病院搬送ロボット用モーター: BLDC & サーボドライブセレクションガイド
簡単な回答
Hospital delivery robots are almost always driven by brushless DC (BLDC) motors with Hall sensors, paired with a planetary gearbox, encoder and brake. What makes the hospital case special is コンプライアンス, not raw torque: the motor must run at ≤45 dB(あ), meet medical EMC (IEC 60601-1-2 / CISPR 11 クラスB), and be built under an ISO 13485 quality system. Match the topology to the payload—geared BLDC hub motors for 10–150 kg medication/meal runners, integrated servo or frameless flat motors for heavy linen carts and lift/arm mechanisms—and rate the winding for IEC 60034-1 S3/S6 intermittent duty.
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トグルWhat Are Hospital Delivery Robots?
Every hospital delivery robot is a 電池式, autonomous indoor vehicle that moves medication, linens, meals, lab specimens, sterile supplies and PPE between departments. The phrase “motors for hospital delivery robots” therefore covers the whole traction assembly—motor, コントローラ, ギアボックス, encoder/feedback and brake—because in a certified medical device these are specified and validated as a system.
The logistics problem is real: a typical 300-bed hospital employs 40–60 full-time transport staff who walk 8–12 miles per shift moving carts through hallways. Autonomous robots cut logistics labor by 30–50% and delivery time by ~25%, while reducing infection transmission by taking human trips out of the corridor. Market leaders such as Aethon TUG (>600 hospital installs, 600 lb / ~272 kg payload), Swisslog RoboCourier, Diligent Moxi, Savioke Relay and Swisslog TransRob (300–600 kg) prove the form factor at scale. A single medication robot making 20–30 trips/day replaces ~1.5–2 pharmacy transport FTEs and pays back in 10–16 months.
How the Hospital Robot Drive System Works
Regardless of payload, every hospital delivery robot shares the same drive chain. Selecting the motor means walking this chain and assigning the right component at each stage:
ステップ 1 — Battery supplies the bus
A Li-ion or LiFePO₄ pack delivers a nominal bus voltage (24/36/48 V). なぜなら P = V × I, a higher bus voltage means lower current for the same power, reducing cable size and copper loss. Hospital small runners favor 24 V for safety and simplicity; larger linen/utility robots move to 48 V. 私たちのを参照してください AGV battery-voltage selection guide for the full derivation.
ステップ 2 — Controller commutates the motor
aの BLDCモーター, the controller switches current based on rotor position from Hall sensors (block commutation) or an encoder (sinusoidal / FOC). Maxon documents that block commutation shows ~14% torque ripple, while field-oriented control (FOC) delivers about 5% more continuous torque with smoother running—important in a quiet ward. Sensorless schemes exist but hesitate at 0 回転数, which is unacceptable for a loaded robot starting on a ramp (私たちのを参照してください Hall vs sensorless comparison).
ステップ 3 — Gearbox multiplies torque
A planetary gearbox trades speed for torque at 90–95% efficiency. Wheel torque is T_wheel = T_motor × ratio × η_gear. Geared BLDC hub motors (例えば. 6.5 で, 24 V, 250 W, 4 N・m, 1024/4096-line encoder, IP54/IP65) are the workhorses of small medication and meal runners because the reduction and wheel are one sealed unit.
ステップ 4 — Wheel meets the floor
ディファレンシャルドライブ (two independently driven wheels) steers by speed difference; omnidirectional robots add Mecanum or omni-wheels to move sideways in crowded corridors. The motor only “works” if the wheel transmits traction without slipping on polished hospital floors.
ステップ 5 — Feedback and safety close the loop
An encoder reports position and speed for precise docking at pharmacy windows and elevators. Yaskawa’s Sigma-7 servo uses a 24-bit absolute encoder (16.7 million pulses/rev) with ripple compensation and vibration suppression; integrated servo motors from Maxon and Faulhaber embed Hall + NTC temperature sensors for commutation and thermal protection in one housing.
