Pitch can be variable or fixed
Joint center-to-center can be programmed as variable or fixed.
OMEC’s flexible two-axis joint-milling platform for drawer and furniture components. The 750 CN-C machines dovetail and parallel joints with variable or fixed pitch and lets the numerical control change joint spacing, joint count, joint depth, workpiece dimensions, cutting/tool-feed parameters and tool-size compensation inside the machine’s working limits.
Drawer programs can require more than one fixed pitch. The 750 CN-C is built for a wider joint mix where spacing, count, depth and workpiece dimensions need to move with the product.
A two-axis numerical-control system manages the machining variables while one 18,000-rpm electrospindle carries the OMEC cutter.
Single male, single female or simultaneous male/female machining stays in one platform while the control expands setup flexibility beyond a two-pitch fixed program.

Start with the manufacturing problem
The 750 CN-C is not simply a faster fixed-pitch dovetail machine. Its purpose is a broader product mix: joint pitch, count, depth and workpiece dimensions can be changed within the machine’s working limits, making it a stronger route when drawer construction cannot be reduced to one or two permanent spacing programs.
Joint center-to-center can be programmed as variable or fixed.
The numerical-control description lists both the number of joints and the joint depth among the variables the machine can change.
OMEC lists workpiece dimensions among the variables controlled through the machine software.
The machine reference is 60 drawers/hour. Finished-line output still depends on the complete production process.
Application fit
The 750 CN-C is strongest where dovetail or parallel joints vary by drawer family and where joint spacing, count, depth or part size need software-guided adjustment. The base 750 CN-C remains a straight-front machine unless a separate curved-front configuration is ordered.
A strong fit where drawer construction changes enough that a fixed-pitch-only machine would create unnecessary limits.
Single male, single female or male/female workpieces can be machined simultaneously.
Workpiece width extends to 530 mm while length remains 200–1500 mm.
Curved-front work is assigned by OMEC to the separate 750 CN-I version and its dedicated equipment/tooling. Do not treat that as standard 750 CN-C capability.
Clamping and release are manually actuated through pneumatic valves. The machine is automatic in machining, not a fully automatic material-flow line.
The 60-drawers/hour machine reference only becomes finished-drawer output when upstream preparation and downstream glue/assembly can support it.
Select the process from the part backwards
The 750 CN-C decision starts with the actual drawer joint, workpiece envelope and required flexibility, then closes tooling, utilities and line integration.
Confirm dovetail or parallel joint and the required male/female workpiece arrangement.
Use the numerical-control flexibility only where the product actually requires changing joint geometry.
Validate length, width, joint height, front thickness and side thickness against the machine limits.
Choose integral-HM/Widia or diamond tooling around the exact joint and material requirement.
Map operator loading, air, dust extraction and downstream gluing/assembly against the desired drawer output.
Machine architecture / work cycle
OMEC describes an automatic two-axis milling machine with one spindle/cutter group capable of producing joints at different heights. Workpieces are loaded and clamped by the operator, then the control executes the programmed machining variables.
The 750 CN-C is explicitly described as an automatic two-axis numerical-control milling machine.
The machine uses one electrospindle operating at 18,000 rpm.
Workpieces are clamped and released manually using pneumatic valves.
Machine adjustments follow software instructions displayed on the monitor.
Joint capability
The 750 CN-C supports a broad range of dovetail and parallel-joint programs. Numerical control can change pitch, joint count, joint depth, workpiece dimensions, cutting/tool-feed parameters and tool-size compensation within the working limits.

Cutter area / joint programs
The closeup shows the cutting zone where the qualified workpiece meets the selected OMEC cutter. Numerical control expands what can be programmed, but the finished joint still depends on the correct cutter, material, part thickness and workpiece setup. The tooling family includes multiple integral-HM dovetail and cylindrical diameters plus diamond options.
