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For surgeons · technical file

Everything you need to prepare a patient-specific implant.

Imaging protocol, design logic, material, manufacturing and inspection: the technical framework behind every IME TECH implant, from the request to the operating theatre.

Imaging
CT ≤ 1 mm
Format
Native DICOM
Alloy
Ti-6Al-4V ELI
Process
Laser fusion

01

Imaging protocol

The quality of the implant depends first on the quality of the scan. These parameters allow faithful segmentation of thin bone (orbital floor, defect edges) and a design without extrapolation.

Recommended CT acquisition parameters
ParameterCranioplastyOrbit · maxillofacial
ModalityCTCT; CBCT possible if the field of view covers the whole area
Slice thickness≤ 1 mm, ideally 0.5 to 0.625 mm≤ 1 mm, ideally 0.5 to 0.625 mm
IncrementEqual to or less than the thickness (contiguous slices)Equal to or less than the thickness (contiguous slices)
Field of viewWhole skull, from vertex to base, not truncatedComplete facial skeleton with both orbits, from the orbital roof to the chin
Gantry tilt0°0°
Reconstruction kernelBone (plus soft tissue if the aesthetic contour matters)Bone (plus soft tissue if the aesthetic contour matters)
ExportUncompressed DICOM, complete native axial seriesUncompressed DICOM, complete native axial series
ConditionsScan taken after the last surgery on the areaTeeth in intercuspal occlusion, removable appliances taken out

MPR or 3D reconstructions alone are not enough: the native axial series is essential. Files can be attached directly to the request form.

02

Study and planning

Each case goes through a feasibility study and then an online planning session with the lead engineer. Decisions are made by the surgeon and recorded.

Segmentation

3D extraction of bone from the slices, checking thin areas and artefacts.

Defect analysis

Extent, quality of the bone edges, thickness available for fixation.

Strategy

Mirroring of the healthy side or curvature blending; resection margins for tumours.

Decision points

Screw positions, overlap, thickness, restoration of the temporal contour.

03

Design rules

The parameters below are adapted to each patient. The values quoted are measured on the implants shown on this site, not constants.

  1. R01

    Anatomical reference

    Unilateral defect: mirroring of the healthy side across the midsagittal plane. Bilateral or midline defect: reconstruction by continuity of curvature with the healthy bone at the edges.

  2. R02

    Thickness

    Set according to the area and the loads. On the cases shown: ≈ 2 to 2.5 mm for the vault, ≈ 0.45 mm for the orbital floor.

  3. R03

    Perforations

    Weight reduction, fluid drainage and soft-tissue adhesion. Diameter and layout chosen at design (Ø ≈ 3.9 mm on the FIG. 01 case).

  4. R04

    Fixation

    Holes placed on healthy bone, away from thin or sinus areas, sized for the surgeon’s screw system (Ø ≈ 2.5 mm on FIG. 01).

  5. R05

    Edges and contour

    Rounded edges to protect the covering tissues. Contour restored, including the temporal region, to limit visible hollowing.

  6. R06

    Identification

    Identification engraving on the part (visible on the implants shown) and traceability back to the manufacturing batch.

04

Material: Ti-6Al-4V ELI

Extra-low-interstitial grade (ELI, grade 23) of the titanium-aluminium-vanadium alloy, the reference for bone implants. Its low oxygen content improves ductility and fracture toughness.

Chemical composition (% by mass)

Chemical composition of Ti-6Al-4V ELI
Aluminium (Al)5.5 – 6.5 %
Vanadium (V)3.5 – 4.5 %
Iron (Fe)≤ 0.25 %
Oxygen (O)≤ 0.13 %
Carbon (C)≤ 0.08 %
Nitrogen (N)≤ 0.05 %
Hydrogen (H)≤ 0.012 %
Titanium (Ti)Balance

Properties

Mechanical and physical properties of Ti-6Al-4V ELI
Tensile strength≥ 860 MPa
Yield strength≥ 795 MPa
Elongation at break≥ 10 %
Density4.43 g/cm³
Elastic modulus≈ 110 GPa
Thermal conductivity≈ 6.7 W/m·K
MagnetismNon-ferromagnetic

Follow-up imaging

Far fewer CT artefacts than with steels. Non-ferromagnetic alloy: MRI is usually possible, under the conditions specified for the device.

Stiffness

Modulus ≈ 110 GPa, higher than cortical bone: the geometry (thickness, perforations) governs the overall stiffness of the part.

Thermal sensation

Conductivity ≈ 6.7 W/m·K, low for a metal: limits the transmission of heat and cold through a thin plate.

Composition and mechanical minima: requirements of the ASTM F136 / F3001 specifications. The values of each batch appear on the material certificates in the manufacturing file.

05

Manufacturing and inspection

From powder to delivered part, every operation is recorded. The part is shipped only after inspection against the approved model.

