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Experts in Acoustic Testing​

Acoustic Engineering Services

Clear answers for complex acoustic challenges

Microflown provides acoustic engineering and testing services for complex noise and vibration challenges. The right approach is not always immediately clear, and off-the-shelf testing tools do not always provide enough information. Microflown can help define and perform the right investigation. Our engineers combine years of field experience with expertise in specialized vibro-acoustic instrumentation to troubleshoot a wide range of acoustic problems and identify their root causes.

Unsure which method fits your challenge?

Not sure which engineering approach to take

You know there is an acoustic issue, but the source, required measurements or most suitable approach are still unclear. Our engineers can help define the investigation and determine the most effective next step.

Are your current methods producing inconclusive results?

Analysis of the current acoustic measurement approach

Your current methods may produce inconclusive results, making it difficult to identify the root cause of the problem. This may involve a dominant noise source, acoustic leakage or a vibro-acoustic resonance. We apply the most appropriate testing technique to characterize the sound field in detail and provide the information needed to define an effective noise-control solution.

Discuss your acoustic challenge

You do not need to know which measurement system or method is required. Tell us what you are investigating, what you already know and what result you need. Our engineers will review the information and propose the most suitable next step.

Acoustic testing across industries

The selected projects below demonstrate how Microflown’s measurement expertise has been applied to noise-source localization, acoustic leakage, material characterisation, vibro-acoustic troubleshooting and in-situ testing.

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Energy storage system investigation

An on-site investigation was carried out to identify dominant internal components, enclosure radiation and acoustic leakage under different operating conditions. The results provided focused directions for sealing, damping and structural improvement.

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Vehicle cabin leakage analysis

Near-field measurements were used inside the cabin to identify and compare acoustic leakage paths around the vehicle cabin under realistic test conditions. This provided insights into the most relevant areas to prioritise for further sealing and validation.

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Aircraft cabin noise localisation

Troubleshooting with VOYAGER and 3D acoustic visualisation was used to locate noise radiation and leakage inside an aircraft cabin without adding acoustic treatment to the measurement environment. The investigation identified relevant areas around panels, windows and structural intersections, supporting focused construction improvements.

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Large diesel-engine noise reduction

Particle-velocity mapping and sound-intensity measurements were applied to a large medium-speed diesel engine in an industrial environment with high background noise.The measurements helped identify dominant radiation areas and supported targeted mechanical and structural noise-control measures, contributing to a significant reduction in engine noise.

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ANC headphone leakage and resonance analysis

Particle-velocity mapping and sound-intensity measurements were applied to a large medium-speed diesel engine in an industrial environment with high background noise. The measurements helped identify dominant radiation areas and supported targeted mechanical and structural noise-control measures, contributing to a significant reduction in engine noise.

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Multi-layer material absorption characterization

Reverberation-room, impedance-tube and in-situ absorption measurements were compared to investigate a multi-layered material that produced inconsistent results across test methods. The study revealed that the aluminium surface layer created a membrane effect that enhanced low-frequency absorption in larger-scale and spatial measurements, while this behaviour remained undetected in the impedance tube.

Read the full paper

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Combine real-world measurements with acoustic simulations

When source data, boundary conditions or component behaviour are difficult to model accurately, measured acoustic data can provide a more reliable starting point. Microflown’s hybrid methodology combines 3D sound-intensity measurements with simulation tools to evaluate sound propagation, design alternatives and noise-control measures. Together with Quiet Consult and other simulation specialists, we connect real operating behaviour with numerical modelling.

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ACOUSTIC SENSORS & TESTING SOLUTIONS