A guiding hand in engineering robotic dexterity
Discover a modular, sensor rich control platform built for fine motion and real-time closed loop performance. This infographic highlights the key design challenges, engineering decisions and component choices behind modern dexterous hand control.
Watch the video below showcasing the Dexterous Robotic Hand high performance and joint control and drive architecture.
Overall market demand
Global robotics market: $88.3 billion in 2026, expanding at a 19.9% CAGR
Source: Mordor Intelligence
Nearly 13 million robots in operation by 2030
Source: ABI Research
With a 20.67% CAGR, robot dexterous hand market size to reach 1.3 billion by 2032
Source: 360iResearch
Component-level integration
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High-performance dexterous hand system with 17 DOF and integrated sensors
This diagram shows a central MPU receives power from a 24 V supply through a buck regulator and PMIC and connects to EtherCAT, USB high-speed, RS-485, and optional humanoid AI processing. The MPU communicates via CAN-FD and SPI with impedance measurement circuitry and multiple motor-control subsystems. Five single-motor boards each contain a motor-control MCU, force sensor interface, motor and gear encoder inputs, current sensing, and an HVPAK motor drive powering a three-phase motor. Five dual-motor boards provide similar control and feedback functions for dual-motor actuators. An additional dual-motor drive is controlled directly by the MPU.
Dashed lines connect all motor-control boards to a robotic hand illustration, showing that the combined system drives 17 degrees of freedom. Integrated force sensors, encoders, and current-sensing feedback enable precise motion control and dexterous manipulation.
Modular robotic hand joint control and drive system
This diagram shows power from a 12V or 24V input passes through a buck regulator and LDO to provide 5V and 3.3V supplies. A central motor controller manages two identical robotic joint control modules. Each module includes an HVPAK motor driver with gate driver, current sensor, and fault-handling circuitry. The motor controller sends three PWM control signals to the motor driver and receives three current-sampling feedback signals through ADC inputs.
Additional GPT and GPIO interfaces connect to incremental encoder feedback. Each motor driver supplies three-phase outputs, labeled U, V, and W, to a brushless motor. A Hall sensor and incremental encoder provide motor position and speed feedback.
Dashed lines connect the two motor modules to a robotic hand illustration, indicating that multiple modular joint drives can be combined to control robotic hand movements. The diagram emphasizes a scalable architecture in which a motor controller supervises individual motor-driver modules with encoder, Hall sensor, and current-sensing feedback for precise joint control.
Design challenges
High performance, low power
Reducing thermal load
Real-time edge AI
Secure connectivity
Scalable development
Compliance & regulatory support
Engineering key design factors

Governance: Define tasks & objects

Control: Match processing power to needs

Drives: Select the right motor

Feedback: Optimize force, touch and motion sensing
Published: 2026-09-14

Israel