Near field length, circular probe

A circular transducer behaves like a large number of point sources. Close to the face their contributions interfere, producing a chaotic pattern of maxima and minima along the axis — the near field or Fresnel zone. Its length is N = D²/4λ = D²f/4c. Beyond N the pressure falls smoothly and predictably with distance; this is the far field, where all the amplitude-based sizing methods (DAC, DGS, AVG) are valid.

The last on-axis maximum sits at N, and the beam is at its narrowest there — roughly half the element diameter. That is the natural focus of an unfocused probe and the point of highest sensitivity. Inside the near field an amplitude reading tells you almost nothing about reflector size: a small reflector sitting on a pressure maximum can out-shout a larger one sitting in a null.

Practical consequences: evaluate flaws beyond N wherever possible; for thin sections use a low-frequency or small-diameter probe so the near field is short; when the near field is unavoidably long, use a twin-crystal (TR) probe whose crossed roof angle puts the sensitive zone close to the surface, or a focused probe. When you switch from compression to shear the wavelength almost halves and the near field almost doubles for the same probe — a point that catches people out on angle-beam work.

The rim of the crystal is clamped by its mounting and does not vibrate at full amplitude, so many references and probe data sheets work with an effective diameter of 0.97·D for a circular element, which shortens N by about 6 %. Choose the effective-diameter option below to apply that factor; leave it on nominal if your procedure uses the plain D²/4λ form, or if you are already entering a measured effective diameter.

Compression or shear

Worked example

Wave modecompression
Material velocity (override)0 m/s
Probe frequency5 MHz
Element diameter10 mm
Diameter definition1
Velocity used5900 m/s
Wavelength λ1.18 mm
Near field length N21.19 mm
Start of reliable far field (3N)63.56 mm
Approximate beam diameter at N5 mm
Diameter used in the calculation10 mm

10 mm, 5 MHz compression probe on steel. λ = 5900/5000 = 1.18 mm; N = 10²/(4 × 1.18) = 100/4.72 = 21.19 mm. The same probe used in shear (3240 m/s, λ = 0.648 mm) would have N = 100/2.592 = 38.6 mm — nearly twice as long. Selecting the 0.97 effective-diameter option would use D_eff = 9.7 mm and give N = 9.7²/(4 × 1.18) = 94.09/4.72 = 19.93 mm — about 6 % shorter.

Use at your own risk — verify before you act

These calculators support, and never replace, the judgement of qualified NDT and engineering personnel. Results are provided as is, without warranty of any kind, express or implied, and must be independently verified against the governing code edition named in your contract before being used in any inspection, acceptance, rejection, radiation-safety or fitness-for-service decision. By using them you accept full responsibility for how the results are applied; NDT Inspect, its owners and contributors accept no liability for any loss, damage, injury or death arising from their use or from reliance on them. If a result matters to safety, check it by hand and have it reviewed by a competent person.

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