Standard DH116
- 11-DOF High Dexterity Motion Design
- High-Efficiency Brushless Coreless Motor
- Precise Worm Gear Transmission System
- 545g Ultra-Light weight Integrated Structure
- Optional multi-modal tactile sensors











211W | 0.6N.m | 3360rpm

Number of phases
3
Number of pole pairs (P)
10
Resistance Line-line (Ω)
0.63±10%(20℃)
Stator Winding Inductance (mH)
0.56±20%(20℃)
DC Link Voltage (V)
48
Rated Current (A)
4.6
Rated Speed (rpm)
3360
Rated Torque (N.m)
0.6
Peak Torque (N.m)
2.5
Peak Current (A)
20.3
Maximum Speed (rpm)
3970
Back EMF Constant (X10⁻³V/rpm)
8.5
Torque Constant (N.m/A)
0.141
Rotor Moment of Inertia (x10⁻⁴kg.m²)
0.083
Weight (kg)
0.136
Insulation Class
F
Insulation Resistance
DC500V, above 100MΩ
(stator&NTC) Insulation Strength
600VAC/1S/2mA&300VAC/1S/5mA
Leadshine’s FM2 frameless motors address robotic joint issues—heat, weak burst power, and poor consistency—with “ultra-low temp rise, ultra-high density, extended endurance.” Through next-gen magnetic circuit optimization and vacuum potting, they achieve 10% higher torque, 20% lower losses, 30% longer runtime, while fully automated lines ensure high consistency.

Ultra-High Density
With the same input current, motor torque increases by 10%, leading the industry.

Extended Endurance
Optimized magnetic circuit and material selection reduce motor losses and extend runtime.

Ultra-Low Temperature Rise
Optimized magnetic circuit design cuts motor losses by 20%, greatly improving power conversion efficiency.
Leadshine's FM2 Series frameless motors, featuring advantages such as ultra-low temperature rise, ultra-high torque density, and extended endurance, are widely used in robotic joint actuation, industrial automation, high-end medical equipment, aerospace, and other scenarios.
• High torque density for better power-to-weight ratio and safety
• Direct drive, faster response with fewer transmission parts
• Proven in humanoid and collaborative robots
• Boosts 5-axis machining center rotary acceleration to >3 rad/s²
• ~20% higher machining efficiency with high precision
• Ideal for CNC and precision assembly lines
• Meets accuracy/stability needs for proton therapy and surgical robots
• Low vibration and noise for imaging and precision tasks
• Ensures long-term medical device reliability
• Lightweight flight control servos improve fuel efficiency and agility
• High-precision satellite antenna pointing for extreme environments
• High reliability for long-term missions
Yes. Stator and rotor assemblies are available. Standard mounting dimension drawings and custom non-standard designs are supported. Machining accuracy of the mounting surface and concentricity must be ensured.
The stator can be fixed by thermal shrink fitting (recommended interference ≥ 0.02 mm) or adhesive bonding (clearance ≥ 0.02 mm, with a glue groove recommended). The rotor is fixed with adhesive, with a clearance of approximately 0.02 mm; a glue groove is recommended on the shaft.
A servo drive is required. We offer an in-house integrated ring drive or an external Mini drive, and can also recommend compatible models.
Yes. Incremental, absolute, and magnetic encoders are supported, enabling closed-loop control and high-precision positioning.
A drive that supports brushless servo control is recommended. Compatible drives are also available from us.
Yes, in most cases. Compatibility depends on interface types (encoder type, voltage and current levels), which need to be confirmed.
Smoothness is determined by the drive control logic. We can provide tuning recommendations and a zero-position calibration manual.
Yes. With an encoder and a closed-loop drive, high-precision position, speed, and torque control are achievable. Some solutions support impedance/force control modes.
The motor has an open structure. Additional protection (e.g., dust covers or sealed cavities) is recommended when integrating into the end application. We can provide protection recommendations.
Normal service life exceeds 20,000 hours, suitable for 7×24 continuous operation. Widely used in medical devices, robotics, and other fields.
Yes, there are successful cases across multiple industries, with validation through temperature rise, shock, aging, and other tests.
Yes. Non-standard customization is supported for rotor outer diameter, stator thickness, voltage/current, etc. Minimum order quantities are flexible, and prototype delivery typically takes 4–6 weeks.