Motor Topology Comparison for Hospital Robots
Four motor families cover the hospital spectrum. The table contrasts them on the parameters that decide a medical build:
| トポロジー | Typical use in hospital robots | 電圧 / 力 | ノイズ & 振動 | Key strength | Watch-out |
|---|---|---|---|---|---|
| Geared BLDC hub motor | Medication, meal, specimen runners (10–150 kg) | 24 V / 150–400W | 低い (スムーズ, ブラシなし) | Integrated wheel+reduction, low profile, 低コスト | Sealed—harder to service; gear limited life |
| Geared servo (motor+driver+encoder) | Linen/utility carts (300–600 kg), リフト | 48 V / 0.4–2kW | Very low with FOC | 正確なトルク制御, regen brake, serviceable | より高いコスト, more integration |
| フレームレス / flat BLDC | Robot arms, lift columns, compact joints | 12–48V / 30–260 W | 最低 (ironless option) | Thin profile, 高いトルク密度, fits tight spaces | Needs custom mechanical integration |
| コアレス / ironless BLDC | Surgical & precision sub-systems, instrument trays | 6–24V / 1–50W | Ultra-low (コギングなし) | ゼロコギング, 早い反応, minimal EMI | Lower peak torque; specialized |
エンジニアリングデータ: ノイズ, 効率, トルク
Noise and vibration limits (the medical differentiator)
Hospital robots run in wards, ICUs and pharmacies, so audible comfort is a spec, not a nicety. The medical-grade target is ≤45 dB(あ) で 1 メートル, with some high-end builds down to ~32 dB(あ). Achieve it with ironless/4-pole rotors that avoid cogging, sinusoidal FOC commutation, and balanced rotors. Low vibration also protects nearby precision medical equipment and satisfies IEC 60034-14 vibration grading.
| 要件 | Medical target | 注記 |
|---|---|---|
| Sound pressure | ≤45 dB(あ) (≤32 dB high-end) | Ward / ICU comfort |
| 振動 | IEC 60034-14 compliant | Protects nearby instruments |
| EMC emissions | CISPR 11 クラスB | Patient-area equipment |
| EMC immunity | IEC 60601-1-2 (Ed. 4.1) | Phones, Wi-Fi, surgical RF |
| Quality system | ISO 13485:2016 | Traceable production |
Efficiency and thermal limits
BLDC traction motors for hospital robots typically run 85–91% efficiency. Specifying IE3–IE4 equivalents (IECによる 60034-30-1) extends runtime per charge and cuts heat—important because the motor often sits inside an enclosed, insulated bay. Insulation classes from IEC 60034-1 define the ceiling:
| 絶縁クラス | 最高巻取温度 | 一般的な使用方法 |
|---|---|---|
| B | 130 ℃ | Light-duty, cool ambient |
| ふ | 155 ℃ | Standard enclosed bays |
| H | 180 ℃ | High ambient (≤40 °C hospital) / regen-heavy |
Torque and force formulas
Size the drive from first principles. Required wheel force on a grade:
F = m·g·Crr + m·g·sinθ + m·a
どこ m = total mass (ロボット + ペイロード), g = 9.81, Crr ≈ 0.01–0.02 for rubber on smooth floor, θ = ramp angle, a = acceleration. ホイールトルク:
T_wheel = F · r と T_motor = T_wheel / (ratio · η_gear)
作業例: ある 100 kg medication runner on a 5° ramp at 0.3 m/s². m·g·sin5° ≈ 100·9.81·0.0872 ≈ 85.5 N; rolling m·g·Crr ≈ 100·9.81·0.015 ≈ 14.7 N; 加速度 100·0.3 = 30 N. Total F ≈ 130 N. と r = 0.085 m (6.5 in wheel), T_wheel ≈ 11 N·m. あ 4 N·m hub motor at 3:1 削減 (η≈0.9) gives 4·3·0.9 ≈ 10.8 N·m—two such wheels (one per side) comfortably cover it. Add a 1.5× safety factor and verify against the full load–stop–load cycle.
