FreeScan Omni
$38,999.00
View FreeScan Omni
Aircraft dent inspection becomes expensive long before a repair begins. The visible damage may be small, but the maintenance team still has to locate its boundaries, measure depth and span, document position, compare the result with the applicable structural repair manual (SRM), and route anything outside published limits to authorized engineering. During an aircraft-on-ground event, every handoff adds time.
The SHINING 3D FreeScan Omni is designed to compress the measurement and reporting portion of that workflow. It combines portable metrology-grade 3D capture with an on-device inspection environment, allowing an operator to scan a damaged surface, evaluate geometry, and generate a structured report without moving the aircraft or carrying a conventional metrology workstation around the hangar.
Direct answer: FreeScan Omni can support faster, repeatable aircraft dent mapping and digital documentation. It does not decide airworthiness, replace the aircraft SRM, substitute for required nondestructive inspection, or remove the need for appropriately authorized maintenance and engineering personnel.

Fuselage skins, wing surfaces, leading edges, radomes, fairings, and control surfaces can be damaged by hail, foreign-object debris, bird strikes, ramp equipment, dropped tools, and ground-handling events. The maintenance response is governed by the aircraft’s approved technical data and the operator’s procedures not by the scanner.
The measurement problem is difficult for four reasons:
Traditional straightedges, contour gauges, depth gauges, photographs, and hand sketches remain useful and may be explicitly required by approved data. Their limitation is not that they are inherently invalid. It is that complex dent geometry can require multiple measurements, careful transcription, and manual reconstruction before engineering can review it.
FreeScan Omni is a standalone, wireless metrology 3D scanner with onboard processing and an integrated inspection workflow. SHINING 3D publishes accuracy up to 0.02 mm under specified conditions, multiple laser modes, and on-scanner inspection/reporting capability. For aircraft MRO, the operational value is the combination: portable capture on a large asset, dense surface data, automated comparison tools, and a report that can be reviewed away from the aircraft.
| MRO stage | FreeScan Omni contribution | Required human or approved-data control |
|---|---|---|
| Initial damage documentation | Captures dent surface, surrounding skin, and location context | Confirm aircraft identity, zone, effectivity, event, and inspection scope |
| Geometric assessment | Calculates depth, span, profile, area, and surface deviation | Use the SRM or other approved data to define measurement method and limits |
| Engineering referral | Provides a digital model, color map, annotations, and structured report | Authorized engineering determines disposition when published limits do not apply |
| Post-repair or monitoring record | Supports repeatable rescanning and comparison with a prior dataset | Follow operator, OEM, and regulatory recordkeeping requirements |
The strongest use case is not “replace every dent gauge.” It is reduce the time between discovering damage and delivering decision-ready geometric evidence.
Before scanning, identify the aircraft model and serial-number effectivity, damaged zone, applicable SRM chapter, operator procedure, and any required inspection task. Determine whether the damage requires visual inspection only, dimensional mapping, or additional NDI such as eddy current, ultrasonic, radiographic, thermographic, or penetrant inspection.
FAA guidance on transport-aircraft structural damage and repairs emphasizes approved maintenance or inspection programs and engineering judgment. Transport Canada likewise treats structural-damage assessment as a process that includes visual inspection, interpretation of NDI results, damage documentation, and determination of the required repair. A 3D surface map contributes evidence; it does not become the approval basis by itself.
Decide exactly what the scan must establish. Depending on the SRM and damage type, useful outputs can include:
Do not let the software choose the engineering question. The measurement definition must come from approved technical data and the organization’s quality process.
Remove loose contamination only as permitted by the maintenance procedure. Reflective aluminum, polished surfaces, glossy coatings, water, oil, or residue can affect optical capture. Any use of targets, removable developer, or scanning spray must be approved for the aircraft surface and must not obscure cracks, corrosion, paint damage, or other evidence needed for the inspection.
When surface treatment is not permitted, adjust scan angle, exposure, laser mode, and reference strategy. Record any condition that could influence the result.
Scan beyond the visible dent. The analysis needs enough surrounding nominal surface to establish a stable reference. Include nearby structural landmarks when permitted so the report communicates location unambiguously. Maintain consistent standoff and overlap while changing viewing angle to avoid glare and incomplete data.
For large smooth panels, use a reference strategy that resists drift. Confirm the target layout and scanning route during process qualification rather than improvising during an AOG event.

