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- Rotation scanner (2)
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- High Speed Testing (1)
- Hollow Axle Inspection (1)
- Hollow axle (1)
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Organisationseinheit der BAM
This paper describes the investigations, carried out during the ongoing European Project WOLAXIM. It presents the development of the non-destructive testing system for hollow axle inspection. The phased array probe is designed, the inspection parameters are determined and the required test equipment is planned according to the specifications.
As a part of the probe design, a detailed model to calculate the sound field of the conical phased array is developed. With this model the optimal geometric parameters for bore diameters from 30mm up to 70mm are determined. The first design of a conical probe with forty-eight elements is realised. Based on this design a mock-up with ten elements is produced. The first practical tests with the calculated delay laws show high sensitivity for small test flaws and offer good agreement with the modelling results. The effectiveness as well as the sensitivity with a good signal to noise ratio is verified.
The parameters for a short inspection time less than five minutes per axle are determined. A raw scanning with 1.5° circumferential and 2mm axial resolution is feasible within two minutes. That is significantly faster than comparable mechanically rotated probe systems. The remaining three minutes are sufficient for the other steps in the inspection process. The required features will be fulfilled by the COMPAS® phased array device.
The feasibility of the ultrasonic system is shown. The specification and the theoretical probe design are complete and sufficient knowledge is present that the system will be viable. The results of the modelling and first practical tests show a good agreement with the objectives. The determined probe parameters satisfy the requirements.
Hollow axle inspection can be performed without demounting the axles and without dismantling the wheels and the brake discs by using the drilling for the scan. To increase inspection reliability and inspection speed, the application of phased array systems instead of conventional probes is a good choice. For solid shaft inspection phased array setups became standard in the recent years. Nevertheless, for hollow axle inspection typically a number of conventional probes rotating through the axles drilling are applied.
The new approach uses an electronically steered rotating sound field from a phased array for the circumferential scan. This is realized by a cone shaped phased array which operates in immersion technique. That allows a significant increase in inspection speed and a reduction of the mechanical effort of the inspection system. The inspection can be carried out by a linear movement of the probe setup along the axles drilling. Applying additional focal laws allows exact inclination and focusing of the sound beam in the plane vertical to the specimen axis to concentrate the sound in the zones close to the external surface. An additional focus in the plane of incidence increases overall resolution and sensitivity.
The cone type phased array probe has been optimized to detect transversal flaws in and close to the outer surface of the hollow axle with orientation in the radial-radial plane. The prototype probe system, sound field simulations and measurement results are presented.
For in-service inspections on wheelset axles with a hollow drilling, mechanized ultrasound inspection systems with single element probes are typically used. The ultrasonic testing in the zones close to the external surface of the railway axles can be realized from the inside of the bore hole, without demounting the wheelset and without dismantling the wheels and the brake discs. The testing system must be able to find flaws in the external surface of the hollow shafts, whose surface lies in the radial-radial plane, these are called transversal flaw. Presently testing systems are used, where scanning is realized in the circumferential direction by mechanical rotation of the probe system in the actual drilling. The phased array probe system, which is presented here, can carry out the rotation scan electronically. The scan can be carried out by simply moving the system forward and backwards through the drilling without mechanical rotation. Manipulation becomes simpler and the inspection time can be shortened considerably. The ultrasonic beam can be inclined exactly and be focused in the plane vertical to the specimen axis.
The probe is designed with help of indispensable simulations using especially designed software developed by BAM. The feasibility and the alignment between the simulated and experimental results were shown in earlier projects reported by Boehm et al. (2006) and Völz et al. (2012). The main task here is to optimize a probe for bore holes with a diameter of 65 mm with an increase in sensitivity and a high spatial resolution. This development will be carried out by use of extensive simulations and result in certain changes of the relevant probe parameters.