🧲 Magnetic Particle Testing (MT)

Construction PN-EN ISO 9934-1

Detection of surface and near-surface discontinuities in ferromagnetic materials (steels, cast irons) using magnetic powder in external magnetic field. NDT method with higher sensitivity than PT for steels.

Overview

Magnetic particle testing (MT — Magnetic Particle Testing) is a non-destructive testing method for detecting surface and near-surface discontinuities (up to depth ~3 mm) in ferromagnetic materials. Standard PN-EN ISO 9934-1 specifies general principles of the method, magnetization techniques, detection media and results assessment.

The working principle is based on distortion of magnetic field lines by a discontinuity — at the defect location a leakage field is created, which attracts fine magnetic particles (iron powder) applied to the surface. Powder accumulation forms visible indication corresponding to position and shape of discontinuity.

The method is used exclusively for ferromagnetic materials (carbon steels, low-alloy steels, cast irons) — not suitable for austenitic stainless steels, aluminum, copper or non-metallic materials. For these materials, penetrant testing (PT) is used.

Magnetization is performed with electromagnetic yokes, coils, current flow (prod) or induced current. Dry powder (black or fluorescent) or magnetic suspension (in water or oil) is used. Highest sensitivity is ensured by combination: alternating current AC + fluorescent powder + observation in UV-A.

NDT personnel must have qualifications according to PN-EN ISO 9712 (level 1, 2 or 3). MT testing is required by welding standards (EN ISO 17638), pressure equipment directive PED and industrial quality standards.

Method principle

Ferromagnetic material placed in magnetic field becomes magnetized — field lines run inside material. If a discontinuity (crack, porosity) is in the path of field lines, the lines are distorted and partly expelled outside — local leakage field is created. Fine magnetic particles (iron powder) applied to surface are attracted by leakage field and accumulate over discontinuity, forming visible indication. Detection effectiveness is highest when discontinuity is perpendicular to magnetic field direction.

Applications

Key parameters

ParameterValue
MaterialsOnly ferromagnetic (carbon, low-alloy steels, cast irons)
Detection depthSurface + near-surface (up to ~3 mm with DC)
Field intensity2–6 kA/m (steels, according to ISO 9934-1)
Magnetization techniquesYoke AC/DC, coil, current flow (AC/DC/HWDC)
Detection mediaDry powder (black/fluoresc.) / magnetic suspension (water/oil)
UV-A lighting (fluorescence)≥ 1000 µW/cm² at 365 nm, darkness < 20 lx

Standard

Standard number
PN-EN ISO 9934-1:2016-12
Title (PL)
Badania nieniszczące — Badania magnetyczno-proszkowe — Część 1: Zasady ogólne
Title (EN)
Non-destructive testing — Magnetic particle testing — Part 1: General principles

Step-by-step procedure

1. Surface preparation

Clean surface from contaminants, paint, rust, scale. Surface dry and clean. Apply contrast paint (with black powder).

⏱ Time: 15–30 min

2. Magnetization technique selection

Select technique providing field perpendicular to expected defects. For defects of unknown orientation — magnetization in two perpendicular directions.

3. Magnetic field verification

Verify field intensity with gaussmeter or using reference strip (Burmester). Tangential intensity 2–6 kA/m.

⏱ Time: 5 min

4. Detection medium application

Apply dry powder (puffer) or pour surface with magnetic suspension. With continuous method — apply DURING magnetization.

⏱ Time: 3 min

5. Magnetization

Turn on electromagnet/current flow. Magnetize min. 3 × 1 s (pulsed) or continuous mode with simultaneous medium application.

⏱ Time: 5 min

6. Excess removal

Gently remove excess powder / suspension (light air stream, draining). Do not remove too aggressively — indication destruction.

7. Inspection and evaluation

Evaluate indications: with black powder — white light > 500 lx. With fluorescent — UV-A ≥ 1000 µW/cm², darkness < 20 lx. Classify indications (linear/rounded).

⏱ Time: 10–30 min

8. Documentation

Prepare report: element identification, magnetization technique, medium, results, indication map, assessment according to criteria (e.g. EN ISO 23278).

9. Demagnetization

Demagnetize element with demagnetizing coil. Check residual magnetism with gaussmeter (< 0.3 mT for mechanical components).

⏱ Time: 5 min

10. Final cleaning

Remove contrast paint and detection medium residues. Apply anti-corrosion protection.

Required equipment and apparatus

EquipmentExampleIndicative price
Electromagnetic yoke (AC yoke)Magnaflux Y-7, Parker DA-400, Helling FA 4003 000–15 000 PLN
Magnetizing bench (stationary)Magnaflux Magnavis, Tiede LY-series50 000–200 000 PLN
Fluorescent magnetic suspensionMagnaflux 14A (fluorescent dry powder), 14HF (suspension)150–400 PLN / liter or kg
UV-A lamp (365 nm)Magnaflux ZB-100F, Labino Compact UV, Helling UV-Inspector3 000–15 000 PLN
Field intensity meterHirst GM08 (Gaussmeter), Hall probe, Berthold indicator2 000–8 000 PLN
Reference specimensBurmester strip type 1/2, strip A1/A2 according to ISO 9934-2200–500 PLN

Reagents, media and consumables

ReagentCASDetails
Black dry magnetic powderFe₃O₄ iron powder with particle size 5–150 µm, for use on light surfaces
Fluorescent magnetic powderParticles coated with fluorescent pigment — highest sensitivity in UV-A 365 nm
Suspension carrier (water/oil)Water with corrosion inhibitor or light mineral oil — powder concentration 0.1–0.4 mL/100 mL (Centrifuge tube)
White contrast paintThin white layer under black powder — improves indication contrast (do not use with fluorescent)
DemagnetizerDemagnetizing coil to remove residual magnetism after testing

Health and safety (OHS)

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