Inspect the mesh for holes, reflections, edge noise, double surfaces, registration drift, and insufficient reference area. Verify that the deepest region and the dent boundary are fully captured. If the device supports a saved inspection template, confirm that the correct aircraft or task template is active before generating results.
A fast scan with weak reference data is not a time saving. The goal is to avoid returning to the aircraft after engineering discovers that the report lacks context.
A dent can be measured relative to a fitted local surface, an adjacent undamaged region, a nominal CAD model, or another reference defined by the approved procedure. These approaches can produce different results. Lock the reference method during process validation and include it in the report.
A color deviation map is useful for seeing the full deformation field, but it should accompany not replace numerical dimensions and location annotations.
The report should be understandable to someone who was not standing beside the aircraft. Include:
A scanner feature is not a validated maintenance procedure. Before deployment, the MRO organization should qualify the full process on representative aircraft surfaces and known artifacts. The evaluation should include repeatability, operator-to-operator variation, reflective finishes, shallow dents, curved panels, fastener proximity, environmental lighting, temperature, access constraints, and report reproducibility.
Build a measurement-system analysis around the actual decision threshold. If an SRM limit is close to the expected measurement uncertainty, route the case conservatively and use the required confirmatory method.
| Qualification question | Evidence to retain |
|---|---|
| Can different trained operators reproduce the result? | Repeatability and reproducibility study on representative panels |
| Does the reference method bias dent depth? | Comparison of fitted surface, physical gauge, and known artifact |
| Can the scanner capture the actual finish and curvature? | Trials on painted, bare, reflective, and composite surfaces |
| Is the system controlled between calibrations? | Daily or pre-use verification procedure and control record |
| Can engineering audit the result later? | Raw data, analysis project, report, software version, and revision history |
Metrological traceability is a property of a measurement result. It requires a documented chain of calibrations or comparisons, each contributing to measurement uncertainty. Owning a calibrated scanner is not enough by itself. The organization must control the device, reference artifacts, software, environment, operator method, and verification process used to produce the result.
For US operations, review the applicable FAA-approved maintenance or inspection program, OEM data, and internal repair-assessment process. For Canadian operations, follow Transport Canada requirements, approved maintenance organization procedures, and the aircraft’s continuing-airworthiness data. For Mexico, use the applicable AFAC framework, approved operator procedures, and OEM technical data. Where requirements differ, the controlling approval basis wins.
Yes. It can capture the dent and surrounding surface as dense 3D geometry, then support dimensional analysis and digital reporting. The measurement method, acceptance limits, and final disposition must still follow the applicable SRM, approved maintenance data, and organizational procedures.
Not automatically. A qualified 3D workflow can reduce manual mapping and improve documentation, but physical gauges may remain required, useful for confirmation, or better suited to a specific task. The MRO’s approved procedure determines the accepted method.
No. Optical 3D scanning measures visible surface geometry. It does not by itself detect subsurface cracking, delamination, corrosion loss, or other damage that may require eddy current, ultrasonic, radiographic, thermographic, penetrant, or another approved NDI method.
It reduces dependence on a tethered workstation at the aircraft and can shorten the path from capture to an annotated report. That is valuable in hangars, on ramps, on elevated access platforms, and during time-sensitive engineering referrals.
It can map visible surface deformation on suitable composite finishes. Composite impact damage may extend beyond visible geometry, so the applicable maintenance data may require additional NDI. Surface scanning should be integrated with not substituted for the required composite damage assessment.
Use a representative curved and reflective aircraft panel with known shallow damage. Require the vendor to show setup, reference strategy, capture, repeat scanning, independent verification, reporting, data export, battery endurance, access constraints, training, calibration, and the workflow for routing a result to engineering.
FreeScan Omni is compelling when the bottleneck is getting repeatable surface geometry and a reviewable report from the aircraft to engineering quickly. It is less valuable if the organization has not defined the approval basis, measurement method, verification routine, or handoff process. Digitizing an uncontrolled procedure only makes uncertainty move faster.
The highest-value next step is an application-specific demonstration using a representative aircraft panel, a known reference artifact, and the reporting requirements your maintenance and engineering teams actually use.
Evaluate the workflow: book a guided industrial 3D scanner demonstration or request a formal quote for an advanced SHINING 3D metrology requirement.
$38,999.00
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