σt]Must be ≤ motor S1 rating

Manufacturer Drive-System Benchmarks

Maker / PlatformRelevant AGV TypeKey SpecFuente
Maxon MW500 wheel driveUnit-load, under-ride, GTP≤500 kg payload/drive; 11.4–23.7 N·m cont. wheel torque; 30–48V; IP54; 1024 cpt encodermaxongroup.com MW500 PDF
Maxon IDX 56Assembly, forklift aux471–794 mNm; 24/48 V; IP65; 6000 rpm; integrated EPOS4 controlleridx.maxongroup.com
Faulhaber DualGearCompact wheel drives, transportadores32 milímetro; BX4 + GPT; 1.1 N·m cont. / 7 N·m pico; ≤0.6° backlash; −30…120 °C; 40 Wfaulhaber.com DualGear
Yaskawa Sigma-7 SGM7DForklift mast, trabajo pesado1.3–240 N·m rated; 3.1 kHz speed-loop bandwidth; 350% overload 3–5 s; 24-bit encoder; STO SIL3yaskawa.com Sigma-7

These benchmarks show the span: a GTP robot’s 5–12 N·m wheel requirement fits a Maxon MW500 or Faulhaber DualGear, while a forklift mast servo lands on Yaskawa Sigma-7 class. BLDC vs servo for AGVs covers the trade-off in depth.

Best AGV Type per Warehouse Scenario

Warehouse ScenarioBest AGV TypeWhyConducir / Motor Note
High-volume pallet shuttlingUnit-loadFlat deck + conveyor transfer, no lift2× BLDC gear-motor, T3
Kitting & line feed over long distanceTuggerPulls multiple carts in one tripDifferential BLDC, T3
High-bay racking (hasta 12 metro)Forklift / reachVertical storage, 3D precisionBLDC traction + servo mast, T4
Automotor / electronics assemblyAssembly-lineMoving platform, programmable flowTricycle or omni servo, S1/S6
Steel coil / die transportHeavy-duty burdenOversized, ultra-heavyMulti-axle AC servo, S4/S5
Food & beverage cart movesUnder-ride / turtleStandardized carts, low profileDifferential BLDC, T3
E-commerce goods-to-personGTP / latentPod comes to pickerOmnidirectional BLDC servo ×4, T3

7-Step AGV Type & Motor Selection Guide

  1. Define the load. Shape, peso, and whether it needs lift. Pallets on racking → forklift; carts on routes → tugger; discrete units → unit-load.
  2. Set lift height. Any vertical requirement above floor level forces a forklift/stacker or under-ride with lift—flat-deck won’t do.
  3. Map route variability. Predictable loops → simpler guidance (tape/wire) saves cost. Highly variable missions → SLAM/AMR navigation.
  4. Choose drive topology. Differential for most; tricycle for single-wheel简化; omnidirectional only where space demands lateral motion.
  5. Size the motor (torque first). Use our torque-by-payload matrix: a 500 kg AGV needs ~12 N·m/wheel flat, ~26 N·m on a 3% calificación. Verify T_rms ≤ S1 rating.
  6. Confirm efficiency & cumplimiento. Specify IE3 minimum, IE4 for 24/7. For Europe, meet EC 2019/1781; for the US, plan for DOE 2027 IE4. See AGV motor efficiency & tiempo de ejecución de la batería.
  7. Validate with a pilot. Run 4 weeks in one zone; measure cycle time, duty factor and thermal rise before fleet roll-out. For OEM sourcing, ver nuestro OEM AGV motor manufacturing guide y AGV motor supplier for Europe.

Errores comunes de ingeniería

ErrorConsecuenciaCorrect Approach
Sizing motor on peak, not RMS torqueOverheating in S3/S4 dutyCompute T_rms over full cycle; derate 10–20% for S4
Choosing flat-deck AGV for racked palletsCannot reach racking heightSpecify forklift/stacker with mast servo
Under-rating gearbox for heavy-dutyBacklash growth, premature failureUse planetary (≤0.6° backlash, p.ej. Faulhaber GPT) for precision
Ignoring ambient temperatureMotor derated 10–15% at 40 ° CApply IEC 60034-1 thermal derating; pick Class F/H
Mismatching voltage busMotor runs in low-efficiency zoneMatch motor rated V to 24/48 V battery bus
Specifying omnidirectional unnecessarily4× controller cost, complex tuningUse differential unless lateral motion is required
Overlooking inertia match (J_load/J_motor)Poor dynamic response, resonanceKeep ratio ≤10:1 or raise gear ratio
Skipping regenerative braking designHeat from S5 braking dissipates in motorAdd DC-bus sharing or braking resistor

Tabla de solución de problemas

ProblemaPossible CauseSoluciónSe aplica a
Motor overheats on long shiftsS4 duty, no RMS deratingResize to T_rms; improve cooling or duty classForklift, asamblea
AGV drifts off pathEncoder resolution too lowUse ≥1024 cpt (Maxón) or 24-bit (Yaskawa)All SLAM types
Excess vibration at speedJ_load/J_motor > 10:1Higher gear ratio or larger rotor inertiaHeavy-duty, unit-load
Battery drains fastMotor in low-efficiency zoneRe-match RPM/ratio; ver efficiency guideAll battery AGVs
Fork misaligns at rackMast servo bandwidth insufficientUpgrade to ≥3.1 kHz loop (Sigma-7 class)Forklift
Wheel slips on startupEsfuerzo de torsión > friction limitLower gear ratio or add traction controlTugger, unit-load
Cogging at low speedOpen-loop BLDC commutationClosed-loop servo with ripple compensationAssembly, GTP
Gearbox noise risingBearing friction lossUse low-friction bearings (SKF E2: 30–50% less)All geared types
Cannot meet EU efficiencyIE2 motor specifiedMove to IE3/IE4 per EC 2019/1781Europe-bound fleets
Safety stop fails auditNo STO functionSpecify STO SIL3 (Yaskawa Sigma-7 standard)All human-zone AGVs

Preguntas frecuentes

What are the main types of AGVs used in modern warehouses?