Technical configuration
Core machine specifications are shown below. Metric values remain primary, with useful North American conversions in brackets.
| Field | Machine value | North American reference |
|---|---|---|
| Machine type | Automatic two-axis milling machine with numerical control | Dovetail / parallel-joint machining |
| Installed power | 2.7 kW | ~3.62 hp |
| Working pressure | 0.7 MPa | ~101.5 psi |
| Electrospindle | 1 | Single-spindle architecture |
| Electrospindle speed | 18,000 rpm | 18,000 rpm |
| Joint center-to-center | Variable or fixed | Program-dependent |
| Drawer production | 60 n/h | 60 drawers/hour machine reference machine reference |
| Machine weight | 312 kg | ~688 lb |
| Packed machine weight | 400 kg | ~882 lb |
| Overall dimensions L × W × H | 112 × 80 × 120 cm | ~44.1 × 31.5 × 47.2 in |
| Packing dimensions | 135 × 97 × 145 cm | ~53.1 × 38.2 × 57.1 in |
Dimensional range / workpiece envelope
The base machine uses five dimensional limits. Every drawer application must fit all five before joint-program flexibility becomes relevant.
Controls / automation / operator workflow
The numerical control addresses the machining variables that define each drawer-joint program.

Control panel
The supplied control closeup shows the operator interface used to manage the joint program. The control can modify joint pitch, number of joints, joint depth, workpiece dimensions, cutting speed/tool feed and compensation for tool-radius variation. Adjustments are guided by machine-software instructions displayed on the monitor.
Tooling architecture
The machine uses original OMEC integral-HM cutter tooling, with one integral-HM cutter included in the standard configuration. Optional cutter diameters cover multiple dovetail and cylindrical ranges plus diamond alternatives.
The standard configuration includes an integral-HM cutter mounted on the machine, plus adjustment/maintenance tools and the user manual.
A24 is the standard Ø14 integral-HM cutter option; A25 adds the deburring-tool configuration.
A26/01 through A26/04 cover Ø6–8, Ø9–10, Ø11–13 and Ø15–18 integral-HM dovetail cutter ranges.
A27/01 through A27/04 cover Ø6–8, Ø9–10, Ø11–12 and Ø13–14 cylindrical integral-HM cutter ranges.
A28 is the spindle clamp for Ø6–14 cutters.
A47 is the Ø14 diamond cutter; A48 is the Ø14 diamond cutter with deburring tool.
Pneumatics / extraction / utilities
Installed power is 2.7 kW and pneumatic working pressure is 0.7 MPa. Final electrical supply and dust-system interface are completed for the configured installation.
Working pressure is 0.7 MPa—approximately 101.5 psi.
The 2.7 kW value is installed machine power.
Final voltage, phase, frequency and protection are completed for the actual machine/install package.
A covered 750 CN-C configuration is available for noise and dust reduction. Final dust-system interface remains project-specific.
Plan for loading, clamping, control access, unloading and service access around the actual supplied guarding/enclosure.
Final machine setup, guarding, control verification and operator training belong to the qualified commissioning scope.
Production-rate framework
The machine reference is 60 drawers/hour. Actual factory output remains dependent on workpiece handling, program, joint count, cutter, material and the capacity of the downstream drawer process.
60 drawers/hour is the machine-reference rate.
A drawer with a different joint count or depth is not assumed to have the same cycle behavior as another program.
Manual load, clamp/release and unload actions remain part of the real production cycle.
Glue, pressing and final drawer assembly can become the line bottleneck even when the milling machine has capacity available.
Ownership / service / changeover
The machine’s numerical flexibility reduces the need to treat every drawer as a completely different mechanical setup, but production consistency still depends on qualified cutter condition, stable pneumatic clamping, clean extraction and disciplined program selection.
Keep joint pitch/count/depth programs tied to the intended drawer construction and approved cutter.
The 18,000-rpm electrospindle makes cutter condition and correct tooling central to the machining process.
Stable pneumatic supply and correct part presentation support repeatable clamping before machining.
Maintain access to the control, work zone, spindle area and cabinet for qualified inspection and maintenance.
Production-line integration
The 750 CN-C belongs between prepared components upstream and gluing/assembly downstream. Its broader program range is most valuable when the rest of the line can handle the same drawer mix without creating a new bottleneck.
