Eddy Current Grinding Machine

The vortex mill utilizes a high-speed rotating grinding disc to generate vortex flow, which drives the grinding media to collide with and shear the material, achieving particle refinement. It is used for the dispersion and grinding of pigments and fillers in industries such as coatings and inks, improving product uniformity and fineness.
Selection
When selecting a vortex mill, consider factors such as material hardness, target fineness, and production capacity requirements, while matching the equipment's power and the type of grinding media. Pay attention to the wear resistance of materials, operational safety, and ease of maintenance, and make the selection based on actual production conditions.

Terms

Standards

Instruments

The use of diamond sanding needles can flatten the surface of the grinding wheel, improve the utilization rate of abrasive wheels, and is equipped with a water supply system to support wet grinding and dry grinding. The size of abrasive wheels is about 250 × 30 × 32mm, and the Rotation speed is 1400rpm.

$ 1239.00

Measurement range 0~ 1500μm using eddy Current principle, error +/- 1%, equipped with anti-wear Siamese Probe suitable for one-handed operation, IP65 Protection Rating, can measure more than 60 readings per minute, store 1000 Measured values.

$ 979.00

Double Tank grinding design, vibration speed 60-1800rpm, discharge particle size up to 5~ 10μm, support dry grinding, wet grinding and low temperature grinding, suitable for heat sensitive materials and minimal liquid nitrogen consumption.

$ 5540.00

Measurement range of 0-1500 μm using eddy Current principle, with high contrast ratio color display and USB/Bluetooth data transmission, supports efficient measurement of more than 180 readings per minute.

$ 1622.00

The double Tank design is used to achieve high-throughput grinding, the vibration speed is adjustable from 60 to 1800rpm, and the discharge particle size is 5 to 10 μm. It supports dry grinding, wet grinding and low temperature grinding, and effectively protects the molecular structure of heat-sensitive materials.

$ 5697.00

With double Tank grinding and 1-30Hz vibration Frequency adjustment, support low temperature grinding protection heat sensitive material, discharge particle size up to 5~ 10μm, can process more than 10 samples at a time and grinding time only 1-3 minutes.

$ 5660.00

Using double Tank grinding design, vibration speed 60-1800rpm, discharge particle size up to 5~ 10μm, support low temperature grinding protection of heat sensitive materials, a processing of more than 10 samples, grinding time only 1-3 minutes.

$ 5663.00

Using large-screen touch screen operation, intelligent control of grinding time and speed, grinding results are highly repeatability. The dual-Tank design supports high-throughput processing, and the discharge particle size can reach 5~ 10 μm. It is suitable for heat-sensitive materials and consumes very little liquid nitrogen.

$ 5237.00

Using magnetic Induction and eddy Current principle, Measurement range 0~ 1250μm, error +/- 3%, support Bluetooth transmission and automatic identification of matrix material, suitable for one-handed operation.

$ 564.00

Measurement range of 0-1250 μm using eddy Current principle, single continuous dual mode and large Probe design, support Automatic calibration matrix recognition, error of only +/- 3% resolution up to 0.1 μm.

$ 320.00

Using magnetic Induction and eddy Current dual principle, Measurement range 0~ 2000µm, error +/- 1~ 3%, with automatic identification of matrix material and memory Adjustment, support split Probe to enhance mobility.

$ 338.00

Using magnetic Induction and eddy Current dual principle, Measurement range 0~ 1250μm, error +/- 3%, support single and continuous Measurement mode, automatic identification of matrix material and memory calibrated value, easy to operate.

$ 401.00

Using eddy Current Measurement principle, Measurement range 0~ 1250μm, with continuous single double Measurement mode, metal shell anti-interference, support automatic statistics and storage of 1560 measured values.

$ 344.00

Using magnetic Induction and eddy Current dual principle, Measurement range 0~ 500μm, resolution of 0.1μm, wear-resistant hard metal probe and Automatic calibration function, support USB data communication.

$ 275.00

Using magnetic Induction and eddy Current principle, Measurement range 0~ 500um, resolution 0.1μm, wear-resistant hard metal probe and Automatic calibration function, support single and continuous Measurement mode.

$ 275.00

Articles

Selection of laboratory grinders is based on the fineness requirements of coatings, choosing between ball mills or sand mills.
The selection of a laboratory grinder should be based on the fineness requirements of the coating. A fineness greater than 50 microns indicates coarse dispersion, 10 to 50 microns is considered medium fineness, and less than 10 microns requires high fineness dispersion.
Mill Selection: Grinding Media and Material Fineness Targets
This article introduces how to select appropriate grinding media based on material characteristics and target fineness during the selection of a grinder.
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.
Eddy current thickness gauge measures metal coatings on non-conductive substrates.
The eddy current thickness gauge utilizes the principle of electromagnetic induction, generating an alternating magnetic field through the probe coil to induce eddy currents in the metal coating, thereby measuring thickness based on changes in coil impedance.
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.
Eddy current thickness gauge detects coatings on non-ferrous metals.
The eddy current thickness gauge operates on the principle of electromagnetic induction, generating an alternating magnetic field through the probe coil, which induces eddy currents on the surface of non-ferrous metal substrates.
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.
Process of Three-Roll Mill for Handling High-Viscosity Inks
This article introduces the process of using a three-roll mill to handle high-viscosity inks. It first explains that the equipment utilizes three rollers rotating at different speeds to grind materials through shearing and squeezing actions, making it suitable for high-viscosity systems.
Blue-style grinder achieves efficient grinding of ink fineness.
The basket mill is a type of wet grinding equipment used in fine chemical fields such as ink production. It utilizes a high-speed rotating impeller to drive grinding media, generating shear and impact forces on the slurry, thereby dispersing pigment particles and reducing their fineness.
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.