Non-ferrous coating thickness Gauge

Non-ferrous coating thickness gauges operate based on the eddy current induction principle. The probe generates a high-frequency electromagnetic field, inducing eddy currents in non-ferrous metal substrates to measure variations in coating thickness. They are used to detect coatings on substrates such as aluminum and copper, including paint and plastic films, ensuring that the thickness meets standards. These gauges find applications in industries such as automotive and electronics.
Selection
When selecting a non-ferrous coating thickness gauge, consider the substrate type and coating range to ensure instrument compatibility. Pay attention to accuracy and calibration methods, and choose a model that is easy to operate. Evaluate environmental adaptability, such as the impact of temperature. Consider brand reliability and after-sales service, and make a decision based on your budget and actual needs.

Terms

Instruments

The eddy Current principle is used for measurement of nonconductive coatings on non-ferrous metal substrates, with a thickness range of 0~ 625μm and an error of +/- 3%. It has IP65 Protection Rating and fast measurement capabilities of more than 60 readings per minute.

$ 1338.00

Using magnetic Induction and eddy Current principle simultaneous measurement composite coatings, Measurement range 0~ 1500μm, error +/- 1%, can display a single coating and zinc layer thickness, suitable for the accurate detection of ferrous and non-ferrous substrates.

$ 1622.00

Using magnetic Induction Measuring method, range 0~ 5mm, error +/- 5%, can measure a variety of non-ferrous magnetic coatings, suitable for different curvature substrate surface.

$ 359.00

Measurement range 0~ 1500 microns, error +/- 1%, support magnetic Induction principle, IP65 Protection Rating and 250 reading storage, suitable for ferrous metal substrate nonmagnetic coating environment.

$ 890.00

Measurement range 0~ 1250 µm, accuracy +/- 1~ 3% n, single and continuous Measurement modes, automatic matrix material recognition and multiple Data transmission interfaces.

$ 356.00

Measurement range 0~ 13000 μm, error +/- 3%, can store 1000 Measured values, can obtain more than 60 readings per minute, suitable for thick coating inspection.

$ 1240.00

Integrated structure design, Measurement range 0~ 1500μm, error +/- 1%, equipped with 2.8-inch color Touchscreen, support USB and Bluetooth data transmission, Protection Rating IP65.

$ 1498.00

Measurement range 0-1000 microns with dual-function Probe design, wear-resistant Ruby Probe and V-groove structure, support for automatic substrate identification and zero point Adjustment.

$ 841.00

Measurement range 0 to 1500 microns, resolution of 0.1 microns, support for more than 180 readings per minute, IP65 Protection Rating and 250,000 data storage capacity for a variety of industrial environments.

$ 1700.00

Measurement range 0~ 1000 microns, accuracy +/- 3%, built-in V-groove Probe for rough surface and cylindrical workpiece measurement, can be used without calibrating, equipped with Ruby Probe to ensure durability.

$ 622.00

Measurement range 0~ 1250μm, error +/- 3%, single and continuous Measurement mode, support USB and Bluetooth data output.

$ 320.00

Using magnetic Induction and eddy Current dual principle, Measurement range 0~ 1500μm, resolution 0.1μm, with automatic substrate recognition function, support USB and Bluetooth data transmission, Protection Rating IP65.

$ 1995.00

Adopt eddy Current principle to achieve 0~ 13mm thick coating measurement, accuracy +/- 3% and 1000 sets of Data storage capacity, Probe can be freely removable and supports 60 high-speed readings per minute, IP65 Protection Rating adapts to industrial environment.

$ 1858.00

Measurement of nonmagnetic coatings on ferrous metals, thickness range 0-6000μm, accuracy +/- 3%, built-in Probe single-handed operation, Protection Rating IP65, 60 + readings per minute.

$ 1022.00

Using magnetic Induction and eddy Current dual principle, automatic identification of substrate type, Measurement range 0~ 6000 μm, accuracy +/- 3%, equipped with 30mm wear resistant Probe, can obtain more than 60 readings per minute, Protection Rating IP65.

$ 1597.00

Articles

Selection of Coating Thickness Gauges Using Magnetic and Eddy Current Methods on Different Substrates
This article introduces two main methods for coating thickness gauges: the magnetic method and the eddy current method. When choosing a method, the key is to determine it based on the electromagnetic properties of the substrate.
Application of Coating Thickness Gauges in Electroplating Thickness Detection
Coating thickness gauges are used to measure the thickness of electroplated layers, primarily employing the electromagnetic induction method for measuring non-magnetic coatings on magnetic substrates, or the eddy current method for measuring insulating coatings on non-magnetic metal substrates.
Coulometric Method Coating Thickness Gauge for Non-Destructive Measurement of Precious Metal Coatings
The coulometric coating thickness gauge measures the thickness by calculating the amount of electricity required to dissolve the precious metal coating through the principle of electrolytic dissolution. This method is non-destructive to the overall sample, only forming tiny electrolytic spots.
Comparison of Dual-Principle Instruments: Magnetic Induction vs. Eddy Current for Coating Thickness Measurement
This article compares the principles of two coating thickness gauges. The choice of method depends on the substrate material: magnetic induction is used for magnetic metals, while eddy current is applied for non-magnetic metals.
The principle of measuring dry film thickness with a coating thickness gauge
Coating thickness gauges measure dry film thickness through non-destructive methods, with commonly used principles including electromagnetic induction, eddy current, and ultrasonic methods.
Standard Operating Procedure for Zero Calibration and Substrate Calibration of Coating Thickness Gauges
This article introduces two key calibration methods for coating thickness gauges: zero-point calibration and substrate calibration. During operation, it is important to ensure that the probe is perpendicular, pressure is applied evenly, and regular calibration and recording are maintained. These steps effectively enhance measurement accuracy and meet industry standard requirements.
Differences in Measurement Principles Between Magnetic Method and Eddy Current Method for Coating Thickness Gauges
Coating thickness gauges primarily utilize two measurement principles: magnetic method and eddy current method. The selection of the method should be based on the characteristics of the substrate material to ensure measurement accuracy.
What is a Coating Thickness Gauge? A Complete Analysis of Its Principles, Usage, and Application Areas
The article systematically elaborates on the working principles of two core measurement techniques, magnetic induction and eddy current, detailing the standard measurement process from calibration to data recording, and conducting an in-depth analysis of the influence of substrate characteristics, geometric shapes, and environmental factors on measurement accuracy.