  1. 1

    Preparation

    Part orientation, supports and fusion parameters defined for the geometry.

  2. 2

    Laser powder-bed fusion

    Layer-by-layer build under inert atmosphere, with a traced powder batch.

  3. 3

    Heat treatment

    Relief of the residual stresses from fusion.

  4. 4

    Finishing

    Support removal, deburring and surface finishing.

  5. 5

    Cleaning

    Removal of powder and manufacturing residues.

  6. 6

    Inspection

    Visual and dimensional inspection against the model approved by the surgeon.

  7. 7

    Record

    Part identification, material batch, parameters and inspection results.

06

In theatre

The procedure has been prepared: the shape, the bearing areas and the fixation points are known before the incision.

Deliverables

  • ImplantIdentified, with its manufacturing file
  • Placement planPositioning views and screw locations
  • Anatomical modelOptional, to check the fit before surgery
  • Cutting guidesIf a resection is planned

Before surgery

  • Check the part identification and that it matches the patient
  • Check the fit on the anatomical model if supplied
  • Prepare the screw system planned at design
  • Follow the packaging and sterilisation instructions in the file

07

Cranial reconstruction options

A summary of the characteristics generally reported for the main options. The choice depends on the patient, the defect and the team’s experience: it rests with the surgeon.

Comparison of cranioplasty options
OptionFitStrengthImagingKey points
Autologous bone (stored flap)Original anatomyThat of boneNo artefactBiological and no material cost; subject to resorption, especially in children and with large flaps.
PMMA shaped in theatreDepends on manual mouldingModerate, brittle under impactRadiolucentLow cost; exothermic polymerisation, longer operating time, less reproducible contour.
Patient-specific PEEKDesigned on the CT scanHighRadiolucent, artefact-freeWell tolerated and easy imaging follow-up; no osseointegration, thicker part than titanium.
Stock titanium meshShaped in theatreGood, depends on shapingLimited artefactsImmediately available; contour depends on shaping, edges to watch under thin tissues.
Patient-specific printed titaniumDesigned on the CT scanHigh at low thicknessLimited artefactsFree geometry (perforations, contour, integrated fixation), thin part; requires design and manufacturing lead time.

08

Measured cases

Values taken directly from the manufacturing files of the five cases illustrated on this site.

FIG. 01 · technical plate

Left fronto-temporo-parietal cranioplasty

Large vault defect, peripheral fixation with 8 screws

Overall size
107 × 107 × 32 mm
Thickness
≈ 2.9 mm
Mass
≈ 125 g
Volume
28.3 cm³
  • 52 perforations Ø ≈ 3.6 mm
  • 8 screws Ø 1.5 × 15 mm
  • Bone support ≈ 470 mm²
Explore in 3D

Hero · home page

Fronto-temporo-parietal cranioplasty

Extensive lateral vault defect

Overall size
154 × 119 × 53 mm
Thickness
≈ 2.1 mm
Mass
≈ 142 g
Volume
32.1 cm³
  • 69 perforations Ø ≈ 3.9 mm
  • 17 fixation holes Ø ≈ 2.5 mm
  • Identification engraving
Explore in 3D

Animation · process

Bifrontal cranioplasty

Frontal defect crossing the midline

Overall size
130 × 102 × 88 mm
Thickness
≈ 2.5 mm
Mass
≈ 156 g
Volume
35.3 cm³
  • Distributed perforations
  • Bilateral curvature blending
  • Identification engraving
Explore in 3D

FIG. 02

Orbitozygomatic reconstruction

Floor, lateral rim and body of the zygoma

Overall size
40 × 38 × 64 mm
Thickness
≈ 0.45 mm
Mass
≈ 5 g
Volume
1.1 cm³
  • Mirrored design from the healthy side
  • Frontal and malar fixation
  • Contoured floor
Explore in 3D

FIG. 03

Orbital roof reconstruction

Oculoplastic surgery, fixation on the superior rim

Overall size
28 × 21 × 12 mm
Thickness
≈ 0.6 mm
Mass
≈ 1.2 g
Volume
0.26 cm³
  • 3 screws Ø 1.5 × 8 mm
  • Screw spacing 6.2 mm
  • Planned screw axes
Explore in 3D

Thickness: median distance between opposite faces. Mass: mesh volume × 4.43 g/cm³.

09

Standards

The main regulations and standards governing the design and additive manufacturing of patient-specific implants.

Regulation (EU) 2017/745
Framework for medical devices, including custom-made devices (Article 52(8), Annex XIII).
ISO 13485
Quality management systems for medical devices.
ISO 14971
Application of risk management to medical devices.
ISO 10993-1
Biological evaluation of medical devices.
ASTM F3001 · ASTM F136
Ti-6Al-4V ELI: powder-bed fusion and wrought form for implants.
ISO/ASTM 52900 · 52904
Additive manufacturing: terminology and metal laser fusion for critical applications.

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