Duty cycles (IEC 60034-1)
| 義務 | Pattern | Hospital example |
|---|---|---|
| S1 | 継続的, unbroken | Long uninterrupted transport corridors |
| S3 | Run/stop, starting ignored | Most medication & meal runners |
| S4 | Run/stop with starting heating | Frequent elevator/dock cycles |
| S6 | Continuous with periodic loading | Robots looping all day |
Best Applications by Robot Type
| ロボット / ペイロード | What it carries | 推奨ドライブ | なぜ |
|---|---|---|---|
| Medication runner (≤100 kg) | Pharmacy carts, controlled substances | Geared BLDC hub, 24 V, 4 N·m/wheel | 静かな, low-profile, secure docking |
| Meal / tray runner (≤50 kg) | 食べ物, patient records | Geared BLDC hub, 24 V, ≤2 N·m | 軽負荷, frequent stops |
| Lab specimen (≤45 kg) | Samples, chain-of-custody | Geared BLDC, low-vibration FOC | Gentle motion protects samples |
| Linen / utility cart (300–600 kg) | Linens, 無駄, 用品 | Integrated servo, 48 V, 0.4–2kW | 高トルク, regen brake |
| Lift / arm sub-system | Tray hand-off, shelf access | Frameless or flat BLDC, 12–48V | Thin profile, 高いトルク密度 |
How to Select a Hospital Robot Motor (8 ステップ)
- Define the payload and route. Mass, ramp angle, floor type and whether it rides elevators set the force budget. A 5° threshold or 8° ramp is common in hospitals.
- Compute required wheel torque と
T_wheel = F·rand the force equation above; add a 1.5× safety factor. - トポロジを選択します. ≤150 kg → geared BLDC hub; 300–600 kg → integrated servo; arms/lifts → frameless flat BLDC.
- Choose bus voltage. 24 V for ≤500 W small runners; 48 V for ≥0.5 kW linen/utility robots. Keep below the 60 V DC SELV boundary for service simplicity.
- Specify the feedback & ブレーキ. ホール + encoder for commutation and docking; an electromagnetic brake holds position on ramps and during power loss.
- Set the noise & EMC bar. ≤45 dB(あ), CISPR 11 Class B emissions, IEC 60601-1-2 免疫. Validate in the real ward, not just the lab.
- Rate for duty and ambient. IEC 60034-1 S3/S6, insulation class F or H for enclosed 40 °C bays; verify thermal headroom. 私たちの motor-overheating guide covers the failure modes.
- Lock the quality system. Require an ISO 13485-capable supplier with full material and test traceability—certification bodies will ask for it.
よくあるエンジニアリングの間違い
- Sizing for peak, not RMS. Hospital robots accelerate, dwell and stop constantly; thermal failure comes from the cycle average, not the brief peak.
- Ignoring noise until prototyping. A motor that is fine on the bench becomes unacceptable in a quiet ward—specify ≤45 dB(あ) up front.
- Treating EMC as an afterthought. IEC 60601-1-2 immunity to phones/Wi-Fi must be designed in; retrofitting shielding is expensive.
- Over-reducing for a tiny robot. Too-high a ratio kills top speed and wastes efficiency; balance torque against cruise speed.
- Skipping the brake. On any ramp or threshold, an e-brake is a safety item, not an option.
- Using a generic industrial AGV motor. Non-medical builds lack the traceability and quiet running hospitals require. 私たちのを参照してください warehouse AGV motor guide for the contrast.
- Forgetting serviceability. Sealed hub motors are cheap but must be replaced as a unit; high-utilization linen fleets prefer serviceable servos.
トラブルシューティング表
| 問題 | 考えられる原因 | 解決 |
|---|---|---|
| Robot hesitates at startup on a ramp | Sensorless control or weak low-speed torque | Use Hall-sensored BLDC; verify 0-RPM torque; raise reduction |
| Audible whine in ward | Block commutation ripple or unbalanced rotor | Switch to FOC; バランスローター; check gear meshing |
| EMC test fails near Wi-Fi | Inadequate shielding / filtering | Design to IEC 60601-1-2; add filters; route sensor cables away from RF |
| Motor overheats in enclosed bay | S3 rating too small or ambient 40 ℃ | Upsize winding, use class H, add bay ventilation |
| Drifts on threshold / dock | No holding brake or brake too weak | Fit electromagnetic brake; verify holding torque |
| Battery drains too fast | Low-efficiency gearbox or oversized motor | Use IE3–IE4 motor; 90–95% planetary; right-size power |
| Encoder loses count at elevator | EMI from inductive loads | Twisted-pair + フェライト; differential encoder; IEC 60601-1-2 デザイン |
| Premature bearing noise | VFD electrical erosion or poor lube | Use insulated/hybrid bearings (SKF CeraDrive-type); correct regrease |
よくある質問
What type of motor is used in hospital delivery robots?
