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What Variable-Frequency Speed Control Brings to Electric Actuators: Variable-Speed Modulation and Soft Start

source:    date:2026-10-01

Why do many automation processes require variable-speed actuators? In an automatic loop the quality of the executing unit is critical. Every loop has different process time constants, lag and gain — so the electric actuator should offer matching working speeds. The system wants fast valve action (high servo-motor speed), good dynamic response and strong correction at large deviations; near setpoint at small deviations it wants slow movement (low speed) to avoid overshoot. Pneumatic control valves achieve this easily via derivative action or positioners, but once a motorised valve is selected its speed and travel time are fixed, unable to meet the demand — so fine control near setpoint comes from frequent starts and stops, causing loop oscillation and burnt motors. Variable-frequency motorised valves solve this easily.

At large deviations the derivative action raises the inverter output frequency, so the valve motor runs fast — up to 1.5–2× the present working speed — with excellent dynamic response. As deviation shrinks the inverter frequency falls markedly, slowing the motor to 0.2–0.5× present speed; the valve inches open or closed, greatly enhancing fine-control ability, eliminating frequent starting near setpoint, visibly reducing overshoot and raising loop quality. The variable-speed scheme uses the standard signal to control the inverter output: inverters all have a 4–20 mA frequency-set input — feed it the signal, vary it, and stepless variable-speed running follows. Such actuators and valves no longer show the on-off/integral characteristic but a dynamically variable-speed, variable-integral one, with open-loop behaviour better than pneumatic valves — a large quality gain.

For high-quality, high-precision control an electric actuator must first respond sensitively to small signal changes; for good dynamic response its speed must be proportional to signal amplitude; and to overcome steady-state error it must run slowly, with very fine corrective action. Plainly an actuator without variable speed cannot meet these demands.

1. Performance of the intelligent variable-frequency actuator and valve

The intelligent variable-frequency actuator applies digital inversion and single-chip technology to existing electric actuators, adding intelligence, variable-speed running, good dynamic response, high positioning accuracy, stability, low failure rate, long life and wider applicability. Paired with various valve bodies they form intelligent variable-frequency motorised valves. During modulation the plug speed varies: at large deviation between command and feedback it is faster than ordinary motorised valves, accelerating correction; as deviation shrinks the motor slows, plug speed falls, slowest near the balance point — the valve inches open or closed with extremely fine resolution, greatly improving control accuracy.

1.1 Main features

  • 1. External analogue speed control gives ideal modulation. The built-in intelligent module feeds an analogue speed signal to the inverter, which runs the servo motor at different speeds. With this speed signal the actuator opens and closes slowly near setpoint, preventing violent pressure fluctuation in the pipe; when disturbances push the variable far from setpoint the actuator strokes at extreme speed to fight them, gradually avoiding cavitation danger and protecting pipe and valve from overpressure and wear.
  • 2. Intelligent control optimises the process, cutting motor starts and valve wear. The built-in module is a self-adapting multi-function controller: the motion always self-adjusts to the deviation between command and feedback. This ensures the highest control accuracy with the fewest starts/stops, optimising the process and reducing valve wear.
  • 3. "Soft start" and "electric braking" avoid slamming the valve while ensuring maximum torque. Progressively adjusting the opening at low speed with maximum torque, soft start slashes starting current — even frequently cycling flow and pressure systems never burn the motor. That is the hallmark of variable-frequency soft start/stop, impossible for traditional actuators without the integrated inverter: near the setpoint or limit the inverter automatically reduces motor frequency and voltage, easing to position at minimum speed; electric braking prevents inertial overshoot and slamming, so output torque never exceeds the preset closing torque.
  • 4. The actuator improves valve linearity, letting simple valves do complex control. Complex processes want opening proportional to flow. Per the valve characteristic the built-in module automatically varies speed over the stroke, dividing travel time into ten steps at different speeds, set by parameters — the "travel-speed characteristic", mainly improving valve linearity. It also improves the flow characteristic: by parameters the module switches among linear, equal-percentage and near-quick-opening characteristics.
  • 5. Always knowing the valve's state. Long-term wear, deposits and rust make valves stiff. The built-in module self-diagnoses and self-accumulates, automatically raising the lower frequency limit to boost motor output and overcome stiffness.
  • 6. Rich, reliable application software. Developed for actuator and valve duties: deviation-based variable-speed control; upper/lower travel limits; standardised inputs (4–20 mA, 1–5 V); standardised position feedback; wire-break protection; field-settable action; split-range; cascade secondary loops; interlocks; phase-loss, overheat, torque and valve-jam protections; large capacity and high differential; flow-characteristic conversion; plug-motion dynamics tuning; watchdog and power-fail protection.

1.2 Working principle

The figure shows the principle of the intelligent electronic variable-frequency motorised valve: electric actuator, valve body and control section, the latter split into main-circuit motor control and secondary parameter control. Integrated design unites modulation, computation, servo and inversion — simple and reliable.

Briefly: the 4–20 mA (1–5 V) input (or digital communication) and 1–5 V position feedback enter the intelligent controller's A/D; the CPU, per external parameter settings, compares and computes, outputting a switching signal matching the deviation direction and an analogue signal proportional to deviation size; these set the inverter frequency, regulating servo-motor speed and direction, continuously positioning the valve — automatic control. The inverter protects the motor against overload, short circuit and phase loss, raising corresponding alarms. The RS-485 port is the standard link to the outside under the communication protocol.

The valve meets various duties through parameter setting: parameters enter the program via the setter, the CPU runs the valve by the stored program; EEPROM stores settings; the watchdog ensures reliable program operation.

1.3 Performance and technical characteristics

Open-loop characteristic: shown below; the input is a step.

Open-loop characteristic of the intelligent variable-frequency valve
Open-loop characteristic of the intelligent variable-frequency valve

Curve 1 (the intelligent variable-frequency valve) begins slowly — soft start, reducing starting current — then approaches L' at high speed, its slope far exceeding curves 2 and 3. Approaching L' the slope falls and speed drops, slowest near L'; entering the insensitive band, electric braking stops the valve at L'. Compared with motorised and pneumatic control valves, the intelligent variable-frequency valve's open-loop characteristic is clearly superior.

Comparison with motorised/pneumatic valves
Comparison with motorised/pneumatic valves

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