Tips for Choosing a Latching DC Solenoid
Choosing a latching DC solenoid is selecting an appropriate interaction between electrical, mechanical, and environmental factors. Here is a guide that will help you choose your device.
1) Actuation Requirements: Stroke and Force
– Stroke (mm): Find out the stroke length of your plunger in the actuated position; for example, the distance to move a valve pin is approximately 5 mm.
– Holding force (N or kg): This is the external load that the device will have to hold, for example, spring back-pressure, fluid pressure, or friction. Latching solenoids are powerful holding devices, but they produce a weaker actuation force during a pulse. Refer to the force versus stroke chart from the data sheet.
2) Drive Capability
– Coil voltage: Choose the voltage compatible with your power source. Commonly used coils have voltages of 12 V DC or 24 V DC.
– Single coil or dual coil: Select a single coil solenoid if you can drive the device using an H-bridge. Otherwise, go with a dual-coil device if you can generate two independent pulses. Consult your battery or capacitor specifications to make sure that it can provide enough current during a pulse (for example, 1.5 A at 12 V for 80 ms). If your drive is too weak, the solenoid won’t manage to latch.
3) Duty Cycle of Latching DC Solenoid
Latching solenoids consume no current when holding; therefore, the duty cycle is defined as the pulse duration divided by the cycle time. Typical values are 5–10%, for example, 100 ms every 2 seconds. Pulsing the solenoid too often will lead to excessive heat.
4) Environment Conditions
– Temperature: The magnetic field is degraded above the 150 °C; there are solenoids working below -40 °C.
– Enclosure type: If you plan to use the device outdoors or in industrial conditions, choose an IP65 enclosure or a tubular solenoid with a shaft seal.
– Corrosion: Stainless steel plunger and housing will be needed in salty environments.
5) Feedback and Safety Features
– Fail-last vs. fail-safe: Latching solenoids do not allow fail-safe operation. Spring return solenoids return to their initial position when the current stops.
– Position sensing: In case you want your controller to be aware of the position after the device was turned off for an extended period of time, use a limit switch or a Hall effect sensor, or simply add control capabilities into the controller to recognize the polarity of the last pulse.
6) Size and Mounting
– Envelope size (diameter, length, mounting pattern): Make sure that the dimensions match those of your mounting area. Tubular solenoids fit narrower bore sizes than open-frame types, which usually cost less per unit when prototyping.
– Always check the operation of the selected solenoid together with your real load and power source. The pulse duration should be carefully optimized; it is not recommended to use pulses shorter or much longer than necessary.














