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Featured LVDTs and Related Products
Featured LVDTs and Related Products

The DMC-A2 is an accurate, high performance, programmable dual channel controller that delivers precise measurement and control for applications using 2 LVDT inputs. The 6-digit alphanumeric led display provides easy to follow setup prompts intuitive scrolling text configuration menus.

Featured LVDTs and Related Products

Spring Loaded LVDTs are a good choice to use with the DMC-A2 controller above. See this and others in the Featured LVDT products section.


Why use an LVDT?

LVDT position sensors have certain significant features and benefits, most of which derive from its fundamental physical principles of operation or from the materials and techniques used in its construction. If you need additional information after review of this section please contact Macro Sensors and speak to a sales engineer. 

LVDT Position sensors have Friction-Free Operation

One of the most important features of an LVDT is its friction-free operation. In normal use, there is no mechanical contact between the LVDT's core and coil assembly, so there is no rubbing, dragging or other source of friction. This is a principal feature particularly useful in materials testing, vibration displacement measurements, and high resolution dimensional gaging systems.

LVDT Position Sensors have Infinite Resolution

Since an LVDT operates on electromagnetic coupling principle in a friction-free structure, it can measure infinitesimally small changes in core position. This infinite resolution capability is limited only by the noise in an LVDT signal conditioner and the output display's resolution. These same factors also give an LVDT its outstanding repeatability.

LVDT Position Sensors have Unlimited Mechanical Life

Because there is normally no contact between the LVDT's core and coil structure, no parts can rub together or wear out. This means that an LVDT features unlimited mechanical life. This factor is especially important in high reliability sensor applications such as aircraft, satellites and space vehicles, and nuclear installations. It is also highly desirable in many industrial process control and factory automation systems needing robust sensors.

LVDT Position Sensors have Over-travel Damage Resistant

The internal bore of most LVDTs is open at both ends. In the event of unanticipated overtravel, the sensor core is able to pass completely through the sensor coil assembly without causing damage. This invulnerability to position input overload makes an LVDT the ideal position sensor for applications like extensometers that are attached to tensile test samples in destructive materials testing apparatus.

 Single Axis Sensitivity and LVDT Position Sensors

An LVDT responds to motion of the core along the coil's axis, but is generally insensitive to cross-axis motion of the core or to its radial position. Thus, an LVDT can usually function without adverse effect in applications involving misaligned or floating moving members, and in cases where the core doesn't travel in a precisely straight line.

LVDT Position Sensors have Separable Coil And Core

Because the only interaction between an LVDT's core and coil is magnetic coupling, the coil assembly can be isolated from the core by inserting a non-magnetic tube between the core and the bore. By doing so, a pressurized fluid can be contained within the tube, in which the core is free to move, while the coil assembly is unpressurized. This feature is often utilized in LVDTs used for spool position feedback in hydraulic proportional and/or servo valves.

LVDT Position Sensors are Environmentally Robust

The materials and construction techniques used in assembling an LVDT result in a rugged, durable sensor that is robust to a variety of environmental conditions. Bonding of the windings is followed by epoxy encapsulation into the case, resulting in superior moisture and humidity resistance, as well as the capability to take substantial shock loads and high vibration levels in all axes. And the internal high-permeability magnetic shield minimizes the effects of external AC fields.

Both the case and core are made of corrosion resistant metals, with the case also acting as a supplemental magnetic shield. And for those applications where the sensor must withstand exposure to flammable or corrosive vapors and liquids, or operate in pressurized fluid, the case and coil assembly can be hermetically sealed using a variety of welding processes.

Ordinary LVDTs can operate over a very wide temperature range, but, if required, they can be produced to operate down to cryogenic temperatures, or, using special materials, operate at the elevated temperatures and radiation levels found in many nuclear reactors.

Null Point Repeatability of and LVDT Position Sensor

The location of an LVDT's intrinsic null point is extremely stable and repeatable, even over its very wide operating temperature range. This makes an LVDT perform well as a null position sensor in closed-loop control systems and high-performance servo balance instruments.

Fast Dynamic Response of an LVDT Position Sensor

The absence of friction during ordinary operation permits an LVDT to respond very fast to changes in core position. The dynamic response of an LVDT sensor itself is limited only by the inertial effects of the core's slight mass. More often, the response of an LVDT position sensing system is determined by characteristics of the signal conditioner.

Absolute Output of an LVDT Position Sensor

An LVDT position sensor is an absolute output device, as opposed to an incremental output device. This means that in the event of loss of power, the position data being sent from the LVDT will not be lost. When the measuring system is restarted, the LVDT's output value will be the same as it was before the power failure occurred.

How does an LVDT position sensor work?
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