The dominant warehouse AGV types are tugger (tow) AGV, unit-load carriers, forklift/stacker AGVs, assembly-line AGVs, heavy-duty burden carriers, under-ride (turtle) AGVs and goods-to-person (GTP) robots. Each pairs with a distinct drive-system topology and motor duty profile.

Which AGV type is best for high-throughput pallet transport?

Unit-load carriers with differential or tricycle drive and a planetary-gearbox BLDC motor are the workhorse for flat-deck pallet transport. Forklift AGVs are preferred when vertical racking or lift is required.

How does IEC 60034-1 duty cycle affect AGV motor selection by type?

Most AGVs run S3 (intermittent periodic) or S4 (intermittent with starting). A forklift AGV doing frequent start-stop in racking is an S4 case needing RMS-torque derating; a 24/7 conveyor-style AGV is S1. The duty class dictates allowable continuous vs. par máximo.

What motor technology powers most modern warehouse AGVs?

BLDC motors with planetary gearboxes dominate traction wheels (IE3–IE4). Integrated servo (BLDC + codificador + closed-loop controller) is used where precision and bandwidth matter, p.ej. forklift masts and assembly platforms. Direct-drive wheel motors appear in compact AMRs.

How much torque does a warehouse AGV motor need?

Torque scales with payload, acceleration and grade. A 500 kg mid-size AGV on flat ground needs roughly 12 N·m per wheel; a 1,200 kg heavy AGV on a 3% grade needs ~26–42 N·m per wheel. Vea nuestro AGV motor torque calculation guide for the full model.

Are AGVs and AMRs the same thing?

Not exactly. Traditional AGVs follow fixed paths (magnetic tape, cable, QR). AMRs use SLAM with dynamic routing. Many vehicles marketed as AGVs today use AMR-style navigation, so the practical filter is flexibility vs. costo. Vea nuestro AGV vs AMR comparison.

Why Choose Greensky Power for Your AGV Drivetrain

Greensky Power has designed and manufactured motion solutions for AGV and AMR OEMs since 2011, serving customers in over 50 countries with local engineering support in North America and Europe.

CapabilityWhat You Get
Full drivetrain from one supplierBLDC, brushed DC and micro-AC motors that pair with our planetary, gusano, parallel-shaft and right-angle gearboxes
AGV-specific engineeringSend payload, velocidad, aceleración, grade and wheel diameter—receive a calculation sheet with recommended motor, gearbox and controller
Cumplimiento de normasAll motors tested per IEC 60034 y NEMA MG 1; dynamometer test report with every batch; Thermal Class F (155 ° C) estándar
Efficiency for fleetsIE3–IE4 capable BLDC platforms; ver nuestro eficiencia & battery runtime guide
Custom sizingFrame sizes 22–120 mm, 12–72 V DC, integrated gearbox solutions for any of the seven AGV classes above
Calidad & support100% pruebas individuales, ISO/CE certified, 24/7 apoyo técnico, 1-garantía anual

Start with our how to choose a motor for AGV applications guía, o póngase en contacto con nuestro equipo de ingeniería for a custom drivetrain spec.

Referencias

  1. CEI 60034-1:2022 — Máquinas eléctricas rotativas — Parte 1: Calificación y desempeño (duty cycles S1–S10, clases térmicas). https://webstore.iec.ch/publication/69481
  2. SIN MG 1-2021 — Motores y Generadores (Mesa 12-12 eficiencia, §12.58 tolerance). https://www.nema.org/standards/view/mg-1-2021
  3. CEI 60034-30-1:2014 — Efficiency classes of line-operated AC motors (IE1-IE5). https://webstore.iec.ch/publication/6739
  4. US DOE — 10 Parte CFR 431 Subpart B, 2027 motor efficiency rule (IE4 mid-range). https://www.energy.gov/eere/amo/energy-efficiency-program-commercial-and-industrial-equipment-electric-motors
  5. IEA — Energy Efficiency 2024 (motor-driven systems = 53% de la electricidad mundial). https://www.iea.org/reports/energy-efficiency-2024
  6. SKF — Energy Efficient (E2) deep groove ball bearings for electric motors (30–50% lower friction). https://www.skf.com/binary/57-121274/E2-Electric-motors-offer-sheet_13279_EN.pdf
  7. Siemens — Digital Enterprise / Electronics Factory Erlangen (digital twin: −40% time-to-market, +60% calidad). https://www.siemens.com/…/electronics-factory-erlangen/artificial-intelligence.html
  8. Maxon — Wheel Drive MW500 for AGV/AMR (≤500 kg/drive, 11.4–23.7 N·m). maxongroup.com MW500 PDF
  9. Faulhaber — DualGear drive system for logistics (BX4 + GPT, 1.1 N·m cont., ≤0.6° backlash). https://www.faulhaber.com/nl/lp/faulhaber-dualgear/
  10. Yaskawa — SIGMA-7 Servo Systems (SGM7D 1.3–240 N·m, 3.1 kHz bandwidth, STO SIL3). yaskawa.com Sigma-7 PDF
  11. IEEE TIE 2023 — Zhang R. et al., “Design and Practical Implementation of a High Efficiency Two-Layer Trajectory Planning Method for AGV,” IEEE Trans. Industrial Electronics, 71(2):1811–1822. DOI:10.1109/TIE.2023.3250847

Related guides: ¿Qué es un AGV y cómo funciona?? · Motor para AGV · Gear Motor vs Direct Drive for AGVs

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