Bring front, side and mating parts to the required dimensions and material condition.
Set the required pitch, count, depth and part dimensions around the qualified OMEC cutter.
Clamp, execute the numerical-control cycle and unload the verified male/female workpiece combination.
Move machined parts into the qualified adhesive and drawer-clamping process.
Compare milling capacity with actual changeover, loading and downstream assembly across the drawer family.
Valid configurations / options
The base 750 CN-C is kept separate from the 750 CN-I curved-front version. A covered 750 CN-C configuration is available for noise and dust reduction.
Base model: two-axis numerical-control joint milling for straight drawer/furniture components inside the defined workpiece envelope.
A covered 750 CN-C configuration is available for noise and dust reduction. Confirm the exact guarding/enclosure supplied on the quotation.
The 750 CN-I is the version for machining curved front pieces and remains separate from base 750 CN-C workpiece claims.
A89 is equipment for machining curved front pieces on the 750 CN-I route.
A94 is the cutter for machining curved front pieces on the 750 CN-I route.
A05 is available for small-piece machining. Its exact working range is confirmed at quotation.
Business-case framework
The economic case should compare existing setup time, joint-program variation, operator handling, cutter inventory, reject/rework experience and downstream drawer capacity—not just machine-reference drawer rates.
Quantify how many drawer families need different pitch, joint count, depth or workpiece setup.
Measure current loading, clamping, machining and part-transfer effort.
Build the cutter package around the actual joint library instead of selecting every available tooling option by default.
Compare joint machining against glue application, pressing, squaring and final drawer flow.
Application data package
The 750 CN-C earns its place when the range of products actually uses the flexibility it provides. Qualification should therefore include the extremes and recurring programs, not only one nominal drawer.
Length, width, front thickness, side thickness, joint height and whether fronts are straight or curved.
Dovetail or parallel joint, pitch range, joint count, depth, male/female arrangement and finished appearance.
Existing drawer output, target output, batch sizes, product mix and frequency of program changes.
Electrical service, compressed-air supply, dust collection, available floor space and upstream/downstream equipment.
Complete at quotation
Your complete OMEC 750 CN-C proposal defines the exact machine configuration, variable/fixed joint programs, workpiece dimensions, male/female machining arrangement, cutter package, standard and optional tooling, electrical configuration, 0.7 MPa compressed-air interface, dust-extraction connection, guarding/enclosure, machine/packing dimensions, commissioning and expected role in the drawer-production process.
If curved-front components are required, the proposal moves to the documented 750 CN-I route with the appropriate special equipment and cutter rather than representing that capability as standard 750 CN-C scope.
750 CN-C FAQ
The strongest reasons to choose this model are the variable/fixed pitch architecture, broader workpiece envelope and explicit control over joint-program variables.
The model designation is 750 CN-C.
OMEC identifies dovetail joints and parallel joints for drawers and various furniture components.
Joint center-to-center can be variable or fixed.
The numerical control covers joint pitch, joint count, joint depth, workpiece dimensions, cutting/tool-feed parameters and compensation for tool-radius variation.
Yes. Single male, single female or male/female workpieces can be machined simultaneously.
The machine-reference rate is 60 drawers/hour.
Length 200–1500 mm, width 60–530 mm, joint height 6–20 mm, front thickness 8–50 mm and side thickness 8–40 mm.
The machine uses one electrospindle at 18,000 rpm.
Curved-front machining belongs to the separate 750 CN-I version with dedicated equipment/tooling.
A covered 750 CN-C configuration is available for noise and dust reduction. The exact enclosure supplied is confirmed in the quotation.
OMEC 750 CN-C application review
Titan can qualify the 750 CN-C against the complete workpiece envelope, variable/fixed pitch requirements, joint count/depth changes, male/female arrangement, target drawer output, tooling, utilities and downstream assembly process.
Useful inputs: minimum/maximum drawer dimensions, front/side thicknesses, joint heights, dovetail or parallel programs, pitch range, joint count/depth changes, current output, target output, straight/curved fronts, electrical service, compressed air, dust collection and downstream gluing/pressing.