Most use brushless DC (BLDC) motors with Hall sensors for traction, paired with a planetary gearbox, encoder and brake. Geared BLDC hub motors suit small medication/meal runners; integrated servo and frameless flat BLDC motors are used for heavy linen carts and lift/arm mechanisms.
Why do hospital robots need low-noise motors?
They operate in wards, ICUs and pharmacies where loud drives disturb patients and staff. The medical-grade target is ≤45 dB(あ) (some down to ~32 dB(あ)), achieved with ironless/4-pole rotors and sinusoidal FOC to avoid cogging vibration.
What EMC and safety standards apply to hospital robot motors?
IEC 60601-1-2 (Ed. 4.1, 2020) governs medical EMC, referencing CISPR 11 Class B for emissions and setting immunity to ESD, RF, surge and proximity fields. Quality follows ISO 13485:2016; the rotating machine is rated per IEC 60034-1.
How do I size a motor for a medication delivery robot?
Compute wheel force F = m·g·Crr + m·g·sinθ + m·a, convert to wheel torque T = F·r, divide by gear ratio and efficiency, add a 1.5× factor, and size for RMS torque over the duty cycle. あ 6.5 in hub motor (4 N・m, 24 V, 250 W) covers ~100 kg at 0.5 m/s per pair of wheels.
Is a hub motor or a geared motor better for hospital robots?
For ≤150 kg runners, a geared BLDC hub motor keeps the chassis simple and low-cost. For ≥300 kg linen/utility transports, a separate geared servo is more efficient and serviceable. Direct-drive wheels are used only where silence and zero maintenance beat cost.
What duty cycle should a hospital delivery robot motor be rated for?
Most run IEC 60034-1 S3 (run/stop) or S6 (continuous periodic); S1 only for long uninterrupted corridors. Size for RMS torque over the real cycle and add thermal headroom for 40 °C ambient and enclosed bays.
Why Choose GreenSky for Hospital Robot Motors?
GreenSky Power is a China-based B2B motor manufacturer supplying BLDC, ギア付き, servo and frameless drive assemblies to medical and logistics robot OEMs worldwide. 私たちはサポートします Hall-sensored and encoder-based BLDC builds, planetary reductions, integrated electromagnetic brakes, and low-noise rotors tuned to ≤45 dB(あ) ward targets. Our engineering team helps you map the right topology to your payload and duty cycle, and we work to ISO 13485-aligned quality processes with full material and test traceability for medical certification. Whether you are building a 100 kg medication runner or a 600 kg linen transporter, start from our motor selection guide or talk to us about a torque-engineering review.
参照
- IEC 60034-1:2022 — Rotating electrical machines, 一部 1: 評価と性能 (duty types, 熱限界, EMC). webstore.iec.ch/publication/8905
- IEC 60034-30-1:2014 — Efficiency classes of single-speed three-phase cage-induction motors (IEコード). webstore.iec.ch/publication/63421
- IEC 60601-1-2:2020 (Ed. 4.1) — Medical electrical equipment, 一部 1-2: EMC — collateral standard. micomlabs.com/iec-60601-1-2-emc-testing
- ISO 13485:2016 — Medical devices — Quality management systems. iso.org/iso-13485-medical-devices.html
- MGはありません 1-2021 — モーターと発電機 (rotating electrical machines standard). nema.org/standards/view/mg-1-tr-2021-rotating-electrical-machines
- 私たち. エネルギー省 10 CFRパート 431 — Energy efficiency program for certain commercial and industrial equipment (電気モーター). ecfr.gov/…/part-431
- Dei N.N. 他。, “Design and Performance Evaluation of a Modular Mobile Robot for Autonomous Hospital Logistics,” IEEEトランス. Automation Science and Engineering, 2026. doi.org/10.1109/TASE.2026.3674356
- Fung W.K. 他。, “Development of a hospital service robot for transporting task,” IEEE RISSP 2003. doi.org/10.1109/RISSP.2003.1285647
- SKF — Hybrid ceramic (CeraDrive) bearings for electric motors: insulation against stray-current erosion. skf.com/…/skf-ceradrive
- Siemens — Energy-efficient drives (SIMOTICS SD in IE4, まで >96% motor efficiency). assets.new.siemens.com/…/Siemens-EE-Drive-Systems-Background-Information.pdf


